/src/freeimage-svn/FreeImage/trunk/Source/LibJPEG/jidctint.c
Line  | Count  | Source  | 
1  |  | /*  | 
2  |  |  * jidctint.c  | 
3  |  |  *  | 
4  |  |  * Copyright (C) 1991-1998, Thomas G. Lane.  | 
5  |  |  * Modification developed 2002-2018 by Guido Vollbeding.  | 
6  |  |  * This file is part of the Independent JPEG Group's software.  | 
7  |  |  * For conditions of distribution and use, see the accompanying README file.  | 
8  |  |  *  | 
9  |  |  * This file contains a slow-but-accurate integer implementation of the  | 
10  |  |  * inverse DCT (Discrete Cosine Transform).  In the IJG code, this routine  | 
11  |  |  * must also perform dequantization of the input coefficients.  | 
12  |  |  *  | 
13  |  |  * A 2-D IDCT can be done by 1-D IDCT on each column followed by 1-D IDCT  | 
14  |  |  * on each row (or vice versa, but it's more convenient to emit a row at  | 
15  |  |  * a time).  Direct algorithms are also available, but they are much more  | 
16  |  |  * complex and seem not to be any faster when reduced to code.  | 
17  |  |  *  | 
18  |  |  * This implementation is based on an algorithm described in  | 
19  |  |  *   C. Loeffler, A. Ligtenberg and G. Moschytz, "Practical Fast 1-D DCT  | 
20  |  |  *   Algorithms with 11 Multiplications", Proc. Int'l. Conf. on Acoustics,  | 
21  |  |  *   Speech, and Signal Processing 1989 (ICASSP '89), pp. 988-991.  | 
22  |  |  * The primary algorithm described there uses 11 multiplies and 29 adds.  | 
23  |  |  * We use their alternate method with 12 multiplies and 32 adds.  | 
24  |  |  * The advantage of this method is that no data path contains more than one  | 
25  |  |  * multiplication; this allows a very simple and accurate implementation in  | 
26  |  |  * scaled fixed-point arithmetic, with a minimal number of shifts.  | 
27  |  |  *  | 
28  |  |  * We also provide IDCT routines with various output sample block sizes for  | 
29  |  |  * direct resolution reduction or enlargement and for direct resolving the  | 
30  |  |  * common 2x1 and 1x2 subsampling cases without additional resampling: NxN  | 
31  |  |  * (N=1...16), 2NxN, and Nx2N (N=1...8) pixels for one 8x8 input DCT block.  | 
32  |  |  *  | 
33  |  |  * For N<8 we simply take the corresponding low-frequency coefficients of  | 
34  |  |  * the 8x8 input DCT block and apply an NxN point IDCT on the sub-block  | 
35  |  |  * to yield the downscaled outputs.  | 
36  |  |  * This can be seen as direct low-pass downsampling from the DCT domain  | 
37  |  |  * point of view rather than the usual spatial domain point of view,  | 
38  |  |  * yielding significant computational savings and results at least  | 
39  |  |  * as good as common bilinear (averaging) spatial downsampling.  | 
40  |  |  *  | 
41  |  |  * For N>8 we apply a partial NxN IDCT on the 8 input coefficients as  | 
42  |  |  * lower frequencies and higher frequencies assumed to be zero.  | 
43  |  |  * It turns out that the computational effort is similar to the 8x8 IDCT  | 
44  |  |  * regarding the output size.  | 
45  |  |  * Furthermore, the scaling and descaling is the same for all IDCT sizes.  | 
46  |  |  *  | 
47  |  |  * CAUTION: We rely on the FIX() macro except for the N=1,2,4,8 cases  | 
48  |  |  * since there would be too many additional constants to pre-calculate.  | 
49  |  |  */  | 
50  |  |  | 
51  |  | #define JPEG_INTERNALS  | 
52  |  | #include "jinclude.h"  | 
53  |  | #include "jpeglib.h"  | 
54  |  | #include "jdct.h"   /* Private declarations for DCT subsystem */  | 
55  |  |  | 
56  |  | #ifdef DCT_ISLOW_SUPPORTED  | 
57  |  |  | 
58  |  |  | 
59  |  | /*  | 
60  |  |  * This module is specialized to the case DCTSIZE = 8.  | 
61  |  |  */  | 
62  |  |  | 
63  |  | #if DCTSIZE != 8  | 
64  |  |   Sorry, this code only copes with 8x8 DCT blocks. /* deliberate syntax err */  | 
65  |  | #endif  | 
66  |  |  | 
67  |  |  | 
68  |  | /*  | 
69  |  |  * The poop on this scaling stuff is as follows:  | 
70  |  |  *  | 
71  |  |  * Each 1-D IDCT step produces outputs which are a factor of sqrt(N)  | 
72  |  |  * larger than the true IDCT outputs.  The final outputs are therefore  | 
73  |  |  * a factor of N larger than desired; since N=8 this can be cured by  | 
74  |  |  * a simple right shift at the end of the algorithm.  The advantage of  | 
75  |  |  * this arrangement is that we save two multiplications per 1-D IDCT,  | 
76  |  |  * because the y0 and y4 inputs need not be divided by sqrt(N).  | 
77  |  |  *  | 
78  |  |  * We have to do addition and subtraction of the integer inputs, which  | 
79  |  |  * is no problem, and multiplication by fractional constants, which is  | 
80  |  |  * a problem to do in integer arithmetic.  We multiply all the constants  | 
81  |  |  * by CONST_SCALE and convert them to integer constants (thus retaining  | 
82  |  |  * CONST_BITS bits of precision in the constants).  After doing a  | 
83  |  |  * multiplication we have to divide the product by CONST_SCALE, with proper  | 
84  |  |  * rounding, to produce the correct output.  This division can be done  | 
85  |  |  * cheaply as a right shift of CONST_BITS bits.  We postpone shifting  | 
86  |  |  * as long as possible so that partial sums can be added together with  | 
87  |  |  * full fractional precision.  | 
88  |  |  *  | 
89  |  |  * The outputs of the first pass are scaled up by PASS1_BITS bits so that  | 
90  |  |  * they are represented to better-than-integral precision.  These outputs  | 
91  |  |  * require BITS_IN_JSAMPLE + PASS1_BITS + 3 bits; this fits in a 16-bit word  | 
92  |  |  * with the recommended scaling.  (To scale up 12-bit sample data further, an  | 
93  |  |  * intermediate INT32 array would be needed.)  | 
94  |  |  *  | 
95  |  |  * To avoid overflow of the 32-bit intermediate results in pass 2, we must  | 
96  |  |  * have BITS_IN_JSAMPLE + CONST_BITS + PASS1_BITS <= 26.  Error analysis  | 
97  |  |  * shows that the values given below are the most effective.  | 
98  |  |  */  | 
99  |  |  | 
100  |  | #if BITS_IN_JSAMPLE == 8  | 
101  | 0  | #define CONST_BITS  13  | 
102  | 0  | #define PASS1_BITS  2  | 
103  |  | #else  | 
104  |  | #define CONST_BITS  13  | 
105  |  | #define PASS1_BITS  1   /* lose a little precision to avoid overflow */  | 
106  |  | #endif  | 
107  |  |  | 
108  |  | /* Some C compilers fail to reduce "FIX(constant)" at compile time, thus  | 
109  |  |  * causing a lot of useless floating-point operations at run time.  | 
110  |  |  * To get around this we use the following pre-calculated constants.  | 
111  |  |  * If you change CONST_BITS you may want to add appropriate values.  | 
112  |  |  * (With a reasonable C compiler, you can just rely on the FIX() macro...)  | 
113  |  |  */  | 
114  |  |  | 
115  |  | #if CONST_BITS == 13  | 
116  |  | #define FIX_0_298631336  ((INT32)  2446)  /* FIX(0.298631336) */  | 
117  |  | #define FIX_0_390180644  ((INT32)  3196)  /* FIX(0.390180644) */  | 
118  |  | #define FIX_0_541196100  ((INT32)  4433)  /* FIX(0.541196100) */  | 
119  |  | #define FIX_0_765366865  ((INT32)  6270)  /* FIX(0.765366865) */  | 
120  |  | #define FIX_0_899976223  ((INT32)  7373)  /* FIX(0.899976223) */  | 
121  |  | #define FIX_1_175875602  ((INT32)  9633)  /* FIX(1.175875602) */  | 
122  |  | #define FIX_1_501321110  ((INT32)  12299) /* FIX(1.501321110) */  | 
123  |  | #define FIX_1_847759065  ((INT32)  15137) /* FIX(1.847759065) */  | 
124  |  | #define FIX_1_961570560  ((INT32)  16069) /* FIX(1.961570560) */  | 
125  |  | #define FIX_2_053119869  ((INT32)  16819) /* FIX(2.053119869) */  | 
126  |  | #define FIX_2_562915447  ((INT32)  20995) /* FIX(2.562915447) */  | 
127  |  | #define FIX_3_072711026  ((INT32)  25172) /* FIX(3.072711026) */  | 
128  |  | #else  | 
129  |  | #define FIX_0_298631336  FIX(0.298631336)  | 
130  |  | #define FIX_0_390180644  FIX(0.390180644)  | 
131  |  | #define FIX_0_541196100  FIX(0.541196100)  | 
132  |  | #define FIX_0_765366865  FIX(0.765366865)  | 
133  |  | #define FIX_0_899976223  FIX(0.899976223)  | 
134  |  | #define FIX_1_175875602  FIX(1.175875602)  | 
135  |  | #define FIX_1_501321110  FIX(1.501321110)  | 
136  |  | #define FIX_1_847759065  FIX(1.847759065)  | 
137  |  | #define FIX_1_961570560  FIX(1.961570560)  | 
138  |  | #define FIX_2_053119869  FIX(2.053119869)  | 
139  |  | #define FIX_2_562915447  FIX(2.562915447)  | 
140  |  | #define FIX_3_072711026  FIX(3.072711026)  | 
141  |  | #endif  | 
142  |  |  | 
143  |  |  | 
144  |  | /* Multiply an INT32 variable by an INT32 constant to yield an INT32 result.  | 
145  |  |  * For 8-bit samples with the recommended scaling, all the variable  | 
146  |  |  * and constant values involved are no more than 16 bits wide, so a  | 
147  |  |  * 16x16->32 bit multiply can be used instead of a full 32x32 multiply.  | 
148  |  |  * For 12-bit samples, a full 32-bit multiplication will be needed.  | 
149  |  |  */  | 
150  |  |  | 
151  |  | #if BITS_IN_JSAMPLE == 8  | 
152  | 0  | #define MULTIPLY(var,const)  MULTIPLY16C16(var,const)  | 
153  |  | #else  | 
154  |  | #define MULTIPLY(var,const)  ((var) * (const))  | 
155  |  | #endif  | 
156  |  |  | 
157  |  |  | 
158  |  | /* Dequantize a coefficient by multiplying it by the multiplier-table  | 
159  |  |  * entry; produce an int result.  In this module, both inputs and result  | 
160  |  |  * are 16 bits or less, so either int or short multiply will work.  | 
161  |  |  */  | 
162  |  |  | 
163  | 0  | #define DEQUANTIZE(coef,quantval)  (((ISLOW_MULT_TYPE) (coef)) * (quantval))  | 
164  |  |  | 
165  |  |  | 
166  |  | /*  | 
167  |  |  * Perform dequantization and inverse DCT on one block of coefficients.  | 
168  |  |  *  | 
169  |  |  * Optimized algorithm with 12 multiplications in the 1-D kernel.  | 
170  |  |  * cK represents sqrt(2) * cos(K*pi/16).  | 
171  |  |  */  | 
172  |  |  | 
173  |  | GLOBAL(void)  | 
174  |  | jpeg_idct_islow (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
175  |  |      JCOEFPTR coef_block,  | 
176  |  |      JSAMPARRAY output_buf, JDIMENSION output_col)  | 
177  | 0  | { | 
178  | 0  |   INT32 tmp0, tmp1, tmp2, tmp3;  | 
179  | 0  |   INT32 tmp10, tmp11, tmp12, tmp13;  | 
180  | 0  |   INT32 z1, z2, z3;  | 
181  | 0  |   JCOEFPTR inptr;  | 
182  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
183  | 0  |   int * wsptr;  | 
184  | 0  |   JSAMPROW outptr;  | 
185  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
186  | 0  |   int ctr;  | 
187  | 0  |   int workspace[DCTSIZE2];  /* buffers data between passes */  | 
188  |  |   SHIFT_TEMPS  | 
189  |  |  | 
190  |  |   /* Pass 1: process columns from input, store into work array.  | 
191  |  |    * Note results are scaled up by sqrt(8) compared to a true IDCT;  | 
192  |  |    * furthermore, we scale the results by 2**PASS1_BITS.  | 
193  |  |    */  | 
194  |  | 
  | 
195  | 0  |   inptr = coef_block;  | 
196  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
197  | 0  |   wsptr = workspace;  | 
198  | 0  |   for (ctr = DCTSIZE; ctr > 0; ctr--) { | 
199  |  |     /* Due to quantization, we will usually find that many of the input  | 
200  |  |      * coefficients are zero, especially the AC terms.  We can exploit this  | 
201  |  |      * by short-circuiting the IDCT calculation for any column in which all  | 
202  |  |      * the AC terms are zero.  In that case each output is equal to the  | 
203  |  |      * DC coefficient (with scale factor as needed).  | 
204  |  |      * With typical images and quantization tables, half or more of the  | 
205  |  |      * column DCT calculations can be simplified this way.  | 
206  |  |      */  | 
207  |  | 
  | 
208  | 0  |     if (inptr[DCTSIZE*1] == 0 && inptr[DCTSIZE*2] == 0 &&  | 
209  | 0  |   inptr[DCTSIZE*3] == 0 && inptr[DCTSIZE*4] == 0 &&  | 
210  | 0  |   inptr[DCTSIZE*5] == 0 && inptr[DCTSIZE*6] == 0 &&  | 
211  | 0  |   inptr[DCTSIZE*7] == 0) { | 
212  |  |       /* AC terms all zero */  | 
213  | 0  |       int dcval = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]) << PASS1_BITS;  | 
214  |  | 
  | 
215  | 0  |       wsptr[DCTSIZE*0] = dcval;  | 
216  | 0  |       wsptr[DCTSIZE*1] = dcval;  | 
217  | 0  |       wsptr[DCTSIZE*2] = dcval;  | 
218  | 0  |       wsptr[DCTSIZE*3] = dcval;  | 
219  | 0  |       wsptr[DCTSIZE*4] = dcval;  | 
220  | 0  |       wsptr[DCTSIZE*5] = dcval;  | 
221  | 0  |       wsptr[DCTSIZE*6] = dcval;  | 
222  | 0  |       wsptr[DCTSIZE*7] = dcval;  | 
223  |  | 
  | 
224  | 0  |       inptr++;      /* advance pointers to next column */  | 
225  | 0  |       quantptr++;  | 
226  | 0  |       wsptr++;  | 
227  | 0  |       continue;  | 
228  | 0  |     }  | 
229  |  |  | 
230  |  |     /* Even part: reverse the even part of the forward DCT.  | 
231  |  |      * The rotator is c(-6).  | 
232  |  |      */  | 
233  |  |  | 
234  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
235  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*4], quantptr[DCTSIZE*4]);  | 
236  | 0  |     z2 <<= CONST_BITS;  | 
237  | 0  |     z3 <<= CONST_BITS;  | 
238  |  |     /* Add fudge factor here for final descale. */  | 
239  | 0  |     z2 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
240  |  | 
  | 
241  | 0  |     tmp0 = z2 + z3;  | 
242  | 0  |     tmp1 = z2 - z3;  | 
243  |  | 
  | 
244  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
245  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*6], quantptr[DCTSIZE*6]);  | 
246  |  | 
  | 
247  | 0  |     z1 = MULTIPLY(z2 + z3, FIX_0_541196100);       /* c6 */  | 
248  | 0  |     tmp2 = z1 + MULTIPLY(z2, FIX_0_765366865);     /* c2-c6 */  | 
249  | 0  |     tmp3 = z1 - MULTIPLY(z3, FIX_1_847759065);     /* c2+c6 */  | 
250  |  | 
  | 
251  | 0  |     tmp10 = tmp0 + tmp2;  | 
252  | 0  |     tmp13 = tmp0 - tmp2;  | 
253  | 0  |     tmp11 = tmp1 + tmp3;  | 
254  | 0  |     tmp12 = tmp1 - tmp3;  | 
255  |  |  | 
256  |  |     /* Odd part per figure 8; the matrix is unitary and hence its  | 
257  |  |      * transpose is its inverse.  i0..i3 are y7,y5,y3,y1 respectively.  | 
258  |  |      */  | 
259  |  | 
  | 
260  | 0  |     tmp0 = DEQUANTIZE(inptr[DCTSIZE*7], quantptr[DCTSIZE*7]);  | 
261  | 0  |     tmp1 = DEQUANTIZE(inptr[DCTSIZE*5], quantptr[DCTSIZE*5]);  | 
262  | 0  |     tmp2 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
263  | 0  |     tmp3 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
264  |  | 
  | 
265  | 0  |     z2 = tmp0 + tmp2;  | 
266  | 0  |     z3 = tmp1 + tmp3;  | 
267  |  | 
  | 
268  | 0  |     z1 = MULTIPLY(z2 + z3, FIX_1_175875602);       /*  c3 */  | 
269  | 0  |     z2 = MULTIPLY(z2, - FIX_1_961570560);          /* -c3-c5 */  | 
270  | 0  |     z3 = MULTIPLY(z3, - FIX_0_390180644);          /* -c3+c5 */  | 
271  | 0  |     z2 += z1;  | 
272  | 0  |     z3 += z1;  | 
273  |  | 
  | 
274  | 0  |     z1 = MULTIPLY(tmp0 + tmp3, - FIX_0_899976223); /* -c3+c7 */  | 
275  | 0  |     tmp0 = MULTIPLY(tmp0, FIX_0_298631336);        /* -c1+c3+c5-c7 */  | 
276  | 0  |     tmp3 = MULTIPLY(tmp3, FIX_1_501321110);        /*  c1+c3-c5-c7 */  | 
277  | 0  |     tmp0 += z1 + z2;  | 
278  | 0  |     tmp3 += z1 + z3;  | 
279  |  | 
  | 
280  | 0  |     z1 = MULTIPLY(tmp1 + tmp2, - FIX_2_562915447); /* -c1-c3 */  | 
281  | 0  |     tmp1 = MULTIPLY(tmp1, FIX_2_053119869);        /*  c1+c3-c5+c7 */  | 
282  | 0  |     tmp2 = MULTIPLY(tmp2, FIX_3_072711026);        /*  c1+c3+c5-c7 */  | 
283  | 0  |     tmp1 += z1 + z3;  | 
284  | 0  |     tmp2 += z1 + z2;  | 
285  |  |  | 
286  |  |     /* Final output stage: inputs are tmp10..tmp13, tmp0..tmp3 */  | 
287  |  | 
  | 
288  | 0  |     wsptr[DCTSIZE*0] = (int) RIGHT_SHIFT(tmp10 + tmp3, CONST_BITS-PASS1_BITS);  | 
289  | 0  |     wsptr[DCTSIZE*7] = (int) RIGHT_SHIFT(tmp10 - tmp3, CONST_BITS-PASS1_BITS);  | 
290  | 0  |     wsptr[DCTSIZE*1] = (int) RIGHT_SHIFT(tmp11 + tmp2, CONST_BITS-PASS1_BITS);  | 
291  | 0  |     wsptr[DCTSIZE*6] = (int) RIGHT_SHIFT(tmp11 - tmp2, CONST_BITS-PASS1_BITS);  | 
292  | 0  |     wsptr[DCTSIZE*2] = (int) RIGHT_SHIFT(tmp12 + tmp1, CONST_BITS-PASS1_BITS);  | 
293  | 0  |     wsptr[DCTSIZE*5] = (int) RIGHT_SHIFT(tmp12 - tmp1, CONST_BITS-PASS1_BITS);  | 
294  | 0  |     wsptr[DCTSIZE*3] = (int) RIGHT_SHIFT(tmp13 + tmp0, CONST_BITS-PASS1_BITS);  | 
295  | 0  |     wsptr[DCTSIZE*4] = (int) RIGHT_SHIFT(tmp13 - tmp0, CONST_BITS-PASS1_BITS);  | 
296  |  | 
  | 
297  | 0  |     inptr++;      /* advance pointers to next column */  | 
298  | 0  |     quantptr++;  | 
299  | 0  |     wsptr++;  | 
300  | 0  |   }  | 
301  |  |  | 
302  |  |   /* Pass 2: process rows from work array, store into output array.  | 
303  |  |    * Note that we must descale the results by a factor of 8 == 2**3,  | 
304  |  |    * and also undo the PASS1_BITS scaling.  | 
305  |  |    */  | 
306  |  | 
  | 
307  | 0  |   wsptr = workspace;  | 
308  | 0  |   for (ctr = 0; ctr < DCTSIZE; ctr++) { | 
309  | 0  |     outptr = output_buf[ctr] + output_col;  | 
310  |  |  | 
311  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
312  | 0  |     z2 = (INT32) wsptr[0] +  | 
313  | 0  |      ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
314  | 0  |       (ONE << (PASS1_BITS+2)));  | 
315  |  |  | 
316  |  |     /* Rows of zeroes can be exploited in the same way as we did with columns.  | 
317  |  |      * However, the column calculation has created many nonzero AC terms, so  | 
318  |  |      * the simplification applies less often (typically 5% to 10% of the time).  | 
319  |  |      * On machines with very fast multiplication, it's possible that the  | 
320  |  |      * test takes more time than it's worth.  In that case this section  | 
321  |  |      * may be commented out.  | 
322  |  |      */  | 
323  |  | 
  | 
324  | 0  | #ifndef NO_ZERO_ROW_TEST  | 
325  | 0  |     if (wsptr[1] == 0 && wsptr[2] == 0 && wsptr[3] == 0 && wsptr[4] == 0 &&  | 
326  | 0  |   wsptr[5] == 0 && wsptr[6] == 0 && wsptr[7] == 0) { | 
327  |  |       /* AC terms all zero */  | 
328  | 0  |       JSAMPLE dcval = range_limit[(int) RIGHT_SHIFT(z2, PASS1_BITS+3)  | 
329  | 0  |           & RANGE_MASK];  | 
330  |  | 
  | 
331  | 0  |       outptr[0] = dcval;  | 
332  | 0  |       outptr[1] = dcval;  | 
333  | 0  |       outptr[2] = dcval;  | 
334  | 0  |       outptr[3] = dcval;  | 
335  | 0  |       outptr[4] = dcval;  | 
336  | 0  |       outptr[5] = dcval;  | 
337  | 0  |       outptr[6] = dcval;  | 
338  | 0  |       outptr[7] = dcval;  | 
339  |  | 
  | 
340  | 0  |       wsptr += DCTSIZE;   /* advance pointer to next row */  | 
341  | 0  |       continue;  | 
342  | 0  |     }  | 
343  | 0  | #endif  | 
344  |  |  | 
345  |  |     /* Even part: reverse the even part of the forward DCT.  | 
346  |  |      * The rotator is c(-6).  | 
347  |  |      */  | 
348  |  |  | 
349  | 0  |     z3 = (INT32) wsptr[4];  | 
350  |  | 
  | 
351  | 0  |     tmp0 = (z2 + z3) << CONST_BITS;  | 
352  | 0  |     tmp1 = (z2 - z3) << CONST_BITS;  | 
353  |  | 
  | 
354  | 0  |     z2 = (INT32) wsptr[2];  | 
355  | 0  |     z3 = (INT32) wsptr[6];  | 
356  |  | 
  | 
357  | 0  |     z1 = MULTIPLY(z2 + z3, FIX_0_541196100);       /* c6 */  | 
358  | 0  |     tmp2 = z1 + MULTIPLY(z2, FIX_0_765366865);     /* c2-c6 */  | 
359  | 0  |     tmp3 = z1 - MULTIPLY(z3, FIX_1_847759065);     /* c2+c6 */  | 
360  |  | 
  | 
361  | 0  |     tmp10 = tmp0 + tmp2;  | 
362  | 0  |     tmp13 = tmp0 - tmp2;  | 
363  | 0  |     tmp11 = tmp1 + tmp3;  | 
364  | 0  |     tmp12 = tmp1 - tmp3;  | 
365  |  |  | 
366  |  |     /* Odd part per figure 8; the matrix is unitary and hence its  | 
367  |  |      * transpose is its inverse.  i0..i3 are y7,y5,y3,y1 respectively.  | 
368  |  |      */  | 
369  |  | 
  | 
370  | 0  |     tmp0 = (INT32) wsptr[7];  | 
371  | 0  |     tmp1 = (INT32) wsptr[5];  | 
372  | 0  |     tmp2 = (INT32) wsptr[3];  | 
373  | 0  |     tmp3 = (INT32) wsptr[1];  | 
374  |  | 
  | 
375  | 0  |     z2 = tmp0 + tmp2;  | 
376  | 0  |     z3 = tmp1 + tmp3;  | 
377  |  | 
  | 
378  | 0  |     z1 = MULTIPLY(z2 + z3, FIX_1_175875602);       /*  c3 */  | 
379  | 0  |     z2 = MULTIPLY(z2, - FIX_1_961570560);          /* -c3-c5 */  | 
380  | 0  |     z3 = MULTIPLY(z3, - FIX_0_390180644);          /* -c3+c5 */  | 
381  | 0  |     z2 += z1;  | 
382  | 0  |     z3 += z1;  | 
383  |  | 
  | 
384  | 0  |     z1 = MULTIPLY(tmp0 + tmp3, - FIX_0_899976223); /* -c3+c7 */  | 
385  | 0  |     tmp0 = MULTIPLY(tmp0, FIX_0_298631336);        /* -c1+c3+c5-c7 */  | 
386  | 0  |     tmp3 = MULTIPLY(tmp3, FIX_1_501321110);        /*  c1+c3-c5-c7 */  | 
387  | 0  |     tmp0 += z1 + z2;  | 
388  | 0  |     tmp3 += z1 + z3;  | 
389  |  | 
  | 
390  | 0  |     z1 = MULTIPLY(tmp1 + tmp2, - FIX_2_562915447); /* -c1-c3 */  | 
391  | 0  |     tmp1 = MULTIPLY(tmp1, FIX_2_053119869);        /*  c1+c3-c5+c7 */  | 
392  | 0  |     tmp2 = MULTIPLY(tmp2, FIX_3_072711026);        /*  c1+c3+c5-c7 */  | 
393  | 0  |     tmp1 += z1 + z3;  | 
394  | 0  |     tmp2 += z1 + z2;  | 
395  |  |  | 
396  |  |     /* Final output stage: inputs are tmp10..tmp13, tmp0..tmp3 */  | 
397  |  | 
  | 
398  | 0  |     outptr[0] = range_limit[(int) RIGHT_SHIFT(tmp10 + tmp3,  | 
399  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
400  | 0  |           & RANGE_MASK];  | 
401  | 0  |     outptr[7] = range_limit[(int) RIGHT_SHIFT(tmp10 - tmp3,  | 
402  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
403  | 0  |           & RANGE_MASK];  | 
404  | 0  |     outptr[1] = range_limit[(int) RIGHT_SHIFT(tmp11 + tmp2,  | 
405  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
406  | 0  |           & RANGE_MASK];  | 
407  | 0  |     outptr[6] = range_limit[(int) RIGHT_SHIFT(tmp11 - tmp2,  | 
408  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
409  | 0  |           & RANGE_MASK];  | 
410  | 0  |     outptr[2] = range_limit[(int) RIGHT_SHIFT(tmp12 + tmp1,  | 
411  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
412  | 0  |           & RANGE_MASK];  | 
413  | 0  |     outptr[5] = range_limit[(int) RIGHT_SHIFT(tmp12 - tmp1,  | 
414  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
415  | 0  |           & RANGE_MASK];  | 
416  | 0  |     outptr[3] = range_limit[(int) RIGHT_SHIFT(tmp13 + tmp0,  | 
417  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
418  | 0  |           & RANGE_MASK];  | 
419  | 0  |     outptr[4] = range_limit[(int) RIGHT_SHIFT(tmp13 - tmp0,  | 
420  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
421  | 0  |           & RANGE_MASK];  | 
422  |  | 
  | 
423  | 0  |     wsptr += DCTSIZE;   /* advance pointer to next row */  | 
424  | 0  |   }  | 
425  | 0  | }  | 
426  |  |  | 
427  |  | #ifdef IDCT_SCALING_SUPPORTED  | 
428  |  |  | 
429  |  |  | 
430  |  | /*  | 
431  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
432  |  |  * producing a reduced-size 7x7 output block.  | 
433  |  |  *  | 
434  |  |  * Optimized algorithm with 12 multiplications in the 1-D kernel.  | 
435  |  |  * cK represents sqrt(2) * cos(K*pi/14).  | 
436  |  |  */  | 
437  |  |  | 
438  |  | GLOBAL(void)  | 
439  |  | jpeg_idct_7x7 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
440  |  |          JCOEFPTR coef_block,  | 
441  |  |          JSAMPARRAY output_buf, JDIMENSION output_col)  | 
442  | 0  | { | 
443  | 0  |   INT32 tmp0, tmp1, tmp2, tmp10, tmp11, tmp12, tmp13;  | 
444  | 0  |   INT32 z1, z2, z3;  | 
445  | 0  |   JCOEFPTR inptr;  | 
446  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
447  | 0  |   int * wsptr;  | 
448  | 0  |   JSAMPROW outptr;  | 
449  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
450  | 0  |   int ctr;  | 
451  | 0  |   int workspace[7*7]; /* buffers data between passes */  | 
452  |  |   SHIFT_TEMPS  | 
453  |  |  | 
454  |  |   /* Pass 1: process columns from input, store into work array. */  | 
455  |  | 
  | 
456  | 0  |   inptr = coef_block;  | 
457  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
458  | 0  |   wsptr = workspace;  | 
459  | 0  |   for (ctr = 0; ctr < 7; ctr++, inptr++, quantptr++, wsptr++) { | 
460  |  |     /* Even part */  | 
461  |  | 
  | 
462  | 0  |     tmp13 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
463  | 0  |     tmp13 <<= CONST_BITS;  | 
464  |  |     /* Add fudge factor here for final descale. */  | 
465  | 0  |     tmp13 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
466  |  | 
  | 
467  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
468  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*4], quantptr[DCTSIZE*4]);  | 
469  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*6], quantptr[DCTSIZE*6]);  | 
470  |  | 
  | 
471  | 0  |     tmp10 = MULTIPLY(z2 - z3, FIX(0.881747734));     /* c4 */  | 
472  | 0  |     tmp12 = MULTIPLY(z1 - z2, FIX(0.314692123));     /* c6 */  | 
473  | 0  |     tmp11 = tmp10 + tmp12 + tmp13 - MULTIPLY(z2, FIX(1.841218003)); /* c2+c4-c6 */  | 
474  | 0  |     tmp0 = z1 + z3;  | 
475  | 0  |     z2 -= tmp0;  | 
476  | 0  |     tmp0 = MULTIPLY(tmp0, FIX(1.274162392)) + tmp13; /* c2 */  | 
477  | 0  |     tmp10 += tmp0 - MULTIPLY(z3, FIX(0.077722536));  /* c2-c4-c6 */  | 
478  | 0  |     tmp12 += tmp0 - MULTIPLY(z1, FIX(2.470602249));  /* c2+c4+c6 */  | 
479  | 0  |     tmp13 += MULTIPLY(z2, FIX(1.414213562));         /* c0 */  | 
480  |  |  | 
481  |  |     /* Odd part */  | 
482  |  | 
  | 
483  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
484  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
485  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*5], quantptr[DCTSIZE*5]);  | 
486  |  | 
  | 
487  | 0  |     tmp1 = MULTIPLY(z1 + z2, FIX(0.935414347));      /* (c3+c1-c5)/2 */  | 
488  | 0  |     tmp2 = MULTIPLY(z1 - z2, FIX(0.170262339));      /* (c3+c5-c1)/2 */  | 
489  | 0  |     tmp0 = tmp1 - tmp2;  | 
490  | 0  |     tmp1 += tmp2;  | 
491  | 0  |     tmp2 = MULTIPLY(z2 + z3, - FIX(1.378756276));    /* -c1 */  | 
492  | 0  |     tmp1 += tmp2;  | 
493  | 0  |     z2 = MULTIPLY(z1 + z3, FIX(0.613604268));        /* c5 */  | 
494  | 0  |     tmp0 += z2;  | 
495  | 0  |     tmp2 += z2 + MULTIPLY(z3, FIX(1.870828693));     /* c3+c1-c5 */  | 
496  |  |  | 
497  |  |     /* Final output stage */  | 
498  |  | 
  | 
499  | 0  |     wsptr[7*0] = (int) RIGHT_SHIFT(tmp10 + tmp0, CONST_BITS-PASS1_BITS);  | 
500  | 0  |     wsptr[7*6] = (int) RIGHT_SHIFT(tmp10 - tmp0, CONST_BITS-PASS1_BITS);  | 
501  | 0  |     wsptr[7*1] = (int) RIGHT_SHIFT(tmp11 + tmp1, CONST_BITS-PASS1_BITS);  | 
502  | 0  |     wsptr[7*5] = (int) RIGHT_SHIFT(tmp11 - tmp1, CONST_BITS-PASS1_BITS);  | 
503  | 0  |     wsptr[7*2] = (int) RIGHT_SHIFT(tmp12 + tmp2, CONST_BITS-PASS1_BITS);  | 
504  | 0  |     wsptr[7*4] = (int) RIGHT_SHIFT(tmp12 - tmp2, CONST_BITS-PASS1_BITS);  | 
505  | 0  |     wsptr[7*3] = (int) RIGHT_SHIFT(tmp13, CONST_BITS-PASS1_BITS);  | 
506  | 0  |   }  | 
507  |  |  | 
508  |  |   /* Pass 2: process 7 rows from work array, store into output array. */  | 
509  |  | 
  | 
510  | 0  |   wsptr = workspace;  | 
511  | 0  |   for (ctr = 0; ctr < 7; ctr++) { | 
512  | 0  |     outptr = output_buf[ctr] + output_col;  | 
513  |  |  | 
514  |  |     /* Even part */  | 
515  |  |  | 
516  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
517  | 0  |     tmp13 = (INT32) wsptr[0] +  | 
518  | 0  |         ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
519  | 0  |          (ONE << (PASS1_BITS+2)));  | 
520  | 0  |     tmp13 <<= CONST_BITS;  | 
521  |  | 
  | 
522  | 0  |     z1 = (INT32) wsptr[2];  | 
523  | 0  |     z2 = (INT32) wsptr[4];  | 
524  | 0  |     z3 = (INT32) wsptr[6];  | 
525  |  | 
  | 
526  | 0  |     tmp10 = MULTIPLY(z2 - z3, FIX(0.881747734));     /* c4 */  | 
527  | 0  |     tmp12 = MULTIPLY(z1 - z2, FIX(0.314692123));     /* c6 */  | 
528  | 0  |     tmp11 = tmp10 + tmp12 + tmp13 - MULTIPLY(z2, FIX(1.841218003)); /* c2+c4-c6 */  | 
529  | 0  |     tmp0 = z1 + z3;  | 
530  | 0  |     z2 -= tmp0;  | 
531  | 0  |     tmp0 = MULTIPLY(tmp0, FIX(1.274162392)) + tmp13; /* c2 */  | 
532  | 0  |     tmp10 += tmp0 - MULTIPLY(z3, FIX(0.077722536));  /* c2-c4-c6 */  | 
533  | 0  |     tmp12 += tmp0 - MULTIPLY(z1, FIX(2.470602249));  /* c2+c4+c6 */  | 
534  | 0  |     tmp13 += MULTIPLY(z2, FIX(1.414213562));         /* c0 */  | 
535  |  |  | 
536  |  |     /* Odd part */  | 
537  |  | 
  | 
538  | 0  |     z1 = (INT32) wsptr[1];  | 
539  | 0  |     z2 = (INT32) wsptr[3];  | 
540  | 0  |     z3 = (INT32) wsptr[5];  | 
541  |  | 
  | 
542  | 0  |     tmp1 = MULTIPLY(z1 + z2, FIX(0.935414347));      /* (c3+c1-c5)/2 */  | 
543  | 0  |     tmp2 = MULTIPLY(z1 - z2, FIX(0.170262339));      /* (c3+c5-c1)/2 */  | 
544  | 0  |     tmp0 = tmp1 - tmp2;  | 
545  | 0  |     tmp1 += tmp2;  | 
546  | 0  |     tmp2 = MULTIPLY(z2 + z3, - FIX(1.378756276));    /* -c1 */  | 
547  | 0  |     tmp1 += tmp2;  | 
548  | 0  |     z2 = MULTIPLY(z1 + z3, FIX(0.613604268));        /* c5 */  | 
549  | 0  |     tmp0 += z2;  | 
550  | 0  |     tmp2 += z2 + MULTIPLY(z3, FIX(1.870828693));     /* c3+c1-c5 */  | 
551  |  |  | 
552  |  |     /* Final output stage */  | 
553  |  | 
  | 
554  | 0  |     outptr[0] = range_limit[(int) RIGHT_SHIFT(tmp10 + tmp0,  | 
555  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
556  | 0  |           & RANGE_MASK];  | 
557  | 0  |     outptr[6] = range_limit[(int) RIGHT_SHIFT(tmp10 - tmp0,  | 
558  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
559  | 0  |           & RANGE_MASK];  | 
560  | 0  |     outptr[1] = range_limit[(int) RIGHT_SHIFT(tmp11 + tmp1,  | 
561  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
562  | 0  |           & RANGE_MASK];  | 
563  | 0  |     outptr[5] = range_limit[(int) RIGHT_SHIFT(tmp11 - tmp1,  | 
564  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
565  | 0  |           & RANGE_MASK];  | 
566  | 0  |     outptr[2] = range_limit[(int) RIGHT_SHIFT(tmp12 + tmp2,  | 
567  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
568  | 0  |           & RANGE_MASK];  | 
569  | 0  |     outptr[4] = range_limit[(int) RIGHT_SHIFT(tmp12 - tmp2,  | 
570  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
571  | 0  |           & RANGE_MASK];  | 
572  | 0  |     outptr[3] = range_limit[(int) RIGHT_SHIFT(tmp13,  | 
573  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
574  | 0  |           & RANGE_MASK];  | 
575  |  | 
  | 
576  | 0  |     wsptr += 7;   /* advance pointer to next row */  | 
577  | 0  |   }  | 
578  | 0  | }  | 
579  |  |  | 
580  |  |  | 
581  |  | /*  | 
582  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
583  |  |  * producing a reduced-size 6x6 output block.  | 
584  |  |  *  | 
585  |  |  * Optimized algorithm with 3 multiplications in the 1-D kernel.  | 
586  |  |  * cK represents sqrt(2) * cos(K*pi/12).  | 
587  |  |  */  | 
588  |  |  | 
589  |  | GLOBAL(void)  | 
590  |  | jpeg_idct_6x6 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
591  |  |          JCOEFPTR coef_block,  | 
592  |  |          JSAMPARRAY output_buf, JDIMENSION output_col)  | 
593  | 0  | { | 
594  | 0  |   INT32 tmp0, tmp1, tmp2, tmp10, tmp11, tmp12;  | 
595  | 0  |   INT32 z1, z2, z3;  | 
596  | 0  |   JCOEFPTR inptr;  | 
597  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
598  | 0  |   int * wsptr;  | 
599  | 0  |   JSAMPROW outptr;  | 
600  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
601  | 0  |   int ctr;  | 
602  | 0  |   int workspace[6*6]; /* buffers data between passes */  | 
603  |  |   SHIFT_TEMPS  | 
604  |  |  | 
605  |  |   /* Pass 1: process columns from input, store into work array. */  | 
606  |  | 
  | 
607  | 0  |   inptr = coef_block;  | 
608  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
609  | 0  |   wsptr = workspace;  | 
610  | 0  |   for (ctr = 0; ctr < 6; ctr++, inptr++, quantptr++, wsptr++) { | 
611  |  |     /* Even part */  | 
612  |  | 
  | 
613  | 0  |     tmp0 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
614  | 0  |     tmp0 <<= CONST_BITS;  | 
615  |  |     /* Add fudge factor here for final descale. */  | 
616  | 0  |     tmp0 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
617  | 0  |     tmp2 = DEQUANTIZE(inptr[DCTSIZE*4], quantptr[DCTSIZE*4]);  | 
618  | 0  |     tmp10 = MULTIPLY(tmp2, FIX(0.707106781));   /* c4 */  | 
619  | 0  |     tmp1 = tmp0 + tmp10;  | 
620  | 0  |     tmp11 = RIGHT_SHIFT(tmp0 - tmp10 - tmp10, CONST_BITS-PASS1_BITS);  | 
621  | 0  |     tmp10 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
622  | 0  |     tmp0 = MULTIPLY(tmp10, FIX(1.224744871));   /* c2 */  | 
623  | 0  |     tmp10 = tmp1 + tmp0;  | 
624  | 0  |     tmp12 = tmp1 - tmp0;  | 
625  |  |  | 
626  |  |     /* Odd part */  | 
627  |  | 
  | 
628  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
629  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
630  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*5], quantptr[DCTSIZE*5]);  | 
631  | 0  |     tmp1 = MULTIPLY(z1 + z3, FIX(0.366025404)); /* c5 */  | 
632  | 0  |     tmp0 = tmp1 + ((z1 + z2) << CONST_BITS);  | 
633  | 0  |     tmp2 = tmp1 + ((z3 - z2) << CONST_BITS);  | 
634  | 0  |     tmp1 = (z1 - z2 - z3) << PASS1_BITS;  | 
635  |  |  | 
636  |  |     /* Final output stage */  | 
637  |  | 
  | 
638  | 0  |     wsptr[6*0] = (int) RIGHT_SHIFT(tmp10 + tmp0, CONST_BITS-PASS1_BITS);  | 
639  | 0  |     wsptr[6*5] = (int) RIGHT_SHIFT(tmp10 - tmp0, CONST_BITS-PASS1_BITS);  | 
640  | 0  |     wsptr[6*1] = (int) (tmp11 + tmp1);  | 
641  | 0  |     wsptr[6*4] = (int) (tmp11 - tmp1);  | 
642  | 0  |     wsptr[6*2] = (int) RIGHT_SHIFT(tmp12 + tmp2, CONST_BITS-PASS1_BITS);  | 
643  | 0  |     wsptr[6*3] = (int) RIGHT_SHIFT(tmp12 - tmp2, CONST_BITS-PASS1_BITS);  | 
644  | 0  |   }  | 
645  |  |  | 
646  |  |   /* Pass 2: process 6 rows from work array, store into output array. */  | 
647  |  | 
  | 
648  | 0  |   wsptr = workspace;  | 
649  | 0  |   for (ctr = 0; ctr < 6; ctr++) { | 
650  | 0  |     outptr = output_buf[ctr] + output_col;  | 
651  |  |  | 
652  |  |     /* Even part */  | 
653  |  |  | 
654  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
655  | 0  |     tmp0 = (INT32) wsptr[0] +  | 
656  | 0  |        ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
657  | 0  |         (ONE << (PASS1_BITS+2)));  | 
658  | 0  |     tmp0 <<= CONST_BITS;  | 
659  | 0  |     tmp2 = (INT32) wsptr[4];  | 
660  | 0  |     tmp10 = MULTIPLY(tmp2, FIX(0.707106781));   /* c4 */  | 
661  | 0  |     tmp1 = tmp0 + tmp10;  | 
662  | 0  |     tmp11 = tmp0 - tmp10 - tmp10;  | 
663  | 0  |     tmp10 = (INT32) wsptr[2];  | 
664  | 0  |     tmp0 = MULTIPLY(tmp10, FIX(1.224744871));   /* c2 */  | 
665  | 0  |     tmp10 = tmp1 + tmp0;  | 
666  | 0  |     tmp12 = tmp1 - tmp0;  | 
667  |  |  | 
668  |  |     /* Odd part */  | 
669  |  | 
  | 
670  | 0  |     z1 = (INT32) wsptr[1];  | 
671  | 0  |     z2 = (INT32) wsptr[3];  | 
672  | 0  |     z3 = (INT32) wsptr[5];  | 
673  | 0  |     tmp1 = MULTIPLY(z1 + z3, FIX(0.366025404)); /* c5 */  | 
674  | 0  |     tmp0 = tmp1 + ((z1 + z2) << CONST_BITS);  | 
675  | 0  |     tmp2 = tmp1 + ((z3 - z2) << CONST_BITS);  | 
676  | 0  |     tmp1 = (z1 - z2 - z3) << CONST_BITS;  | 
677  |  |  | 
678  |  |     /* Final output stage */  | 
679  |  | 
  | 
680  | 0  |     outptr[0] = range_limit[(int) RIGHT_SHIFT(tmp10 + tmp0,  | 
681  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
682  | 0  |           & RANGE_MASK];  | 
683  | 0  |     outptr[5] = range_limit[(int) RIGHT_SHIFT(tmp10 - tmp0,  | 
684  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
685  | 0  |           & RANGE_MASK];  | 
686  | 0  |     outptr[1] = range_limit[(int) RIGHT_SHIFT(tmp11 + tmp1,  | 
687  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
688  | 0  |           & RANGE_MASK];  | 
689  | 0  |     outptr[4] = range_limit[(int) RIGHT_SHIFT(tmp11 - tmp1,  | 
690  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
691  | 0  |           & RANGE_MASK];  | 
692  | 0  |     outptr[2] = range_limit[(int) RIGHT_SHIFT(tmp12 + tmp2,  | 
693  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
694  | 0  |           & RANGE_MASK];  | 
695  | 0  |     outptr[3] = range_limit[(int) RIGHT_SHIFT(tmp12 - tmp2,  | 
696  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
697  | 0  |           & RANGE_MASK];  | 
698  |  | 
  | 
699  | 0  |     wsptr += 6;   /* advance pointer to next row */  | 
700  | 0  |   }  | 
701  | 0  | }  | 
702  |  |  | 
703  |  |  | 
704  |  | /*  | 
705  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
706  |  |  * producing a reduced-size 5x5 output block.  | 
707  |  |  *  | 
708  |  |  * Optimized algorithm with 5 multiplications in the 1-D kernel.  | 
709  |  |  * cK represents sqrt(2) * cos(K*pi/10).  | 
710  |  |  */  | 
711  |  |  | 
712  |  | GLOBAL(void)  | 
713  |  | jpeg_idct_5x5 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
714  |  |          JCOEFPTR coef_block,  | 
715  |  |          JSAMPARRAY output_buf, JDIMENSION output_col)  | 
716  | 0  | { | 
717  | 0  |   INT32 tmp0, tmp1, tmp10, tmp11, tmp12;  | 
718  | 0  |   INT32 z1, z2, z3;  | 
719  | 0  |   JCOEFPTR inptr;  | 
720  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
721  | 0  |   int * wsptr;  | 
722  | 0  |   JSAMPROW outptr;  | 
723  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
724  | 0  |   int ctr;  | 
725  | 0  |   int workspace[5*5]; /* buffers data between passes */  | 
726  |  |   SHIFT_TEMPS  | 
727  |  |  | 
728  |  |   /* Pass 1: process columns from input, store into work array. */  | 
729  |  | 
  | 
730  | 0  |   inptr = coef_block;  | 
731  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
732  | 0  |   wsptr = workspace;  | 
733  | 0  |   for (ctr = 0; ctr < 5; ctr++, inptr++, quantptr++, wsptr++) { | 
734  |  |     /* Even part */  | 
735  |  | 
  | 
736  | 0  |     tmp12 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
737  | 0  |     tmp12 <<= CONST_BITS;  | 
738  |  |     /* Add fudge factor here for final descale. */  | 
739  | 0  |     tmp12 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
740  | 0  |     tmp0 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
741  | 0  |     tmp1 = DEQUANTIZE(inptr[DCTSIZE*4], quantptr[DCTSIZE*4]);  | 
742  | 0  |     z1 = MULTIPLY(tmp0 + tmp1, FIX(0.790569415)); /* (c2+c4)/2 */  | 
743  | 0  |     z2 = MULTIPLY(tmp0 - tmp1, FIX(0.353553391)); /* (c2-c4)/2 */  | 
744  | 0  |     z3 = tmp12 + z2;  | 
745  | 0  |     tmp10 = z3 + z1;  | 
746  | 0  |     tmp11 = z3 - z1;  | 
747  | 0  |     tmp12 -= z2 << 2;  | 
748  |  |  | 
749  |  |     /* Odd part */  | 
750  |  | 
  | 
751  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
752  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
753  |  | 
  | 
754  | 0  |     z1 = MULTIPLY(z2 + z3, FIX(0.831253876));     /* c3 */  | 
755  | 0  |     tmp0 = z1 + MULTIPLY(z2, FIX(0.513743148));   /* c1-c3 */  | 
756  | 0  |     tmp1 = z1 - MULTIPLY(z3, FIX(2.176250899));   /* c1+c3 */  | 
757  |  |  | 
758  |  |     /* Final output stage */  | 
759  |  | 
  | 
760  | 0  |     wsptr[5*0] = (int) RIGHT_SHIFT(tmp10 + tmp0, CONST_BITS-PASS1_BITS);  | 
761  | 0  |     wsptr[5*4] = (int) RIGHT_SHIFT(tmp10 - tmp0, CONST_BITS-PASS1_BITS);  | 
762  | 0  |     wsptr[5*1] = (int) RIGHT_SHIFT(tmp11 + tmp1, CONST_BITS-PASS1_BITS);  | 
763  | 0  |     wsptr[5*3] = (int) RIGHT_SHIFT(tmp11 - tmp1, CONST_BITS-PASS1_BITS);  | 
764  | 0  |     wsptr[5*2] = (int) RIGHT_SHIFT(tmp12, CONST_BITS-PASS1_BITS);  | 
765  | 0  |   }  | 
766  |  |  | 
767  |  |   /* Pass 2: process 5 rows from work array, store into output array. */  | 
768  |  | 
  | 
769  | 0  |   wsptr = workspace;  | 
770  | 0  |   for (ctr = 0; ctr < 5; ctr++) { | 
771  | 0  |     outptr = output_buf[ctr] + output_col;  | 
772  |  |  | 
773  |  |     /* Even part */  | 
774  |  |  | 
775  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
776  | 0  |     tmp12 = (INT32) wsptr[0] +  | 
777  | 0  |         ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
778  | 0  |          (ONE << (PASS1_BITS+2)));  | 
779  | 0  |     tmp12 <<= CONST_BITS;  | 
780  | 0  |     tmp0 = (INT32) wsptr[2];  | 
781  | 0  |     tmp1 = (INT32) wsptr[4];  | 
782  | 0  |     z1 = MULTIPLY(tmp0 + tmp1, FIX(0.790569415)); /* (c2+c4)/2 */  | 
783  | 0  |     z2 = MULTIPLY(tmp0 - tmp1, FIX(0.353553391)); /* (c2-c4)/2 */  | 
784  | 0  |     z3 = tmp12 + z2;  | 
785  | 0  |     tmp10 = z3 + z1;  | 
786  | 0  |     tmp11 = z3 - z1;  | 
787  | 0  |     tmp12 -= z2 << 2;  | 
788  |  |  | 
789  |  |     /* Odd part */  | 
790  |  | 
  | 
791  | 0  |     z2 = (INT32) wsptr[1];  | 
792  | 0  |     z3 = (INT32) wsptr[3];  | 
793  |  | 
  | 
794  | 0  |     z1 = MULTIPLY(z2 + z3, FIX(0.831253876));     /* c3 */  | 
795  | 0  |     tmp0 = z1 + MULTIPLY(z2, FIX(0.513743148));   /* c1-c3 */  | 
796  | 0  |     tmp1 = z1 - MULTIPLY(z3, FIX(2.176250899));   /* c1+c3 */  | 
797  |  |  | 
798  |  |     /* Final output stage */  | 
799  |  | 
  | 
800  | 0  |     outptr[0] = range_limit[(int) RIGHT_SHIFT(tmp10 + tmp0,  | 
801  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
802  | 0  |           & RANGE_MASK];  | 
803  | 0  |     outptr[4] = range_limit[(int) RIGHT_SHIFT(tmp10 - tmp0,  | 
804  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
805  | 0  |           & RANGE_MASK];  | 
806  | 0  |     outptr[1] = range_limit[(int) RIGHT_SHIFT(tmp11 + tmp1,  | 
807  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
808  | 0  |           & RANGE_MASK];  | 
809  | 0  |     outptr[3] = range_limit[(int) RIGHT_SHIFT(tmp11 - tmp1,  | 
810  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
811  | 0  |           & RANGE_MASK];  | 
812  | 0  |     outptr[2] = range_limit[(int) RIGHT_SHIFT(tmp12,  | 
813  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
814  | 0  |           & RANGE_MASK];  | 
815  |  | 
  | 
816  | 0  |     wsptr += 5;   /* advance pointer to next row */  | 
817  | 0  |   }  | 
818  | 0  | }  | 
819  |  |  | 
820  |  |  | 
821  |  | /*  | 
822  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
823  |  |  * producing a reduced-size 4x4 output block.  | 
824  |  |  *  | 
825  |  |  * Optimized algorithm with 3 multiplications in the 1-D kernel.  | 
826  |  |  * cK represents sqrt(2) * cos(K*pi/16) [refers to 8-point IDCT].  | 
827  |  |  */  | 
828  |  |  | 
829  |  | GLOBAL(void)  | 
830  |  | jpeg_idct_4x4 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
831  |  |          JCOEFPTR coef_block,  | 
832  |  |          JSAMPARRAY output_buf, JDIMENSION output_col)  | 
833  | 0  | { | 
834  | 0  |   INT32 tmp0, tmp2, tmp10, tmp12;  | 
835  | 0  |   INT32 z1, z2, z3;  | 
836  | 0  |   JCOEFPTR inptr;  | 
837  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
838  | 0  |   int * wsptr;  | 
839  | 0  |   JSAMPROW outptr;  | 
840  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
841  | 0  |   int ctr;  | 
842  | 0  |   int workspace[4*4]; /* buffers data between passes */  | 
843  |  |   SHIFT_TEMPS  | 
844  |  |  | 
845  |  |   /* Pass 1: process columns from input, store into work array. */  | 
846  |  | 
  | 
847  | 0  |   inptr = coef_block;  | 
848  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
849  | 0  |   wsptr = workspace;  | 
850  | 0  |   for (ctr = 0; ctr < 4; ctr++, inptr++, quantptr++, wsptr++) { | 
851  |  |     /* Even part */  | 
852  |  | 
  | 
853  | 0  |     tmp0 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
854  | 0  |     tmp2 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
855  |  |       | 
856  | 0  |     tmp10 = (tmp0 + tmp2) << PASS1_BITS;  | 
857  | 0  |     tmp12 = (tmp0 - tmp2) << PASS1_BITS;  | 
858  |  |  | 
859  |  |     /* Odd part */  | 
860  |  |     /* Same rotation as in the even part of the 8x8 LL&M IDCT */  | 
861  |  | 
  | 
862  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
863  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
864  |  | 
  | 
865  | 0  |     z1 = MULTIPLY(z2 + z3, FIX_0_541196100);               /* c6 */  | 
866  |  |     /* Add fudge factor here for final descale. */  | 
867  | 0  |     z1 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
868  | 0  |     tmp0 = RIGHT_SHIFT(z1 + MULTIPLY(z2, FIX_0_765366865), /* c2-c6 */  | 
869  | 0  |            CONST_BITS-PASS1_BITS);  | 
870  | 0  |     tmp2 = RIGHT_SHIFT(z1 - MULTIPLY(z3, FIX_1_847759065), /* c2+c6 */  | 
871  | 0  |            CONST_BITS-PASS1_BITS);  | 
872  |  |  | 
873  |  |     /* Final output stage */  | 
874  |  | 
  | 
875  | 0  |     wsptr[4*0] = (int) (tmp10 + tmp0);  | 
876  | 0  |     wsptr[4*3] = (int) (tmp10 - tmp0);  | 
877  | 0  |     wsptr[4*1] = (int) (tmp12 + tmp2);  | 
878  | 0  |     wsptr[4*2] = (int) (tmp12 - tmp2);  | 
879  | 0  |   }  | 
880  |  |  | 
881  |  |   /* Pass 2: process 4 rows from work array, store into output array. */  | 
882  |  | 
  | 
883  | 0  |   wsptr = workspace;  | 
884  | 0  |   for (ctr = 0; ctr < 4; ctr++) { | 
885  | 0  |     outptr = output_buf[ctr] + output_col;  | 
886  |  |  | 
887  |  |     /* Even part */  | 
888  |  |  | 
889  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
890  | 0  |     tmp0 = (INT32) wsptr[0] +  | 
891  | 0  |        ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
892  | 0  |         (ONE << (PASS1_BITS+2)));  | 
893  | 0  |     tmp2 = (INT32) wsptr[2];  | 
894  |  | 
  | 
895  | 0  |     tmp10 = (tmp0 + tmp2) << CONST_BITS;  | 
896  | 0  |     tmp12 = (tmp0 - tmp2) << CONST_BITS;  | 
897  |  |  | 
898  |  |     /* Odd part */  | 
899  |  |     /* Same rotation as in the even part of the 8x8 LL&M IDCT */  | 
900  |  | 
  | 
901  | 0  |     z2 = (INT32) wsptr[1];  | 
902  | 0  |     z3 = (INT32) wsptr[3];  | 
903  |  | 
  | 
904  | 0  |     z1 = MULTIPLY(z2 + z3, FIX_0_541196100);   /* c6 */  | 
905  | 0  |     tmp0 = z1 + MULTIPLY(z2, FIX_0_765366865); /* c2-c6 */  | 
906  | 0  |     tmp2 = z1 - MULTIPLY(z3, FIX_1_847759065); /* c2+c6 */  | 
907  |  |  | 
908  |  |     /* Final output stage */  | 
909  |  | 
  | 
910  | 0  |     outptr[0] = range_limit[(int) RIGHT_SHIFT(tmp10 + tmp0,  | 
911  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
912  | 0  |           & RANGE_MASK];  | 
913  | 0  |     outptr[3] = range_limit[(int) RIGHT_SHIFT(tmp10 - tmp0,  | 
914  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
915  | 0  |           & RANGE_MASK];  | 
916  | 0  |     outptr[1] = range_limit[(int) RIGHT_SHIFT(tmp12 + tmp2,  | 
917  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
918  | 0  |           & RANGE_MASK];  | 
919  | 0  |     outptr[2] = range_limit[(int) RIGHT_SHIFT(tmp12 - tmp2,  | 
920  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
921  | 0  |           & RANGE_MASK];  | 
922  |  | 
  | 
923  | 0  |     wsptr += 4;   /* advance pointer to next row */  | 
924  | 0  |   }  | 
925  | 0  | }  | 
926  |  |  | 
927  |  |  | 
928  |  | /*  | 
929  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
930  |  |  * producing a reduced-size 3x3 output block.  | 
931  |  |  *  | 
932  |  |  * Optimized algorithm with 2 multiplications in the 1-D kernel.  | 
933  |  |  * cK represents sqrt(2) * cos(K*pi/6).  | 
934  |  |  */  | 
935  |  |  | 
936  |  | GLOBAL(void)  | 
937  |  | jpeg_idct_3x3 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
938  |  |          JCOEFPTR coef_block,  | 
939  |  |          JSAMPARRAY output_buf, JDIMENSION output_col)  | 
940  | 0  | { | 
941  | 0  |   INT32 tmp0, tmp2, tmp10, tmp12;  | 
942  | 0  |   JCOEFPTR inptr;  | 
943  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
944  | 0  |   int * wsptr;  | 
945  | 0  |   JSAMPROW outptr;  | 
946  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
947  | 0  |   int ctr;  | 
948  | 0  |   int workspace[3*3]; /* buffers data between passes */  | 
949  |  |   SHIFT_TEMPS  | 
950  |  |  | 
951  |  |   /* Pass 1: process columns from input, store into work array. */  | 
952  |  | 
  | 
953  | 0  |   inptr = coef_block;  | 
954  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
955  | 0  |   wsptr = workspace;  | 
956  | 0  |   for (ctr = 0; ctr < 3; ctr++, inptr++, quantptr++, wsptr++) { | 
957  |  |     /* Even part */  | 
958  |  | 
  | 
959  | 0  |     tmp0 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
960  | 0  |     tmp0 <<= CONST_BITS;  | 
961  |  |     /* Add fudge factor here for final descale. */  | 
962  | 0  |     tmp0 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
963  | 0  |     tmp2 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
964  | 0  |     tmp12 = MULTIPLY(tmp2, FIX(0.707106781)); /* c2 */  | 
965  | 0  |     tmp10 = tmp0 + tmp12;  | 
966  | 0  |     tmp2 = tmp0 - tmp12 - tmp12;  | 
967  |  |  | 
968  |  |     /* Odd part */  | 
969  |  | 
  | 
970  | 0  |     tmp12 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
971  | 0  |     tmp0 = MULTIPLY(tmp12, FIX(1.224744871)); /* c1 */  | 
972  |  |  | 
973  |  |     /* Final output stage */  | 
974  |  | 
  | 
975  | 0  |     wsptr[3*0] = (int) RIGHT_SHIFT(tmp10 + tmp0, CONST_BITS-PASS1_BITS);  | 
976  | 0  |     wsptr[3*2] = (int) RIGHT_SHIFT(tmp10 - tmp0, CONST_BITS-PASS1_BITS);  | 
977  | 0  |     wsptr[3*1] = (int) RIGHT_SHIFT(tmp2, CONST_BITS-PASS1_BITS);  | 
978  | 0  |   }  | 
979  |  |  | 
980  |  |   /* Pass 2: process 3 rows from work array, store into output array. */  | 
981  |  | 
  | 
982  | 0  |   wsptr = workspace;  | 
983  | 0  |   for (ctr = 0; ctr < 3; ctr++) { | 
984  | 0  |     outptr = output_buf[ctr] + output_col;  | 
985  |  |  | 
986  |  |     /* Even part */  | 
987  |  |  | 
988  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
989  | 0  |     tmp0 = (INT32) wsptr[0] +  | 
990  | 0  |        ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
991  | 0  |         (ONE << (PASS1_BITS+2)));  | 
992  | 0  |     tmp0 <<= CONST_BITS;  | 
993  | 0  |     tmp2 = (INT32) wsptr[2];  | 
994  | 0  |     tmp12 = MULTIPLY(tmp2, FIX(0.707106781)); /* c2 */  | 
995  | 0  |     tmp10 = tmp0 + tmp12;  | 
996  | 0  |     tmp2 = tmp0 - tmp12 - tmp12;  | 
997  |  |  | 
998  |  |     /* Odd part */  | 
999  |  | 
  | 
1000  | 0  |     tmp12 = (INT32) wsptr[1];  | 
1001  | 0  |     tmp0 = MULTIPLY(tmp12, FIX(1.224744871)); /* c1 */  | 
1002  |  |  | 
1003  |  |     /* Final output stage */  | 
1004  |  | 
  | 
1005  | 0  |     outptr[0] = range_limit[(int) RIGHT_SHIFT(tmp10 + tmp0,  | 
1006  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
1007  | 0  |           & RANGE_MASK];  | 
1008  | 0  |     outptr[2] = range_limit[(int) RIGHT_SHIFT(tmp10 - tmp0,  | 
1009  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
1010  | 0  |           & RANGE_MASK];  | 
1011  | 0  |     outptr[1] = range_limit[(int) RIGHT_SHIFT(tmp2,  | 
1012  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
1013  | 0  |           & RANGE_MASK];  | 
1014  |  | 
  | 
1015  | 0  |     wsptr += 3;   /* advance pointer to next row */  | 
1016  | 0  |   }  | 
1017  | 0  | }  | 
1018  |  |  | 
1019  |  |  | 
1020  |  | /*  | 
1021  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
1022  |  |  * producing a reduced-size 2x2 output block.  | 
1023  |  |  *  | 
1024  |  |  * Multiplication-less algorithm.  | 
1025  |  |  */  | 
1026  |  |  | 
1027  |  | GLOBAL(void)  | 
1028  |  | jpeg_idct_2x2 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
1029  |  |          JCOEFPTR coef_block,  | 
1030  |  |          JSAMPARRAY output_buf, JDIMENSION output_col)  | 
1031  | 0  | { | 
1032  | 0  |   DCTELEM tmp0, tmp1, tmp2, tmp3, tmp4, tmp5;  | 
1033  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
1034  | 0  |   JSAMPROW outptr;  | 
1035  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
1036  | 0  |   ISHIFT_TEMPS  | 
1037  |  |  | 
1038  |  |   /* Pass 1: process columns from input. */  | 
1039  |  | 
  | 
1040  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
1041  |  |  | 
1042  |  |   /* Column 0 */  | 
1043  | 0  |   tmp4 = DEQUANTIZE(coef_block[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
1044  | 0  |   tmp5 = DEQUANTIZE(coef_block[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
1045  |  |   /* Add range center and fudge factor for final descale and range-limit. */  | 
1046  | 0  |   tmp4 += (((DCTELEM) RANGE_CENTER) << 3) + (1 << 2);  | 
1047  |  | 
  | 
1048  | 0  |   tmp0 = tmp4 + tmp5;  | 
1049  | 0  |   tmp2 = tmp4 - tmp5;  | 
1050  |  |  | 
1051  |  |   /* Column 1 */  | 
1052  | 0  |   tmp4 = DEQUANTIZE(coef_block[DCTSIZE*0+1], quantptr[DCTSIZE*0+1]);  | 
1053  | 0  |   tmp5 = DEQUANTIZE(coef_block[DCTSIZE*1+1], quantptr[DCTSIZE*1+1]);  | 
1054  |  | 
  | 
1055  | 0  |   tmp1 = tmp4 + tmp5;  | 
1056  | 0  |   tmp3 = tmp4 - tmp5;  | 
1057  |  |  | 
1058  |  |   /* Pass 2: process 2 rows, store into output array. */  | 
1059  |  |  | 
1060  |  |   /* Row 0 */  | 
1061  | 0  |   outptr = output_buf[0] + output_col;  | 
1062  |  | 
  | 
1063  | 0  |   outptr[0] = range_limit[(int) IRIGHT_SHIFT(tmp0 + tmp1, 3) & RANGE_MASK];  | 
1064  | 0  |   outptr[1] = range_limit[(int) IRIGHT_SHIFT(tmp0 - tmp1, 3) & RANGE_MASK];  | 
1065  |  |  | 
1066  |  |   /* Row 1 */  | 
1067  | 0  |   outptr = output_buf[1] + output_col;  | 
1068  |  | 
  | 
1069  | 0  |   outptr[0] = range_limit[(int) IRIGHT_SHIFT(tmp2 + tmp3, 3) & RANGE_MASK];  | 
1070  | 0  |   outptr[1] = range_limit[(int) IRIGHT_SHIFT(tmp2 - tmp3, 3) & RANGE_MASK];  | 
1071  | 0  | }  | 
1072  |  |  | 
1073  |  |  | 
1074  |  | /*  | 
1075  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
1076  |  |  * producing a reduced-size 1x1 output block.  | 
1077  |  |  *  | 
1078  |  |  * We hardly need an inverse DCT routine for this: just take the  | 
1079  |  |  * average pixel value, which is one-eighth of the DC coefficient.  | 
1080  |  |  */  | 
1081  |  |  | 
1082  |  | GLOBAL(void)  | 
1083  |  | jpeg_idct_1x1 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
1084  |  |          JCOEFPTR coef_block,  | 
1085  |  |          JSAMPARRAY output_buf, JDIMENSION output_col)  | 
1086  | 0  | { | 
1087  | 0  |   DCTELEM dcval;  | 
1088  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
1089  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
1090  | 0  |   ISHIFT_TEMPS  | 
1091  |  |  | 
1092  |  |   /* 1x1 is trivial: just take the DC coefficient divided by 8. */  | 
1093  |  | 
  | 
1094  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
1095  |  | 
  | 
1096  | 0  |   dcval = DEQUANTIZE(coef_block[0], quantptr[0]);  | 
1097  |  |   /* Add range center and fudge factor for descale and range-limit. */  | 
1098  | 0  |   dcval += (((DCTELEM) RANGE_CENTER) << 3) + (1 << 2);  | 
1099  |  | 
  | 
1100  | 0  |   output_buf[0][output_col] =  | 
1101  | 0  |     range_limit[(int) IRIGHT_SHIFT(dcval, 3) & RANGE_MASK];  | 
1102  | 0  | }  | 
1103  |  |  | 
1104  |  |  | 
1105  |  | /*  | 
1106  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
1107  |  |  * producing a 9x9 output block.  | 
1108  |  |  *  | 
1109  |  |  * Optimized algorithm with 10 multiplications in the 1-D kernel.  | 
1110  |  |  * cK represents sqrt(2) * cos(K*pi/18).  | 
1111  |  |  */  | 
1112  |  |  | 
1113  |  | GLOBAL(void)  | 
1114  |  | jpeg_idct_9x9 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
1115  |  |          JCOEFPTR coef_block,  | 
1116  |  |          JSAMPARRAY output_buf, JDIMENSION output_col)  | 
1117  | 0  | { | 
1118  | 0  |   INT32 tmp0, tmp1, tmp2, tmp3, tmp10, tmp11, tmp12, tmp13, tmp14;  | 
1119  | 0  |   INT32 z1, z2, z3, z4;  | 
1120  | 0  |   JCOEFPTR inptr;  | 
1121  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
1122  | 0  |   int * wsptr;  | 
1123  | 0  |   JSAMPROW outptr;  | 
1124  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
1125  | 0  |   int ctr;  | 
1126  | 0  |   int workspace[8*9]; /* buffers data between passes */  | 
1127  |  |   SHIFT_TEMPS  | 
1128  |  |  | 
1129  |  |   /* Pass 1: process columns from input, store into work array. */  | 
1130  |  | 
  | 
1131  | 0  |   inptr = coef_block;  | 
1132  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
1133  | 0  |   wsptr = workspace;  | 
1134  | 0  |   for (ctr = 0; ctr < 8; ctr++, inptr++, quantptr++, wsptr++) { | 
1135  |  |     /* Even part */  | 
1136  |  | 
  | 
1137  | 0  |     tmp0 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
1138  | 0  |     tmp0 <<= CONST_BITS;  | 
1139  |  |     /* Add fudge factor here for final descale. */  | 
1140  | 0  |     tmp0 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
1141  |  | 
  | 
1142  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
1143  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*4], quantptr[DCTSIZE*4]);  | 
1144  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*6], quantptr[DCTSIZE*6]);  | 
1145  |  | 
  | 
1146  | 0  |     tmp3 = MULTIPLY(z3, FIX(0.707106781));      /* c6 */  | 
1147  | 0  |     tmp1 = tmp0 + tmp3;  | 
1148  | 0  |     tmp2 = tmp0 - tmp3 - tmp3;  | 
1149  |  | 
  | 
1150  | 0  |     tmp0 = MULTIPLY(z1 - z2, FIX(0.707106781)); /* c6 */  | 
1151  | 0  |     tmp11 = tmp2 + tmp0;  | 
1152  | 0  |     tmp14 = tmp2 - tmp0 - tmp0;  | 
1153  |  | 
  | 
1154  | 0  |     tmp0 = MULTIPLY(z1 + z2, FIX(1.328926049)); /* c2 */  | 
1155  | 0  |     tmp2 = MULTIPLY(z1, FIX(1.083350441));      /* c4 */  | 
1156  | 0  |     tmp3 = MULTIPLY(z2, FIX(0.245575608));      /* c8 */  | 
1157  |  | 
  | 
1158  | 0  |     tmp10 = tmp1 + tmp0 - tmp3;  | 
1159  | 0  |     tmp12 = tmp1 - tmp0 + tmp2;  | 
1160  | 0  |     tmp13 = tmp1 - tmp2 + tmp3;  | 
1161  |  |  | 
1162  |  |     /* Odd part */  | 
1163  |  | 
  | 
1164  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
1165  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
1166  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*5], quantptr[DCTSIZE*5]);  | 
1167  | 0  |     z4 = DEQUANTIZE(inptr[DCTSIZE*7], quantptr[DCTSIZE*7]);  | 
1168  |  | 
  | 
1169  | 0  |     z2 = MULTIPLY(z2, - FIX(1.224744871));           /* -c3 */  | 
1170  |  | 
  | 
1171  | 0  |     tmp2 = MULTIPLY(z1 + z3, FIX(0.909038955));      /* c5 */  | 
1172  | 0  |     tmp3 = MULTIPLY(z1 + z4, FIX(0.483689525));      /* c7 */  | 
1173  | 0  |     tmp0 = tmp2 + tmp3 - z2;  | 
1174  | 0  |     tmp1 = MULTIPLY(z3 - z4, FIX(1.392728481));      /* c1 */  | 
1175  | 0  |     tmp2 += z2 - tmp1;  | 
1176  | 0  |     tmp3 += z2 + tmp1;  | 
1177  | 0  |     tmp1 = MULTIPLY(z1 - z3 - z4, FIX(1.224744871)); /* c3 */  | 
1178  |  |  | 
1179  |  |     /* Final output stage */  | 
1180  |  | 
  | 
1181  | 0  |     wsptr[8*0] = (int) RIGHT_SHIFT(tmp10 + tmp0, CONST_BITS-PASS1_BITS);  | 
1182  | 0  |     wsptr[8*8] = (int) RIGHT_SHIFT(tmp10 - tmp0, CONST_BITS-PASS1_BITS);  | 
1183  | 0  |     wsptr[8*1] = (int) RIGHT_SHIFT(tmp11 + tmp1, CONST_BITS-PASS1_BITS);  | 
1184  | 0  |     wsptr[8*7] = (int) RIGHT_SHIFT(tmp11 - tmp1, CONST_BITS-PASS1_BITS);  | 
1185  | 0  |     wsptr[8*2] = (int) RIGHT_SHIFT(tmp12 + tmp2, CONST_BITS-PASS1_BITS);  | 
1186  | 0  |     wsptr[8*6] = (int) RIGHT_SHIFT(tmp12 - tmp2, CONST_BITS-PASS1_BITS);  | 
1187  | 0  |     wsptr[8*3] = (int) RIGHT_SHIFT(tmp13 + tmp3, CONST_BITS-PASS1_BITS);  | 
1188  | 0  |     wsptr[8*5] = (int) RIGHT_SHIFT(tmp13 - tmp3, CONST_BITS-PASS1_BITS);  | 
1189  | 0  |     wsptr[8*4] = (int) RIGHT_SHIFT(tmp14, CONST_BITS-PASS1_BITS);  | 
1190  | 0  |   }  | 
1191  |  |  | 
1192  |  |   /* Pass 2: process 9 rows from work array, store into output array. */  | 
1193  |  | 
  | 
1194  | 0  |   wsptr = workspace;  | 
1195  | 0  |   for (ctr = 0; ctr < 9; ctr++) { | 
1196  | 0  |     outptr = output_buf[ctr] + output_col;  | 
1197  |  |  | 
1198  |  |     /* Even part */  | 
1199  |  |  | 
1200  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
1201  | 0  |     tmp0 = (INT32) wsptr[0] +  | 
1202  | 0  |        ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
1203  | 0  |         (ONE << (PASS1_BITS+2)));  | 
1204  | 0  |     tmp0 <<= CONST_BITS;  | 
1205  |  | 
  | 
1206  | 0  |     z1 = (INT32) wsptr[2];  | 
1207  | 0  |     z2 = (INT32) wsptr[4];  | 
1208  | 0  |     z3 = (INT32) wsptr[6];  | 
1209  |  | 
  | 
1210  | 0  |     tmp3 = MULTIPLY(z3, FIX(0.707106781));      /* c6 */  | 
1211  | 0  |     tmp1 = tmp0 + tmp3;  | 
1212  | 0  |     tmp2 = tmp0 - tmp3 - tmp3;  | 
1213  |  | 
  | 
1214  | 0  |     tmp0 = MULTIPLY(z1 - z2, FIX(0.707106781)); /* c6 */  | 
1215  | 0  |     tmp11 = tmp2 + tmp0;  | 
1216  | 0  |     tmp14 = tmp2 - tmp0 - tmp0;  | 
1217  |  | 
  | 
1218  | 0  |     tmp0 = MULTIPLY(z1 + z2, FIX(1.328926049)); /* c2 */  | 
1219  | 0  |     tmp2 = MULTIPLY(z1, FIX(1.083350441));      /* c4 */  | 
1220  | 0  |     tmp3 = MULTIPLY(z2, FIX(0.245575608));      /* c8 */  | 
1221  |  | 
  | 
1222  | 0  |     tmp10 = tmp1 + tmp0 - tmp3;  | 
1223  | 0  |     tmp12 = tmp1 - tmp0 + tmp2;  | 
1224  | 0  |     tmp13 = tmp1 - tmp2 + tmp3;  | 
1225  |  |  | 
1226  |  |     /* Odd part */  | 
1227  |  | 
  | 
1228  | 0  |     z1 = (INT32) wsptr[1];  | 
1229  | 0  |     z2 = (INT32) wsptr[3];  | 
1230  | 0  |     z3 = (INT32) wsptr[5];  | 
1231  | 0  |     z4 = (INT32) wsptr[7];  | 
1232  |  | 
  | 
1233  | 0  |     z2 = MULTIPLY(z2, - FIX(1.224744871));           /* -c3 */  | 
1234  |  | 
  | 
1235  | 0  |     tmp2 = MULTIPLY(z1 + z3, FIX(0.909038955));      /* c5 */  | 
1236  | 0  |     tmp3 = MULTIPLY(z1 + z4, FIX(0.483689525));      /* c7 */  | 
1237  | 0  |     tmp0 = tmp2 + tmp3 - z2;  | 
1238  | 0  |     tmp1 = MULTIPLY(z3 - z4, FIX(1.392728481));      /* c1 */  | 
1239  | 0  |     tmp2 += z2 - tmp1;  | 
1240  | 0  |     tmp3 += z2 + tmp1;  | 
1241  | 0  |     tmp1 = MULTIPLY(z1 - z3 - z4, FIX(1.224744871)); /* c3 */  | 
1242  |  |  | 
1243  |  |     /* Final output stage */  | 
1244  |  | 
  | 
1245  | 0  |     outptr[0] = range_limit[(int) RIGHT_SHIFT(tmp10 + tmp0,  | 
1246  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
1247  | 0  |           & RANGE_MASK];  | 
1248  | 0  |     outptr[8] = range_limit[(int) RIGHT_SHIFT(tmp10 - tmp0,  | 
1249  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
1250  | 0  |           & RANGE_MASK];  | 
1251  | 0  |     outptr[1] = range_limit[(int) RIGHT_SHIFT(tmp11 + tmp1,  | 
1252  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
1253  | 0  |           & RANGE_MASK];  | 
1254  | 0  |     outptr[7] = range_limit[(int) RIGHT_SHIFT(tmp11 - tmp1,  | 
1255  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
1256  | 0  |           & RANGE_MASK];  | 
1257  | 0  |     outptr[2] = range_limit[(int) RIGHT_SHIFT(tmp12 + tmp2,  | 
1258  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
1259  | 0  |           & RANGE_MASK];  | 
1260  | 0  |     outptr[6] = range_limit[(int) RIGHT_SHIFT(tmp12 - tmp2,  | 
1261  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
1262  | 0  |           & RANGE_MASK];  | 
1263  | 0  |     outptr[3] = range_limit[(int) RIGHT_SHIFT(tmp13 + tmp3,  | 
1264  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
1265  | 0  |           & RANGE_MASK];  | 
1266  | 0  |     outptr[5] = range_limit[(int) RIGHT_SHIFT(tmp13 - tmp3,  | 
1267  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
1268  | 0  |           & RANGE_MASK];  | 
1269  | 0  |     outptr[4] = range_limit[(int) RIGHT_SHIFT(tmp14,  | 
1270  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
1271  | 0  |           & RANGE_MASK];  | 
1272  |  | 
  | 
1273  | 0  |     wsptr += 8;   /* advance pointer to next row */  | 
1274  | 0  |   }  | 
1275  | 0  | }  | 
1276  |  |  | 
1277  |  |  | 
1278  |  | /*  | 
1279  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
1280  |  |  * producing a 10x10 output block.  | 
1281  |  |  *  | 
1282  |  |  * Optimized algorithm with 12 multiplications in the 1-D kernel.  | 
1283  |  |  * cK represents sqrt(2) * cos(K*pi/20).  | 
1284  |  |  */  | 
1285  |  |  | 
1286  |  | GLOBAL(void)  | 
1287  |  | jpeg_idct_10x10 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
1288  |  |      JCOEFPTR coef_block,  | 
1289  |  |      JSAMPARRAY output_buf, JDIMENSION output_col)  | 
1290  | 0  | { | 
1291  | 0  |   INT32 tmp10, tmp11, tmp12, tmp13, tmp14;  | 
1292  | 0  |   INT32 tmp20, tmp21, tmp22, tmp23, tmp24;  | 
1293  | 0  |   INT32 z1, z2, z3, z4, z5;  | 
1294  | 0  |   JCOEFPTR inptr;  | 
1295  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
1296  | 0  |   int * wsptr;  | 
1297  | 0  |   JSAMPROW outptr;  | 
1298  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
1299  | 0  |   int ctr;  | 
1300  | 0  |   int workspace[8*10];  /* buffers data between passes */  | 
1301  |  |   SHIFT_TEMPS  | 
1302  |  |  | 
1303  |  |   /* Pass 1: process columns from input, store into work array. */  | 
1304  |  | 
  | 
1305  | 0  |   inptr = coef_block;  | 
1306  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
1307  | 0  |   wsptr = workspace;  | 
1308  | 0  |   for (ctr = 0; ctr < 8; ctr++, inptr++, quantptr++, wsptr++) { | 
1309  |  |     /* Even part */  | 
1310  |  | 
  | 
1311  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
1312  | 0  |     z3 <<= CONST_BITS;  | 
1313  |  |     /* Add fudge factor here for final descale. */  | 
1314  | 0  |     z3 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
1315  | 0  |     z4 = DEQUANTIZE(inptr[DCTSIZE*4], quantptr[DCTSIZE*4]);  | 
1316  | 0  |     z1 = MULTIPLY(z4, FIX(1.144122806));         /* c4 */  | 
1317  | 0  |     z2 = MULTIPLY(z4, FIX(0.437016024));         /* c8 */  | 
1318  | 0  |     tmp10 = z3 + z1;  | 
1319  | 0  |     tmp11 = z3 - z2;  | 
1320  |  | 
  | 
1321  | 0  |     tmp22 = RIGHT_SHIFT(z3 - ((z1 - z2) << 1),   /* c0 = (c4-c8)*2 */  | 
1322  | 0  |       CONST_BITS-PASS1_BITS);  | 
1323  |  | 
  | 
1324  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
1325  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*6], quantptr[DCTSIZE*6]);  | 
1326  |  | 
  | 
1327  | 0  |     z1 = MULTIPLY(z2 + z3, FIX(0.831253876));    /* c6 */  | 
1328  | 0  |     tmp12 = z1 + MULTIPLY(z2, FIX(0.513743148)); /* c2-c6 */  | 
1329  | 0  |     tmp13 = z1 - MULTIPLY(z3, FIX(2.176250899)); /* c2+c6 */  | 
1330  |  | 
  | 
1331  | 0  |     tmp20 = tmp10 + tmp12;  | 
1332  | 0  |     tmp24 = tmp10 - tmp12;  | 
1333  | 0  |     tmp21 = tmp11 + tmp13;  | 
1334  | 0  |     tmp23 = tmp11 - tmp13;  | 
1335  |  |  | 
1336  |  |     /* Odd part */  | 
1337  |  | 
  | 
1338  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
1339  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
1340  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*5], quantptr[DCTSIZE*5]);  | 
1341  | 0  |     z4 = DEQUANTIZE(inptr[DCTSIZE*7], quantptr[DCTSIZE*7]);  | 
1342  |  | 
  | 
1343  | 0  |     tmp11 = z2 + z4;  | 
1344  | 0  |     tmp13 = z2 - z4;  | 
1345  |  | 
  | 
1346  | 0  |     tmp12 = MULTIPLY(tmp13, FIX(0.309016994));        /* (c3-c7)/2 */  | 
1347  | 0  |     z5 = z3 << CONST_BITS;  | 
1348  |  | 
  | 
1349  | 0  |     z2 = MULTIPLY(tmp11, FIX(0.951056516));           /* (c3+c7)/2 */  | 
1350  | 0  |     z4 = z5 + tmp12;  | 
1351  |  | 
  | 
1352  | 0  |     tmp10 = MULTIPLY(z1, FIX(1.396802247)) + z2 + z4; /* c1 */  | 
1353  | 0  |     tmp14 = MULTIPLY(z1, FIX(0.221231742)) - z2 + z4; /* c9 */  | 
1354  |  | 
  | 
1355  | 0  |     z2 = MULTIPLY(tmp11, FIX(0.587785252));           /* (c1-c9)/2 */  | 
1356  | 0  |     z4 = z5 - tmp12 - (tmp13 << (CONST_BITS - 1));  | 
1357  |  | 
  | 
1358  | 0  |     tmp12 = (z1 - tmp13 - z3) << PASS1_BITS;  | 
1359  |  | 
  | 
1360  | 0  |     tmp11 = MULTIPLY(z1, FIX(1.260073511)) - z2 - z4; /* c3 */  | 
1361  | 0  |     tmp13 = MULTIPLY(z1, FIX(0.642039522)) - z2 + z4; /* c7 */  | 
1362  |  |  | 
1363  |  |     /* Final output stage */  | 
1364  |  | 
  | 
1365  | 0  |     wsptr[8*0] = (int) RIGHT_SHIFT(tmp20 + tmp10, CONST_BITS-PASS1_BITS);  | 
1366  | 0  |     wsptr[8*9] = (int) RIGHT_SHIFT(tmp20 - tmp10, CONST_BITS-PASS1_BITS);  | 
1367  | 0  |     wsptr[8*1] = (int) RIGHT_SHIFT(tmp21 + tmp11, CONST_BITS-PASS1_BITS);  | 
1368  | 0  |     wsptr[8*8] = (int) RIGHT_SHIFT(tmp21 - tmp11, CONST_BITS-PASS1_BITS);  | 
1369  | 0  |     wsptr[8*2] = (int) (tmp22 + tmp12);  | 
1370  | 0  |     wsptr[8*7] = (int) (tmp22 - tmp12);  | 
1371  | 0  |     wsptr[8*3] = (int) RIGHT_SHIFT(tmp23 + tmp13, CONST_BITS-PASS1_BITS);  | 
1372  | 0  |     wsptr[8*6] = (int) RIGHT_SHIFT(tmp23 - tmp13, CONST_BITS-PASS1_BITS);  | 
1373  | 0  |     wsptr[8*4] = (int) RIGHT_SHIFT(tmp24 + tmp14, CONST_BITS-PASS1_BITS);  | 
1374  | 0  |     wsptr[8*5] = (int) RIGHT_SHIFT(tmp24 - tmp14, CONST_BITS-PASS1_BITS);  | 
1375  | 0  |   }  | 
1376  |  |  | 
1377  |  |   /* Pass 2: process 10 rows from work array, store into output array. */  | 
1378  |  | 
  | 
1379  | 0  |   wsptr = workspace;  | 
1380  | 0  |   for (ctr = 0; ctr < 10; ctr++) { | 
1381  | 0  |     outptr = output_buf[ctr] + output_col;  | 
1382  |  |  | 
1383  |  |     /* Even part */  | 
1384  |  |  | 
1385  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
1386  | 0  |     z3 = (INT32) wsptr[0] +  | 
1387  | 0  |      ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
1388  | 0  |       (ONE << (PASS1_BITS+2)));  | 
1389  | 0  |     z3 <<= CONST_BITS;  | 
1390  | 0  |     z4 = (INT32) wsptr[4];  | 
1391  | 0  |     z1 = MULTIPLY(z4, FIX(1.144122806));         /* c4 */  | 
1392  | 0  |     z2 = MULTIPLY(z4, FIX(0.437016024));         /* c8 */  | 
1393  | 0  |     tmp10 = z3 + z1;  | 
1394  | 0  |     tmp11 = z3 - z2;  | 
1395  |  | 
  | 
1396  | 0  |     tmp22 = z3 - ((z1 - z2) << 1);               /* c0 = (c4-c8)*2 */  | 
1397  |  | 
  | 
1398  | 0  |     z2 = (INT32) wsptr[2];  | 
1399  | 0  |     z3 = (INT32) wsptr[6];  | 
1400  |  | 
  | 
1401  | 0  |     z1 = MULTIPLY(z2 + z3, FIX(0.831253876));    /* c6 */  | 
1402  | 0  |     tmp12 = z1 + MULTIPLY(z2, FIX(0.513743148)); /* c2-c6 */  | 
1403  | 0  |     tmp13 = z1 - MULTIPLY(z3, FIX(2.176250899)); /* c2+c6 */  | 
1404  |  | 
  | 
1405  | 0  |     tmp20 = tmp10 + tmp12;  | 
1406  | 0  |     tmp24 = tmp10 - tmp12;  | 
1407  | 0  |     tmp21 = tmp11 + tmp13;  | 
1408  | 0  |     tmp23 = tmp11 - tmp13;  | 
1409  |  |  | 
1410  |  |     /* Odd part */  | 
1411  |  | 
  | 
1412  | 0  |     z1 = (INT32) wsptr[1];  | 
1413  | 0  |     z2 = (INT32) wsptr[3];  | 
1414  | 0  |     z3 = (INT32) wsptr[5];  | 
1415  | 0  |     z3 <<= CONST_BITS;  | 
1416  | 0  |     z4 = (INT32) wsptr[7];  | 
1417  |  | 
  | 
1418  | 0  |     tmp11 = z2 + z4;  | 
1419  | 0  |     tmp13 = z2 - z4;  | 
1420  |  | 
  | 
1421  | 0  |     tmp12 = MULTIPLY(tmp13, FIX(0.309016994));        /* (c3-c7)/2 */  | 
1422  |  | 
  | 
1423  | 0  |     z2 = MULTIPLY(tmp11, FIX(0.951056516));           /* (c3+c7)/2 */  | 
1424  | 0  |     z4 = z3 + tmp12;  | 
1425  |  | 
  | 
1426  | 0  |     tmp10 = MULTIPLY(z1, FIX(1.396802247)) + z2 + z4; /* c1 */  | 
1427  | 0  |     tmp14 = MULTIPLY(z1, FIX(0.221231742)) - z2 + z4; /* c9 */  | 
1428  |  | 
  | 
1429  | 0  |     z2 = MULTIPLY(tmp11, FIX(0.587785252));           /* (c1-c9)/2 */  | 
1430  | 0  |     z4 = z3 - tmp12 - (tmp13 << (CONST_BITS - 1));  | 
1431  |  | 
  | 
1432  | 0  |     tmp12 = ((z1 - tmp13) << CONST_BITS) - z3;  | 
1433  |  | 
  | 
1434  | 0  |     tmp11 = MULTIPLY(z1, FIX(1.260073511)) - z2 - z4; /* c3 */  | 
1435  | 0  |     tmp13 = MULTIPLY(z1, FIX(0.642039522)) - z2 + z4; /* c7 */  | 
1436  |  |  | 
1437  |  |     /* Final output stage */  | 
1438  |  | 
  | 
1439  | 0  |     outptr[0] = range_limit[(int) RIGHT_SHIFT(tmp20 + tmp10,  | 
1440  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
1441  | 0  |           & RANGE_MASK];  | 
1442  | 0  |     outptr[9] = range_limit[(int) RIGHT_SHIFT(tmp20 - tmp10,  | 
1443  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
1444  | 0  |           & RANGE_MASK];  | 
1445  | 0  |     outptr[1] = range_limit[(int) RIGHT_SHIFT(tmp21 + tmp11,  | 
1446  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
1447  | 0  |           & RANGE_MASK];  | 
1448  | 0  |     outptr[8] = range_limit[(int) RIGHT_SHIFT(tmp21 - tmp11,  | 
1449  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
1450  | 0  |           & RANGE_MASK];  | 
1451  | 0  |     outptr[2] = range_limit[(int) RIGHT_SHIFT(tmp22 + tmp12,  | 
1452  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
1453  | 0  |           & RANGE_MASK];  | 
1454  | 0  |     outptr[7] = range_limit[(int) RIGHT_SHIFT(tmp22 - tmp12,  | 
1455  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
1456  | 0  |           & RANGE_MASK];  | 
1457  | 0  |     outptr[3] = range_limit[(int) RIGHT_SHIFT(tmp23 + tmp13,  | 
1458  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
1459  | 0  |           & RANGE_MASK];  | 
1460  | 0  |     outptr[6] = range_limit[(int) RIGHT_SHIFT(tmp23 - tmp13,  | 
1461  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
1462  | 0  |           & RANGE_MASK];  | 
1463  | 0  |     outptr[4] = range_limit[(int) RIGHT_SHIFT(tmp24 + tmp14,  | 
1464  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
1465  | 0  |           & RANGE_MASK];  | 
1466  | 0  |     outptr[5] = range_limit[(int) RIGHT_SHIFT(tmp24 - tmp14,  | 
1467  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
1468  | 0  |           & RANGE_MASK];  | 
1469  |  | 
  | 
1470  | 0  |     wsptr += 8;   /* advance pointer to next row */  | 
1471  | 0  |   }  | 
1472  | 0  | }  | 
1473  |  |  | 
1474  |  |  | 
1475  |  | /*  | 
1476  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
1477  |  |  * producing an 11x11 output block.  | 
1478  |  |  *  | 
1479  |  |  * Optimized algorithm with 24 multiplications in the 1-D kernel.  | 
1480  |  |  * cK represents sqrt(2) * cos(K*pi/22).  | 
1481  |  |  */  | 
1482  |  |  | 
1483  |  | GLOBAL(void)  | 
1484  |  | jpeg_idct_11x11 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
1485  |  |      JCOEFPTR coef_block,  | 
1486  |  |      JSAMPARRAY output_buf, JDIMENSION output_col)  | 
1487  | 0  | { | 
1488  | 0  |   INT32 tmp10, tmp11, tmp12, tmp13, tmp14;  | 
1489  | 0  |   INT32 tmp20, tmp21, tmp22, tmp23, tmp24, tmp25;  | 
1490  | 0  |   INT32 z1, z2, z3, z4;  | 
1491  | 0  |   JCOEFPTR inptr;  | 
1492  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
1493  | 0  |   int * wsptr;  | 
1494  | 0  |   JSAMPROW outptr;  | 
1495  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
1496  | 0  |   int ctr;  | 
1497  | 0  |   int workspace[8*11];  /* buffers data between passes */  | 
1498  |  |   SHIFT_TEMPS  | 
1499  |  |  | 
1500  |  |   /* Pass 1: process columns from input, store into work array. */  | 
1501  |  | 
  | 
1502  | 0  |   inptr = coef_block;  | 
1503  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
1504  | 0  |   wsptr = workspace;  | 
1505  | 0  |   for (ctr = 0; ctr < 8; ctr++, inptr++, quantptr++, wsptr++) { | 
1506  |  |     /* Even part */  | 
1507  |  | 
  | 
1508  | 0  |     tmp10 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
1509  | 0  |     tmp10 <<= CONST_BITS;  | 
1510  |  |     /* Add fudge factor here for final descale. */  | 
1511  | 0  |     tmp10 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
1512  |  | 
  | 
1513  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
1514  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*4], quantptr[DCTSIZE*4]);  | 
1515  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*6], quantptr[DCTSIZE*6]);  | 
1516  |  | 
  | 
1517  | 0  |     tmp20 = MULTIPLY(z2 - z3, FIX(2.546640132));     /* c2+c4 */  | 
1518  | 0  |     tmp23 = MULTIPLY(z2 - z1, FIX(0.430815045));     /* c2-c6 */  | 
1519  | 0  |     z4 = z1 + z3;  | 
1520  | 0  |     tmp24 = MULTIPLY(z4, - FIX(1.155664402));        /* -(c2-c10) */  | 
1521  | 0  |     z4 -= z2;  | 
1522  | 0  |     tmp25 = tmp10 + MULTIPLY(z4, FIX(1.356927976));  /* c2 */  | 
1523  | 0  |     tmp21 = tmp20 + tmp23 + tmp25 -  | 
1524  | 0  |       MULTIPLY(z2, FIX(1.821790775));          /* c2+c4+c10-c6 */  | 
1525  | 0  |     tmp20 += tmp25 + MULTIPLY(z3, FIX(2.115825087)); /* c4+c6 */  | 
1526  | 0  |     tmp23 += tmp25 - MULTIPLY(z1, FIX(1.513598477)); /* c6+c8 */  | 
1527  | 0  |     tmp24 += tmp25;  | 
1528  | 0  |     tmp22 = tmp24 - MULTIPLY(z3, FIX(0.788749120));  /* c8+c10 */  | 
1529  | 0  |     tmp24 += MULTIPLY(z2, FIX(1.944413522)) -        /* c2+c8 */  | 
1530  | 0  |        MULTIPLY(z1, FIX(1.390975730));         /* c4+c10 */  | 
1531  | 0  |     tmp25 = tmp10 - MULTIPLY(z4, FIX(1.414213562));  /* c0 */  | 
1532  |  |  | 
1533  |  |     /* Odd part */  | 
1534  |  | 
  | 
1535  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
1536  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
1537  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*5], quantptr[DCTSIZE*5]);  | 
1538  | 0  |     z4 = DEQUANTIZE(inptr[DCTSIZE*7], quantptr[DCTSIZE*7]);  | 
1539  |  | 
  | 
1540  | 0  |     tmp11 = z1 + z2;  | 
1541  | 0  |     tmp14 = MULTIPLY(tmp11 + z3 + z4, FIX(0.398430003)); /* c9 */  | 
1542  | 0  |     tmp11 = MULTIPLY(tmp11, FIX(0.887983902));           /* c3-c9 */  | 
1543  | 0  |     tmp12 = MULTIPLY(z1 + z3, FIX(0.670361295));         /* c5-c9 */  | 
1544  | 0  |     tmp13 = tmp14 + MULTIPLY(z1 + z4, FIX(0.366151574)); /* c7-c9 */  | 
1545  | 0  |     tmp10 = tmp11 + tmp12 + tmp13 -  | 
1546  | 0  |       MULTIPLY(z1, FIX(0.923107866));              /* c7+c5+c3-c1-2*c9 */  | 
1547  | 0  |     z1    = tmp14 - MULTIPLY(z2 + z3, FIX(1.163011579)); /* c7+c9 */  | 
1548  | 0  |     tmp11 += z1 + MULTIPLY(z2, FIX(2.073276588));        /* c1+c7+3*c9-c3 */  | 
1549  | 0  |     tmp12 += z1 - MULTIPLY(z3, FIX(1.192193623));        /* c3+c5-c7-c9 */  | 
1550  | 0  |     z1    = MULTIPLY(z2 + z4, - FIX(1.798248910));       /* -(c1+c9) */  | 
1551  | 0  |     tmp11 += z1;  | 
1552  | 0  |     tmp13 += z1 + MULTIPLY(z4, FIX(2.102458632));        /* c1+c5+c9-c7 */  | 
1553  | 0  |     tmp14 += MULTIPLY(z2, - FIX(1.467221301)) +          /* -(c5+c9) */  | 
1554  | 0  |        MULTIPLY(z3, FIX(1.001388905)) -            /* c1-c9 */  | 
1555  | 0  |        MULTIPLY(z4, FIX(1.684843907));             /* c3+c9 */  | 
1556  |  |  | 
1557  |  |     /* Final output stage */  | 
1558  |  | 
  | 
1559  | 0  |     wsptr[8*0]  = (int) RIGHT_SHIFT(tmp20 + tmp10, CONST_BITS-PASS1_BITS);  | 
1560  | 0  |     wsptr[8*10] = (int) RIGHT_SHIFT(tmp20 - tmp10, CONST_BITS-PASS1_BITS);  | 
1561  | 0  |     wsptr[8*1]  = (int) RIGHT_SHIFT(tmp21 + tmp11, CONST_BITS-PASS1_BITS);  | 
1562  | 0  |     wsptr[8*9]  = (int) RIGHT_SHIFT(tmp21 - tmp11, CONST_BITS-PASS1_BITS);  | 
1563  | 0  |     wsptr[8*2]  = (int) RIGHT_SHIFT(tmp22 + tmp12, CONST_BITS-PASS1_BITS);  | 
1564  | 0  |     wsptr[8*8]  = (int) RIGHT_SHIFT(tmp22 - tmp12, CONST_BITS-PASS1_BITS);  | 
1565  | 0  |     wsptr[8*3]  = (int) RIGHT_SHIFT(tmp23 + tmp13, CONST_BITS-PASS1_BITS);  | 
1566  | 0  |     wsptr[8*7]  = (int) RIGHT_SHIFT(tmp23 - tmp13, CONST_BITS-PASS1_BITS);  | 
1567  | 0  |     wsptr[8*4]  = (int) RIGHT_SHIFT(tmp24 + tmp14, CONST_BITS-PASS1_BITS);  | 
1568  | 0  |     wsptr[8*6]  = (int) RIGHT_SHIFT(tmp24 - tmp14, CONST_BITS-PASS1_BITS);  | 
1569  | 0  |     wsptr[8*5]  = (int) RIGHT_SHIFT(tmp25, CONST_BITS-PASS1_BITS);  | 
1570  | 0  |   }  | 
1571  |  |  | 
1572  |  |   /* Pass 2: process 11 rows from work array, store into output array. */  | 
1573  |  | 
  | 
1574  | 0  |   wsptr = workspace;  | 
1575  | 0  |   for (ctr = 0; ctr < 11; ctr++) { | 
1576  | 0  |     outptr = output_buf[ctr] + output_col;  | 
1577  |  |  | 
1578  |  |     /* Even part */  | 
1579  |  |  | 
1580  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
1581  | 0  |     tmp10 = (INT32) wsptr[0] +  | 
1582  | 0  |         ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
1583  | 0  |          (ONE << (PASS1_BITS+2)));  | 
1584  | 0  |     tmp10 <<= CONST_BITS;  | 
1585  |  | 
  | 
1586  | 0  |     z1 = (INT32) wsptr[2];  | 
1587  | 0  |     z2 = (INT32) wsptr[4];  | 
1588  | 0  |     z3 = (INT32) wsptr[6];  | 
1589  |  | 
  | 
1590  | 0  |     tmp20 = MULTIPLY(z2 - z3, FIX(2.546640132));     /* c2+c4 */  | 
1591  | 0  |     tmp23 = MULTIPLY(z2 - z1, FIX(0.430815045));     /* c2-c6 */  | 
1592  | 0  |     z4 = z1 + z3;  | 
1593  | 0  |     tmp24 = MULTIPLY(z4, - FIX(1.155664402));        /* -(c2-c10) */  | 
1594  | 0  |     z4 -= z2;  | 
1595  | 0  |     tmp25 = tmp10 + MULTIPLY(z4, FIX(1.356927976));  /* c2 */  | 
1596  | 0  |     tmp21 = tmp20 + tmp23 + tmp25 -  | 
1597  | 0  |       MULTIPLY(z2, FIX(1.821790775));          /* c2+c4+c10-c6 */  | 
1598  | 0  |     tmp20 += tmp25 + MULTIPLY(z3, FIX(2.115825087)); /* c4+c6 */  | 
1599  | 0  |     tmp23 += tmp25 - MULTIPLY(z1, FIX(1.513598477)); /* c6+c8 */  | 
1600  | 0  |     tmp24 += tmp25;  | 
1601  | 0  |     tmp22 = tmp24 - MULTIPLY(z3, FIX(0.788749120));  /* c8+c10 */  | 
1602  | 0  |     tmp24 += MULTIPLY(z2, FIX(1.944413522)) -        /* c2+c8 */  | 
1603  | 0  |        MULTIPLY(z1, FIX(1.390975730));         /* c4+c10 */  | 
1604  | 0  |     tmp25 = tmp10 - MULTIPLY(z4, FIX(1.414213562));  /* c0 */  | 
1605  |  |  | 
1606  |  |     /* Odd part */  | 
1607  |  | 
  | 
1608  | 0  |     z1 = (INT32) wsptr[1];  | 
1609  | 0  |     z2 = (INT32) wsptr[3];  | 
1610  | 0  |     z3 = (INT32) wsptr[5];  | 
1611  | 0  |     z4 = (INT32) wsptr[7];  | 
1612  |  | 
  | 
1613  | 0  |     tmp11 = z1 + z2;  | 
1614  | 0  |     tmp14 = MULTIPLY(tmp11 + z3 + z4, FIX(0.398430003)); /* c9 */  | 
1615  | 0  |     tmp11 = MULTIPLY(tmp11, FIX(0.887983902));           /* c3-c9 */  | 
1616  | 0  |     tmp12 = MULTIPLY(z1 + z3, FIX(0.670361295));         /* c5-c9 */  | 
1617  | 0  |     tmp13 = tmp14 + MULTIPLY(z1 + z4, FIX(0.366151574)); /* c7-c9 */  | 
1618  | 0  |     tmp10 = tmp11 + tmp12 + tmp13 -  | 
1619  | 0  |       MULTIPLY(z1, FIX(0.923107866));              /* c7+c5+c3-c1-2*c9 */  | 
1620  | 0  |     z1    = tmp14 - MULTIPLY(z2 + z3, FIX(1.163011579)); /* c7+c9 */  | 
1621  | 0  |     tmp11 += z1 + MULTIPLY(z2, FIX(2.073276588));        /* c1+c7+3*c9-c3 */  | 
1622  | 0  |     tmp12 += z1 - MULTIPLY(z3, FIX(1.192193623));        /* c3+c5-c7-c9 */  | 
1623  | 0  |     z1    = MULTIPLY(z2 + z4, - FIX(1.798248910));       /* -(c1+c9) */  | 
1624  | 0  |     tmp11 += z1;  | 
1625  | 0  |     tmp13 += z1 + MULTIPLY(z4, FIX(2.102458632));        /* c1+c5+c9-c7 */  | 
1626  | 0  |     tmp14 += MULTIPLY(z2, - FIX(1.467221301)) +          /* -(c5+c9) */  | 
1627  | 0  |        MULTIPLY(z3, FIX(1.001388905)) -            /* c1-c9 */  | 
1628  | 0  |        MULTIPLY(z4, FIX(1.684843907));             /* c3+c9 */  | 
1629  |  |  | 
1630  |  |     /* Final output stage */  | 
1631  |  | 
  | 
1632  | 0  |     outptr[0]  = range_limit[(int) RIGHT_SHIFT(tmp20 + tmp10,  | 
1633  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1634  | 0  |            & RANGE_MASK];  | 
1635  | 0  |     outptr[10] = range_limit[(int) RIGHT_SHIFT(tmp20 - tmp10,  | 
1636  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1637  | 0  |            & RANGE_MASK];  | 
1638  | 0  |     outptr[1]  = range_limit[(int) RIGHT_SHIFT(tmp21 + tmp11,  | 
1639  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1640  | 0  |            & RANGE_MASK];  | 
1641  | 0  |     outptr[9]  = range_limit[(int) RIGHT_SHIFT(tmp21 - tmp11,  | 
1642  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1643  | 0  |            & RANGE_MASK];  | 
1644  | 0  |     outptr[2]  = range_limit[(int) RIGHT_SHIFT(tmp22 + tmp12,  | 
1645  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1646  | 0  |            & RANGE_MASK];  | 
1647  | 0  |     outptr[8]  = range_limit[(int) RIGHT_SHIFT(tmp22 - tmp12,  | 
1648  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1649  | 0  |            & RANGE_MASK];  | 
1650  | 0  |     outptr[3]  = range_limit[(int) RIGHT_SHIFT(tmp23 + tmp13,  | 
1651  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1652  | 0  |            & RANGE_MASK];  | 
1653  | 0  |     outptr[7]  = range_limit[(int) RIGHT_SHIFT(tmp23 - tmp13,  | 
1654  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1655  | 0  |            & RANGE_MASK];  | 
1656  | 0  |     outptr[4]  = range_limit[(int) RIGHT_SHIFT(tmp24 + tmp14,  | 
1657  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1658  | 0  |            & RANGE_MASK];  | 
1659  | 0  |     outptr[6]  = range_limit[(int) RIGHT_SHIFT(tmp24 - tmp14,  | 
1660  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1661  | 0  |            & RANGE_MASK];  | 
1662  | 0  |     outptr[5]  = range_limit[(int) RIGHT_SHIFT(tmp25,  | 
1663  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1664  | 0  |            & RANGE_MASK];  | 
1665  |  | 
  | 
1666  | 0  |     wsptr += 8;   /* advance pointer to next row */  | 
1667  | 0  |   }  | 
1668  | 0  | }  | 
1669  |  |  | 
1670  |  |  | 
1671  |  | /*  | 
1672  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
1673  |  |  * producing a 12x12 output block.  | 
1674  |  |  *  | 
1675  |  |  * Optimized algorithm with 15 multiplications in the 1-D kernel.  | 
1676  |  |  * cK represents sqrt(2) * cos(K*pi/24).  | 
1677  |  |  */  | 
1678  |  |  | 
1679  |  | GLOBAL(void)  | 
1680  |  | jpeg_idct_12x12 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
1681  |  |      JCOEFPTR coef_block,  | 
1682  |  |      JSAMPARRAY output_buf, JDIMENSION output_col)  | 
1683  | 0  | { | 
1684  | 0  |   INT32 tmp10, tmp11, tmp12, tmp13, tmp14, tmp15;  | 
1685  | 0  |   INT32 tmp20, tmp21, tmp22, tmp23, tmp24, tmp25;  | 
1686  | 0  |   INT32 z1, z2, z3, z4;  | 
1687  | 0  |   JCOEFPTR inptr;  | 
1688  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
1689  | 0  |   int * wsptr;  | 
1690  | 0  |   JSAMPROW outptr;  | 
1691  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
1692  | 0  |   int ctr;  | 
1693  | 0  |   int workspace[8*12];  /* buffers data between passes */  | 
1694  |  |   SHIFT_TEMPS  | 
1695  |  |  | 
1696  |  |   /* Pass 1: process columns from input, store into work array. */  | 
1697  |  | 
  | 
1698  | 0  |   inptr = coef_block;  | 
1699  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
1700  | 0  |   wsptr = workspace;  | 
1701  | 0  |   for (ctr = 0; ctr < 8; ctr++, inptr++, quantptr++, wsptr++) { | 
1702  |  |     /* Even part */  | 
1703  |  | 
  | 
1704  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
1705  | 0  |     z3 <<= CONST_BITS;  | 
1706  |  |     /* Add fudge factor here for final descale. */  | 
1707  | 0  |     z3 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
1708  |  | 
  | 
1709  | 0  |     z4 = DEQUANTIZE(inptr[DCTSIZE*4], quantptr[DCTSIZE*4]);  | 
1710  | 0  |     z4 = MULTIPLY(z4, FIX(1.224744871)); /* c4 */  | 
1711  |  | 
  | 
1712  | 0  |     tmp10 = z3 + z4;  | 
1713  | 0  |     tmp11 = z3 - z4;  | 
1714  |  | 
  | 
1715  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
1716  | 0  |     z4 = MULTIPLY(z1, FIX(1.366025404)); /* c2 */  | 
1717  | 0  |     z1 <<= CONST_BITS;  | 
1718  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*6], quantptr[DCTSIZE*6]);  | 
1719  | 0  |     z2 <<= CONST_BITS;  | 
1720  |  | 
  | 
1721  | 0  |     tmp12 = z1 - z2;  | 
1722  |  | 
  | 
1723  | 0  |     tmp21 = z3 + tmp12;  | 
1724  | 0  |     tmp24 = z3 - tmp12;  | 
1725  |  | 
  | 
1726  | 0  |     tmp12 = z4 + z2;  | 
1727  |  | 
  | 
1728  | 0  |     tmp20 = tmp10 + tmp12;  | 
1729  | 0  |     tmp25 = tmp10 - tmp12;  | 
1730  |  | 
  | 
1731  | 0  |     tmp12 = z4 - z1 - z2;  | 
1732  |  | 
  | 
1733  | 0  |     tmp22 = tmp11 + tmp12;  | 
1734  | 0  |     tmp23 = tmp11 - tmp12;  | 
1735  |  |  | 
1736  |  |     /* Odd part */  | 
1737  |  | 
  | 
1738  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
1739  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
1740  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*5], quantptr[DCTSIZE*5]);  | 
1741  | 0  |     z4 = DEQUANTIZE(inptr[DCTSIZE*7], quantptr[DCTSIZE*7]);  | 
1742  |  | 
  | 
1743  | 0  |     tmp11 = MULTIPLY(z2, FIX(1.306562965));                  /* c3 */  | 
1744  | 0  |     tmp14 = MULTIPLY(z2, - FIX_0_541196100);                 /* -c9 */  | 
1745  |  | 
  | 
1746  | 0  |     tmp10 = z1 + z3;  | 
1747  | 0  |     tmp15 = MULTIPLY(tmp10 + z4, FIX(0.860918669));          /* c7 */  | 
1748  | 0  |     tmp12 = tmp15 + MULTIPLY(tmp10, FIX(0.261052384));       /* c5-c7 */  | 
1749  | 0  |     tmp10 = tmp12 + tmp11 + MULTIPLY(z1, FIX(0.280143716));  /* c1-c5 */  | 
1750  | 0  |     tmp13 = MULTIPLY(z3 + z4, - FIX(1.045510580));           /* -(c7+c11) */  | 
1751  | 0  |     tmp12 += tmp13 + tmp14 - MULTIPLY(z3, FIX(1.478575242)); /* c1+c5-c7-c11 */  | 
1752  | 0  |     tmp13 += tmp15 - tmp11 + MULTIPLY(z4, FIX(1.586706681)); /* c1+c11 */  | 
1753  | 0  |     tmp15 += tmp14 - MULTIPLY(z1, FIX(0.676326758)) -        /* c7-c11 */  | 
1754  | 0  |        MULTIPLY(z4, FIX(1.982889723));                 /* c5+c7 */  | 
1755  |  | 
  | 
1756  | 0  |     z1 -= z4;  | 
1757  | 0  |     z2 -= z3;  | 
1758  | 0  |     z3 = MULTIPLY(z1 + z2, FIX_0_541196100);                 /* c9 */  | 
1759  | 0  |     tmp11 = z3 + MULTIPLY(z1, FIX_0_765366865);              /* c3-c9 */  | 
1760  | 0  |     tmp14 = z3 - MULTIPLY(z2, FIX_1_847759065);              /* c3+c9 */  | 
1761  |  |  | 
1762  |  |     /* Final output stage */  | 
1763  |  | 
  | 
1764  | 0  |     wsptr[8*0]  = (int) RIGHT_SHIFT(tmp20 + tmp10, CONST_BITS-PASS1_BITS);  | 
1765  | 0  |     wsptr[8*11] = (int) RIGHT_SHIFT(tmp20 - tmp10, CONST_BITS-PASS1_BITS);  | 
1766  | 0  |     wsptr[8*1]  = (int) RIGHT_SHIFT(tmp21 + tmp11, CONST_BITS-PASS1_BITS);  | 
1767  | 0  |     wsptr[8*10] = (int) RIGHT_SHIFT(tmp21 - tmp11, CONST_BITS-PASS1_BITS);  | 
1768  | 0  |     wsptr[8*2]  = (int) RIGHT_SHIFT(tmp22 + tmp12, CONST_BITS-PASS1_BITS);  | 
1769  | 0  |     wsptr[8*9]  = (int) RIGHT_SHIFT(tmp22 - tmp12, CONST_BITS-PASS1_BITS);  | 
1770  | 0  |     wsptr[8*3]  = (int) RIGHT_SHIFT(tmp23 + tmp13, CONST_BITS-PASS1_BITS);  | 
1771  | 0  |     wsptr[8*8]  = (int) RIGHT_SHIFT(tmp23 - tmp13, CONST_BITS-PASS1_BITS);  | 
1772  | 0  |     wsptr[8*4]  = (int) RIGHT_SHIFT(tmp24 + tmp14, CONST_BITS-PASS1_BITS);  | 
1773  | 0  |     wsptr[8*7]  = (int) RIGHT_SHIFT(tmp24 - tmp14, CONST_BITS-PASS1_BITS);  | 
1774  | 0  |     wsptr[8*5]  = (int) RIGHT_SHIFT(tmp25 + tmp15, CONST_BITS-PASS1_BITS);  | 
1775  | 0  |     wsptr[8*6]  = (int) RIGHT_SHIFT(tmp25 - tmp15, CONST_BITS-PASS1_BITS);  | 
1776  | 0  |   }  | 
1777  |  |  | 
1778  |  |   /* Pass 2: process 12 rows from work array, store into output array. */  | 
1779  |  | 
  | 
1780  | 0  |   wsptr = workspace;  | 
1781  | 0  |   for (ctr = 0; ctr < 12; ctr++) { | 
1782  | 0  |     outptr = output_buf[ctr] + output_col;  | 
1783  |  |  | 
1784  |  |     /* Even part */  | 
1785  |  |  | 
1786  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
1787  | 0  |     z3 = (INT32) wsptr[0] +  | 
1788  | 0  |      ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
1789  | 0  |       (ONE << (PASS1_BITS+2)));  | 
1790  | 0  |     z3 <<= CONST_BITS;  | 
1791  |  | 
  | 
1792  | 0  |     z4 = (INT32) wsptr[4];  | 
1793  | 0  |     z4 = MULTIPLY(z4, FIX(1.224744871)); /* c4 */  | 
1794  |  | 
  | 
1795  | 0  |     tmp10 = z3 + z4;  | 
1796  | 0  |     tmp11 = z3 - z4;  | 
1797  |  | 
  | 
1798  | 0  |     z1 = (INT32) wsptr[2];  | 
1799  | 0  |     z4 = MULTIPLY(z1, FIX(1.366025404)); /* c2 */  | 
1800  | 0  |     z1 <<= CONST_BITS;  | 
1801  | 0  |     z2 = (INT32) wsptr[6];  | 
1802  | 0  |     z2 <<= CONST_BITS;  | 
1803  |  | 
  | 
1804  | 0  |     tmp12 = z1 - z2;  | 
1805  |  | 
  | 
1806  | 0  |     tmp21 = z3 + tmp12;  | 
1807  | 0  |     tmp24 = z3 - tmp12;  | 
1808  |  | 
  | 
1809  | 0  |     tmp12 = z4 + z2;  | 
1810  |  | 
  | 
1811  | 0  |     tmp20 = tmp10 + tmp12;  | 
1812  | 0  |     tmp25 = tmp10 - tmp12;  | 
1813  |  | 
  | 
1814  | 0  |     tmp12 = z4 - z1 - z2;  | 
1815  |  | 
  | 
1816  | 0  |     tmp22 = tmp11 + tmp12;  | 
1817  | 0  |     tmp23 = tmp11 - tmp12;  | 
1818  |  |  | 
1819  |  |     /* Odd part */  | 
1820  |  | 
  | 
1821  | 0  |     z1 = (INT32) wsptr[1];  | 
1822  | 0  |     z2 = (INT32) wsptr[3];  | 
1823  | 0  |     z3 = (INT32) wsptr[5];  | 
1824  | 0  |     z4 = (INT32) wsptr[7];  | 
1825  |  | 
  | 
1826  | 0  |     tmp11 = MULTIPLY(z2, FIX(1.306562965));                  /* c3 */  | 
1827  | 0  |     tmp14 = MULTIPLY(z2, - FIX_0_541196100);                 /* -c9 */  | 
1828  |  | 
  | 
1829  | 0  |     tmp10 = z1 + z3;  | 
1830  | 0  |     tmp15 = MULTIPLY(tmp10 + z4, FIX(0.860918669));          /* c7 */  | 
1831  | 0  |     tmp12 = tmp15 + MULTIPLY(tmp10, FIX(0.261052384));       /* c5-c7 */  | 
1832  | 0  |     tmp10 = tmp12 + tmp11 + MULTIPLY(z1, FIX(0.280143716));  /* c1-c5 */  | 
1833  | 0  |     tmp13 = MULTIPLY(z3 + z4, - FIX(1.045510580));           /* -(c7+c11) */  | 
1834  | 0  |     tmp12 += tmp13 + tmp14 - MULTIPLY(z3, FIX(1.478575242)); /* c1+c5-c7-c11 */  | 
1835  | 0  |     tmp13 += tmp15 - tmp11 + MULTIPLY(z4, FIX(1.586706681)); /* c1+c11 */  | 
1836  | 0  |     tmp15 += tmp14 - MULTIPLY(z1, FIX(0.676326758)) -        /* c7-c11 */  | 
1837  | 0  |        MULTIPLY(z4, FIX(1.982889723));                 /* c5+c7 */  | 
1838  |  | 
  | 
1839  | 0  |     z1 -= z4;  | 
1840  | 0  |     z2 -= z3;  | 
1841  | 0  |     z3 = MULTIPLY(z1 + z2, FIX_0_541196100);                 /* c9 */  | 
1842  | 0  |     tmp11 = z3 + MULTIPLY(z1, FIX_0_765366865);              /* c3-c9 */  | 
1843  | 0  |     tmp14 = z3 - MULTIPLY(z2, FIX_1_847759065);              /* c3+c9 */  | 
1844  |  |  | 
1845  |  |     /* Final output stage */  | 
1846  |  | 
  | 
1847  | 0  |     outptr[0]  = range_limit[(int) RIGHT_SHIFT(tmp20 + tmp10,  | 
1848  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1849  | 0  |            & RANGE_MASK];  | 
1850  | 0  |     outptr[11] = range_limit[(int) RIGHT_SHIFT(tmp20 - tmp10,  | 
1851  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1852  | 0  |            & RANGE_MASK];  | 
1853  | 0  |     outptr[1]  = range_limit[(int) RIGHT_SHIFT(tmp21 + tmp11,  | 
1854  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1855  | 0  |            & RANGE_MASK];  | 
1856  | 0  |     outptr[10] = range_limit[(int) RIGHT_SHIFT(tmp21 - tmp11,  | 
1857  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1858  | 0  |            & RANGE_MASK];  | 
1859  | 0  |     outptr[2]  = range_limit[(int) RIGHT_SHIFT(tmp22 + tmp12,  | 
1860  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1861  | 0  |            & RANGE_MASK];  | 
1862  | 0  |     outptr[9]  = range_limit[(int) RIGHT_SHIFT(tmp22 - tmp12,  | 
1863  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1864  | 0  |            & RANGE_MASK];  | 
1865  | 0  |     outptr[3]  = range_limit[(int) RIGHT_SHIFT(tmp23 + tmp13,  | 
1866  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1867  | 0  |            & RANGE_MASK];  | 
1868  | 0  |     outptr[8]  = range_limit[(int) RIGHT_SHIFT(tmp23 - tmp13,  | 
1869  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1870  | 0  |            & RANGE_MASK];  | 
1871  | 0  |     outptr[4]  = range_limit[(int) RIGHT_SHIFT(tmp24 + tmp14,  | 
1872  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1873  | 0  |            & RANGE_MASK];  | 
1874  | 0  |     outptr[7]  = range_limit[(int) RIGHT_SHIFT(tmp24 - tmp14,  | 
1875  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1876  | 0  |            & RANGE_MASK];  | 
1877  | 0  |     outptr[5]  = range_limit[(int) RIGHT_SHIFT(tmp25 + tmp15,  | 
1878  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1879  | 0  |            & RANGE_MASK];  | 
1880  | 0  |     outptr[6]  = range_limit[(int) RIGHT_SHIFT(tmp25 - tmp15,  | 
1881  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
1882  | 0  |            & RANGE_MASK];  | 
1883  |  | 
  | 
1884  | 0  |     wsptr += 8;   /* advance pointer to next row */  | 
1885  | 0  |   }  | 
1886  | 0  | }  | 
1887  |  |  | 
1888  |  |  | 
1889  |  | /*  | 
1890  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
1891  |  |  * producing a 13x13 output block.  | 
1892  |  |  *  | 
1893  |  |  * Optimized algorithm with 29 multiplications in the 1-D kernel.  | 
1894  |  |  * cK represents sqrt(2) * cos(K*pi/26).  | 
1895  |  |  */  | 
1896  |  |  | 
1897  |  | GLOBAL(void)  | 
1898  |  | jpeg_idct_13x13 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
1899  |  |      JCOEFPTR coef_block,  | 
1900  |  |      JSAMPARRAY output_buf, JDIMENSION output_col)  | 
1901  | 0  | { | 
1902  | 0  |   INT32 tmp10, tmp11, tmp12, tmp13, tmp14, tmp15;  | 
1903  | 0  |   INT32 tmp20, tmp21, tmp22, tmp23, tmp24, tmp25, tmp26;  | 
1904  | 0  |   INT32 z1, z2, z3, z4;  | 
1905  | 0  |   JCOEFPTR inptr;  | 
1906  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
1907  | 0  |   int * wsptr;  | 
1908  | 0  |   JSAMPROW outptr;  | 
1909  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
1910  | 0  |   int ctr;  | 
1911  | 0  |   int workspace[8*13];  /* buffers data between passes */  | 
1912  |  |   SHIFT_TEMPS  | 
1913  |  |  | 
1914  |  |   /* Pass 1: process columns from input, store into work array. */  | 
1915  |  | 
  | 
1916  | 0  |   inptr = coef_block;  | 
1917  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
1918  | 0  |   wsptr = workspace;  | 
1919  | 0  |   for (ctr = 0; ctr < 8; ctr++, inptr++, quantptr++, wsptr++) { | 
1920  |  |     /* Even part */  | 
1921  |  | 
  | 
1922  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
1923  | 0  |     z1 <<= CONST_BITS;  | 
1924  |  |     /* Add fudge factor here for final descale. */  | 
1925  | 0  |     z1 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
1926  |  | 
  | 
1927  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
1928  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*4], quantptr[DCTSIZE*4]);  | 
1929  | 0  |     z4 = DEQUANTIZE(inptr[DCTSIZE*6], quantptr[DCTSIZE*6]);  | 
1930  |  | 
  | 
1931  | 0  |     tmp10 = z3 + z4;  | 
1932  | 0  |     tmp11 = z3 - z4;  | 
1933  |  | 
  | 
1934  | 0  |     tmp12 = MULTIPLY(tmp10, FIX(1.155388986));                /* (c4+c6)/2 */  | 
1935  | 0  |     tmp13 = MULTIPLY(tmp11, FIX(0.096834934)) + z1;           /* (c4-c6)/2 */  | 
1936  |  | 
  | 
1937  | 0  |     tmp20 = MULTIPLY(z2, FIX(1.373119086)) + tmp12 + tmp13;   /* c2 */  | 
1938  | 0  |     tmp22 = MULTIPLY(z2, FIX(0.501487041)) - tmp12 + tmp13;   /* c10 */  | 
1939  |  | 
  | 
1940  | 0  |     tmp12 = MULTIPLY(tmp10, FIX(0.316450131));                /* (c8-c12)/2 */  | 
1941  | 0  |     tmp13 = MULTIPLY(tmp11, FIX(0.486914739)) + z1;           /* (c8+c12)/2 */  | 
1942  |  | 
  | 
1943  | 0  |     tmp21 = MULTIPLY(z2, FIX(1.058554052)) - tmp12 + tmp13;   /* c6 */  | 
1944  | 0  |     tmp25 = MULTIPLY(z2, - FIX(1.252223920)) + tmp12 + tmp13; /* c4 */  | 
1945  |  | 
  | 
1946  | 0  |     tmp12 = MULTIPLY(tmp10, FIX(0.435816023));                /* (c2-c10)/2 */  | 
1947  | 0  |     tmp13 = MULTIPLY(tmp11, FIX(0.937303064)) - z1;           /* (c2+c10)/2 */  | 
1948  |  | 
  | 
1949  | 0  |     tmp23 = MULTIPLY(z2, - FIX(0.170464608)) - tmp12 - tmp13; /* c12 */  | 
1950  | 0  |     tmp24 = MULTIPLY(z2, - FIX(0.803364869)) + tmp12 - tmp13; /* c8 */  | 
1951  |  | 
  | 
1952  | 0  |     tmp26 = MULTIPLY(tmp11 - z2, FIX(1.414213562)) + z1;      /* c0 */  | 
1953  |  |  | 
1954  |  |     /* Odd part */  | 
1955  |  | 
  | 
1956  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
1957  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
1958  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*5], quantptr[DCTSIZE*5]);  | 
1959  | 0  |     z4 = DEQUANTIZE(inptr[DCTSIZE*7], quantptr[DCTSIZE*7]);  | 
1960  |  | 
  | 
1961  | 0  |     tmp11 = MULTIPLY(z1 + z2, FIX(1.322312651));     /* c3 */  | 
1962  | 0  |     tmp12 = MULTIPLY(z1 + z3, FIX(1.163874945));     /* c5 */  | 
1963  | 0  |     tmp15 = z1 + z4;  | 
1964  | 0  |     tmp13 = MULTIPLY(tmp15, FIX(0.937797057));       /* c7 */  | 
1965  | 0  |     tmp10 = tmp11 + tmp12 + tmp13 -  | 
1966  | 0  |       MULTIPLY(z1, FIX(2.020082300));          /* c7+c5+c3-c1 */  | 
1967  | 0  |     tmp14 = MULTIPLY(z2 + z3, - FIX(0.338443458));   /* -c11 */  | 
1968  | 0  |     tmp11 += tmp14 + MULTIPLY(z2, FIX(0.837223564)); /* c5+c9+c11-c3 */  | 
1969  | 0  |     tmp12 += tmp14 - MULTIPLY(z3, FIX(1.572116027)); /* c1+c5-c9-c11 */  | 
1970  | 0  |     tmp14 = MULTIPLY(z2 + z4, - FIX(1.163874945));   /* -c5 */  | 
1971  | 0  |     tmp11 += tmp14;  | 
1972  | 0  |     tmp13 += tmp14 + MULTIPLY(z4, FIX(2.205608352)); /* c3+c5+c9-c7 */  | 
1973  | 0  |     tmp14 = MULTIPLY(z3 + z4, - FIX(0.657217813));   /* -c9 */  | 
1974  | 0  |     tmp12 += tmp14;  | 
1975  | 0  |     tmp13 += tmp14;  | 
1976  | 0  |     tmp15 = MULTIPLY(tmp15, FIX(0.338443458));       /* c11 */  | 
1977  | 0  |     tmp14 = tmp15 + MULTIPLY(z1, FIX(0.318774355)) - /* c9-c11 */  | 
1978  | 0  |       MULTIPLY(z2, FIX(0.466105296));          /* c1-c7 */  | 
1979  | 0  |     z1    = MULTIPLY(z3 - z2, FIX(0.937797057));     /* c7 */  | 
1980  | 0  |     tmp14 += z1;  | 
1981  | 0  |     tmp15 += z1 + MULTIPLY(z3, FIX(0.384515595)) -   /* c3-c7 */  | 
1982  | 0  |        MULTIPLY(z4, FIX(1.742345811));         /* c1+c11 */  | 
1983  |  |  | 
1984  |  |     /* Final output stage */  | 
1985  |  | 
  | 
1986  | 0  |     wsptr[8*0]  = (int) RIGHT_SHIFT(tmp20 + tmp10, CONST_BITS-PASS1_BITS);  | 
1987  | 0  |     wsptr[8*12] = (int) RIGHT_SHIFT(tmp20 - tmp10, CONST_BITS-PASS1_BITS);  | 
1988  | 0  |     wsptr[8*1]  = (int) RIGHT_SHIFT(tmp21 + tmp11, CONST_BITS-PASS1_BITS);  | 
1989  | 0  |     wsptr[8*11] = (int) RIGHT_SHIFT(tmp21 - tmp11, CONST_BITS-PASS1_BITS);  | 
1990  | 0  |     wsptr[8*2]  = (int) RIGHT_SHIFT(tmp22 + tmp12, CONST_BITS-PASS1_BITS);  | 
1991  | 0  |     wsptr[8*10] = (int) RIGHT_SHIFT(tmp22 - tmp12, CONST_BITS-PASS1_BITS);  | 
1992  | 0  |     wsptr[8*3]  = (int) RIGHT_SHIFT(tmp23 + tmp13, CONST_BITS-PASS1_BITS);  | 
1993  | 0  |     wsptr[8*9]  = (int) RIGHT_SHIFT(tmp23 - tmp13, CONST_BITS-PASS1_BITS);  | 
1994  | 0  |     wsptr[8*4]  = (int) RIGHT_SHIFT(tmp24 + tmp14, CONST_BITS-PASS1_BITS);  | 
1995  | 0  |     wsptr[8*8]  = (int) RIGHT_SHIFT(tmp24 - tmp14, CONST_BITS-PASS1_BITS);  | 
1996  | 0  |     wsptr[8*5]  = (int) RIGHT_SHIFT(tmp25 + tmp15, CONST_BITS-PASS1_BITS);  | 
1997  | 0  |     wsptr[8*7]  = (int) RIGHT_SHIFT(tmp25 - tmp15, CONST_BITS-PASS1_BITS);  | 
1998  | 0  |     wsptr[8*6]  = (int) RIGHT_SHIFT(tmp26, CONST_BITS-PASS1_BITS);  | 
1999  | 0  |   }  | 
2000  |  |  | 
2001  |  |   /* Pass 2: process 13 rows from work array, store into output array. */  | 
2002  |  | 
  | 
2003  | 0  |   wsptr = workspace;  | 
2004  | 0  |   for (ctr = 0; ctr < 13; ctr++) { | 
2005  | 0  |     outptr = output_buf[ctr] + output_col;  | 
2006  |  |  | 
2007  |  |     /* Even part */  | 
2008  |  |  | 
2009  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
2010  | 0  |     z1 = (INT32) wsptr[0] +  | 
2011  | 0  |      ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
2012  | 0  |       (ONE << (PASS1_BITS+2)));  | 
2013  | 0  |     z1 <<= CONST_BITS;  | 
2014  |  | 
  | 
2015  | 0  |     z2 = (INT32) wsptr[2];  | 
2016  | 0  |     z3 = (INT32) wsptr[4];  | 
2017  | 0  |     z4 = (INT32) wsptr[6];  | 
2018  |  | 
  | 
2019  | 0  |     tmp10 = z3 + z4;  | 
2020  | 0  |     tmp11 = z3 - z4;  | 
2021  |  | 
  | 
2022  | 0  |     tmp12 = MULTIPLY(tmp10, FIX(1.155388986));                /* (c4+c6)/2 */  | 
2023  | 0  |     tmp13 = MULTIPLY(tmp11, FIX(0.096834934)) + z1;           /* (c4-c6)/2 */  | 
2024  |  | 
  | 
2025  | 0  |     tmp20 = MULTIPLY(z2, FIX(1.373119086)) + tmp12 + tmp13;   /* c2 */  | 
2026  | 0  |     tmp22 = MULTIPLY(z2, FIX(0.501487041)) - tmp12 + tmp13;   /* c10 */  | 
2027  |  | 
  | 
2028  | 0  |     tmp12 = MULTIPLY(tmp10, FIX(0.316450131));                /* (c8-c12)/2 */  | 
2029  | 0  |     tmp13 = MULTIPLY(tmp11, FIX(0.486914739)) + z1;           /* (c8+c12)/2 */  | 
2030  |  | 
  | 
2031  | 0  |     tmp21 = MULTIPLY(z2, FIX(1.058554052)) - tmp12 + tmp13;   /* c6 */  | 
2032  | 0  |     tmp25 = MULTIPLY(z2, - FIX(1.252223920)) + tmp12 + tmp13; /* c4 */  | 
2033  |  | 
  | 
2034  | 0  |     tmp12 = MULTIPLY(tmp10, FIX(0.435816023));                /* (c2-c10)/2 */  | 
2035  | 0  |     tmp13 = MULTIPLY(tmp11, FIX(0.937303064)) - z1;           /* (c2+c10)/2 */  | 
2036  |  | 
  | 
2037  | 0  |     tmp23 = MULTIPLY(z2, - FIX(0.170464608)) - tmp12 - tmp13; /* c12 */  | 
2038  | 0  |     tmp24 = MULTIPLY(z2, - FIX(0.803364869)) + tmp12 - tmp13; /* c8 */  | 
2039  |  | 
  | 
2040  | 0  |     tmp26 = MULTIPLY(tmp11 - z2, FIX(1.414213562)) + z1;      /* c0 */  | 
2041  |  |  | 
2042  |  |     /* Odd part */  | 
2043  |  | 
  | 
2044  | 0  |     z1 = (INT32) wsptr[1];  | 
2045  | 0  |     z2 = (INT32) wsptr[3];  | 
2046  | 0  |     z3 = (INT32) wsptr[5];  | 
2047  | 0  |     z4 = (INT32) wsptr[7];  | 
2048  |  | 
  | 
2049  | 0  |     tmp11 = MULTIPLY(z1 + z2, FIX(1.322312651));     /* c3 */  | 
2050  | 0  |     tmp12 = MULTIPLY(z1 + z3, FIX(1.163874945));     /* c5 */  | 
2051  | 0  |     tmp15 = z1 + z4;  | 
2052  | 0  |     tmp13 = MULTIPLY(tmp15, FIX(0.937797057));       /* c7 */  | 
2053  | 0  |     tmp10 = tmp11 + tmp12 + tmp13 -  | 
2054  | 0  |       MULTIPLY(z1, FIX(2.020082300));          /* c7+c5+c3-c1 */  | 
2055  | 0  |     tmp14 = MULTIPLY(z2 + z3, - FIX(0.338443458));   /* -c11 */  | 
2056  | 0  |     tmp11 += tmp14 + MULTIPLY(z2, FIX(0.837223564)); /* c5+c9+c11-c3 */  | 
2057  | 0  |     tmp12 += tmp14 - MULTIPLY(z3, FIX(1.572116027)); /* c1+c5-c9-c11 */  | 
2058  | 0  |     tmp14 = MULTIPLY(z2 + z4, - FIX(1.163874945));   /* -c5 */  | 
2059  | 0  |     tmp11 += tmp14;  | 
2060  | 0  |     tmp13 += tmp14 + MULTIPLY(z4, FIX(2.205608352)); /* c3+c5+c9-c7 */  | 
2061  | 0  |     tmp14 = MULTIPLY(z3 + z4, - FIX(0.657217813));   /* -c9 */  | 
2062  | 0  |     tmp12 += tmp14;  | 
2063  | 0  |     tmp13 += tmp14;  | 
2064  | 0  |     tmp15 = MULTIPLY(tmp15, FIX(0.338443458));       /* c11 */  | 
2065  | 0  |     tmp14 = tmp15 + MULTIPLY(z1, FIX(0.318774355)) - /* c9-c11 */  | 
2066  | 0  |       MULTIPLY(z2, FIX(0.466105296));          /* c1-c7 */  | 
2067  | 0  |     z1    = MULTIPLY(z3 - z2, FIX(0.937797057));     /* c7 */  | 
2068  | 0  |     tmp14 += z1;  | 
2069  | 0  |     tmp15 += z1 + MULTIPLY(z3, FIX(0.384515595)) -   /* c3-c7 */  | 
2070  | 0  |        MULTIPLY(z4, FIX(1.742345811));         /* c1+c11 */  | 
2071  |  |  | 
2072  |  |     /* Final output stage */  | 
2073  |  | 
  | 
2074  | 0  |     outptr[0]  = range_limit[(int) RIGHT_SHIFT(tmp20 + tmp10,  | 
2075  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2076  | 0  |            & RANGE_MASK];  | 
2077  | 0  |     outptr[12] = range_limit[(int) RIGHT_SHIFT(tmp20 - tmp10,  | 
2078  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2079  | 0  |            & RANGE_MASK];  | 
2080  | 0  |     outptr[1]  = range_limit[(int) RIGHT_SHIFT(tmp21 + tmp11,  | 
2081  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2082  | 0  |            & RANGE_MASK];  | 
2083  | 0  |     outptr[11] = range_limit[(int) RIGHT_SHIFT(tmp21 - tmp11,  | 
2084  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2085  | 0  |            & RANGE_MASK];  | 
2086  | 0  |     outptr[2]  = range_limit[(int) RIGHT_SHIFT(tmp22 + tmp12,  | 
2087  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2088  | 0  |            & RANGE_MASK];  | 
2089  | 0  |     outptr[10] = range_limit[(int) RIGHT_SHIFT(tmp22 - tmp12,  | 
2090  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2091  | 0  |            & RANGE_MASK];  | 
2092  | 0  |     outptr[3]  = range_limit[(int) RIGHT_SHIFT(tmp23 + tmp13,  | 
2093  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2094  | 0  |            & RANGE_MASK];  | 
2095  | 0  |     outptr[9]  = range_limit[(int) RIGHT_SHIFT(tmp23 - tmp13,  | 
2096  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2097  | 0  |            & RANGE_MASK];  | 
2098  | 0  |     outptr[4]  = range_limit[(int) RIGHT_SHIFT(tmp24 + tmp14,  | 
2099  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2100  | 0  |            & RANGE_MASK];  | 
2101  | 0  |     outptr[8]  = range_limit[(int) RIGHT_SHIFT(tmp24 - tmp14,  | 
2102  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2103  | 0  |            & RANGE_MASK];  | 
2104  | 0  |     outptr[5]  = range_limit[(int) RIGHT_SHIFT(tmp25 + tmp15,  | 
2105  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2106  | 0  |            & RANGE_MASK];  | 
2107  | 0  |     outptr[7]  = range_limit[(int) RIGHT_SHIFT(tmp25 - tmp15,  | 
2108  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2109  | 0  |            & RANGE_MASK];  | 
2110  | 0  |     outptr[6]  = range_limit[(int) RIGHT_SHIFT(tmp26,  | 
2111  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2112  | 0  |            & RANGE_MASK];  | 
2113  |  | 
  | 
2114  | 0  |     wsptr += 8;   /* advance pointer to next row */  | 
2115  | 0  |   }  | 
2116  | 0  | }  | 
2117  |  |  | 
2118  |  |  | 
2119  |  | /*  | 
2120  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
2121  |  |  * producing a 14x14 output block.  | 
2122  |  |  *  | 
2123  |  |  * Optimized algorithm with 20 multiplications in the 1-D kernel.  | 
2124  |  |  * cK represents sqrt(2) * cos(K*pi/28).  | 
2125  |  |  */  | 
2126  |  |  | 
2127  |  | GLOBAL(void)  | 
2128  |  | jpeg_idct_14x14 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
2129  |  |      JCOEFPTR coef_block,  | 
2130  |  |      JSAMPARRAY output_buf, JDIMENSION output_col)  | 
2131  | 0  | { | 
2132  | 0  |   INT32 tmp10, tmp11, tmp12, tmp13, tmp14, tmp15, tmp16;  | 
2133  | 0  |   INT32 tmp20, tmp21, tmp22, tmp23, tmp24, tmp25, tmp26;  | 
2134  | 0  |   INT32 z1, z2, z3, z4;  | 
2135  | 0  |   JCOEFPTR inptr;  | 
2136  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
2137  | 0  |   int * wsptr;  | 
2138  | 0  |   JSAMPROW outptr;  | 
2139  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
2140  | 0  |   int ctr;  | 
2141  | 0  |   int workspace[8*14];  /* buffers data between passes */  | 
2142  |  |   SHIFT_TEMPS  | 
2143  |  |  | 
2144  |  |   /* Pass 1: process columns from input, store into work array. */  | 
2145  |  | 
  | 
2146  | 0  |   inptr = coef_block;  | 
2147  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
2148  | 0  |   wsptr = workspace;  | 
2149  | 0  |   for (ctr = 0; ctr < 8; ctr++, inptr++, quantptr++, wsptr++) { | 
2150  |  |     /* Even part */  | 
2151  |  | 
  | 
2152  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
2153  | 0  |     z1 <<= CONST_BITS;  | 
2154  |  |     /* Add fudge factor here for final descale. */  | 
2155  | 0  |     z1 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
2156  | 0  |     z4 = DEQUANTIZE(inptr[DCTSIZE*4], quantptr[DCTSIZE*4]);  | 
2157  | 0  |     z2 = MULTIPLY(z4, FIX(1.274162392));         /* c4 */  | 
2158  | 0  |     z3 = MULTIPLY(z4, FIX(0.314692123));         /* c12 */  | 
2159  | 0  |     z4 = MULTIPLY(z4, FIX(0.881747734));         /* c8 */  | 
2160  |  | 
  | 
2161  | 0  |     tmp10 = z1 + z2;  | 
2162  | 0  |     tmp11 = z1 + z3;  | 
2163  | 0  |     tmp12 = z1 - z4;  | 
2164  |  | 
  | 
2165  | 0  |     tmp23 = RIGHT_SHIFT(z1 - ((z2 + z3 - z4) << 1), /* c0 = (c4+c12-c8)*2 */  | 
2166  | 0  |       CONST_BITS-PASS1_BITS);  | 
2167  |  | 
  | 
2168  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
2169  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*6], quantptr[DCTSIZE*6]);  | 
2170  |  | 
  | 
2171  | 0  |     z3 = MULTIPLY(z1 + z2, FIX(1.105676686));    /* c6 */  | 
2172  |  | 
  | 
2173  | 0  |     tmp13 = z3 + MULTIPLY(z1, FIX(0.273079590)); /* c2-c6 */  | 
2174  | 0  |     tmp14 = z3 - MULTIPLY(z2, FIX(1.719280954)); /* c6+c10 */  | 
2175  | 0  |     tmp15 = MULTIPLY(z1, FIX(0.613604268)) -     /* c10 */  | 
2176  | 0  |       MULTIPLY(z2, FIX(1.378756276));      /* c2 */  | 
2177  |  | 
  | 
2178  | 0  |     tmp20 = tmp10 + tmp13;  | 
2179  | 0  |     tmp26 = tmp10 - tmp13;  | 
2180  | 0  |     tmp21 = tmp11 + tmp14;  | 
2181  | 0  |     tmp25 = tmp11 - tmp14;  | 
2182  | 0  |     tmp22 = tmp12 + tmp15;  | 
2183  | 0  |     tmp24 = tmp12 - tmp15;  | 
2184  |  |  | 
2185  |  |     /* Odd part */  | 
2186  |  | 
  | 
2187  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
2188  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
2189  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*5], quantptr[DCTSIZE*5]);  | 
2190  | 0  |     z4 = DEQUANTIZE(inptr[DCTSIZE*7], quantptr[DCTSIZE*7]);  | 
2191  | 0  |     tmp13 = z4 << CONST_BITS;  | 
2192  |  | 
  | 
2193  | 0  |     tmp14 = z1 + z3;  | 
2194  | 0  |     tmp11 = MULTIPLY(z1 + z2, FIX(1.334852607));           /* c3 */  | 
2195  | 0  |     tmp12 = MULTIPLY(tmp14, FIX(1.197448846));             /* c5 */  | 
2196  | 0  |     tmp10 = tmp11 + tmp12 + tmp13 - MULTIPLY(z1, FIX(1.126980169)); /* c3+c5-c1 */  | 
2197  | 0  |     tmp14 = MULTIPLY(tmp14, FIX(0.752406978));             /* c9 */  | 
2198  | 0  |     tmp16 = tmp14 - MULTIPLY(z1, FIX(1.061150426));        /* c9+c11-c13 */  | 
2199  | 0  |     z1    -= z2;  | 
2200  | 0  |     tmp15 = MULTIPLY(z1, FIX(0.467085129)) - tmp13;        /* c11 */  | 
2201  | 0  |     tmp16 += tmp15;  | 
2202  | 0  |     z1    += z4;  | 
2203  | 0  |     z4    = MULTIPLY(z2 + z3, - FIX(0.158341681)) - tmp13; /* -c13 */  | 
2204  | 0  |     tmp11 += z4 - MULTIPLY(z2, FIX(0.424103948));          /* c3-c9-c13 */  | 
2205  | 0  |     tmp12 += z4 - MULTIPLY(z3, FIX(2.373959773));          /* c3+c5-c13 */  | 
2206  | 0  |     z4    = MULTIPLY(z3 - z2, FIX(1.405321284));           /* c1 */  | 
2207  | 0  |     tmp14 += z4 + tmp13 - MULTIPLY(z3, FIX(1.6906431334)); /* c1+c9-c11 */  | 
2208  | 0  |     tmp15 += z4 + MULTIPLY(z2, FIX(0.674957567));          /* c1+c11-c5 */  | 
2209  |  | 
  | 
2210  | 0  |     tmp13 = (z1 - z3) << PASS1_BITS;  | 
2211  |  |  | 
2212  |  |     /* Final output stage */  | 
2213  |  | 
  | 
2214  | 0  |     wsptr[8*0]  = (int) RIGHT_SHIFT(tmp20 + tmp10, CONST_BITS-PASS1_BITS);  | 
2215  | 0  |     wsptr[8*13] = (int) RIGHT_SHIFT(tmp20 - tmp10, CONST_BITS-PASS1_BITS);  | 
2216  | 0  |     wsptr[8*1]  = (int) RIGHT_SHIFT(tmp21 + tmp11, CONST_BITS-PASS1_BITS);  | 
2217  | 0  |     wsptr[8*12] = (int) RIGHT_SHIFT(tmp21 - tmp11, CONST_BITS-PASS1_BITS);  | 
2218  | 0  |     wsptr[8*2]  = (int) RIGHT_SHIFT(tmp22 + tmp12, CONST_BITS-PASS1_BITS);  | 
2219  | 0  |     wsptr[8*11] = (int) RIGHT_SHIFT(tmp22 - tmp12, CONST_BITS-PASS1_BITS);  | 
2220  | 0  |     wsptr[8*3]  = (int) (tmp23 + tmp13);  | 
2221  | 0  |     wsptr[8*10] = (int) (tmp23 - tmp13);  | 
2222  | 0  |     wsptr[8*4]  = (int) RIGHT_SHIFT(tmp24 + tmp14, CONST_BITS-PASS1_BITS);  | 
2223  | 0  |     wsptr[8*9]  = (int) RIGHT_SHIFT(tmp24 - tmp14, CONST_BITS-PASS1_BITS);  | 
2224  | 0  |     wsptr[8*5]  = (int) RIGHT_SHIFT(tmp25 + tmp15, CONST_BITS-PASS1_BITS);  | 
2225  | 0  |     wsptr[8*8]  = (int) RIGHT_SHIFT(tmp25 - tmp15, CONST_BITS-PASS1_BITS);  | 
2226  | 0  |     wsptr[8*6]  = (int) RIGHT_SHIFT(tmp26 + tmp16, CONST_BITS-PASS1_BITS);  | 
2227  | 0  |     wsptr[8*7]  = (int) RIGHT_SHIFT(tmp26 - tmp16, CONST_BITS-PASS1_BITS);  | 
2228  | 0  |   }  | 
2229  |  |  | 
2230  |  |   /* Pass 2: process 14 rows from work array, store into output array. */  | 
2231  |  | 
  | 
2232  | 0  |   wsptr = workspace;  | 
2233  | 0  |   for (ctr = 0; ctr < 14; ctr++) { | 
2234  | 0  |     outptr = output_buf[ctr] + output_col;  | 
2235  |  |  | 
2236  |  |     /* Even part */  | 
2237  |  |  | 
2238  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
2239  | 0  |     z1 = (INT32) wsptr[0] +  | 
2240  | 0  |      ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
2241  | 0  |       (ONE << (PASS1_BITS+2)));  | 
2242  | 0  |     z1 <<= CONST_BITS;  | 
2243  | 0  |     z4 = (INT32) wsptr[4];  | 
2244  | 0  |     z2 = MULTIPLY(z4, FIX(1.274162392));         /* c4 */  | 
2245  | 0  |     z3 = MULTIPLY(z4, FIX(0.314692123));         /* c12 */  | 
2246  | 0  |     z4 = MULTIPLY(z4, FIX(0.881747734));         /* c8 */  | 
2247  |  | 
  | 
2248  | 0  |     tmp10 = z1 + z2;  | 
2249  | 0  |     tmp11 = z1 + z3;  | 
2250  | 0  |     tmp12 = z1 - z4;  | 
2251  |  | 
  | 
2252  | 0  |     tmp23 = z1 - ((z2 + z3 - z4) << 1);          /* c0 = (c4+c12-c8)*2 */  | 
2253  |  | 
  | 
2254  | 0  |     z1 = (INT32) wsptr[2];  | 
2255  | 0  |     z2 = (INT32) wsptr[6];  | 
2256  |  | 
  | 
2257  | 0  |     z3 = MULTIPLY(z1 + z2, FIX(1.105676686));    /* c6 */  | 
2258  |  | 
  | 
2259  | 0  |     tmp13 = z3 + MULTIPLY(z1, FIX(0.273079590)); /* c2-c6 */  | 
2260  | 0  |     tmp14 = z3 - MULTIPLY(z2, FIX(1.719280954)); /* c6+c10 */  | 
2261  | 0  |     tmp15 = MULTIPLY(z1, FIX(0.613604268)) -     /* c10 */  | 
2262  | 0  |       MULTIPLY(z2, FIX(1.378756276));      /* c2 */  | 
2263  |  | 
  | 
2264  | 0  |     tmp20 = tmp10 + tmp13;  | 
2265  | 0  |     tmp26 = tmp10 - tmp13;  | 
2266  | 0  |     tmp21 = tmp11 + tmp14;  | 
2267  | 0  |     tmp25 = tmp11 - tmp14;  | 
2268  | 0  |     tmp22 = tmp12 + tmp15;  | 
2269  | 0  |     tmp24 = tmp12 - tmp15;  | 
2270  |  |  | 
2271  |  |     /* Odd part */  | 
2272  |  | 
  | 
2273  | 0  |     z1 = (INT32) wsptr[1];  | 
2274  | 0  |     z2 = (INT32) wsptr[3];  | 
2275  | 0  |     z3 = (INT32) wsptr[5];  | 
2276  | 0  |     z4 = (INT32) wsptr[7];  | 
2277  | 0  |     z4 <<= CONST_BITS;  | 
2278  |  | 
  | 
2279  | 0  |     tmp14 = z1 + z3;  | 
2280  | 0  |     tmp11 = MULTIPLY(z1 + z2, FIX(1.334852607));           /* c3 */  | 
2281  | 0  |     tmp12 = MULTIPLY(tmp14, FIX(1.197448846));             /* c5 */  | 
2282  | 0  |     tmp10 = tmp11 + tmp12 + z4 - MULTIPLY(z1, FIX(1.126980169)); /* c3+c5-c1 */  | 
2283  | 0  |     tmp14 = MULTIPLY(tmp14, FIX(0.752406978));             /* c9 */  | 
2284  | 0  |     tmp16 = tmp14 - MULTIPLY(z1, FIX(1.061150426));        /* c9+c11-c13 */  | 
2285  | 0  |     z1    -= z2;  | 
2286  | 0  |     tmp15 = MULTIPLY(z1, FIX(0.467085129)) - z4;           /* c11 */  | 
2287  | 0  |     tmp16 += tmp15;  | 
2288  | 0  |     tmp13 = MULTIPLY(z2 + z3, - FIX(0.158341681)) - z4;    /* -c13 */  | 
2289  | 0  |     tmp11 += tmp13 - MULTIPLY(z2, FIX(0.424103948));       /* c3-c9-c13 */  | 
2290  | 0  |     tmp12 += tmp13 - MULTIPLY(z3, FIX(2.373959773));       /* c3+c5-c13 */  | 
2291  | 0  |     tmp13 = MULTIPLY(z3 - z2, FIX(1.405321284));           /* c1 */  | 
2292  | 0  |     tmp14 += tmp13 + z4 - MULTIPLY(z3, FIX(1.6906431334)); /* c1+c9-c11 */  | 
2293  | 0  |     tmp15 += tmp13 + MULTIPLY(z2, FIX(0.674957567));       /* c1+c11-c5 */  | 
2294  |  | 
  | 
2295  | 0  |     tmp13 = ((z1 - z3) << CONST_BITS) + z4;  | 
2296  |  |  | 
2297  |  |     /* Final output stage */  | 
2298  |  | 
  | 
2299  | 0  |     outptr[0]  = range_limit[(int) RIGHT_SHIFT(tmp20 + tmp10,  | 
2300  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2301  | 0  |            & RANGE_MASK];  | 
2302  | 0  |     outptr[13] = range_limit[(int) RIGHT_SHIFT(tmp20 - tmp10,  | 
2303  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2304  | 0  |            & RANGE_MASK];  | 
2305  | 0  |     outptr[1]  = range_limit[(int) RIGHT_SHIFT(tmp21 + tmp11,  | 
2306  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2307  | 0  |            & RANGE_MASK];  | 
2308  | 0  |     outptr[12] = range_limit[(int) RIGHT_SHIFT(tmp21 - tmp11,  | 
2309  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2310  | 0  |            & RANGE_MASK];  | 
2311  | 0  |     outptr[2]  = range_limit[(int) RIGHT_SHIFT(tmp22 + tmp12,  | 
2312  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2313  | 0  |            & RANGE_MASK];  | 
2314  | 0  |     outptr[11] = range_limit[(int) RIGHT_SHIFT(tmp22 - tmp12,  | 
2315  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2316  | 0  |            & RANGE_MASK];  | 
2317  | 0  |     outptr[3]  = range_limit[(int) RIGHT_SHIFT(tmp23 + tmp13,  | 
2318  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2319  | 0  |            & RANGE_MASK];  | 
2320  | 0  |     outptr[10] = range_limit[(int) RIGHT_SHIFT(tmp23 - tmp13,  | 
2321  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2322  | 0  |            & RANGE_MASK];  | 
2323  | 0  |     outptr[4]  = range_limit[(int) RIGHT_SHIFT(tmp24 + tmp14,  | 
2324  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2325  | 0  |            & RANGE_MASK];  | 
2326  | 0  |     outptr[9]  = range_limit[(int) RIGHT_SHIFT(tmp24 - tmp14,  | 
2327  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2328  | 0  |            & RANGE_MASK];  | 
2329  | 0  |     outptr[5]  = range_limit[(int) RIGHT_SHIFT(tmp25 + tmp15,  | 
2330  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2331  | 0  |            & RANGE_MASK];  | 
2332  | 0  |     outptr[8]  = range_limit[(int) RIGHT_SHIFT(tmp25 - tmp15,  | 
2333  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2334  | 0  |            & RANGE_MASK];  | 
2335  | 0  |     outptr[6]  = range_limit[(int) RIGHT_SHIFT(tmp26 + tmp16,  | 
2336  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2337  | 0  |            & RANGE_MASK];  | 
2338  | 0  |     outptr[7]  = range_limit[(int) RIGHT_SHIFT(tmp26 - tmp16,  | 
2339  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2340  | 0  |            & RANGE_MASK];  | 
2341  |  | 
  | 
2342  | 0  |     wsptr += 8;   /* advance pointer to next row */  | 
2343  | 0  |   }  | 
2344  | 0  | }  | 
2345  |  |  | 
2346  |  |  | 
2347  |  | /*  | 
2348  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
2349  |  |  * producing a 15x15 output block.  | 
2350  |  |  *  | 
2351  |  |  * Optimized algorithm with 22 multiplications in the 1-D kernel.  | 
2352  |  |  * cK represents sqrt(2) * cos(K*pi/30).  | 
2353  |  |  */  | 
2354  |  |  | 
2355  |  | GLOBAL(void)  | 
2356  |  | jpeg_idct_15x15 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
2357  |  |      JCOEFPTR coef_block,  | 
2358  |  |      JSAMPARRAY output_buf, JDIMENSION output_col)  | 
2359  | 0  | { | 
2360  | 0  |   INT32 tmp10, tmp11, tmp12, tmp13, tmp14, tmp15, tmp16;  | 
2361  | 0  |   INT32 tmp20, tmp21, tmp22, tmp23, tmp24, tmp25, tmp26, tmp27;  | 
2362  | 0  |   INT32 z1, z2, z3, z4;  | 
2363  | 0  |   JCOEFPTR inptr;  | 
2364  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
2365  | 0  |   int * wsptr;  | 
2366  | 0  |   JSAMPROW outptr;  | 
2367  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
2368  | 0  |   int ctr;  | 
2369  | 0  |   int workspace[8*15];  /* buffers data between passes */  | 
2370  |  |   SHIFT_TEMPS  | 
2371  |  |  | 
2372  |  |   /* Pass 1: process columns from input, store into work array. */  | 
2373  |  | 
  | 
2374  | 0  |   inptr = coef_block;  | 
2375  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
2376  | 0  |   wsptr = workspace;  | 
2377  | 0  |   for (ctr = 0; ctr < 8; ctr++, inptr++, quantptr++, wsptr++) { | 
2378  |  |     /* Even part */  | 
2379  |  | 
  | 
2380  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
2381  | 0  |     z1 <<= CONST_BITS;  | 
2382  |  |     /* Add fudge factor here for final descale. */  | 
2383  | 0  |     z1 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
2384  |  | 
  | 
2385  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
2386  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*4], quantptr[DCTSIZE*4]);  | 
2387  | 0  |     z4 = DEQUANTIZE(inptr[DCTSIZE*6], quantptr[DCTSIZE*6]);  | 
2388  |  | 
  | 
2389  | 0  |     tmp10 = MULTIPLY(z4, FIX(0.437016024)); /* c12 */  | 
2390  | 0  |     tmp11 = MULTIPLY(z4, FIX(1.144122806)); /* c6 */  | 
2391  |  | 
  | 
2392  | 0  |     tmp12 = z1 - tmp10;  | 
2393  | 0  |     tmp13 = z1 + tmp11;  | 
2394  | 0  |     z1 -= (tmp11 - tmp10) << 1;             /* c0 = (c6-c12)*2 */  | 
2395  |  | 
  | 
2396  | 0  |     z4 = z2 - z3;  | 
2397  | 0  |     z3 += z2;  | 
2398  | 0  |     tmp10 = MULTIPLY(z3, FIX(1.337628990)); /* (c2+c4)/2 */  | 
2399  | 0  |     tmp11 = MULTIPLY(z4, FIX(0.045680613)); /* (c2-c4)/2 */  | 
2400  | 0  |     z2 = MULTIPLY(z2, FIX(1.439773946));    /* c4+c14 */  | 
2401  |  | 
  | 
2402  | 0  |     tmp20 = tmp13 + tmp10 + tmp11;  | 
2403  | 0  |     tmp23 = tmp12 - tmp10 + tmp11 + z2;  | 
2404  |  | 
  | 
2405  | 0  |     tmp10 = MULTIPLY(z3, FIX(0.547059574)); /* (c8+c14)/2 */  | 
2406  | 0  |     tmp11 = MULTIPLY(z4, FIX(0.399234004)); /* (c8-c14)/2 */  | 
2407  |  | 
  | 
2408  | 0  |     tmp25 = tmp13 - tmp10 - tmp11;  | 
2409  | 0  |     tmp26 = tmp12 + tmp10 - tmp11 - z2;  | 
2410  |  | 
  | 
2411  | 0  |     tmp10 = MULTIPLY(z3, FIX(0.790569415)); /* (c6+c12)/2 */  | 
2412  | 0  |     tmp11 = MULTIPLY(z4, FIX(0.353553391)); /* (c6-c12)/2 */  | 
2413  |  | 
  | 
2414  | 0  |     tmp21 = tmp12 + tmp10 + tmp11;  | 
2415  | 0  |     tmp24 = tmp13 - tmp10 + tmp11;  | 
2416  | 0  |     tmp11 += tmp11;  | 
2417  | 0  |     tmp22 = z1 + tmp11;                     /* c10 = c6-c12 */  | 
2418  | 0  |     tmp27 = z1 - tmp11 - tmp11;             /* c0 = (c6-c12)*2 */  | 
2419  |  |  | 
2420  |  |     /* Odd part */  | 
2421  |  | 
  | 
2422  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
2423  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
2424  | 0  |     z4 = DEQUANTIZE(inptr[DCTSIZE*5], quantptr[DCTSIZE*5]);  | 
2425  | 0  |     z3 = MULTIPLY(z4, FIX(1.224744871));                    /* c5 */  | 
2426  | 0  |     z4 = DEQUANTIZE(inptr[DCTSIZE*7], quantptr[DCTSIZE*7]);  | 
2427  |  | 
  | 
2428  | 0  |     tmp13 = z2 - z4;  | 
2429  | 0  |     tmp15 = MULTIPLY(z1 + tmp13, FIX(0.831253876));         /* c9 */  | 
2430  | 0  |     tmp11 = tmp15 + MULTIPLY(z1, FIX(0.513743148));         /* c3-c9 */  | 
2431  | 0  |     tmp14 = tmp15 - MULTIPLY(tmp13, FIX(2.176250899));      /* c3+c9 */  | 
2432  |  | 
  | 
2433  | 0  |     tmp13 = MULTIPLY(z2, - FIX(0.831253876));               /* -c9 */  | 
2434  | 0  |     tmp15 = MULTIPLY(z2, - FIX(1.344997024));               /* -c3 */  | 
2435  | 0  |     z2 = z1 - z4;  | 
2436  | 0  |     tmp12 = z3 + MULTIPLY(z2, FIX(1.406466353));            /* c1 */  | 
2437  |  | 
  | 
2438  | 0  |     tmp10 = tmp12 + MULTIPLY(z4, FIX(2.457431844)) - tmp15; /* c1+c7 */  | 
2439  | 0  |     tmp16 = tmp12 - MULTIPLY(z1, FIX(1.112434820)) + tmp13; /* c1-c13 */  | 
2440  | 0  |     tmp12 = MULTIPLY(z2, FIX(1.224744871)) - z3;            /* c5 */  | 
2441  | 0  |     z2 = MULTIPLY(z1 + z4, FIX(0.575212477));               /* c11 */  | 
2442  | 0  |     tmp13 += z2 + MULTIPLY(z1, FIX(0.475753014)) - z3;      /* c7-c11 */  | 
2443  | 0  |     tmp15 += z2 - MULTIPLY(z4, FIX(0.869244010)) + z3;      /* c11+c13 */  | 
2444  |  |  | 
2445  |  |     /* Final output stage */  | 
2446  |  | 
  | 
2447  | 0  |     wsptr[8*0]  = (int) RIGHT_SHIFT(tmp20 + tmp10, CONST_BITS-PASS1_BITS);  | 
2448  | 0  |     wsptr[8*14] = (int) RIGHT_SHIFT(tmp20 - tmp10, CONST_BITS-PASS1_BITS);  | 
2449  | 0  |     wsptr[8*1]  = (int) RIGHT_SHIFT(tmp21 + tmp11, CONST_BITS-PASS1_BITS);  | 
2450  | 0  |     wsptr[8*13] = (int) RIGHT_SHIFT(tmp21 - tmp11, CONST_BITS-PASS1_BITS);  | 
2451  | 0  |     wsptr[8*2]  = (int) RIGHT_SHIFT(tmp22 + tmp12, CONST_BITS-PASS1_BITS);  | 
2452  | 0  |     wsptr[8*12] = (int) RIGHT_SHIFT(tmp22 - tmp12, CONST_BITS-PASS1_BITS);  | 
2453  | 0  |     wsptr[8*3]  = (int) RIGHT_SHIFT(tmp23 + tmp13, CONST_BITS-PASS1_BITS);  | 
2454  | 0  |     wsptr[8*11] = (int) RIGHT_SHIFT(tmp23 - tmp13, CONST_BITS-PASS1_BITS);  | 
2455  | 0  |     wsptr[8*4]  = (int) RIGHT_SHIFT(tmp24 + tmp14, CONST_BITS-PASS1_BITS);  | 
2456  | 0  |     wsptr[8*10] = (int) RIGHT_SHIFT(tmp24 - tmp14, CONST_BITS-PASS1_BITS);  | 
2457  | 0  |     wsptr[8*5]  = (int) RIGHT_SHIFT(tmp25 + tmp15, CONST_BITS-PASS1_BITS);  | 
2458  | 0  |     wsptr[8*9]  = (int) RIGHT_SHIFT(tmp25 - tmp15, CONST_BITS-PASS1_BITS);  | 
2459  | 0  |     wsptr[8*6]  = (int) RIGHT_SHIFT(tmp26 + tmp16, CONST_BITS-PASS1_BITS);  | 
2460  | 0  |     wsptr[8*8]  = (int) RIGHT_SHIFT(tmp26 - tmp16, CONST_BITS-PASS1_BITS);  | 
2461  | 0  |     wsptr[8*7]  = (int) RIGHT_SHIFT(tmp27, CONST_BITS-PASS1_BITS);  | 
2462  | 0  |   }  | 
2463  |  |  | 
2464  |  |   /* Pass 2: process 15 rows from work array, store into output array. */  | 
2465  |  | 
  | 
2466  | 0  |   wsptr = workspace;  | 
2467  | 0  |   for (ctr = 0; ctr < 15; ctr++) { | 
2468  | 0  |     outptr = output_buf[ctr] + output_col;  | 
2469  |  |  | 
2470  |  |     /* Even part */  | 
2471  |  |  | 
2472  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
2473  | 0  |     z1 = (INT32) wsptr[0] +  | 
2474  | 0  |      ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
2475  | 0  |       (ONE << (PASS1_BITS+2)));  | 
2476  | 0  |     z1 <<= CONST_BITS;  | 
2477  |  | 
  | 
2478  | 0  |     z2 = (INT32) wsptr[2];  | 
2479  | 0  |     z3 = (INT32) wsptr[4];  | 
2480  | 0  |     z4 = (INT32) wsptr[6];  | 
2481  |  | 
  | 
2482  | 0  |     tmp10 = MULTIPLY(z4, FIX(0.437016024)); /* c12 */  | 
2483  | 0  |     tmp11 = MULTIPLY(z4, FIX(1.144122806)); /* c6 */  | 
2484  |  | 
  | 
2485  | 0  |     tmp12 = z1 - tmp10;  | 
2486  | 0  |     tmp13 = z1 + tmp11;  | 
2487  | 0  |     z1 -= (tmp11 - tmp10) << 1;             /* c0 = (c6-c12)*2 */  | 
2488  |  | 
  | 
2489  | 0  |     z4 = z2 - z3;  | 
2490  | 0  |     z3 += z2;  | 
2491  | 0  |     tmp10 = MULTIPLY(z3, FIX(1.337628990)); /* (c2+c4)/2 */  | 
2492  | 0  |     tmp11 = MULTIPLY(z4, FIX(0.045680613)); /* (c2-c4)/2 */  | 
2493  | 0  |     z2 = MULTIPLY(z2, FIX(1.439773946));    /* c4+c14 */  | 
2494  |  | 
  | 
2495  | 0  |     tmp20 = tmp13 + tmp10 + tmp11;  | 
2496  | 0  |     tmp23 = tmp12 - tmp10 + tmp11 + z2;  | 
2497  |  | 
  | 
2498  | 0  |     tmp10 = MULTIPLY(z3, FIX(0.547059574)); /* (c8+c14)/2 */  | 
2499  | 0  |     tmp11 = MULTIPLY(z4, FIX(0.399234004)); /* (c8-c14)/2 */  | 
2500  |  | 
  | 
2501  | 0  |     tmp25 = tmp13 - tmp10 - tmp11;  | 
2502  | 0  |     tmp26 = tmp12 + tmp10 - tmp11 - z2;  | 
2503  |  | 
  | 
2504  | 0  |     tmp10 = MULTIPLY(z3, FIX(0.790569415)); /* (c6+c12)/2 */  | 
2505  | 0  |     tmp11 = MULTIPLY(z4, FIX(0.353553391)); /* (c6-c12)/2 */  | 
2506  |  | 
  | 
2507  | 0  |     tmp21 = tmp12 + tmp10 + tmp11;  | 
2508  | 0  |     tmp24 = tmp13 - tmp10 + tmp11;  | 
2509  | 0  |     tmp11 += tmp11;  | 
2510  | 0  |     tmp22 = z1 + tmp11;                     /* c10 = c6-c12 */  | 
2511  | 0  |     tmp27 = z1 - tmp11 - tmp11;             /* c0 = (c6-c12)*2 */  | 
2512  |  |  | 
2513  |  |     /* Odd part */  | 
2514  |  | 
  | 
2515  | 0  |     z1 = (INT32) wsptr[1];  | 
2516  | 0  |     z2 = (INT32) wsptr[3];  | 
2517  | 0  |     z4 = (INT32) wsptr[5];  | 
2518  | 0  |     z3 = MULTIPLY(z4, FIX(1.224744871));                    /* c5 */  | 
2519  | 0  |     z4 = (INT32) wsptr[7];  | 
2520  |  | 
  | 
2521  | 0  |     tmp13 = z2 - z4;  | 
2522  | 0  |     tmp15 = MULTIPLY(z1 + tmp13, FIX(0.831253876));         /* c9 */  | 
2523  | 0  |     tmp11 = tmp15 + MULTIPLY(z1, FIX(0.513743148));         /* c3-c9 */  | 
2524  | 0  |     tmp14 = tmp15 - MULTIPLY(tmp13, FIX(2.176250899));      /* c3+c9 */  | 
2525  |  | 
  | 
2526  | 0  |     tmp13 = MULTIPLY(z2, - FIX(0.831253876));               /* -c9 */  | 
2527  | 0  |     tmp15 = MULTIPLY(z2, - FIX(1.344997024));               /* -c3 */  | 
2528  | 0  |     z2 = z1 - z4;  | 
2529  | 0  |     tmp12 = z3 + MULTIPLY(z2, FIX(1.406466353));            /* c1 */  | 
2530  |  | 
  | 
2531  | 0  |     tmp10 = tmp12 + MULTIPLY(z4, FIX(2.457431844)) - tmp15; /* c1+c7 */  | 
2532  | 0  |     tmp16 = tmp12 - MULTIPLY(z1, FIX(1.112434820)) + tmp13; /* c1-c13 */  | 
2533  | 0  |     tmp12 = MULTIPLY(z2, FIX(1.224744871)) - z3;            /* c5 */  | 
2534  | 0  |     z2 = MULTIPLY(z1 + z4, FIX(0.575212477));               /* c11 */  | 
2535  | 0  |     tmp13 += z2 + MULTIPLY(z1, FIX(0.475753014)) - z3;      /* c7-c11 */  | 
2536  | 0  |     tmp15 += z2 - MULTIPLY(z4, FIX(0.869244010)) + z3;      /* c11+c13 */  | 
2537  |  |  | 
2538  |  |     /* Final output stage */  | 
2539  |  | 
  | 
2540  | 0  |     outptr[0]  = range_limit[(int) RIGHT_SHIFT(tmp20 + tmp10,  | 
2541  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2542  | 0  |            & RANGE_MASK];  | 
2543  | 0  |     outptr[14] = range_limit[(int) RIGHT_SHIFT(tmp20 - tmp10,  | 
2544  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2545  | 0  |            & RANGE_MASK];  | 
2546  | 0  |     outptr[1]  = range_limit[(int) RIGHT_SHIFT(tmp21 + tmp11,  | 
2547  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2548  | 0  |            & RANGE_MASK];  | 
2549  | 0  |     outptr[13] = range_limit[(int) RIGHT_SHIFT(tmp21 - tmp11,  | 
2550  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2551  | 0  |            & RANGE_MASK];  | 
2552  | 0  |     outptr[2]  = range_limit[(int) RIGHT_SHIFT(tmp22 + tmp12,  | 
2553  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2554  | 0  |            & RANGE_MASK];  | 
2555  | 0  |     outptr[12] = range_limit[(int) RIGHT_SHIFT(tmp22 - tmp12,  | 
2556  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2557  | 0  |            & RANGE_MASK];  | 
2558  | 0  |     outptr[3]  = range_limit[(int) RIGHT_SHIFT(tmp23 + tmp13,  | 
2559  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2560  | 0  |            & RANGE_MASK];  | 
2561  | 0  |     outptr[11] = range_limit[(int) RIGHT_SHIFT(tmp23 - tmp13,  | 
2562  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2563  | 0  |            & RANGE_MASK];  | 
2564  | 0  |     outptr[4]  = range_limit[(int) RIGHT_SHIFT(tmp24 + tmp14,  | 
2565  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2566  | 0  |            & RANGE_MASK];  | 
2567  | 0  |     outptr[10] = range_limit[(int) RIGHT_SHIFT(tmp24 - tmp14,  | 
2568  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2569  | 0  |            & RANGE_MASK];  | 
2570  | 0  |     outptr[5]  = range_limit[(int) RIGHT_SHIFT(tmp25 + tmp15,  | 
2571  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2572  | 0  |            & RANGE_MASK];  | 
2573  | 0  |     outptr[9]  = range_limit[(int) RIGHT_SHIFT(tmp25 - tmp15,  | 
2574  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2575  | 0  |            & RANGE_MASK];  | 
2576  | 0  |     outptr[6]  = range_limit[(int) RIGHT_SHIFT(tmp26 + tmp16,  | 
2577  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2578  | 0  |            & RANGE_MASK];  | 
2579  | 0  |     outptr[8]  = range_limit[(int) RIGHT_SHIFT(tmp26 - tmp16,  | 
2580  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2581  | 0  |            & RANGE_MASK];  | 
2582  | 0  |     outptr[7]  = range_limit[(int) RIGHT_SHIFT(tmp27,  | 
2583  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2584  | 0  |            & RANGE_MASK];  | 
2585  |  | 
  | 
2586  | 0  |     wsptr += 8;   /* advance pointer to next row */  | 
2587  | 0  |   }  | 
2588  | 0  | }  | 
2589  |  |  | 
2590  |  |  | 
2591  |  | /*  | 
2592  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
2593  |  |  * producing a 16x16 output block.  | 
2594  |  |  *  | 
2595  |  |  * Optimized algorithm with 28 multiplications in the 1-D kernel.  | 
2596  |  |  * cK represents sqrt(2) * cos(K*pi/32).  | 
2597  |  |  */  | 
2598  |  |  | 
2599  |  | GLOBAL(void)  | 
2600  |  | jpeg_idct_16x16 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
2601  |  |      JCOEFPTR coef_block,  | 
2602  |  |      JSAMPARRAY output_buf, JDIMENSION output_col)  | 
2603  | 0  | { | 
2604  | 0  |   INT32 tmp0, tmp1, tmp2, tmp3, tmp10, tmp11, tmp12, tmp13;  | 
2605  | 0  |   INT32 tmp20, tmp21, tmp22, tmp23, tmp24, tmp25, tmp26, tmp27;  | 
2606  | 0  |   INT32 z1, z2, z3, z4;  | 
2607  | 0  |   JCOEFPTR inptr;  | 
2608  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
2609  | 0  |   int * wsptr;  | 
2610  | 0  |   JSAMPROW outptr;  | 
2611  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
2612  | 0  |   int ctr;  | 
2613  | 0  |   int workspace[8*16];  /* buffers data between passes */  | 
2614  |  |   SHIFT_TEMPS  | 
2615  |  |  | 
2616  |  |   /* Pass 1: process columns from input, store into work array. */  | 
2617  |  | 
  | 
2618  | 0  |   inptr = coef_block;  | 
2619  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
2620  | 0  |   wsptr = workspace;  | 
2621  | 0  |   for (ctr = 0; ctr < 8; ctr++, inptr++, quantptr++, wsptr++) { | 
2622  |  |     /* Even part */  | 
2623  |  | 
  | 
2624  | 0  |     tmp0 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
2625  | 0  |     tmp0 <<= CONST_BITS;  | 
2626  |  |     /* Add fudge factor here for final descale. */  | 
2627  | 0  |     tmp0 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
2628  |  | 
  | 
2629  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*4], quantptr[DCTSIZE*4]);  | 
2630  | 0  |     tmp1 = MULTIPLY(z1, FIX(1.306562965));      /* c4[16] = c2[8] */  | 
2631  | 0  |     tmp2 = MULTIPLY(z1, FIX_0_541196100);       /* c12[16] = c6[8] */  | 
2632  |  | 
  | 
2633  | 0  |     tmp10 = tmp0 + tmp1;  | 
2634  | 0  |     tmp11 = tmp0 - tmp1;  | 
2635  | 0  |     tmp12 = tmp0 + tmp2;  | 
2636  | 0  |     tmp13 = tmp0 - tmp2;  | 
2637  |  | 
  | 
2638  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
2639  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*6], quantptr[DCTSIZE*6]);  | 
2640  | 0  |     z3 = z1 - z2;  | 
2641  | 0  |     z4 = MULTIPLY(z3, FIX(0.275899379));        /* c14[16] = c7[8] */  | 
2642  | 0  |     z3 = MULTIPLY(z3, FIX(1.387039845));        /* c2[16] = c1[8] */  | 
2643  |  | 
  | 
2644  | 0  |     tmp0 = z3 + MULTIPLY(z2, FIX_2_562915447);  /* (c6+c2)[16] = (c3+c1)[8] */  | 
2645  | 0  |     tmp1 = z4 + MULTIPLY(z1, FIX_0_899976223);  /* (c6-c14)[16] = (c3-c7)[8] */  | 
2646  | 0  |     tmp2 = z3 - MULTIPLY(z1, FIX(0.601344887)); /* (c2-c10)[16] = (c1-c5)[8] */  | 
2647  | 0  |     tmp3 = z4 - MULTIPLY(z2, FIX(0.509795579)); /* (c10-c14)[16] = (c5-c7)[8] */  | 
2648  |  | 
  | 
2649  | 0  |     tmp20 = tmp10 + tmp0;  | 
2650  | 0  |     tmp27 = tmp10 - tmp0;  | 
2651  | 0  |     tmp21 = tmp12 + tmp1;  | 
2652  | 0  |     tmp26 = tmp12 - tmp1;  | 
2653  | 0  |     tmp22 = tmp13 + tmp2;  | 
2654  | 0  |     tmp25 = tmp13 - tmp2;  | 
2655  | 0  |     tmp23 = tmp11 + tmp3;  | 
2656  | 0  |     tmp24 = tmp11 - tmp3;  | 
2657  |  |  | 
2658  |  |     /* Odd part */  | 
2659  |  | 
  | 
2660  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
2661  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
2662  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*5], quantptr[DCTSIZE*5]);  | 
2663  | 0  |     z4 = DEQUANTIZE(inptr[DCTSIZE*7], quantptr[DCTSIZE*7]);  | 
2664  |  | 
  | 
2665  | 0  |     tmp11 = z1 + z3;  | 
2666  |  | 
  | 
2667  | 0  |     tmp1  = MULTIPLY(z1 + z2, FIX(1.353318001));   /* c3 */  | 
2668  | 0  |     tmp2  = MULTIPLY(tmp11,   FIX(1.247225013));   /* c5 */  | 
2669  | 0  |     tmp3  = MULTIPLY(z1 + z4, FIX(1.093201867));   /* c7 */  | 
2670  | 0  |     tmp10 = MULTIPLY(z1 - z4, FIX(0.897167586));   /* c9 */  | 
2671  | 0  |     tmp11 = MULTIPLY(tmp11,   FIX(0.666655658));   /* c11 */  | 
2672  | 0  |     tmp12 = MULTIPLY(z1 - z2, FIX(0.410524528));   /* c13 */  | 
2673  | 0  |     tmp0  = tmp1 + tmp2 + tmp3 -  | 
2674  | 0  |       MULTIPLY(z1, FIX(2.286341144));        /* c7+c5+c3-c1 */  | 
2675  | 0  |     tmp13 = tmp10 + tmp11 + tmp12 -  | 
2676  | 0  |       MULTIPLY(z1, FIX(1.835730603));        /* c9+c11+c13-c15 */  | 
2677  | 0  |     z1    = MULTIPLY(z2 + z3, FIX(0.138617169));   /* c15 */  | 
2678  | 0  |     tmp1  += z1 + MULTIPLY(z2, FIX(0.071888074));  /* c9+c11-c3-c15 */  | 
2679  | 0  |     tmp2  += z1 - MULTIPLY(z3, FIX(1.125726048));  /* c5+c7+c15-c3 */  | 
2680  | 0  |     z1    = MULTIPLY(z3 - z2, FIX(1.407403738));   /* c1 */  | 
2681  | 0  |     tmp11 += z1 - MULTIPLY(z3, FIX(0.766367282));  /* c1+c11-c9-c13 */  | 
2682  | 0  |     tmp12 += z1 + MULTIPLY(z2, FIX(1.971951411));  /* c1+c5+c13-c7 */  | 
2683  | 0  |     z2    += z4;  | 
2684  | 0  |     z1    = MULTIPLY(z2, - FIX(0.666655658));      /* -c11 */  | 
2685  | 0  |     tmp1  += z1;  | 
2686  | 0  |     tmp3  += z1 + MULTIPLY(z4, FIX(1.065388962));  /* c3+c11+c15-c7 */  | 
2687  | 0  |     z2    = MULTIPLY(z2, - FIX(1.247225013));      /* -c5 */  | 
2688  | 0  |     tmp10 += z2 + MULTIPLY(z4, FIX(3.141271809));  /* c1+c5+c9-c13 */  | 
2689  | 0  |     tmp12 += z2;  | 
2690  | 0  |     z2    = MULTIPLY(z3 + z4, - FIX(1.353318001)); /* -c3 */  | 
2691  | 0  |     tmp2  += z2;  | 
2692  | 0  |     tmp3  += z2;  | 
2693  | 0  |     z2    = MULTIPLY(z4 - z3, FIX(0.410524528));   /* c13 */  | 
2694  | 0  |     tmp10 += z2;  | 
2695  | 0  |     tmp11 += z2;  | 
2696  |  |  | 
2697  |  |     /* Final output stage */  | 
2698  |  | 
  | 
2699  | 0  |     wsptr[8*0]  = (int) RIGHT_SHIFT(tmp20 + tmp0,  CONST_BITS-PASS1_BITS);  | 
2700  | 0  |     wsptr[8*15] = (int) RIGHT_SHIFT(tmp20 - tmp0,  CONST_BITS-PASS1_BITS);  | 
2701  | 0  |     wsptr[8*1]  = (int) RIGHT_SHIFT(tmp21 + tmp1,  CONST_BITS-PASS1_BITS);  | 
2702  | 0  |     wsptr[8*14] = (int) RIGHT_SHIFT(tmp21 - tmp1,  CONST_BITS-PASS1_BITS);  | 
2703  | 0  |     wsptr[8*2]  = (int) RIGHT_SHIFT(tmp22 + tmp2,  CONST_BITS-PASS1_BITS);  | 
2704  | 0  |     wsptr[8*13] = (int) RIGHT_SHIFT(tmp22 - tmp2,  CONST_BITS-PASS1_BITS);  | 
2705  | 0  |     wsptr[8*3]  = (int) RIGHT_SHIFT(tmp23 + tmp3,  CONST_BITS-PASS1_BITS);  | 
2706  | 0  |     wsptr[8*12] = (int) RIGHT_SHIFT(tmp23 - tmp3,  CONST_BITS-PASS1_BITS);  | 
2707  | 0  |     wsptr[8*4]  = (int) RIGHT_SHIFT(tmp24 + tmp10, CONST_BITS-PASS1_BITS);  | 
2708  | 0  |     wsptr[8*11] = (int) RIGHT_SHIFT(tmp24 - tmp10, CONST_BITS-PASS1_BITS);  | 
2709  | 0  |     wsptr[8*5]  = (int) RIGHT_SHIFT(tmp25 + tmp11, CONST_BITS-PASS1_BITS);  | 
2710  | 0  |     wsptr[8*10] = (int) RIGHT_SHIFT(tmp25 - tmp11, CONST_BITS-PASS1_BITS);  | 
2711  | 0  |     wsptr[8*6]  = (int) RIGHT_SHIFT(tmp26 + tmp12, CONST_BITS-PASS1_BITS);  | 
2712  | 0  |     wsptr[8*9]  = (int) RIGHT_SHIFT(tmp26 - tmp12, CONST_BITS-PASS1_BITS);  | 
2713  | 0  |     wsptr[8*7]  = (int) RIGHT_SHIFT(tmp27 + tmp13, CONST_BITS-PASS1_BITS);  | 
2714  | 0  |     wsptr[8*8]  = (int) RIGHT_SHIFT(tmp27 - tmp13, CONST_BITS-PASS1_BITS);  | 
2715  | 0  |   }  | 
2716  |  |  | 
2717  |  |   /* Pass 2: process 16 rows from work array, store into output array. */  | 
2718  |  | 
  | 
2719  | 0  |   wsptr = workspace;  | 
2720  | 0  |   for (ctr = 0; ctr < 16; ctr++) { | 
2721  | 0  |     outptr = output_buf[ctr] + output_col;  | 
2722  |  |  | 
2723  |  |     /* Even part */  | 
2724  |  |  | 
2725  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
2726  | 0  |     tmp0 = (INT32) wsptr[0] +  | 
2727  | 0  |        ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
2728  | 0  |         (ONE << (PASS1_BITS+2)));  | 
2729  | 0  |     tmp0 <<= CONST_BITS;  | 
2730  |  | 
  | 
2731  | 0  |     z1 = (INT32) wsptr[4];  | 
2732  | 0  |     tmp1 = MULTIPLY(z1, FIX(1.306562965));      /* c4[16] = c2[8] */  | 
2733  | 0  |     tmp2 = MULTIPLY(z1, FIX_0_541196100);       /* c12[16] = c6[8] */  | 
2734  |  | 
  | 
2735  | 0  |     tmp10 = tmp0 + tmp1;  | 
2736  | 0  |     tmp11 = tmp0 - tmp1;  | 
2737  | 0  |     tmp12 = tmp0 + tmp2;  | 
2738  | 0  |     tmp13 = tmp0 - tmp2;  | 
2739  |  | 
  | 
2740  | 0  |     z1 = (INT32) wsptr[2];  | 
2741  | 0  |     z2 = (INT32) wsptr[6];  | 
2742  | 0  |     z3 = z1 - z2;  | 
2743  | 0  |     z4 = MULTIPLY(z3, FIX(0.275899379));        /* c14[16] = c7[8] */  | 
2744  | 0  |     z3 = MULTIPLY(z3, FIX(1.387039845));        /* c2[16] = c1[8] */  | 
2745  |  | 
  | 
2746  | 0  |     tmp0 = z3 + MULTIPLY(z2, FIX_2_562915447);  /* (c6+c2)[16] = (c3+c1)[8] */  | 
2747  | 0  |     tmp1 = z4 + MULTIPLY(z1, FIX_0_899976223);  /* (c6-c14)[16] = (c3-c7)[8] */  | 
2748  | 0  |     tmp2 = z3 - MULTIPLY(z1, FIX(0.601344887)); /* (c2-c10)[16] = (c1-c5)[8] */  | 
2749  | 0  |     tmp3 = z4 - MULTIPLY(z2, FIX(0.509795579)); /* (c10-c14)[16] = (c5-c7)[8] */  | 
2750  |  | 
  | 
2751  | 0  |     tmp20 = tmp10 + tmp0;  | 
2752  | 0  |     tmp27 = tmp10 - tmp0;  | 
2753  | 0  |     tmp21 = tmp12 + tmp1;  | 
2754  | 0  |     tmp26 = tmp12 - tmp1;  | 
2755  | 0  |     tmp22 = tmp13 + tmp2;  | 
2756  | 0  |     tmp25 = tmp13 - tmp2;  | 
2757  | 0  |     tmp23 = tmp11 + tmp3;  | 
2758  | 0  |     tmp24 = tmp11 - tmp3;  | 
2759  |  |  | 
2760  |  |     /* Odd part */  | 
2761  |  | 
  | 
2762  | 0  |     z1 = (INT32) wsptr[1];  | 
2763  | 0  |     z2 = (INT32) wsptr[3];  | 
2764  | 0  |     z3 = (INT32) wsptr[5];  | 
2765  | 0  |     z4 = (INT32) wsptr[7];  | 
2766  |  | 
  | 
2767  | 0  |     tmp11 = z1 + z3;  | 
2768  |  | 
  | 
2769  | 0  |     tmp1  = MULTIPLY(z1 + z2, FIX(1.353318001));   /* c3 */  | 
2770  | 0  |     tmp2  = MULTIPLY(tmp11,   FIX(1.247225013));   /* c5 */  | 
2771  | 0  |     tmp3  = MULTIPLY(z1 + z4, FIX(1.093201867));   /* c7 */  | 
2772  | 0  |     tmp10 = MULTIPLY(z1 - z4, FIX(0.897167586));   /* c9 */  | 
2773  | 0  |     tmp11 = MULTIPLY(tmp11,   FIX(0.666655658));   /* c11 */  | 
2774  | 0  |     tmp12 = MULTIPLY(z1 - z2, FIX(0.410524528));   /* c13 */  | 
2775  | 0  |     tmp0  = tmp1 + tmp2 + tmp3 -  | 
2776  | 0  |       MULTIPLY(z1, FIX(2.286341144));        /* c7+c5+c3-c1 */  | 
2777  | 0  |     tmp13 = tmp10 + tmp11 + tmp12 -  | 
2778  | 0  |       MULTIPLY(z1, FIX(1.835730603));        /* c9+c11+c13-c15 */  | 
2779  | 0  |     z1    = MULTIPLY(z2 + z3, FIX(0.138617169));   /* c15 */  | 
2780  | 0  |     tmp1  += z1 + MULTIPLY(z2, FIX(0.071888074));  /* c9+c11-c3-c15 */  | 
2781  | 0  |     tmp2  += z1 - MULTIPLY(z3, FIX(1.125726048));  /* c5+c7+c15-c3 */  | 
2782  | 0  |     z1    = MULTIPLY(z3 - z2, FIX(1.407403738));   /* c1 */  | 
2783  | 0  |     tmp11 += z1 - MULTIPLY(z3, FIX(0.766367282));  /* c1+c11-c9-c13 */  | 
2784  | 0  |     tmp12 += z1 + MULTIPLY(z2, FIX(1.971951411));  /* c1+c5+c13-c7 */  | 
2785  | 0  |     z2    += z4;  | 
2786  | 0  |     z1    = MULTIPLY(z2, - FIX(0.666655658));      /* -c11 */  | 
2787  | 0  |     tmp1  += z1;  | 
2788  | 0  |     tmp3  += z1 + MULTIPLY(z4, FIX(1.065388962));  /* c3+c11+c15-c7 */  | 
2789  | 0  |     z2    = MULTIPLY(z2, - FIX(1.247225013));      /* -c5 */  | 
2790  | 0  |     tmp10 += z2 + MULTIPLY(z4, FIX(3.141271809));  /* c1+c5+c9-c13 */  | 
2791  | 0  |     tmp12 += z2;  | 
2792  | 0  |     z2    = MULTIPLY(z3 + z4, - FIX(1.353318001)); /* -c3 */  | 
2793  | 0  |     tmp2  += z2;  | 
2794  | 0  |     tmp3  += z2;  | 
2795  | 0  |     z2    = MULTIPLY(z4 - z3, FIX(0.410524528));   /* c13 */  | 
2796  | 0  |     tmp10 += z2;  | 
2797  | 0  |     tmp11 += z2;  | 
2798  |  |  | 
2799  |  |     /* Final output stage */  | 
2800  |  | 
  | 
2801  | 0  |     outptr[0]  = range_limit[(int) RIGHT_SHIFT(tmp20 + tmp0,  | 
2802  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2803  | 0  |            & RANGE_MASK];  | 
2804  | 0  |     outptr[15] = range_limit[(int) RIGHT_SHIFT(tmp20 - tmp0,  | 
2805  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2806  | 0  |            & RANGE_MASK];  | 
2807  | 0  |     outptr[1]  = range_limit[(int) RIGHT_SHIFT(tmp21 + tmp1,  | 
2808  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2809  | 0  |            & RANGE_MASK];  | 
2810  | 0  |     outptr[14] = range_limit[(int) RIGHT_SHIFT(tmp21 - tmp1,  | 
2811  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2812  | 0  |            & RANGE_MASK];  | 
2813  | 0  |     outptr[2]  = range_limit[(int) RIGHT_SHIFT(tmp22 + tmp2,  | 
2814  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2815  | 0  |            & RANGE_MASK];  | 
2816  | 0  |     outptr[13] = range_limit[(int) RIGHT_SHIFT(tmp22 - tmp2,  | 
2817  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2818  | 0  |            & RANGE_MASK];  | 
2819  | 0  |     outptr[3]  = range_limit[(int) RIGHT_SHIFT(tmp23 + tmp3,  | 
2820  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2821  | 0  |            & RANGE_MASK];  | 
2822  | 0  |     outptr[12] = range_limit[(int) RIGHT_SHIFT(tmp23 - tmp3,  | 
2823  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2824  | 0  |            & RANGE_MASK];  | 
2825  | 0  |     outptr[4]  = range_limit[(int) RIGHT_SHIFT(tmp24 + tmp10,  | 
2826  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2827  | 0  |            & RANGE_MASK];  | 
2828  | 0  |     outptr[11] = range_limit[(int) RIGHT_SHIFT(tmp24 - tmp10,  | 
2829  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2830  | 0  |            & RANGE_MASK];  | 
2831  | 0  |     outptr[5]  = range_limit[(int) RIGHT_SHIFT(tmp25 + tmp11,  | 
2832  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2833  | 0  |            & RANGE_MASK];  | 
2834  | 0  |     outptr[10] = range_limit[(int) RIGHT_SHIFT(tmp25 - tmp11,  | 
2835  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2836  | 0  |            & RANGE_MASK];  | 
2837  | 0  |     outptr[6]  = range_limit[(int) RIGHT_SHIFT(tmp26 + tmp12,  | 
2838  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2839  | 0  |            & RANGE_MASK];  | 
2840  | 0  |     outptr[9]  = range_limit[(int) RIGHT_SHIFT(tmp26 - tmp12,  | 
2841  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2842  | 0  |            & RANGE_MASK];  | 
2843  | 0  |     outptr[7]  = range_limit[(int) RIGHT_SHIFT(tmp27 + tmp13,  | 
2844  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2845  | 0  |            & RANGE_MASK];  | 
2846  | 0  |     outptr[8]  = range_limit[(int) RIGHT_SHIFT(tmp27 - tmp13,  | 
2847  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
2848  | 0  |            & RANGE_MASK];  | 
2849  |  | 
  | 
2850  | 0  |     wsptr += 8;   /* advance pointer to next row */  | 
2851  | 0  |   }  | 
2852  | 0  | }  | 
2853  |  |  | 
2854  |  |  | 
2855  |  | /*  | 
2856  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
2857  |  |  * producing a 16x8 output block.  | 
2858  |  |  *  | 
2859  |  |  * 8-point IDCT in pass 1 (columns), 16-point in pass 2 (rows).  | 
2860  |  |  */  | 
2861  |  |  | 
2862  |  | GLOBAL(void)  | 
2863  |  | jpeg_idct_16x8 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
2864  |  |     JCOEFPTR coef_block,  | 
2865  |  |     JSAMPARRAY output_buf, JDIMENSION output_col)  | 
2866  | 0  | { | 
2867  | 0  |   INT32 tmp0, tmp1, tmp2, tmp3, tmp10, tmp11, tmp12, tmp13;  | 
2868  | 0  |   INT32 tmp20, tmp21, tmp22, tmp23, tmp24, tmp25, tmp26, tmp27;  | 
2869  | 0  |   INT32 z1, z2, z3, z4;  | 
2870  | 0  |   JCOEFPTR inptr;  | 
2871  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
2872  | 0  |   int * wsptr;  | 
2873  | 0  |   JSAMPROW outptr;  | 
2874  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
2875  | 0  |   int ctr;  | 
2876  | 0  |   int workspace[8*8]; /* buffers data between passes */  | 
2877  |  |   SHIFT_TEMPS  | 
2878  |  |  | 
2879  |  |   /* Pass 1: process columns from input, store into work array.  | 
2880  |  |    * Note results are scaled up by sqrt(8) compared to a true IDCT;  | 
2881  |  |    * furthermore, we scale the results by 2**PASS1_BITS.  | 
2882  |  |    * 8-point IDCT kernel, cK represents sqrt(2) * cos(K*pi/16).  | 
2883  |  |    */  | 
2884  |  | 
  | 
2885  | 0  |   inptr = coef_block;  | 
2886  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
2887  | 0  |   wsptr = workspace;  | 
2888  | 0  |   for (ctr = DCTSIZE; ctr > 0; ctr--) { | 
2889  |  |     /* Due to quantization, we will usually find that many of the input  | 
2890  |  |      * coefficients are zero, especially the AC terms.  We can exploit this  | 
2891  |  |      * by short-circuiting the IDCT calculation for any column in which all  | 
2892  |  |      * the AC terms are zero.  In that case each output is equal to the  | 
2893  |  |      * DC coefficient (with scale factor as needed).  | 
2894  |  |      * With typical images and quantization tables, half or more of the  | 
2895  |  |      * column DCT calculations can be simplified this way.  | 
2896  |  |      */  | 
2897  |  | 
  | 
2898  | 0  |     if (inptr[DCTSIZE*1] == 0 && inptr[DCTSIZE*2] == 0 &&  | 
2899  | 0  |   inptr[DCTSIZE*3] == 0 && inptr[DCTSIZE*4] == 0 &&  | 
2900  | 0  |   inptr[DCTSIZE*5] == 0 && inptr[DCTSIZE*6] == 0 &&  | 
2901  | 0  |   inptr[DCTSIZE*7] == 0) { | 
2902  |  |       /* AC terms all zero */  | 
2903  | 0  |       int dcval = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]) << PASS1_BITS;  | 
2904  |  | 
  | 
2905  | 0  |       wsptr[DCTSIZE*0] = dcval;  | 
2906  | 0  |       wsptr[DCTSIZE*1] = dcval;  | 
2907  | 0  |       wsptr[DCTSIZE*2] = dcval;  | 
2908  | 0  |       wsptr[DCTSIZE*3] = dcval;  | 
2909  | 0  |       wsptr[DCTSIZE*4] = dcval;  | 
2910  | 0  |       wsptr[DCTSIZE*5] = dcval;  | 
2911  | 0  |       wsptr[DCTSIZE*6] = dcval;  | 
2912  | 0  |       wsptr[DCTSIZE*7] = dcval;  | 
2913  |  | 
  | 
2914  | 0  |       inptr++;      /* advance pointers to next column */  | 
2915  | 0  |       quantptr++;  | 
2916  | 0  |       wsptr++;  | 
2917  | 0  |       continue;  | 
2918  | 0  |     }  | 
2919  |  |  | 
2920  |  |     /* Even part: reverse the even part of the forward DCT.  | 
2921  |  |      * The rotator is c(-6).  | 
2922  |  |      */  | 
2923  |  |  | 
2924  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
2925  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*4], quantptr[DCTSIZE*4]);  | 
2926  | 0  |     z2 <<= CONST_BITS;  | 
2927  | 0  |     z3 <<= CONST_BITS;  | 
2928  |  |     /* Add fudge factor here for final descale. */  | 
2929  | 0  |     z2 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
2930  |  | 
  | 
2931  | 0  |     tmp0 = z2 + z3;  | 
2932  | 0  |     tmp1 = z2 - z3;  | 
2933  |  | 
  | 
2934  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
2935  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*6], quantptr[DCTSIZE*6]);  | 
2936  |  | 
  | 
2937  | 0  |     z1 = MULTIPLY(z2 + z3, FIX_0_541196100);       /* c6 */  | 
2938  | 0  |     tmp2 = z1 + MULTIPLY(z2, FIX_0_765366865);     /* c2-c6 */  | 
2939  | 0  |     tmp3 = z1 - MULTIPLY(z3, FIX_1_847759065);     /* c2+c6 */  | 
2940  |  | 
  | 
2941  | 0  |     tmp10 = tmp0 + tmp2;  | 
2942  | 0  |     tmp13 = tmp0 - tmp2;  | 
2943  | 0  |     tmp11 = tmp1 + tmp3;  | 
2944  | 0  |     tmp12 = tmp1 - tmp3;  | 
2945  |  |  | 
2946  |  |     /* Odd part per figure 8; the matrix is unitary and hence its  | 
2947  |  |      * transpose is its inverse.  i0..i3 are y7,y5,y3,y1 respectively.  | 
2948  |  |      */  | 
2949  |  | 
  | 
2950  | 0  |     tmp0 = DEQUANTIZE(inptr[DCTSIZE*7], quantptr[DCTSIZE*7]);  | 
2951  | 0  |     tmp1 = DEQUANTIZE(inptr[DCTSIZE*5], quantptr[DCTSIZE*5]);  | 
2952  | 0  |     tmp2 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
2953  | 0  |     tmp3 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
2954  |  | 
  | 
2955  | 0  |     z2 = tmp0 + tmp2;  | 
2956  | 0  |     z3 = tmp1 + tmp3;  | 
2957  |  | 
  | 
2958  | 0  |     z1 = MULTIPLY(z2 + z3, FIX_1_175875602);       /*  c3 */  | 
2959  | 0  |     z2 = MULTIPLY(z2, - FIX_1_961570560);          /* -c3-c5 */  | 
2960  | 0  |     z3 = MULTIPLY(z3, - FIX_0_390180644);          /* -c3+c5 */  | 
2961  | 0  |     z2 += z1;  | 
2962  | 0  |     z3 += z1;  | 
2963  |  | 
  | 
2964  | 0  |     z1 = MULTIPLY(tmp0 + tmp3, - FIX_0_899976223); /* -c3+c7 */  | 
2965  | 0  |     tmp0 = MULTIPLY(tmp0, FIX_0_298631336);        /* -c1+c3+c5-c7 */  | 
2966  | 0  |     tmp3 = MULTIPLY(tmp3, FIX_1_501321110);        /*  c1+c3-c5-c7 */  | 
2967  | 0  |     tmp0 += z1 + z2;  | 
2968  | 0  |     tmp3 += z1 + z3;  | 
2969  |  | 
  | 
2970  | 0  |     z1 = MULTIPLY(tmp1 + tmp2, - FIX_2_562915447); /* -c1-c3 */  | 
2971  | 0  |     tmp1 = MULTIPLY(tmp1, FIX_2_053119869);        /*  c1+c3-c5+c7 */  | 
2972  | 0  |     tmp2 = MULTIPLY(tmp2, FIX_3_072711026);        /*  c1+c3+c5-c7 */  | 
2973  | 0  |     tmp1 += z1 + z3;  | 
2974  | 0  |     tmp2 += z1 + z2;  | 
2975  |  |  | 
2976  |  |     /* Final output stage: inputs are tmp10..tmp13, tmp0..tmp3 */  | 
2977  |  | 
  | 
2978  | 0  |     wsptr[DCTSIZE*0] = (int) RIGHT_SHIFT(tmp10 + tmp3, CONST_BITS-PASS1_BITS);  | 
2979  | 0  |     wsptr[DCTSIZE*7] = (int) RIGHT_SHIFT(tmp10 - tmp3, CONST_BITS-PASS1_BITS);  | 
2980  | 0  |     wsptr[DCTSIZE*1] = (int) RIGHT_SHIFT(tmp11 + tmp2, CONST_BITS-PASS1_BITS);  | 
2981  | 0  |     wsptr[DCTSIZE*6] = (int) RIGHT_SHIFT(tmp11 - tmp2, CONST_BITS-PASS1_BITS);  | 
2982  | 0  |     wsptr[DCTSIZE*2] = (int) RIGHT_SHIFT(tmp12 + tmp1, CONST_BITS-PASS1_BITS);  | 
2983  | 0  |     wsptr[DCTSIZE*5] = (int) RIGHT_SHIFT(tmp12 - tmp1, CONST_BITS-PASS1_BITS);  | 
2984  | 0  |     wsptr[DCTSIZE*3] = (int) RIGHT_SHIFT(tmp13 + tmp0, CONST_BITS-PASS1_BITS);  | 
2985  | 0  |     wsptr[DCTSIZE*4] = (int) RIGHT_SHIFT(tmp13 - tmp0, CONST_BITS-PASS1_BITS);  | 
2986  |  | 
  | 
2987  | 0  |     inptr++;      /* advance pointers to next column */  | 
2988  | 0  |     quantptr++;  | 
2989  | 0  |     wsptr++;  | 
2990  | 0  |   }  | 
2991  |  |  | 
2992  |  |   /* Pass 2: process 8 rows from work array, store into output array.  | 
2993  |  |    * 16-point IDCT kernel, cK represents sqrt(2) * cos(K*pi/32).  | 
2994  |  |    */  | 
2995  |  | 
  | 
2996  | 0  |   wsptr = workspace;  | 
2997  | 0  |   for (ctr = 0; ctr < 8; ctr++) { | 
2998  | 0  |     outptr = output_buf[ctr] + output_col;  | 
2999  |  |  | 
3000  |  |     /* Even part */  | 
3001  |  |  | 
3002  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
3003  | 0  |     tmp0 = (INT32) wsptr[0] +  | 
3004  | 0  |        ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
3005  | 0  |         (ONE << (PASS1_BITS+2)));  | 
3006  | 0  |     tmp0 <<= CONST_BITS;  | 
3007  |  | 
  | 
3008  | 0  |     z1 = (INT32) wsptr[4];  | 
3009  | 0  |     tmp1 = MULTIPLY(z1, FIX(1.306562965));      /* c4[16] = c2[8] */  | 
3010  | 0  |     tmp2 = MULTIPLY(z1, FIX_0_541196100);       /* c12[16] = c6[8] */  | 
3011  |  | 
  | 
3012  | 0  |     tmp10 = tmp0 + tmp1;  | 
3013  | 0  |     tmp11 = tmp0 - tmp1;  | 
3014  | 0  |     tmp12 = tmp0 + tmp2;  | 
3015  | 0  |     tmp13 = tmp0 - tmp2;  | 
3016  |  | 
  | 
3017  | 0  |     z1 = (INT32) wsptr[2];  | 
3018  | 0  |     z2 = (INT32) wsptr[6];  | 
3019  | 0  |     z3 = z1 - z2;  | 
3020  | 0  |     z4 = MULTIPLY(z3, FIX(0.275899379));        /* c14[16] = c7[8] */  | 
3021  | 0  |     z3 = MULTIPLY(z3, FIX(1.387039845));        /* c2[16] = c1[8] */  | 
3022  |  | 
  | 
3023  | 0  |     tmp0 = z3 + MULTIPLY(z2, FIX_2_562915447);  /* (c6+c2)[16] = (c3+c1)[8] */  | 
3024  | 0  |     tmp1 = z4 + MULTIPLY(z1, FIX_0_899976223);  /* (c6-c14)[16] = (c3-c7)[8] */  | 
3025  | 0  |     tmp2 = z3 - MULTIPLY(z1, FIX(0.601344887)); /* (c2-c10)[16] = (c1-c5)[8] */  | 
3026  | 0  |     tmp3 = z4 - MULTIPLY(z2, FIX(0.509795579)); /* (c10-c14)[16] = (c5-c7)[8] */  | 
3027  |  | 
  | 
3028  | 0  |     tmp20 = tmp10 + tmp0;  | 
3029  | 0  |     tmp27 = tmp10 - tmp0;  | 
3030  | 0  |     tmp21 = tmp12 + tmp1;  | 
3031  | 0  |     tmp26 = tmp12 - tmp1;  | 
3032  | 0  |     tmp22 = tmp13 + tmp2;  | 
3033  | 0  |     tmp25 = tmp13 - tmp2;  | 
3034  | 0  |     tmp23 = tmp11 + tmp3;  | 
3035  | 0  |     tmp24 = tmp11 - tmp3;  | 
3036  |  |  | 
3037  |  |     /* Odd part */  | 
3038  |  | 
  | 
3039  | 0  |     z1 = (INT32) wsptr[1];  | 
3040  | 0  |     z2 = (INT32) wsptr[3];  | 
3041  | 0  |     z3 = (INT32) wsptr[5];  | 
3042  | 0  |     z4 = (INT32) wsptr[7];  | 
3043  |  | 
  | 
3044  | 0  |     tmp11 = z1 + z3;  | 
3045  |  | 
  | 
3046  | 0  |     tmp1  = MULTIPLY(z1 + z2, FIX(1.353318001));   /* c3 */  | 
3047  | 0  |     tmp2  = MULTIPLY(tmp11,   FIX(1.247225013));   /* c5 */  | 
3048  | 0  |     tmp3  = MULTIPLY(z1 + z4, FIX(1.093201867));   /* c7 */  | 
3049  | 0  |     tmp10 = MULTIPLY(z1 - z4, FIX(0.897167586));   /* c9 */  | 
3050  | 0  |     tmp11 = MULTIPLY(tmp11,   FIX(0.666655658));   /* c11 */  | 
3051  | 0  |     tmp12 = MULTIPLY(z1 - z2, FIX(0.410524528));   /* c13 */  | 
3052  | 0  |     tmp0  = tmp1 + tmp2 + tmp3 -  | 
3053  | 0  |       MULTIPLY(z1, FIX(2.286341144));        /* c7+c5+c3-c1 */  | 
3054  | 0  |     tmp13 = tmp10 + tmp11 + tmp12 -  | 
3055  | 0  |       MULTIPLY(z1, FIX(1.835730603));        /* c9+c11+c13-c15 */  | 
3056  | 0  |     z1    = MULTIPLY(z2 + z3, FIX(0.138617169));   /* c15 */  | 
3057  | 0  |     tmp1  += z1 + MULTIPLY(z2, FIX(0.071888074));  /* c9+c11-c3-c15 */  | 
3058  | 0  |     tmp2  += z1 - MULTIPLY(z3, FIX(1.125726048));  /* c5+c7+c15-c3 */  | 
3059  | 0  |     z1    = MULTIPLY(z3 - z2, FIX(1.407403738));   /* c1 */  | 
3060  | 0  |     tmp11 += z1 - MULTIPLY(z3, FIX(0.766367282));  /* c1+c11-c9-c13 */  | 
3061  | 0  |     tmp12 += z1 + MULTIPLY(z2, FIX(1.971951411));  /* c1+c5+c13-c7 */  | 
3062  | 0  |     z2    += z4;  | 
3063  | 0  |     z1    = MULTIPLY(z2, - FIX(0.666655658));      /* -c11 */  | 
3064  | 0  |     tmp1  += z1;  | 
3065  | 0  |     tmp3  += z1 + MULTIPLY(z4, FIX(1.065388962));  /* c3+c11+c15-c7 */  | 
3066  | 0  |     z2    = MULTIPLY(z2, - FIX(1.247225013));      /* -c5 */  | 
3067  | 0  |     tmp10 += z2 + MULTIPLY(z4, FIX(3.141271809));  /* c1+c5+c9-c13 */  | 
3068  | 0  |     tmp12 += z2;  | 
3069  | 0  |     z2    = MULTIPLY(z3 + z4, - FIX(1.353318001)); /* -c3 */  | 
3070  | 0  |     tmp2  += z2;  | 
3071  | 0  |     tmp3  += z2;  | 
3072  | 0  |     z2    = MULTIPLY(z4 - z3, FIX(0.410524528));   /* c13 */  | 
3073  | 0  |     tmp10 += z2;  | 
3074  | 0  |     tmp11 += z2;  | 
3075  |  |  | 
3076  |  |     /* Final output stage */  | 
3077  |  | 
  | 
3078  | 0  |     outptr[0]  = range_limit[(int) RIGHT_SHIFT(tmp20 + tmp0,  | 
3079  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3080  | 0  |            & RANGE_MASK];  | 
3081  | 0  |     outptr[15] = range_limit[(int) RIGHT_SHIFT(tmp20 - tmp0,  | 
3082  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3083  | 0  |            & RANGE_MASK];  | 
3084  | 0  |     outptr[1]  = range_limit[(int) RIGHT_SHIFT(tmp21 + tmp1,  | 
3085  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3086  | 0  |            & RANGE_MASK];  | 
3087  | 0  |     outptr[14] = range_limit[(int) RIGHT_SHIFT(tmp21 - tmp1,  | 
3088  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3089  | 0  |            & RANGE_MASK];  | 
3090  | 0  |     outptr[2]  = range_limit[(int) RIGHT_SHIFT(tmp22 + tmp2,  | 
3091  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3092  | 0  |            & RANGE_MASK];  | 
3093  | 0  |     outptr[13] = range_limit[(int) RIGHT_SHIFT(tmp22 - tmp2,  | 
3094  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3095  | 0  |            & RANGE_MASK];  | 
3096  | 0  |     outptr[3]  = range_limit[(int) RIGHT_SHIFT(tmp23 + tmp3,  | 
3097  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3098  | 0  |            & RANGE_MASK];  | 
3099  | 0  |     outptr[12] = range_limit[(int) RIGHT_SHIFT(tmp23 - tmp3,  | 
3100  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3101  | 0  |            & RANGE_MASK];  | 
3102  | 0  |     outptr[4]  = range_limit[(int) RIGHT_SHIFT(tmp24 + tmp10,  | 
3103  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3104  | 0  |            & RANGE_MASK];  | 
3105  | 0  |     outptr[11] = range_limit[(int) RIGHT_SHIFT(tmp24 - tmp10,  | 
3106  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3107  | 0  |            & RANGE_MASK];  | 
3108  | 0  |     outptr[5]  = range_limit[(int) RIGHT_SHIFT(tmp25 + tmp11,  | 
3109  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3110  | 0  |            & RANGE_MASK];  | 
3111  | 0  |     outptr[10] = range_limit[(int) RIGHT_SHIFT(tmp25 - tmp11,  | 
3112  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3113  | 0  |            & RANGE_MASK];  | 
3114  | 0  |     outptr[6]  = range_limit[(int) RIGHT_SHIFT(tmp26 + tmp12,  | 
3115  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3116  | 0  |            & RANGE_MASK];  | 
3117  | 0  |     outptr[9]  = range_limit[(int) RIGHT_SHIFT(tmp26 - tmp12,  | 
3118  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3119  | 0  |            & RANGE_MASK];  | 
3120  | 0  |     outptr[7]  = range_limit[(int) RIGHT_SHIFT(tmp27 + tmp13,  | 
3121  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3122  | 0  |            & RANGE_MASK];  | 
3123  | 0  |     outptr[8]  = range_limit[(int) RIGHT_SHIFT(tmp27 - tmp13,  | 
3124  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3125  | 0  |            & RANGE_MASK];  | 
3126  |  | 
  | 
3127  | 0  |     wsptr += 8;   /* advance pointer to next row */  | 
3128  | 0  |   }  | 
3129  | 0  | }  | 
3130  |  |  | 
3131  |  |  | 
3132  |  | /*  | 
3133  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
3134  |  |  * producing a 14x7 output block.  | 
3135  |  |  *  | 
3136  |  |  * 7-point IDCT in pass 1 (columns), 14-point in pass 2 (rows).  | 
3137  |  |  */  | 
3138  |  |  | 
3139  |  | GLOBAL(void)  | 
3140  |  | jpeg_idct_14x7 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
3141  |  |     JCOEFPTR coef_block,  | 
3142  |  |     JSAMPARRAY output_buf, JDIMENSION output_col)  | 
3143  | 0  | { | 
3144  | 0  |   INT32 tmp10, tmp11, tmp12, tmp13, tmp14, tmp15, tmp16;  | 
3145  | 0  |   INT32 tmp20, tmp21, tmp22, tmp23, tmp24, tmp25, tmp26;  | 
3146  | 0  |   INT32 z1, z2, z3, z4;  | 
3147  | 0  |   JCOEFPTR inptr;  | 
3148  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
3149  | 0  |   int * wsptr;  | 
3150  | 0  |   JSAMPROW outptr;  | 
3151  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
3152  | 0  |   int ctr;  | 
3153  | 0  |   int workspace[8*7]; /* buffers data between passes */  | 
3154  |  |   SHIFT_TEMPS  | 
3155  |  |  | 
3156  |  |   /* Pass 1: process columns from input, store into work array.  | 
3157  |  |    * 7-point IDCT kernel, cK represents sqrt(2) * cos(K*pi/14).  | 
3158  |  |    */  | 
3159  |  | 
  | 
3160  | 0  |   inptr = coef_block;  | 
3161  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
3162  | 0  |   wsptr = workspace;  | 
3163  | 0  |   for (ctr = 0; ctr < 8; ctr++, inptr++, quantptr++, wsptr++) { | 
3164  |  |     /* Even part */  | 
3165  |  | 
  | 
3166  | 0  |     tmp23 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
3167  | 0  |     tmp23 <<= CONST_BITS;  | 
3168  |  |     /* Add fudge factor here for final descale. */  | 
3169  | 0  |     tmp23 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
3170  |  | 
  | 
3171  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
3172  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*4], quantptr[DCTSIZE*4]);  | 
3173  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*6], quantptr[DCTSIZE*6]);  | 
3174  |  | 
  | 
3175  | 0  |     tmp20 = MULTIPLY(z2 - z3, FIX(0.881747734));       /* c4 */  | 
3176  | 0  |     tmp22 = MULTIPLY(z1 - z2, FIX(0.314692123));       /* c6 */  | 
3177  | 0  |     tmp21 = tmp20 + tmp22 + tmp23 - MULTIPLY(z2, FIX(1.841218003)); /* c2+c4-c6 */  | 
3178  | 0  |     tmp10 = z1 + z3;  | 
3179  | 0  |     z2 -= tmp10;  | 
3180  | 0  |     tmp10 = MULTIPLY(tmp10, FIX(1.274162392)) + tmp23; /* c2 */  | 
3181  | 0  |     tmp20 += tmp10 - MULTIPLY(z3, FIX(0.077722536));   /* c2-c4-c6 */  | 
3182  | 0  |     tmp22 += tmp10 - MULTIPLY(z1, FIX(2.470602249));   /* c2+c4+c6 */  | 
3183  | 0  |     tmp23 += MULTIPLY(z2, FIX(1.414213562));           /* c0 */  | 
3184  |  |  | 
3185  |  |     /* Odd part */  | 
3186  |  | 
  | 
3187  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
3188  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
3189  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*5], quantptr[DCTSIZE*5]);  | 
3190  |  | 
  | 
3191  | 0  |     tmp11 = MULTIPLY(z1 + z2, FIX(0.935414347));       /* (c3+c1-c5)/2 */  | 
3192  | 0  |     tmp12 = MULTIPLY(z1 - z2, FIX(0.170262339));       /* (c3+c5-c1)/2 */  | 
3193  | 0  |     tmp10 = tmp11 - tmp12;  | 
3194  | 0  |     tmp11 += tmp12;  | 
3195  | 0  |     tmp12 = MULTIPLY(z2 + z3, - FIX(1.378756276));     /* -c1 */  | 
3196  | 0  |     tmp11 += tmp12;  | 
3197  | 0  |     z2 = MULTIPLY(z1 + z3, FIX(0.613604268));          /* c5 */  | 
3198  | 0  |     tmp10 += z2;  | 
3199  | 0  |     tmp12 += z2 + MULTIPLY(z3, FIX(1.870828693));      /* c3+c1-c5 */  | 
3200  |  |  | 
3201  |  |     /* Final output stage */  | 
3202  |  | 
  | 
3203  | 0  |     wsptr[8*0] = (int) RIGHT_SHIFT(tmp20 + tmp10, CONST_BITS-PASS1_BITS);  | 
3204  | 0  |     wsptr[8*6] = (int) RIGHT_SHIFT(tmp20 - tmp10, CONST_BITS-PASS1_BITS);  | 
3205  | 0  |     wsptr[8*1] = (int) RIGHT_SHIFT(tmp21 + tmp11, CONST_BITS-PASS1_BITS);  | 
3206  | 0  |     wsptr[8*5] = (int) RIGHT_SHIFT(tmp21 - tmp11, CONST_BITS-PASS1_BITS);  | 
3207  | 0  |     wsptr[8*2] = (int) RIGHT_SHIFT(tmp22 + tmp12, CONST_BITS-PASS1_BITS);  | 
3208  | 0  |     wsptr[8*4] = (int) RIGHT_SHIFT(tmp22 - tmp12, CONST_BITS-PASS1_BITS);  | 
3209  | 0  |     wsptr[8*3] = (int) RIGHT_SHIFT(tmp23, CONST_BITS-PASS1_BITS);  | 
3210  | 0  |   }  | 
3211  |  |  | 
3212  |  |   /* Pass 2: process 7 rows from work array, store into output array.  | 
3213  |  |    * 14-point IDCT kernel, cK represents sqrt(2) * cos(K*pi/28).  | 
3214  |  |    */  | 
3215  |  | 
  | 
3216  | 0  |   wsptr = workspace;  | 
3217  | 0  |   for (ctr = 0; ctr < 7; ctr++) { | 
3218  | 0  |     outptr = output_buf[ctr] + output_col;  | 
3219  |  |  | 
3220  |  |     /* Even part */  | 
3221  |  |  | 
3222  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
3223  | 0  |     z1 = (INT32) wsptr[0] +  | 
3224  | 0  |      ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
3225  | 0  |       (ONE << (PASS1_BITS+2)));  | 
3226  | 0  |     z1 <<= CONST_BITS;  | 
3227  | 0  |     z4 = (INT32) wsptr[4];  | 
3228  | 0  |     z2 = MULTIPLY(z4, FIX(1.274162392));         /* c4 */  | 
3229  | 0  |     z3 = MULTIPLY(z4, FIX(0.314692123));         /* c12 */  | 
3230  | 0  |     z4 = MULTIPLY(z4, FIX(0.881747734));         /* c8 */  | 
3231  |  | 
  | 
3232  | 0  |     tmp10 = z1 + z2;  | 
3233  | 0  |     tmp11 = z1 + z3;  | 
3234  | 0  |     tmp12 = z1 - z4;  | 
3235  |  | 
  | 
3236  | 0  |     tmp23 = z1 - ((z2 + z3 - z4) << 1);          /* c0 = (c4+c12-c8)*2 */  | 
3237  |  | 
  | 
3238  | 0  |     z1 = (INT32) wsptr[2];  | 
3239  | 0  |     z2 = (INT32) wsptr[6];  | 
3240  |  | 
  | 
3241  | 0  |     z3 = MULTIPLY(z1 + z2, FIX(1.105676686));    /* c6 */  | 
3242  |  | 
  | 
3243  | 0  |     tmp13 = z3 + MULTIPLY(z1, FIX(0.273079590)); /* c2-c6 */  | 
3244  | 0  |     tmp14 = z3 - MULTIPLY(z2, FIX(1.719280954)); /* c6+c10 */  | 
3245  | 0  |     tmp15 = MULTIPLY(z1, FIX(0.613604268)) -     /* c10 */  | 
3246  | 0  |       MULTIPLY(z2, FIX(1.378756276));      /* c2 */  | 
3247  |  | 
  | 
3248  | 0  |     tmp20 = tmp10 + tmp13;  | 
3249  | 0  |     tmp26 = tmp10 - tmp13;  | 
3250  | 0  |     tmp21 = tmp11 + tmp14;  | 
3251  | 0  |     tmp25 = tmp11 - tmp14;  | 
3252  | 0  |     tmp22 = tmp12 + tmp15;  | 
3253  | 0  |     tmp24 = tmp12 - tmp15;  | 
3254  |  |  | 
3255  |  |     /* Odd part */  | 
3256  |  | 
  | 
3257  | 0  |     z1 = (INT32) wsptr[1];  | 
3258  | 0  |     z2 = (INT32) wsptr[3];  | 
3259  | 0  |     z3 = (INT32) wsptr[5];  | 
3260  | 0  |     z4 = (INT32) wsptr[7];  | 
3261  | 0  |     z4 <<= CONST_BITS;  | 
3262  |  | 
  | 
3263  | 0  |     tmp14 = z1 + z3;  | 
3264  | 0  |     tmp11 = MULTIPLY(z1 + z2, FIX(1.334852607));           /* c3 */  | 
3265  | 0  |     tmp12 = MULTIPLY(tmp14, FIX(1.197448846));             /* c5 */  | 
3266  | 0  |     tmp10 = tmp11 + tmp12 + z4 - MULTIPLY(z1, FIX(1.126980169)); /* c3+c5-c1 */  | 
3267  | 0  |     tmp14 = MULTIPLY(tmp14, FIX(0.752406978));             /* c9 */  | 
3268  | 0  |     tmp16 = tmp14 - MULTIPLY(z1, FIX(1.061150426));        /* c9+c11-c13 */  | 
3269  | 0  |     z1    -= z2;  | 
3270  | 0  |     tmp15 = MULTIPLY(z1, FIX(0.467085129)) - z4;           /* c11 */  | 
3271  | 0  |     tmp16 += tmp15;  | 
3272  | 0  |     tmp13 = MULTIPLY(z2 + z3, - FIX(0.158341681)) - z4;    /* -c13 */  | 
3273  | 0  |     tmp11 += tmp13 - MULTIPLY(z2, FIX(0.424103948));       /* c3-c9-c13 */  | 
3274  | 0  |     tmp12 += tmp13 - MULTIPLY(z3, FIX(2.373959773));       /* c3+c5-c13 */  | 
3275  | 0  |     tmp13 = MULTIPLY(z3 - z2, FIX(1.405321284));           /* c1 */  | 
3276  | 0  |     tmp14 += tmp13 + z4 - MULTIPLY(z3, FIX(1.6906431334)); /* c1+c9-c11 */  | 
3277  | 0  |     tmp15 += tmp13 + MULTIPLY(z2, FIX(0.674957567));       /* c1+c11-c5 */  | 
3278  |  | 
  | 
3279  | 0  |     tmp13 = ((z1 - z3) << CONST_BITS) + z4;  | 
3280  |  |  | 
3281  |  |     /* Final output stage */  | 
3282  |  | 
  | 
3283  | 0  |     outptr[0]  = range_limit[(int) RIGHT_SHIFT(tmp20 + tmp10,  | 
3284  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3285  | 0  |            & RANGE_MASK];  | 
3286  | 0  |     outptr[13] = range_limit[(int) RIGHT_SHIFT(tmp20 - tmp10,  | 
3287  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3288  | 0  |            & RANGE_MASK];  | 
3289  | 0  |     outptr[1]  = range_limit[(int) RIGHT_SHIFT(tmp21 + tmp11,  | 
3290  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3291  | 0  |            & RANGE_MASK];  | 
3292  | 0  |     outptr[12] = range_limit[(int) RIGHT_SHIFT(tmp21 - tmp11,  | 
3293  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3294  | 0  |            & RANGE_MASK];  | 
3295  | 0  |     outptr[2]  = range_limit[(int) RIGHT_SHIFT(tmp22 + tmp12,  | 
3296  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3297  | 0  |            & RANGE_MASK];  | 
3298  | 0  |     outptr[11] = range_limit[(int) RIGHT_SHIFT(tmp22 - tmp12,  | 
3299  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3300  | 0  |            & RANGE_MASK];  | 
3301  | 0  |     outptr[3]  = range_limit[(int) RIGHT_SHIFT(tmp23 + tmp13,  | 
3302  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3303  | 0  |            & RANGE_MASK];  | 
3304  | 0  |     outptr[10] = range_limit[(int) RIGHT_SHIFT(tmp23 - tmp13,  | 
3305  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3306  | 0  |            & RANGE_MASK];  | 
3307  | 0  |     outptr[4]  = range_limit[(int) RIGHT_SHIFT(tmp24 + tmp14,  | 
3308  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3309  | 0  |            & RANGE_MASK];  | 
3310  | 0  |     outptr[9]  = range_limit[(int) RIGHT_SHIFT(tmp24 - tmp14,  | 
3311  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3312  | 0  |            & RANGE_MASK];  | 
3313  | 0  |     outptr[5]  = range_limit[(int) RIGHT_SHIFT(tmp25 + tmp15,  | 
3314  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3315  | 0  |            & RANGE_MASK];  | 
3316  | 0  |     outptr[8]  = range_limit[(int) RIGHT_SHIFT(tmp25 - tmp15,  | 
3317  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3318  | 0  |            & RANGE_MASK];  | 
3319  | 0  |     outptr[6]  = range_limit[(int) RIGHT_SHIFT(tmp26 + tmp16,  | 
3320  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3321  | 0  |            & RANGE_MASK];  | 
3322  | 0  |     outptr[7]  = range_limit[(int) RIGHT_SHIFT(tmp26 - tmp16,  | 
3323  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3324  | 0  |            & RANGE_MASK];  | 
3325  |  | 
  | 
3326  | 0  |     wsptr += 8;   /* advance pointer to next row */  | 
3327  | 0  |   }  | 
3328  | 0  | }  | 
3329  |  |  | 
3330  |  |  | 
3331  |  | /*  | 
3332  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
3333  |  |  * producing a 12x6 output block.  | 
3334  |  |  *  | 
3335  |  |  * 6-point IDCT in pass 1 (columns), 12-point in pass 2 (rows).  | 
3336  |  |  */  | 
3337  |  |  | 
3338  |  | GLOBAL(void)  | 
3339  |  | jpeg_idct_12x6 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
3340  |  |     JCOEFPTR coef_block,  | 
3341  |  |     JSAMPARRAY output_buf, JDIMENSION output_col)  | 
3342  | 0  | { | 
3343  | 0  |   INT32 tmp10, tmp11, tmp12, tmp13, tmp14, tmp15;  | 
3344  | 0  |   INT32 tmp20, tmp21, tmp22, tmp23, tmp24, tmp25;  | 
3345  | 0  |   INT32 z1, z2, z3, z4;  | 
3346  | 0  |   JCOEFPTR inptr;  | 
3347  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
3348  | 0  |   int * wsptr;  | 
3349  | 0  |   JSAMPROW outptr;  | 
3350  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
3351  | 0  |   int ctr;  | 
3352  | 0  |   int workspace[8*6]; /* buffers data between passes */  | 
3353  |  |   SHIFT_TEMPS  | 
3354  |  |  | 
3355  |  |   /* Pass 1: process columns from input, store into work array.  | 
3356  |  |    * 6-point IDCT kernel, cK represents sqrt(2) * cos(K*pi/12).  | 
3357  |  |    */  | 
3358  |  | 
  | 
3359  | 0  |   inptr = coef_block;  | 
3360  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
3361  | 0  |   wsptr = workspace;  | 
3362  | 0  |   for (ctr = 0; ctr < 8; ctr++, inptr++, quantptr++, wsptr++) { | 
3363  |  |     /* Even part */  | 
3364  |  | 
  | 
3365  | 0  |     tmp10 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
3366  | 0  |     tmp10 <<= CONST_BITS;  | 
3367  |  |     /* Add fudge factor here for final descale. */  | 
3368  | 0  |     tmp10 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
3369  | 0  |     tmp12 = DEQUANTIZE(inptr[DCTSIZE*4], quantptr[DCTSIZE*4]);  | 
3370  | 0  |     tmp20 = MULTIPLY(tmp12, FIX(0.707106781));   /* c4 */  | 
3371  | 0  |     tmp11 = tmp10 + tmp20;  | 
3372  | 0  |     tmp21 = RIGHT_SHIFT(tmp10 - tmp20 - tmp20, CONST_BITS-PASS1_BITS);  | 
3373  | 0  |     tmp20 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
3374  | 0  |     tmp10 = MULTIPLY(tmp20, FIX(1.224744871));   /* c2 */  | 
3375  | 0  |     tmp20 = tmp11 + tmp10;  | 
3376  | 0  |     tmp22 = tmp11 - tmp10;  | 
3377  |  |  | 
3378  |  |     /* Odd part */  | 
3379  |  | 
  | 
3380  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
3381  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
3382  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*5], quantptr[DCTSIZE*5]);  | 
3383  | 0  |     tmp11 = MULTIPLY(z1 + z3, FIX(0.366025404)); /* c5 */  | 
3384  | 0  |     tmp10 = tmp11 + ((z1 + z2) << CONST_BITS);  | 
3385  | 0  |     tmp12 = tmp11 + ((z3 - z2) << CONST_BITS);  | 
3386  | 0  |     tmp11 = (z1 - z2 - z3) << PASS1_BITS;  | 
3387  |  |  | 
3388  |  |     /* Final output stage */  | 
3389  |  | 
  | 
3390  | 0  |     wsptr[8*0] = (int) RIGHT_SHIFT(tmp20 + tmp10, CONST_BITS-PASS1_BITS);  | 
3391  | 0  |     wsptr[8*5] = (int) RIGHT_SHIFT(tmp20 - tmp10, CONST_BITS-PASS1_BITS);  | 
3392  | 0  |     wsptr[8*1] = (int) (tmp21 + tmp11);  | 
3393  | 0  |     wsptr[8*4] = (int) (tmp21 - tmp11);  | 
3394  | 0  |     wsptr[8*2] = (int) RIGHT_SHIFT(tmp22 + tmp12, CONST_BITS-PASS1_BITS);  | 
3395  | 0  |     wsptr[8*3] = (int) RIGHT_SHIFT(tmp22 - tmp12, CONST_BITS-PASS1_BITS);  | 
3396  | 0  |   }  | 
3397  |  |  | 
3398  |  |   /* Pass 2: process 6 rows from work array, store into output array.  | 
3399  |  |    * 12-point IDCT kernel, cK represents sqrt(2) * cos(K*pi/24).  | 
3400  |  |    */  | 
3401  |  | 
  | 
3402  | 0  |   wsptr = workspace;  | 
3403  | 0  |   for (ctr = 0; ctr < 6; ctr++) { | 
3404  | 0  |     outptr = output_buf[ctr] + output_col;  | 
3405  |  |  | 
3406  |  |     /* Even part */  | 
3407  |  |  | 
3408  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
3409  | 0  |     z3 = (INT32) wsptr[0] +  | 
3410  | 0  |      ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
3411  | 0  |       (ONE << (PASS1_BITS+2)));  | 
3412  | 0  |     z3 <<= CONST_BITS;  | 
3413  |  | 
  | 
3414  | 0  |     z4 = (INT32) wsptr[4];  | 
3415  | 0  |     z4 = MULTIPLY(z4, FIX(1.224744871)); /* c4 */  | 
3416  |  | 
  | 
3417  | 0  |     tmp10 = z3 + z4;  | 
3418  | 0  |     tmp11 = z3 - z4;  | 
3419  |  | 
  | 
3420  | 0  |     z1 = (INT32) wsptr[2];  | 
3421  | 0  |     z4 = MULTIPLY(z1, FIX(1.366025404)); /* c2 */  | 
3422  | 0  |     z1 <<= CONST_BITS;  | 
3423  | 0  |     z2 = (INT32) wsptr[6];  | 
3424  | 0  |     z2 <<= CONST_BITS;  | 
3425  |  | 
  | 
3426  | 0  |     tmp12 = z1 - z2;  | 
3427  |  | 
  | 
3428  | 0  |     tmp21 = z3 + tmp12;  | 
3429  | 0  |     tmp24 = z3 - tmp12;  | 
3430  |  | 
  | 
3431  | 0  |     tmp12 = z4 + z2;  | 
3432  |  | 
  | 
3433  | 0  |     tmp20 = tmp10 + tmp12;  | 
3434  | 0  |     tmp25 = tmp10 - tmp12;  | 
3435  |  | 
  | 
3436  | 0  |     tmp12 = z4 - z1 - z2;  | 
3437  |  | 
  | 
3438  | 0  |     tmp22 = tmp11 + tmp12;  | 
3439  | 0  |     tmp23 = tmp11 - tmp12;  | 
3440  |  |  | 
3441  |  |     /* Odd part */  | 
3442  |  | 
  | 
3443  | 0  |     z1 = (INT32) wsptr[1];  | 
3444  | 0  |     z2 = (INT32) wsptr[3];  | 
3445  | 0  |     z3 = (INT32) wsptr[5];  | 
3446  | 0  |     z4 = (INT32) wsptr[7];  | 
3447  |  | 
  | 
3448  | 0  |     tmp11 = MULTIPLY(z2, FIX(1.306562965));                  /* c3 */  | 
3449  | 0  |     tmp14 = MULTIPLY(z2, - FIX_0_541196100);                 /* -c9 */  | 
3450  |  | 
  | 
3451  | 0  |     tmp10 = z1 + z3;  | 
3452  | 0  |     tmp15 = MULTIPLY(tmp10 + z4, FIX(0.860918669));          /* c7 */  | 
3453  | 0  |     tmp12 = tmp15 + MULTIPLY(tmp10, FIX(0.261052384));       /* c5-c7 */  | 
3454  | 0  |     tmp10 = tmp12 + tmp11 + MULTIPLY(z1, FIX(0.280143716));  /* c1-c5 */  | 
3455  | 0  |     tmp13 = MULTIPLY(z3 + z4, - FIX(1.045510580));           /* -(c7+c11) */  | 
3456  | 0  |     tmp12 += tmp13 + tmp14 - MULTIPLY(z3, FIX(1.478575242)); /* c1+c5-c7-c11 */  | 
3457  | 0  |     tmp13 += tmp15 - tmp11 + MULTIPLY(z4, FIX(1.586706681)); /* c1+c11 */  | 
3458  | 0  |     tmp15 += tmp14 - MULTIPLY(z1, FIX(0.676326758)) -        /* c7-c11 */  | 
3459  | 0  |        MULTIPLY(z4, FIX(1.982889723));                 /* c5+c7 */  | 
3460  |  | 
  | 
3461  | 0  |     z1 -= z4;  | 
3462  | 0  |     z2 -= z3;  | 
3463  | 0  |     z3 = MULTIPLY(z1 + z2, FIX_0_541196100);                 /* c9 */  | 
3464  | 0  |     tmp11 = z3 + MULTIPLY(z1, FIX_0_765366865);              /* c3-c9 */  | 
3465  | 0  |     tmp14 = z3 - MULTIPLY(z2, FIX_1_847759065);              /* c3+c9 */  | 
3466  |  |  | 
3467  |  |     /* Final output stage */  | 
3468  |  | 
  | 
3469  | 0  |     outptr[0]  = range_limit[(int) RIGHT_SHIFT(tmp20 + tmp10,  | 
3470  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3471  | 0  |            & RANGE_MASK];  | 
3472  | 0  |     outptr[11] = range_limit[(int) RIGHT_SHIFT(tmp20 - tmp10,  | 
3473  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3474  | 0  |            & RANGE_MASK];  | 
3475  | 0  |     outptr[1]  = range_limit[(int) RIGHT_SHIFT(tmp21 + tmp11,  | 
3476  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3477  | 0  |            & RANGE_MASK];  | 
3478  | 0  |     outptr[10] = range_limit[(int) RIGHT_SHIFT(tmp21 - tmp11,  | 
3479  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3480  | 0  |            & RANGE_MASK];  | 
3481  | 0  |     outptr[2]  = range_limit[(int) RIGHT_SHIFT(tmp22 + tmp12,  | 
3482  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3483  | 0  |            & RANGE_MASK];  | 
3484  | 0  |     outptr[9]  = range_limit[(int) RIGHT_SHIFT(tmp22 - tmp12,  | 
3485  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3486  | 0  |            & RANGE_MASK];  | 
3487  | 0  |     outptr[3]  = range_limit[(int) RIGHT_SHIFT(tmp23 + tmp13,  | 
3488  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3489  | 0  |            & RANGE_MASK];  | 
3490  | 0  |     outptr[8]  = range_limit[(int) RIGHT_SHIFT(tmp23 - tmp13,  | 
3491  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3492  | 0  |            & RANGE_MASK];  | 
3493  | 0  |     outptr[4]  = range_limit[(int) RIGHT_SHIFT(tmp24 + tmp14,  | 
3494  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3495  | 0  |            & RANGE_MASK];  | 
3496  | 0  |     outptr[7]  = range_limit[(int) RIGHT_SHIFT(tmp24 - tmp14,  | 
3497  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3498  | 0  |            & RANGE_MASK];  | 
3499  | 0  |     outptr[5]  = range_limit[(int) RIGHT_SHIFT(tmp25 + tmp15,  | 
3500  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3501  | 0  |            & RANGE_MASK];  | 
3502  | 0  |     outptr[6]  = range_limit[(int) RIGHT_SHIFT(tmp25 - tmp15,  | 
3503  | 0  |                  CONST_BITS+PASS1_BITS+3)  | 
3504  | 0  |            & RANGE_MASK];  | 
3505  |  | 
  | 
3506  | 0  |     wsptr += 8;   /* advance pointer to next row */  | 
3507  | 0  |   }  | 
3508  | 0  | }  | 
3509  |  |  | 
3510  |  |  | 
3511  |  | /*  | 
3512  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
3513  |  |  * producing a 10x5 output block.  | 
3514  |  |  *  | 
3515  |  |  * 5-point IDCT in pass 1 (columns), 10-point in pass 2 (rows).  | 
3516  |  |  */  | 
3517  |  |  | 
3518  |  | GLOBAL(void)  | 
3519  |  | jpeg_idct_10x5 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
3520  |  |     JCOEFPTR coef_block,  | 
3521  |  |     JSAMPARRAY output_buf, JDIMENSION output_col)  | 
3522  | 0  | { | 
3523  | 0  |   INT32 tmp10, tmp11, tmp12, tmp13, tmp14;  | 
3524  | 0  |   INT32 tmp20, tmp21, tmp22, tmp23, tmp24;  | 
3525  | 0  |   INT32 z1, z2, z3, z4;  | 
3526  | 0  |   JCOEFPTR inptr;  | 
3527  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
3528  | 0  |   int * wsptr;  | 
3529  | 0  |   JSAMPROW outptr;  | 
3530  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
3531  | 0  |   int ctr;  | 
3532  | 0  |   int workspace[8*5]; /* buffers data between passes */  | 
3533  |  |   SHIFT_TEMPS  | 
3534  |  |  | 
3535  |  |   /* Pass 1: process columns from input, store into work array.  | 
3536  |  |    * 5-point IDCT kernel, cK represents sqrt(2) * cos(K*pi/10).  | 
3537  |  |    */  | 
3538  |  | 
  | 
3539  | 0  |   inptr = coef_block;  | 
3540  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
3541  | 0  |   wsptr = workspace;  | 
3542  | 0  |   for (ctr = 0; ctr < 8; ctr++, inptr++, quantptr++, wsptr++) { | 
3543  |  |     /* Even part */  | 
3544  |  | 
  | 
3545  | 0  |     tmp12 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
3546  | 0  |     tmp12 <<= CONST_BITS;  | 
3547  |  |     /* Add fudge factor here for final descale. */  | 
3548  | 0  |     tmp12 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
3549  | 0  |     tmp13 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
3550  | 0  |     tmp14 = DEQUANTIZE(inptr[DCTSIZE*4], quantptr[DCTSIZE*4]);  | 
3551  | 0  |     z1 = MULTIPLY(tmp13 + tmp14, FIX(0.790569415)); /* (c2+c4)/2 */  | 
3552  | 0  |     z2 = MULTIPLY(tmp13 - tmp14, FIX(0.353553391)); /* (c2-c4)/2 */  | 
3553  | 0  |     z3 = tmp12 + z2;  | 
3554  | 0  |     tmp10 = z3 + z1;  | 
3555  | 0  |     tmp11 = z3 - z1;  | 
3556  | 0  |     tmp12 -= z2 << 2;  | 
3557  |  |  | 
3558  |  |     /* Odd part */  | 
3559  |  | 
  | 
3560  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
3561  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
3562  |  | 
  | 
3563  | 0  |     z1 = MULTIPLY(z2 + z3, FIX(0.831253876));       /* c3 */  | 
3564  | 0  |     tmp13 = z1 + MULTIPLY(z2, FIX(0.513743148));    /* c1-c3 */  | 
3565  | 0  |     tmp14 = z1 - MULTIPLY(z3, FIX(2.176250899));    /* c1+c3 */  | 
3566  |  |  | 
3567  |  |     /* Final output stage */  | 
3568  |  | 
  | 
3569  | 0  |     wsptr[8*0] = (int) RIGHT_SHIFT(tmp10 + tmp13, CONST_BITS-PASS1_BITS);  | 
3570  | 0  |     wsptr[8*4] = (int) RIGHT_SHIFT(tmp10 - tmp13, CONST_BITS-PASS1_BITS);  | 
3571  | 0  |     wsptr[8*1] = (int) RIGHT_SHIFT(tmp11 + tmp14, CONST_BITS-PASS1_BITS);  | 
3572  | 0  |     wsptr[8*3] = (int) RIGHT_SHIFT(tmp11 - tmp14, CONST_BITS-PASS1_BITS);  | 
3573  | 0  |     wsptr[8*2] = (int) RIGHT_SHIFT(tmp12, CONST_BITS-PASS1_BITS);  | 
3574  | 0  |   }  | 
3575  |  |  | 
3576  |  |   /* Pass 2: process 5 rows from work array, store into output array.  | 
3577  |  |    * 10-point IDCT kernel, cK represents sqrt(2) * cos(K*pi/20).  | 
3578  |  |    */  | 
3579  |  | 
  | 
3580  | 0  |   wsptr = workspace;  | 
3581  | 0  |   for (ctr = 0; ctr < 5; ctr++) { | 
3582  | 0  |     outptr = output_buf[ctr] + output_col;  | 
3583  |  |  | 
3584  |  |     /* Even part */  | 
3585  |  |  | 
3586  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
3587  | 0  |     z3 = (INT32) wsptr[0] +  | 
3588  | 0  |      ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
3589  | 0  |       (ONE << (PASS1_BITS+2)));  | 
3590  | 0  |     z3 <<= CONST_BITS;  | 
3591  | 0  |     z4 = (INT32) wsptr[4];  | 
3592  | 0  |     z1 = MULTIPLY(z4, FIX(1.144122806));         /* c4 */  | 
3593  | 0  |     z2 = MULTIPLY(z4, FIX(0.437016024));         /* c8 */  | 
3594  | 0  |     tmp10 = z3 + z1;  | 
3595  | 0  |     tmp11 = z3 - z2;  | 
3596  |  | 
  | 
3597  | 0  |     tmp22 = z3 - ((z1 - z2) << 1);               /* c0 = (c4-c8)*2 */  | 
3598  |  | 
  | 
3599  | 0  |     z2 = (INT32) wsptr[2];  | 
3600  | 0  |     z3 = (INT32) wsptr[6];  | 
3601  |  | 
  | 
3602  | 0  |     z1 = MULTIPLY(z2 + z3, FIX(0.831253876));    /* c6 */  | 
3603  | 0  |     tmp12 = z1 + MULTIPLY(z2, FIX(0.513743148)); /* c2-c6 */  | 
3604  | 0  |     tmp13 = z1 - MULTIPLY(z3, FIX(2.176250899)); /* c2+c6 */  | 
3605  |  | 
  | 
3606  | 0  |     tmp20 = tmp10 + tmp12;  | 
3607  | 0  |     tmp24 = tmp10 - tmp12;  | 
3608  | 0  |     tmp21 = tmp11 + tmp13;  | 
3609  | 0  |     tmp23 = tmp11 - tmp13;  | 
3610  |  |  | 
3611  |  |     /* Odd part */  | 
3612  |  | 
  | 
3613  | 0  |     z1 = (INT32) wsptr[1];  | 
3614  | 0  |     z2 = (INT32) wsptr[3];  | 
3615  | 0  |     z3 = (INT32) wsptr[5];  | 
3616  | 0  |     z3 <<= CONST_BITS;  | 
3617  | 0  |     z4 = (INT32) wsptr[7];  | 
3618  |  | 
  | 
3619  | 0  |     tmp11 = z2 + z4;  | 
3620  | 0  |     tmp13 = z2 - z4;  | 
3621  |  | 
  | 
3622  | 0  |     tmp12 = MULTIPLY(tmp13, FIX(0.309016994));        /* (c3-c7)/2 */  | 
3623  |  | 
  | 
3624  | 0  |     z2 = MULTIPLY(tmp11, FIX(0.951056516));           /* (c3+c7)/2 */  | 
3625  | 0  |     z4 = z3 + tmp12;  | 
3626  |  | 
  | 
3627  | 0  |     tmp10 = MULTIPLY(z1, FIX(1.396802247)) + z2 + z4; /* c1 */  | 
3628  | 0  |     tmp14 = MULTIPLY(z1, FIX(0.221231742)) - z2 + z4; /* c9 */  | 
3629  |  | 
  | 
3630  | 0  |     z2 = MULTIPLY(tmp11, FIX(0.587785252));           /* (c1-c9)/2 */  | 
3631  | 0  |     z4 = z3 - tmp12 - (tmp13 << (CONST_BITS - 1));  | 
3632  |  | 
  | 
3633  | 0  |     tmp12 = ((z1 - tmp13) << CONST_BITS) - z3;  | 
3634  |  | 
  | 
3635  | 0  |     tmp11 = MULTIPLY(z1, FIX(1.260073511)) - z2 - z4; /* c3 */  | 
3636  | 0  |     tmp13 = MULTIPLY(z1, FIX(0.642039522)) - z2 + z4; /* c7 */  | 
3637  |  |  | 
3638  |  |     /* Final output stage */  | 
3639  |  | 
  | 
3640  | 0  |     outptr[0] = range_limit[(int) RIGHT_SHIFT(tmp20 + tmp10,  | 
3641  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3642  | 0  |           & RANGE_MASK];  | 
3643  | 0  |     outptr[9] = range_limit[(int) RIGHT_SHIFT(tmp20 - tmp10,  | 
3644  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3645  | 0  |           & RANGE_MASK];  | 
3646  | 0  |     outptr[1] = range_limit[(int) RIGHT_SHIFT(tmp21 + tmp11,  | 
3647  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3648  | 0  |           & RANGE_MASK];  | 
3649  | 0  |     outptr[8] = range_limit[(int) RIGHT_SHIFT(tmp21 - tmp11,  | 
3650  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3651  | 0  |           & RANGE_MASK];  | 
3652  | 0  |     outptr[2] = range_limit[(int) RIGHT_SHIFT(tmp22 + tmp12,  | 
3653  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3654  | 0  |           & RANGE_MASK];  | 
3655  | 0  |     outptr[7] = range_limit[(int) RIGHT_SHIFT(tmp22 - tmp12,  | 
3656  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3657  | 0  |           & RANGE_MASK];  | 
3658  | 0  |     outptr[3] = range_limit[(int) RIGHT_SHIFT(tmp23 + tmp13,  | 
3659  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3660  | 0  |           & RANGE_MASK];  | 
3661  | 0  |     outptr[6] = range_limit[(int) RIGHT_SHIFT(tmp23 - tmp13,  | 
3662  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3663  | 0  |           & RANGE_MASK];  | 
3664  | 0  |     outptr[4] = range_limit[(int) RIGHT_SHIFT(tmp24 + tmp14,  | 
3665  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3666  | 0  |           & RANGE_MASK];  | 
3667  | 0  |     outptr[5] = range_limit[(int) RIGHT_SHIFT(tmp24 - tmp14,  | 
3668  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3669  | 0  |           & RANGE_MASK];  | 
3670  |  | 
  | 
3671  | 0  |     wsptr += 8;   /* advance pointer to next row */  | 
3672  | 0  |   }  | 
3673  | 0  | }  | 
3674  |  |  | 
3675  |  |  | 
3676  |  | /*  | 
3677  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
3678  |  |  * producing an 8x4 output block.  | 
3679  |  |  *  | 
3680  |  |  * 4-point IDCT in pass 1 (columns), 8-point in pass 2 (rows).  | 
3681  |  |  */  | 
3682  |  |  | 
3683  |  | GLOBAL(void)  | 
3684  |  | jpeg_idct_8x4 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
3685  |  |          JCOEFPTR coef_block,  | 
3686  |  |          JSAMPARRAY output_buf, JDIMENSION output_col)  | 
3687  | 0  | { | 
3688  | 0  |   INT32 tmp0, tmp1, tmp2, tmp3;  | 
3689  | 0  |   INT32 tmp10, tmp11, tmp12, tmp13;  | 
3690  | 0  |   INT32 z1, z2, z3;  | 
3691  | 0  |   JCOEFPTR inptr;  | 
3692  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
3693  | 0  |   int * wsptr;  | 
3694  | 0  |   JSAMPROW outptr;  | 
3695  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
3696  | 0  |   int ctr;  | 
3697  | 0  |   int workspace[8*4]; /* buffers data between passes */  | 
3698  |  |   SHIFT_TEMPS  | 
3699  |  |  | 
3700  |  |   /* Pass 1: process columns from input, store into work array.  | 
3701  |  |    * 4-point IDCT kernel,  | 
3702  |  |    * cK represents sqrt(2) * cos(K*pi/16) [refers to 8-point IDCT].  | 
3703  |  |    */  | 
3704  |  | 
  | 
3705  | 0  |   inptr = coef_block;  | 
3706  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
3707  | 0  |   wsptr = workspace;  | 
3708  | 0  |   for (ctr = 0; ctr < 8; ctr++, inptr++, quantptr++, wsptr++) { | 
3709  |  |     /* Even part */  | 
3710  |  | 
  | 
3711  | 0  |     tmp0 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
3712  | 0  |     tmp2 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
3713  |  | 
  | 
3714  | 0  |     tmp10 = (tmp0 + tmp2) << PASS1_BITS;  | 
3715  | 0  |     tmp12 = (tmp0 - tmp2) << PASS1_BITS;  | 
3716  |  |  | 
3717  |  |     /* Odd part */  | 
3718  |  |     /* Same rotation as in the even part of the 8x8 LL&M IDCT */  | 
3719  |  | 
  | 
3720  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
3721  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
3722  |  | 
  | 
3723  | 0  |     z1 = MULTIPLY(z2 + z3, FIX_0_541196100);               /* c6 */  | 
3724  |  |     /* Add fudge factor here for final descale. */  | 
3725  | 0  |     z1 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
3726  | 0  |     tmp0 = RIGHT_SHIFT(z1 + MULTIPLY(z2, FIX_0_765366865), /* c2-c6 */  | 
3727  | 0  |            CONST_BITS-PASS1_BITS);  | 
3728  | 0  |     tmp2 = RIGHT_SHIFT(z1 - MULTIPLY(z3, FIX_1_847759065), /* c2+c6 */  | 
3729  | 0  |            CONST_BITS-PASS1_BITS);  | 
3730  |  |  | 
3731  |  |     /* Final output stage */  | 
3732  |  | 
  | 
3733  | 0  |     wsptr[8*0] = (int) (tmp10 + tmp0);  | 
3734  | 0  |     wsptr[8*3] = (int) (tmp10 - tmp0);  | 
3735  | 0  |     wsptr[8*1] = (int) (tmp12 + tmp2);  | 
3736  | 0  |     wsptr[8*2] = (int) (tmp12 - tmp2);  | 
3737  | 0  |   }  | 
3738  |  |  | 
3739  |  |   /* Pass 2: process rows from work array, store into output array.  | 
3740  |  |    * Note that we must descale the results by a factor of 8 == 2**3,  | 
3741  |  |    * and also undo the PASS1_BITS scaling.  | 
3742  |  |    * 8-point IDCT kernel, cK represents sqrt(2) * cos(K*pi/16).  | 
3743  |  |    */  | 
3744  |  | 
  | 
3745  | 0  |   wsptr = workspace;  | 
3746  | 0  |   for (ctr = 0; ctr < 4; ctr++) { | 
3747  | 0  |     outptr = output_buf[ctr] + output_col;  | 
3748  |  |  | 
3749  |  |     /* Even part: reverse the even part of the forward DCT.  | 
3750  |  |      * The rotator is c(-6).  | 
3751  |  |      */  | 
3752  |  |  | 
3753  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
3754  | 0  |     z2 = (INT32) wsptr[0] +  | 
3755  | 0  |      ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
3756  | 0  |       (ONE << (PASS1_BITS+2)));  | 
3757  | 0  |     z3 = (INT32) wsptr[4];  | 
3758  |  | 
  | 
3759  | 0  |     tmp0 = (z2 + z3) << CONST_BITS;  | 
3760  | 0  |     tmp1 = (z2 - z3) << CONST_BITS;  | 
3761  |  | 
  | 
3762  | 0  |     z2 = (INT32) wsptr[2];  | 
3763  | 0  |     z3 = (INT32) wsptr[6];  | 
3764  |  | 
  | 
3765  | 0  |     z1 = MULTIPLY(z2 + z3, FIX_0_541196100);       /* c6 */  | 
3766  | 0  |     tmp2 = z1 + MULTIPLY(z2, FIX_0_765366865);     /* c2-c6 */  | 
3767  | 0  |     tmp3 = z1 - MULTIPLY(z3, FIX_1_847759065);     /* c2+c6 */  | 
3768  |  | 
  | 
3769  | 0  |     tmp10 = tmp0 + tmp2;  | 
3770  | 0  |     tmp13 = tmp0 - tmp2;  | 
3771  | 0  |     tmp11 = tmp1 + tmp3;  | 
3772  | 0  |     tmp12 = tmp1 - tmp3;  | 
3773  |  |  | 
3774  |  |     /* Odd part per figure 8; the matrix is unitary and hence its  | 
3775  |  |      * transpose is its inverse.  i0..i3 are y7,y5,y3,y1 respectively.  | 
3776  |  |      */  | 
3777  |  | 
  | 
3778  | 0  |     tmp0 = (INT32) wsptr[7];  | 
3779  | 0  |     tmp1 = (INT32) wsptr[5];  | 
3780  | 0  |     tmp2 = (INT32) wsptr[3];  | 
3781  | 0  |     tmp3 = (INT32) wsptr[1];  | 
3782  |  | 
  | 
3783  | 0  |     z2 = tmp0 + tmp2;  | 
3784  | 0  |     z3 = tmp1 + tmp3;  | 
3785  |  | 
  | 
3786  | 0  |     z1 = MULTIPLY(z2 + z3, FIX_1_175875602);       /*  c3 */  | 
3787  | 0  |     z2 = MULTIPLY(z2, - FIX_1_961570560);          /* -c3-c5 */  | 
3788  | 0  |     z3 = MULTIPLY(z3, - FIX_0_390180644);          /* -c3+c5 */  | 
3789  | 0  |     z2 += z1;  | 
3790  | 0  |     z3 += z1;  | 
3791  |  | 
  | 
3792  | 0  |     z1 = MULTIPLY(tmp0 + tmp3, - FIX_0_899976223); /* -c3+c7 */  | 
3793  | 0  |     tmp0 = MULTIPLY(tmp0, FIX_0_298631336);        /* -c1+c3+c5-c7 */  | 
3794  | 0  |     tmp3 = MULTIPLY(tmp3, FIX_1_501321110);        /*  c1+c3-c5-c7 */  | 
3795  | 0  |     tmp0 += z1 + z2;  | 
3796  | 0  |     tmp3 += z1 + z3;  | 
3797  |  | 
  | 
3798  | 0  |     z1 = MULTIPLY(tmp1 + tmp2, - FIX_2_562915447); /* -c1-c3 */  | 
3799  | 0  |     tmp1 = MULTIPLY(tmp1, FIX_2_053119869);        /*  c1+c3-c5+c7 */  | 
3800  | 0  |     tmp2 = MULTIPLY(tmp2, FIX_3_072711026);        /*  c1+c3+c5-c7 */  | 
3801  | 0  |     tmp1 += z1 + z3;  | 
3802  | 0  |     tmp2 += z1 + z2;  | 
3803  |  |  | 
3804  |  |     /* Final output stage: inputs are tmp10..tmp13, tmp0..tmp3 */  | 
3805  |  | 
  | 
3806  | 0  |     outptr[0] = range_limit[(int) RIGHT_SHIFT(tmp10 + tmp3,  | 
3807  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3808  | 0  |           & RANGE_MASK];  | 
3809  | 0  |     outptr[7] = range_limit[(int) RIGHT_SHIFT(tmp10 - tmp3,  | 
3810  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3811  | 0  |           & RANGE_MASK];  | 
3812  | 0  |     outptr[1] = range_limit[(int) RIGHT_SHIFT(tmp11 + tmp2,  | 
3813  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3814  | 0  |           & RANGE_MASK];  | 
3815  | 0  |     outptr[6] = range_limit[(int) RIGHT_SHIFT(tmp11 - tmp2,  | 
3816  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3817  | 0  |           & RANGE_MASK];  | 
3818  | 0  |     outptr[2] = range_limit[(int) RIGHT_SHIFT(tmp12 + tmp1,  | 
3819  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3820  | 0  |           & RANGE_MASK];  | 
3821  | 0  |     outptr[5] = range_limit[(int) RIGHT_SHIFT(tmp12 - tmp1,  | 
3822  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3823  | 0  |           & RANGE_MASK];  | 
3824  | 0  |     outptr[3] = range_limit[(int) RIGHT_SHIFT(tmp13 + tmp0,  | 
3825  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3826  | 0  |           & RANGE_MASK];  | 
3827  | 0  |     outptr[4] = range_limit[(int) RIGHT_SHIFT(tmp13 - tmp0,  | 
3828  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3829  | 0  |           & RANGE_MASK];  | 
3830  |  | 
  | 
3831  | 0  |     wsptr += DCTSIZE;   /* advance pointer to next row */  | 
3832  | 0  |   }  | 
3833  | 0  | }  | 
3834  |  |  | 
3835  |  |  | 
3836  |  | /*  | 
3837  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
3838  |  |  * producing a 6x3 output block.  | 
3839  |  |  *  | 
3840  |  |  * 3-point IDCT in pass 1 (columns), 6-point in pass 2 (rows).  | 
3841  |  |  */  | 
3842  |  |  | 
3843  |  | GLOBAL(void)  | 
3844  |  | jpeg_idct_6x3 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
3845  |  |          JCOEFPTR coef_block,  | 
3846  |  |          JSAMPARRAY output_buf, JDIMENSION output_col)  | 
3847  | 0  | { | 
3848  | 0  |   INT32 tmp0, tmp1, tmp2, tmp10, tmp11, tmp12;  | 
3849  | 0  |   INT32 z1, z2, z3;  | 
3850  | 0  |   JCOEFPTR inptr;  | 
3851  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
3852  | 0  |   int * wsptr;  | 
3853  | 0  |   JSAMPROW outptr;  | 
3854  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
3855  | 0  |   int ctr;  | 
3856  | 0  |   int workspace[6*3]; /* buffers data between passes */  | 
3857  |  |   SHIFT_TEMPS  | 
3858  |  |  | 
3859  |  |   /* Pass 1: process columns from input, store into work array.  | 
3860  |  |    * 3-point IDCT kernel, cK represents sqrt(2) * cos(K*pi/6).  | 
3861  |  |    */  | 
3862  |  | 
  | 
3863  | 0  |   inptr = coef_block;  | 
3864  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
3865  | 0  |   wsptr = workspace;  | 
3866  | 0  |   for (ctr = 0; ctr < 6; ctr++, inptr++, quantptr++, wsptr++) { | 
3867  |  |     /* Even part */  | 
3868  |  | 
  | 
3869  | 0  |     tmp0 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
3870  | 0  |     tmp0 <<= CONST_BITS;  | 
3871  |  |     /* Add fudge factor here for final descale. */  | 
3872  | 0  |     tmp0 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
3873  | 0  |     tmp2 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
3874  | 0  |     tmp12 = MULTIPLY(tmp2, FIX(0.707106781)); /* c2 */  | 
3875  | 0  |     tmp10 = tmp0 + tmp12;  | 
3876  | 0  |     tmp2 = tmp0 - tmp12 - tmp12;  | 
3877  |  |  | 
3878  |  |     /* Odd part */  | 
3879  |  | 
  | 
3880  | 0  |     tmp12 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
3881  | 0  |     tmp0 = MULTIPLY(tmp12, FIX(1.224744871)); /* c1 */  | 
3882  |  |  | 
3883  |  |     /* Final output stage */  | 
3884  |  | 
  | 
3885  | 0  |     wsptr[6*0] = (int) RIGHT_SHIFT(tmp10 + tmp0, CONST_BITS-PASS1_BITS);  | 
3886  | 0  |     wsptr[6*2] = (int) RIGHT_SHIFT(tmp10 - tmp0, CONST_BITS-PASS1_BITS);  | 
3887  | 0  |     wsptr[6*1] = (int) RIGHT_SHIFT(tmp2, CONST_BITS-PASS1_BITS);  | 
3888  | 0  |   }  | 
3889  |  |     | 
3890  |  |   /* Pass 2: process 3 rows from work array, store into output array.  | 
3891  |  |    * 6-point IDCT kernel, cK represents sqrt(2) * cos(K*pi/12).  | 
3892  |  |    */  | 
3893  |  | 
  | 
3894  | 0  |   wsptr = workspace;  | 
3895  | 0  |   for (ctr = 0; ctr < 3; ctr++) { | 
3896  | 0  |     outptr = output_buf[ctr] + output_col;  | 
3897  |  |  | 
3898  |  |     /* Even part */  | 
3899  |  |  | 
3900  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
3901  | 0  |     tmp0 = (INT32) wsptr[0] +  | 
3902  | 0  |        ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
3903  | 0  |         (ONE << (PASS1_BITS+2)));  | 
3904  | 0  |     tmp0 <<= CONST_BITS;  | 
3905  | 0  |     tmp2 = (INT32) wsptr[4];  | 
3906  | 0  |     tmp10 = MULTIPLY(tmp2, FIX(0.707106781));   /* c4 */  | 
3907  | 0  |     tmp1 = tmp0 + tmp10;  | 
3908  | 0  |     tmp11 = tmp0 - tmp10 - tmp10;  | 
3909  | 0  |     tmp10 = (INT32) wsptr[2];  | 
3910  | 0  |     tmp0 = MULTIPLY(tmp10, FIX(1.224744871));   /* c2 */  | 
3911  | 0  |     tmp10 = tmp1 + tmp0;  | 
3912  | 0  |     tmp12 = tmp1 - tmp0;  | 
3913  |  |  | 
3914  |  |     /* Odd part */  | 
3915  |  | 
  | 
3916  | 0  |     z1 = (INT32) wsptr[1];  | 
3917  | 0  |     z2 = (INT32) wsptr[3];  | 
3918  | 0  |     z3 = (INT32) wsptr[5];  | 
3919  | 0  |     tmp1 = MULTIPLY(z1 + z3, FIX(0.366025404)); /* c5 */  | 
3920  | 0  |     tmp0 = tmp1 + ((z1 + z2) << CONST_BITS);  | 
3921  | 0  |     tmp2 = tmp1 + ((z3 - z2) << CONST_BITS);  | 
3922  | 0  |     tmp1 = (z1 - z2 - z3) << CONST_BITS;  | 
3923  |  |  | 
3924  |  |     /* Final output stage */  | 
3925  |  | 
  | 
3926  | 0  |     outptr[0] = range_limit[(int) RIGHT_SHIFT(tmp10 + tmp0,  | 
3927  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3928  | 0  |           & RANGE_MASK];  | 
3929  | 0  |     outptr[5] = range_limit[(int) RIGHT_SHIFT(tmp10 - tmp0,  | 
3930  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3931  | 0  |           & RANGE_MASK];  | 
3932  | 0  |     outptr[1] = range_limit[(int) RIGHT_SHIFT(tmp11 + tmp1,  | 
3933  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3934  | 0  |           & RANGE_MASK];  | 
3935  | 0  |     outptr[4] = range_limit[(int) RIGHT_SHIFT(tmp11 - tmp1,  | 
3936  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3937  | 0  |           & RANGE_MASK];  | 
3938  | 0  |     outptr[2] = range_limit[(int) RIGHT_SHIFT(tmp12 + tmp2,  | 
3939  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3940  | 0  |           & RANGE_MASK];  | 
3941  | 0  |     outptr[3] = range_limit[(int) RIGHT_SHIFT(tmp12 - tmp2,  | 
3942  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
3943  | 0  |           & RANGE_MASK];  | 
3944  |  | 
  | 
3945  | 0  |     wsptr += 6;   /* advance pointer to next row */  | 
3946  | 0  |   }  | 
3947  | 0  | }  | 
3948  |  |  | 
3949  |  |  | 
3950  |  | /*  | 
3951  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
3952  |  |  * producing a 4x2 output block.  | 
3953  |  |  *  | 
3954  |  |  * 2-point IDCT in pass 1 (columns), 4-point in pass 2 (rows).  | 
3955  |  |  */  | 
3956  |  |  | 
3957  |  | GLOBAL(void)  | 
3958  |  | jpeg_idct_4x2 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
3959  |  |          JCOEFPTR coef_block,  | 
3960  |  |          JSAMPARRAY output_buf, JDIMENSION output_col)  | 
3961  | 0  | { | 
3962  | 0  |   INT32 tmp0, tmp2, tmp10, tmp12;  | 
3963  | 0  |   INT32 z1, z2, z3;  | 
3964  | 0  |   JCOEFPTR inptr;  | 
3965  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
3966  | 0  |   INT32 * wsptr;  | 
3967  | 0  |   JSAMPROW outptr;  | 
3968  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
3969  | 0  |   int ctr;  | 
3970  | 0  |   INT32 workspace[4*2]; /* buffers data between passes */  | 
3971  |  |   SHIFT_TEMPS  | 
3972  |  |  | 
3973  |  |   /* Pass 1: process columns from input, store into work array. */  | 
3974  |  | 
  | 
3975  | 0  |   inptr = coef_block;  | 
3976  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
3977  | 0  |   wsptr = workspace;  | 
3978  | 0  |   for (ctr = 0; ctr < 4; ctr++, inptr++, quantptr++, wsptr++) { | 
3979  |  |     /* Even part */  | 
3980  |  | 
  | 
3981  | 0  |     tmp10 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
3982  |  |  | 
3983  |  |     /* Odd part */  | 
3984  |  | 
  | 
3985  | 0  |     tmp0 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
3986  |  |  | 
3987  |  |     /* Final output stage */  | 
3988  |  | 
  | 
3989  | 0  |     wsptr[4*0] = tmp10 + tmp0;  | 
3990  | 0  |     wsptr[4*1] = tmp10 - tmp0;  | 
3991  | 0  |   }  | 
3992  |  |  | 
3993  |  |   /* Pass 2: process 2 rows from work array, store into output array.  | 
3994  |  |    * 4-point IDCT kernel,  | 
3995  |  |    * cK represents sqrt(2) * cos(K*pi/16) [refers to 8-point IDCT].  | 
3996  |  |    */  | 
3997  |  | 
  | 
3998  | 0  |   wsptr = workspace;  | 
3999  | 0  |   for (ctr = 0; ctr < 2; ctr++) { | 
4000  | 0  |     outptr = output_buf[ctr] + output_col;  | 
4001  |  |  | 
4002  |  |     /* Even part */  | 
4003  |  |  | 
4004  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
4005  | 0  |     tmp0 = wsptr[0] + ((((INT32) RANGE_CENTER) << 3) + (ONE << 2));  | 
4006  | 0  |     tmp2 = wsptr[2];  | 
4007  |  | 
  | 
4008  | 0  |     tmp10 = (tmp0 + tmp2) << CONST_BITS;  | 
4009  | 0  |     tmp12 = (tmp0 - tmp2) << CONST_BITS;  | 
4010  |  |  | 
4011  |  |     /* Odd part */  | 
4012  |  |     /* Same rotation as in the even part of the 8x8 LL&M IDCT */  | 
4013  |  | 
  | 
4014  | 0  |     z2 = wsptr[1];  | 
4015  | 0  |     z3 = wsptr[3];  | 
4016  |  | 
  | 
4017  | 0  |     z1 = MULTIPLY(z2 + z3, FIX_0_541196100);   /* c6 */  | 
4018  | 0  |     tmp0 = z1 + MULTIPLY(z2, FIX_0_765366865); /* c2-c6 */  | 
4019  | 0  |     tmp2 = z1 - MULTIPLY(z3, FIX_1_847759065); /* c2+c6 */  | 
4020  |  |  | 
4021  |  |     /* Final output stage */  | 
4022  |  | 
  | 
4023  | 0  |     outptr[0] = range_limit[(int) RIGHT_SHIFT(tmp10 + tmp0,  | 
4024  | 0  |                 CONST_BITS+3)  | 
4025  | 0  |           & RANGE_MASK];  | 
4026  | 0  |     outptr[3] = range_limit[(int) RIGHT_SHIFT(tmp10 - tmp0,  | 
4027  | 0  |                 CONST_BITS+3)  | 
4028  | 0  |           & RANGE_MASK];  | 
4029  | 0  |     outptr[1] = range_limit[(int) RIGHT_SHIFT(tmp12 + tmp2,  | 
4030  | 0  |                 CONST_BITS+3)  | 
4031  | 0  |           & RANGE_MASK];  | 
4032  | 0  |     outptr[2] = range_limit[(int) RIGHT_SHIFT(tmp12 - tmp2,  | 
4033  | 0  |                 CONST_BITS+3)  | 
4034  | 0  |           & RANGE_MASK];  | 
4035  |  | 
  | 
4036  | 0  |     wsptr += 4;   /* advance pointer to next row */  | 
4037  | 0  |   }  | 
4038  | 0  | }  | 
4039  |  |  | 
4040  |  |  | 
4041  |  | /*  | 
4042  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
4043  |  |  * producing a 2x1 output block.  | 
4044  |  |  *  | 
4045  |  |  * 1-point IDCT in pass 1 (columns), 2-point in pass 2 (rows).  | 
4046  |  |  */  | 
4047  |  |  | 
4048  |  | GLOBAL(void)  | 
4049  |  | jpeg_idct_2x1 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
4050  |  |          JCOEFPTR coef_block,  | 
4051  |  |          JSAMPARRAY output_buf, JDIMENSION output_col)  | 
4052  | 0  | { | 
4053  | 0  |   DCTELEM tmp0, tmp1;  | 
4054  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
4055  | 0  |   JSAMPROW outptr;  | 
4056  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
4057  | 0  |   ISHIFT_TEMPS  | 
4058  |  |  | 
4059  |  |   /* Pass 1: empty. */  | 
4060  |  |  | 
4061  |  |   /* Pass 2: process 1 row from input, store into output array. */  | 
4062  |  | 
  | 
4063  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
4064  | 0  |   outptr = output_buf[0] + output_col;  | 
4065  |  |  | 
4066  |  |   /* Even part */  | 
4067  |  | 
  | 
4068  | 0  |   tmp0 = DEQUANTIZE(coef_block[0], quantptr[0]);  | 
4069  |  |   /* Add range center and fudge factor for final descale and range-limit. */  | 
4070  | 0  |   tmp0 += (((DCTELEM) RANGE_CENTER) << 3) + (1 << 2);  | 
4071  |  |  | 
4072  |  |   /* Odd part */  | 
4073  |  | 
  | 
4074  | 0  |   tmp1 = DEQUANTIZE(coef_block[1], quantptr[1]);  | 
4075  |  |  | 
4076  |  |   /* Final output stage */  | 
4077  |  | 
  | 
4078  | 0  |   outptr[0] = range_limit[(int) IRIGHT_SHIFT(tmp0 + tmp1, 3) & RANGE_MASK];  | 
4079  | 0  |   outptr[1] = range_limit[(int) IRIGHT_SHIFT(tmp0 - tmp1, 3) & RANGE_MASK];  | 
4080  | 0  | }  | 
4081  |  |  | 
4082  |  |  | 
4083  |  | /*  | 
4084  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
4085  |  |  * producing an 8x16 output block.  | 
4086  |  |  *  | 
4087  |  |  * 16-point IDCT in pass 1 (columns), 8-point in pass 2 (rows).  | 
4088  |  |  */  | 
4089  |  |  | 
4090  |  | GLOBAL(void)  | 
4091  |  | jpeg_idct_8x16 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
4092  |  |     JCOEFPTR coef_block,  | 
4093  |  |     JSAMPARRAY output_buf, JDIMENSION output_col)  | 
4094  | 0  | { | 
4095  | 0  |   INT32 tmp0, tmp1, tmp2, tmp3, tmp10, tmp11, tmp12, tmp13;  | 
4096  | 0  |   INT32 tmp20, tmp21, tmp22, tmp23, tmp24, tmp25, tmp26, tmp27;  | 
4097  | 0  |   INT32 z1, z2, z3, z4;  | 
4098  | 0  |   JCOEFPTR inptr;  | 
4099  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
4100  | 0  |   int * wsptr;  | 
4101  | 0  |   JSAMPROW outptr;  | 
4102  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
4103  | 0  |   int ctr;  | 
4104  | 0  |   int workspace[8*16];  /* buffers data between passes */  | 
4105  |  |   SHIFT_TEMPS  | 
4106  |  |  | 
4107  |  |   /* Pass 1: process columns from input, store into work array.  | 
4108  |  |    * 16-point IDCT kernel, cK represents sqrt(2) * cos(K*pi/32).  | 
4109  |  |    */  | 
4110  |  | 
  | 
4111  | 0  |   inptr = coef_block;  | 
4112  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
4113  | 0  |   wsptr = workspace;  | 
4114  | 0  |   for (ctr = 0; ctr < 8; ctr++, inptr++, quantptr++, wsptr++) { | 
4115  |  |     /* Even part */  | 
4116  |  | 
  | 
4117  | 0  |     tmp0 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
4118  | 0  |     tmp0 <<= CONST_BITS;  | 
4119  |  |     /* Add fudge factor here for final descale. */  | 
4120  | 0  |     tmp0 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
4121  |  | 
  | 
4122  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*4], quantptr[DCTSIZE*4]);  | 
4123  | 0  |     tmp1 = MULTIPLY(z1, FIX(1.306562965));      /* c4[16] = c2[8] */  | 
4124  | 0  |     tmp2 = MULTIPLY(z1, FIX_0_541196100);       /* c12[16] = c6[8] */  | 
4125  |  | 
  | 
4126  | 0  |     tmp10 = tmp0 + tmp1;  | 
4127  | 0  |     tmp11 = tmp0 - tmp1;  | 
4128  | 0  |     tmp12 = tmp0 + tmp2;  | 
4129  | 0  |     tmp13 = tmp0 - tmp2;  | 
4130  |  | 
  | 
4131  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
4132  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*6], quantptr[DCTSIZE*6]);  | 
4133  | 0  |     z3 = z1 - z2;  | 
4134  | 0  |     z4 = MULTIPLY(z3, FIX(0.275899379));        /* c14[16] = c7[8] */  | 
4135  | 0  |     z3 = MULTIPLY(z3, FIX(1.387039845));        /* c2[16] = c1[8] */  | 
4136  |  | 
  | 
4137  | 0  |     tmp0 = z3 + MULTIPLY(z2, FIX_2_562915447);  /* (c6+c2)[16] = (c3+c1)[8] */  | 
4138  | 0  |     tmp1 = z4 + MULTIPLY(z1, FIX_0_899976223);  /* (c6-c14)[16] = (c3-c7)[8] */  | 
4139  | 0  |     tmp2 = z3 - MULTIPLY(z1, FIX(0.601344887)); /* (c2-c10)[16] = (c1-c5)[8] */  | 
4140  | 0  |     tmp3 = z4 - MULTIPLY(z2, FIX(0.509795579)); /* (c10-c14)[16] = (c5-c7)[8] */  | 
4141  |  | 
  | 
4142  | 0  |     tmp20 = tmp10 + tmp0;  | 
4143  | 0  |     tmp27 = tmp10 - tmp0;  | 
4144  | 0  |     tmp21 = tmp12 + tmp1;  | 
4145  | 0  |     tmp26 = tmp12 - tmp1;  | 
4146  | 0  |     tmp22 = tmp13 + tmp2;  | 
4147  | 0  |     tmp25 = tmp13 - tmp2;  | 
4148  | 0  |     tmp23 = tmp11 + tmp3;  | 
4149  | 0  |     tmp24 = tmp11 - tmp3;  | 
4150  |  |  | 
4151  |  |     /* Odd part */  | 
4152  |  | 
  | 
4153  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
4154  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
4155  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*5], quantptr[DCTSIZE*5]);  | 
4156  | 0  |     z4 = DEQUANTIZE(inptr[DCTSIZE*7], quantptr[DCTSIZE*7]);  | 
4157  |  | 
  | 
4158  | 0  |     tmp11 = z1 + z3;  | 
4159  |  | 
  | 
4160  | 0  |     tmp1  = MULTIPLY(z1 + z2, FIX(1.353318001));   /* c3 */  | 
4161  | 0  |     tmp2  = MULTIPLY(tmp11,   FIX(1.247225013));   /* c5 */  | 
4162  | 0  |     tmp3  = MULTIPLY(z1 + z4, FIX(1.093201867));   /* c7 */  | 
4163  | 0  |     tmp10 = MULTIPLY(z1 - z4, FIX(0.897167586));   /* c9 */  | 
4164  | 0  |     tmp11 = MULTIPLY(tmp11,   FIX(0.666655658));   /* c11 */  | 
4165  | 0  |     tmp12 = MULTIPLY(z1 - z2, FIX(0.410524528));   /* c13 */  | 
4166  | 0  |     tmp0  = tmp1 + tmp2 + tmp3 -  | 
4167  | 0  |       MULTIPLY(z1, FIX(2.286341144));        /* c7+c5+c3-c1 */  | 
4168  | 0  |     tmp13 = tmp10 + tmp11 + tmp12 -  | 
4169  | 0  |       MULTIPLY(z1, FIX(1.835730603));        /* c9+c11+c13-c15 */  | 
4170  | 0  |     z1    = MULTIPLY(z2 + z3, FIX(0.138617169));   /* c15 */  | 
4171  | 0  |     tmp1  += z1 + MULTIPLY(z2, FIX(0.071888074));  /* c9+c11-c3-c15 */  | 
4172  | 0  |     tmp2  += z1 - MULTIPLY(z3, FIX(1.125726048));  /* c5+c7+c15-c3 */  | 
4173  | 0  |     z1    = MULTIPLY(z3 - z2, FIX(1.407403738));   /* c1 */  | 
4174  | 0  |     tmp11 += z1 - MULTIPLY(z3, FIX(0.766367282));  /* c1+c11-c9-c13 */  | 
4175  | 0  |     tmp12 += z1 + MULTIPLY(z2, FIX(1.971951411));  /* c1+c5+c13-c7 */  | 
4176  | 0  |     z2    += z4;  | 
4177  | 0  |     z1    = MULTIPLY(z2, - FIX(0.666655658));      /* -c11 */  | 
4178  | 0  |     tmp1  += z1;  | 
4179  | 0  |     tmp3  += z1 + MULTIPLY(z4, FIX(1.065388962));  /* c3+c11+c15-c7 */  | 
4180  | 0  |     z2    = MULTIPLY(z2, - FIX(1.247225013));      /* -c5 */  | 
4181  | 0  |     tmp10 += z2 + MULTIPLY(z4, FIX(3.141271809));  /* c1+c5+c9-c13 */  | 
4182  | 0  |     tmp12 += z2;  | 
4183  | 0  |     z2    = MULTIPLY(z3 + z4, - FIX(1.353318001)); /* -c3 */  | 
4184  | 0  |     tmp2  += z2;  | 
4185  | 0  |     tmp3  += z2;  | 
4186  | 0  |     z2    = MULTIPLY(z4 - z3, FIX(0.410524528));   /* c13 */  | 
4187  | 0  |     tmp10 += z2;  | 
4188  | 0  |     tmp11 += z2;  | 
4189  |  |  | 
4190  |  |     /* Final output stage */  | 
4191  |  | 
  | 
4192  | 0  |     wsptr[8*0]  = (int) RIGHT_SHIFT(tmp20 + tmp0,  CONST_BITS-PASS1_BITS);  | 
4193  | 0  |     wsptr[8*15] = (int) RIGHT_SHIFT(tmp20 - tmp0,  CONST_BITS-PASS1_BITS);  | 
4194  | 0  |     wsptr[8*1]  = (int) RIGHT_SHIFT(tmp21 + tmp1,  CONST_BITS-PASS1_BITS);  | 
4195  | 0  |     wsptr[8*14] = (int) RIGHT_SHIFT(tmp21 - tmp1,  CONST_BITS-PASS1_BITS);  | 
4196  | 0  |     wsptr[8*2]  = (int) RIGHT_SHIFT(tmp22 + tmp2,  CONST_BITS-PASS1_BITS);  | 
4197  | 0  |     wsptr[8*13] = (int) RIGHT_SHIFT(tmp22 - tmp2,  CONST_BITS-PASS1_BITS);  | 
4198  | 0  |     wsptr[8*3]  = (int) RIGHT_SHIFT(tmp23 + tmp3,  CONST_BITS-PASS1_BITS);  | 
4199  | 0  |     wsptr[8*12] = (int) RIGHT_SHIFT(tmp23 - tmp3,  CONST_BITS-PASS1_BITS);  | 
4200  | 0  |     wsptr[8*4]  = (int) RIGHT_SHIFT(tmp24 + tmp10, CONST_BITS-PASS1_BITS);  | 
4201  | 0  |     wsptr[8*11] = (int) RIGHT_SHIFT(tmp24 - tmp10, CONST_BITS-PASS1_BITS);  | 
4202  | 0  |     wsptr[8*5]  = (int) RIGHT_SHIFT(tmp25 + tmp11, CONST_BITS-PASS1_BITS);  | 
4203  | 0  |     wsptr[8*10] = (int) RIGHT_SHIFT(tmp25 - tmp11, CONST_BITS-PASS1_BITS);  | 
4204  | 0  |     wsptr[8*6]  = (int) RIGHT_SHIFT(tmp26 + tmp12, CONST_BITS-PASS1_BITS);  | 
4205  | 0  |     wsptr[8*9]  = (int) RIGHT_SHIFT(tmp26 - tmp12, CONST_BITS-PASS1_BITS);  | 
4206  | 0  |     wsptr[8*7]  = (int) RIGHT_SHIFT(tmp27 + tmp13, CONST_BITS-PASS1_BITS);  | 
4207  | 0  |     wsptr[8*8]  = (int) RIGHT_SHIFT(tmp27 - tmp13, CONST_BITS-PASS1_BITS);  | 
4208  | 0  |   }  | 
4209  |  |  | 
4210  |  |   /* Pass 2: process rows from work array, store into output array.  | 
4211  |  |    * Note that we must descale the results by a factor of 8 == 2**3,  | 
4212  |  |    * and also undo the PASS1_BITS scaling.  | 
4213  |  |    * 8-point IDCT kernel, cK represents sqrt(2) * cos(K*pi/16).  | 
4214  |  |    */  | 
4215  |  | 
  | 
4216  | 0  |   wsptr = workspace;  | 
4217  | 0  |   for (ctr = 0; ctr < 16; ctr++) { | 
4218  | 0  |     outptr = output_buf[ctr] + output_col;  | 
4219  |  |  | 
4220  |  |     /* Even part: reverse the even part of the forward DCT.  | 
4221  |  |      * The rotator is c(-6).  | 
4222  |  |      */  | 
4223  |  |  | 
4224  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
4225  | 0  |     z2 = (INT32) wsptr[0] +  | 
4226  | 0  |      ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
4227  | 0  |       (ONE << (PASS1_BITS+2)));  | 
4228  | 0  |     z3 = (INT32) wsptr[4];  | 
4229  |  | 
  | 
4230  | 0  |     tmp0 = (z2 + z3) << CONST_BITS;  | 
4231  | 0  |     tmp1 = (z2 - z3) << CONST_BITS;  | 
4232  |  | 
  | 
4233  | 0  |     z2 = (INT32) wsptr[2];  | 
4234  | 0  |     z3 = (INT32) wsptr[6];  | 
4235  |  | 
  | 
4236  | 0  |     z1 = MULTIPLY(z2 + z3, FIX_0_541196100);       /* c6 */  | 
4237  | 0  |     tmp2 = z1 + MULTIPLY(z2, FIX_0_765366865);     /* c2-c6 */  | 
4238  | 0  |     tmp3 = z1 - MULTIPLY(z3, FIX_1_847759065);     /* c2+c6 */  | 
4239  |  | 
  | 
4240  | 0  |     tmp10 = tmp0 + tmp2;  | 
4241  | 0  |     tmp13 = tmp0 - tmp2;  | 
4242  | 0  |     tmp11 = tmp1 + tmp3;  | 
4243  | 0  |     tmp12 = tmp1 - tmp3;  | 
4244  |  |  | 
4245  |  |     /* Odd part per figure 8; the matrix is unitary and hence its  | 
4246  |  |      * transpose is its inverse.  i0..i3 are y7,y5,y3,y1 respectively.  | 
4247  |  |      */  | 
4248  |  | 
  | 
4249  | 0  |     tmp0 = (INT32) wsptr[7];  | 
4250  | 0  |     tmp1 = (INT32) wsptr[5];  | 
4251  | 0  |     tmp2 = (INT32) wsptr[3];  | 
4252  | 0  |     tmp3 = (INT32) wsptr[1];  | 
4253  |  | 
  | 
4254  | 0  |     z2 = tmp0 + tmp2;  | 
4255  | 0  |     z3 = tmp1 + tmp3;  | 
4256  |  | 
  | 
4257  | 0  |     z1 = MULTIPLY(z2 + z3, FIX_1_175875602);       /*  c3 */  | 
4258  | 0  |     z2 = MULTIPLY(z2, - FIX_1_961570560);          /* -c3-c5 */  | 
4259  | 0  |     z3 = MULTIPLY(z3, - FIX_0_390180644);          /* -c3+c5 */  | 
4260  | 0  |     z2 += z1;  | 
4261  | 0  |     z3 += z1;  | 
4262  |  | 
  | 
4263  | 0  |     z1 = MULTIPLY(tmp0 + tmp3, - FIX_0_899976223); /* -c3+c7 */  | 
4264  | 0  |     tmp0 = MULTIPLY(tmp0, FIX_0_298631336);        /* -c1+c3+c5-c7 */  | 
4265  | 0  |     tmp3 = MULTIPLY(tmp3, FIX_1_501321110);        /*  c1+c3-c5-c7 */  | 
4266  | 0  |     tmp0 += z1 + z2;  | 
4267  | 0  |     tmp3 += z1 + z3;  | 
4268  |  | 
  | 
4269  | 0  |     z1 = MULTIPLY(tmp1 + tmp2, - FIX_2_562915447); /* -c1-c3 */  | 
4270  | 0  |     tmp1 = MULTIPLY(tmp1, FIX_2_053119869);        /*  c1+c3-c5+c7 */  | 
4271  | 0  |     tmp2 = MULTIPLY(tmp2, FIX_3_072711026);        /*  c1+c3+c5-c7 */  | 
4272  | 0  |     tmp1 += z1 + z3;  | 
4273  | 0  |     tmp2 += z1 + z2;  | 
4274  |  |  | 
4275  |  |     /* Final output stage: inputs are tmp10..tmp13, tmp0..tmp3 */  | 
4276  |  | 
  | 
4277  | 0  |     outptr[0] = range_limit[(int) RIGHT_SHIFT(tmp10 + tmp3,  | 
4278  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4279  | 0  |           & RANGE_MASK];  | 
4280  | 0  |     outptr[7] = range_limit[(int) RIGHT_SHIFT(tmp10 - tmp3,  | 
4281  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4282  | 0  |           & RANGE_MASK];  | 
4283  | 0  |     outptr[1] = range_limit[(int) RIGHT_SHIFT(tmp11 + tmp2,  | 
4284  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4285  | 0  |           & RANGE_MASK];  | 
4286  | 0  |     outptr[6] = range_limit[(int) RIGHT_SHIFT(tmp11 - tmp2,  | 
4287  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4288  | 0  |           & RANGE_MASK];  | 
4289  | 0  |     outptr[2] = range_limit[(int) RIGHT_SHIFT(tmp12 + tmp1,  | 
4290  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4291  | 0  |           & RANGE_MASK];  | 
4292  | 0  |     outptr[5] = range_limit[(int) RIGHT_SHIFT(tmp12 - tmp1,  | 
4293  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4294  | 0  |           & RANGE_MASK];  | 
4295  | 0  |     outptr[3] = range_limit[(int) RIGHT_SHIFT(tmp13 + tmp0,  | 
4296  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4297  | 0  |           & RANGE_MASK];  | 
4298  | 0  |     outptr[4] = range_limit[(int) RIGHT_SHIFT(tmp13 - tmp0,  | 
4299  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4300  | 0  |           & RANGE_MASK];  | 
4301  |  | 
  | 
4302  | 0  |     wsptr += DCTSIZE;   /* advance pointer to next row */  | 
4303  | 0  |   }  | 
4304  | 0  | }  | 
4305  |  |  | 
4306  |  |  | 
4307  |  | /*  | 
4308  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
4309  |  |  * producing a 7x14 output block.  | 
4310  |  |  *  | 
4311  |  |  * 14-point IDCT in pass 1 (columns), 7-point in pass 2 (rows).  | 
4312  |  |  */  | 
4313  |  |  | 
4314  |  | GLOBAL(void)  | 
4315  |  | jpeg_idct_7x14 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
4316  |  |     JCOEFPTR coef_block,  | 
4317  |  |     JSAMPARRAY output_buf, JDIMENSION output_col)  | 
4318  | 0  | { | 
4319  | 0  |   INT32 tmp10, tmp11, tmp12, tmp13, tmp14, tmp15, tmp16;  | 
4320  | 0  |   INT32 tmp20, tmp21, tmp22, tmp23, tmp24, tmp25, tmp26;  | 
4321  | 0  |   INT32 z1, z2, z3, z4;  | 
4322  | 0  |   JCOEFPTR inptr;  | 
4323  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
4324  | 0  |   int * wsptr;  | 
4325  | 0  |   JSAMPROW outptr;  | 
4326  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
4327  | 0  |   int ctr;  | 
4328  | 0  |   int workspace[7*14];  /* buffers data between passes */  | 
4329  |  |   SHIFT_TEMPS  | 
4330  |  |  | 
4331  |  |   /* Pass 1: process columns from input, store into work array.  | 
4332  |  |    * 14-point IDCT kernel, cK represents sqrt(2) * cos(K*pi/28).  | 
4333  |  |    */  | 
4334  |  | 
  | 
4335  | 0  |   inptr = coef_block;  | 
4336  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
4337  | 0  |   wsptr = workspace;  | 
4338  | 0  |   for (ctr = 0; ctr < 7; ctr++, inptr++, quantptr++, wsptr++) { | 
4339  |  |     /* Even part */  | 
4340  |  | 
  | 
4341  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
4342  | 0  |     z1 <<= CONST_BITS;  | 
4343  |  |     /* Add fudge factor here for final descale. */  | 
4344  | 0  |     z1 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
4345  | 0  |     z4 = DEQUANTIZE(inptr[DCTSIZE*4], quantptr[DCTSIZE*4]);  | 
4346  | 0  |     z2 = MULTIPLY(z4, FIX(1.274162392));         /* c4 */  | 
4347  | 0  |     z3 = MULTIPLY(z4, FIX(0.314692123));         /* c12 */  | 
4348  | 0  |     z4 = MULTIPLY(z4, FIX(0.881747734));         /* c8 */  | 
4349  |  | 
  | 
4350  | 0  |     tmp10 = z1 + z2;  | 
4351  | 0  |     tmp11 = z1 + z3;  | 
4352  | 0  |     tmp12 = z1 - z4;  | 
4353  |  | 
  | 
4354  | 0  |     tmp23 = RIGHT_SHIFT(z1 - ((z2 + z3 - z4) << 1), /* c0 = (c4+c12-c8)*2 */  | 
4355  | 0  |       CONST_BITS-PASS1_BITS);  | 
4356  |  | 
  | 
4357  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
4358  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*6], quantptr[DCTSIZE*6]);  | 
4359  |  | 
  | 
4360  | 0  |     z3 = MULTIPLY(z1 + z2, FIX(1.105676686));    /* c6 */  | 
4361  |  | 
  | 
4362  | 0  |     tmp13 = z3 + MULTIPLY(z1, FIX(0.273079590)); /* c2-c6 */  | 
4363  | 0  |     tmp14 = z3 - MULTIPLY(z2, FIX(1.719280954)); /* c6+c10 */  | 
4364  | 0  |     tmp15 = MULTIPLY(z1, FIX(0.613604268)) -     /* c10 */  | 
4365  | 0  |       MULTIPLY(z2, FIX(1.378756276));      /* c2 */  | 
4366  |  | 
  | 
4367  | 0  |     tmp20 = tmp10 + tmp13;  | 
4368  | 0  |     tmp26 = tmp10 - tmp13;  | 
4369  | 0  |     tmp21 = tmp11 + tmp14;  | 
4370  | 0  |     tmp25 = tmp11 - tmp14;  | 
4371  | 0  |     tmp22 = tmp12 + tmp15;  | 
4372  | 0  |     tmp24 = tmp12 - tmp15;  | 
4373  |  |  | 
4374  |  |     /* Odd part */  | 
4375  |  | 
  | 
4376  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
4377  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
4378  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*5], quantptr[DCTSIZE*5]);  | 
4379  | 0  |     z4 = DEQUANTIZE(inptr[DCTSIZE*7], quantptr[DCTSIZE*7]);  | 
4380  | 0  |     tmp13 = z4 << CONST_BITS;  | 
4381  |  | 
  | 
4382  | 0  |     tmp14 = z1 + z3;  | 
4383  | 0  |     tmp11 = MULTIPLY(z1 + z2, FIX(1.334852607));           /* c3 */  | 
4384  | 0  |     tmp12 = MULTIPLY(tmp14, FIX(1.197448846));             /* c5 */  | 
4385  | 0  |     tmp10 = tmp11 + tmp12 + tmp13 - MULTIPLY(z1, FIX(1.126980169)); /* c3+c5-c1 */  | 
4386  | 0  |     tmp14 = MULTIPLY(tmp14, FIX(0.752406978));             /* c9 */  | 
4387  | 0  |     tmp16 = tmp14 - MULTIPLY(z1, FIX(1.061150426));        /* c9+c11-c13 */  | 
4388  | 0  |     z1    -= z2;  | 
4389  | 0  |     tmp15 = MULTIPLY(z1, FIX(0.467085129)) - tmp13;        /* c11 */  | 
4390  | 0  |     tmp16 += tmp15;  | 
4391  | 0  |     z1    += z4;  | 
4392  | 0  |     z4    = MULTIPLY(z2 + z3, - FIX(0.158341681)) - tmp13; /* -c13 */  | 
4393  | 0  |     tmp11 += z4 - MULTIPLY(z2, FIX(0.424103948));          /* c3-c9-c13 */  | 
4394  | 0  |     tmp12 += z4 - MULTIPLY(z3, FIX(2.373959773));          /* c3+c5-c13 */  | 
4395  | 0  |     z4    = MULTIPLY(z3 - z2, FIX(1.405321284));           /* c1 */  | 
4396  | 0  |     tmp14 += z4 + tmp13 - MULTIPLY(z3, FIX(1.6906431334)); /* c1+c9-c11 */  | 
4397  | 0  |     tmp15 += z4 + MULTIPLY(z2, FIX(0.674957567));          /* c1+c11-c5 */  | 
4398  |  | 
  | 
4399  | 0  |     tmp13 = (z1 - z3) << PASS1_BITS;  | 
4400  |  |  | 
4401  |  |     /* Final output stage */  | 
4402  |  | 
  | 
4403  | 0  |     wsptr[7*0]  = (int) RIGHT_SHIFT(tmp20 + tmp10, CONST_BITS-PASS1_BITS);  | 
4404  | 0  |     wsptr[7*13] = (int) RIGHT_SHIFT(tmp20 - tmp10, CONST_BITS-PASS1_BITS);  | 
4405  | 0  |     wsptr[7*1]  = (int) RIGHT_SHIFT(tmp21 + tmp11, CONST_BITS-PASS1_BITS);  | 
4406  | 0  |     wsptr[7*12] = (int) RIGHT_SHIFT(tmp21 - tmp11, CONST_BITS-PASS1_BITS);  | 
4407  | 0  |     wsptr[7*2]  = (int) RIGHT_SHIFT(tmp22 + tmp12, CONST_BITS-PASS1_BITS);  | 
4408  | 0  |     wsptr[7*11] = (int) RIGHT_SHIFT(tmp22 - tmp12, CONST_BITS-PASS1_BITS);  | 
4409  | 0  |     wsptr[7*3]  = (int) (tmp23 + tmp13);  | 
4410  | 0  |     wsptr[7*10] = (int) (tmp23 - tmp13);  | 
4411  | 0  |     wsptr[7*4]  = (int) RIGHT_SHIFT(tmp24 + tmp14, CONST_BITS-PASS1_BITS);  | 
4412  | 0  |     wsptr[7*9]  = (int) RIGHT_SHIFT(tmp24 - tmp14, CONST_BITS-PASS1_BITS);  | 
4413  | 0  |     wsptr[7*5]  = (int) RIGHT_SHIFT(tmp25 + tmp15, CONST_BITS-PASS1_BITS);  | 
4414  | 0  |     wsptr[7*8]  = (int) RIGHT_SHIFT(tmp25 - tmp15, CONST_BITS-PASS1_BITS);  | 
4415  | 0  |     wsptr[7*6]  = (int) RIGHT_SHIFT(tmp26 + tmp16, CONST_BITS-PASS1_BITS);  | 
4416  | 0  |     wsptr[7*7]  = (int) RIGHT_SHIFT(tmp26 - tmp16, CONST_BITS-PASS1_BITS);  | 
4417  | 0  |   }  | 
4418  |  |  | 
4419  |  |   /* Pass 2: process 14 rows from work array, store into output array.  | 
4420  |  |    * 7-point IDCT kernel, cK represents sqrt(2) * cos(K*pi/14).  | 
4421  |  |    */  | 
4422  |  | 
  | 
4423  | 0  |   wsptr = workspace;  | 
4424  | 0  |   for (ctr = 0; ctr < 14; ctr++) { | 
4425  | 0  |     outptr = output_buf[ctr] + output_col;  | 
4426  |  |  | 
4427  |  |     /* Even part */  | 
4428  |  |  | 
4429  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
4430  | 0  |     tmp23 = (INT32) wsptr[0] +  | 
4431  | 0  |         ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
4432  | 0  |          (ONE << (PASS1_BITS+2)));  | 
4433  | 0  |     tmp23 <<= CONST_BITS;  | 
4434  |  | 
  | 
4435  | 0  |     z1 = (INT32) wsptr[2];  | 
4436  | 0  |     z2 = (INT32) wsptr[4];  | 
4437  | 0  |     z3 = (INT32) wsptr[6];  | 
4438  |  | 
  | 
4439  | 0  |     tmp20 = MULTIPLY(z2 - z3, FIX(0.881747734));       /* c4 */  | 
4440  | 0  |     tmp22 = MULTIPLY(z1 - z2, FIX(0.314692123));       /* c6 */  | 
4441  | 0  |     tmp21 = tmp20 + tmp22 + tmp23 - MULTIPLY(z2, FIX(1.841218003)); /* c2+c4-c6 */  | 
4442  | 0  |     tmp10 = z1 + z3;  | 
4443  | 0  |     z2 -= tmp10;  | 
4444  | 0  |     tmp10 = MULTIPLY(tmp10, FIX(1.274162392)) + tmp23; /* c2 */  | 
4445  | 0  |     tmp20 += tmp10 - MULTIPLY(z3, FIX(0.077722536));   /* c2-c4-c6 */  | 
4446  | 0  |     tmp22 += tmp10 - MULTIPLY(z1, FIX(2.470602249));   /* c2+c4+c6 */  | 
4447  | 0  |     tmp23 += MULTIPLY(z2, FIX(1.414213562));           /* c0 */  | 
4448  |  |  | 
4449  |  |     /* Odd part */  | 
4450  |  | 
  | 
4451  | 0  |     z1 = (INT32) wsptr[1];  | 
4452  | 0  |     z2 = (INT32) wsptr[3];  | 
4453  | 0  |     z3 = (INT32) wsptr[5];  | 
4454  |  | 
  | 
4455  | 0  |     tmp11 = MULTIPLY(z1 + z2, FIX(0.935414347));       /* (c3+c1-c5)/2 */  | 
4456  | 0  |     tmp12 = MULTIPLY(z1 - z2, FIX(0.170262339));       /* (c3+c5-c1)/2 */  | 
4457  | 0  |     tmp10 = tmp11 - tmp12;  | 
4458  | 0  |     tmp11 += tmp12;  | 
4459  | 0  |     tmp12 = MULTIPLY(z2 + z3, - FIX(1.378756276));     /* -c1 */  | 
4460  | 0  |     tmp11 += tmp12;  | 
4461  | 0  |     z2 = MULTIPLY(z1 + z3, FIX(0.613604268));          /* c5 */  | 
4462  | 0  |     tmp10 += z2;  | 
4463  | 0  |     tmp12 += z2 + MULTIPLY(z3, FIX(1.870828693));      /* c3+c1-c5 */  | 
4464  |  |  | 
4465  |  |     /* Final output stage */  | 
4466  |  | 
  | 
4467  | 0  |     outptr[0] = range_limit[(int) RIGHT_SHIFT(tmp20 + tmp10,  | 
4468  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4469  | 0  |           & RANGE_MASK];  | 
4470  | 0  |     outptr[6] = range_limit[(int) RIGHT_SHIFT(tmp20 - tmp10,  | 
4471  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4472  | 0  |           & RANGE_MASK];  | 
4473  | 0  |     outptr[1] = range_limit[(int) RIGHT_SHIFT(tmp21 + tmp11,  | 
4474  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4475  | 0  |           & RANGE_MASK];  | 
4476  | 0  |     outptr[5] = range_limit[(int) RIGHT_SHIFT(tmp21 - tmp11,  | 
4477  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4478  | 0  |           & RANGE_MASK];  | 
4479  | 0  |     outptr[2] = range_limit[(int) RIGHT_SHIFT(tmp22 + tmp12,  | 
4480  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4481  | 0  |           & RANGE_MASK];  | 
4482  | 0  |     outptr[4] = range_limit[(int) RIGHT_SHIFT(tmp22 - tmp12,  | 
4483  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4484  | 0  |           & RANGE_MASK];  | 
4485  | 0  |     outptr[3] = range_limit[(int) RIGHT_SHIFT(tmp23,  | 
4486  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4487  | 0  |           & RANGE_MASK];  | 
4488  |  | 
  | 
4489  | 0  |     wsptr += 7;   /* advance pointer to next row */  | 
4490  | 0  |   }  | 
4491  | 0  | }  | 
4492  |  |  | 
4493  |  |  | 
4494  |  | /*  | 
4495  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
4496  |  |  * producing a 6x12 output block.  | 
4497  |  |  *  | 
4498  |  |  * 12-point IDCT in pass 1 (columns), 6-point in pass 2 (rows).  | 
4499  |  |  */  | 
4500  |  |  | 
4501  |  | GLOBAL(void)  | 
4502  |  | jpeg_idct_6x12 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
4503  |  |     JCOEFPTR coef_block,  | 
4504  |  |     JSAMPARRAY output_buf, JDIMENSION output_col)  | 
4505  | 0  | { | 
4506  | 0  |   INT32 tmp10, tmp11, tmp12, tmp13, tmp14, tmp15;  | 
4507  | 0  |   INT32 tmp20, tmp21, tmp22, tmp23, tmp24, tmp25;  | 
4508  | 0  |   INT32 z1, z2, z3, z4;  | 
4509  | 0  |   JCOEFPTR inptr;  | 
4510  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
4511  | 0  |   int * wsptr;  | 
4512  | 0  |   JSAMPROW outptr;  | 
4513  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
4514  | 0  |   int ctr;  | 
4515  | 0  |   int workspace[6*12];  /* buffers data between passes */  | 
4516  |  |   SHIFT_TEMPS  | 
4517  |  |  | 
4518  |  |   /* Pass 1: process columns from input, store into work array.  | 
4519  |  |    * 12-point IDCT kernel, cK represents sqrt(2) * cos(K*pi/24).  | 
4520  |  |    */  | 
4521  |  | 
  | 
4522  | 0  |   inptr = coef_block;  | 
4523  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
4524  | 0  |   wsptr = workspace;  | 
4525  | 0  |   for (ctr = 0; ctr < 6; ctr++, inptr++, quantptr++, wsptr++) { | 
4526  |  |     /* Even part */  | 
4527  |  | 
  | 
4528  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
4529  | 0  |     z3 <<= CONST_BITS;  | 
4530  |  |     /* Add fudge factor here for final descale. */  | 
4531  | 0  |     z3 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
4532  |  | 
  | 
4533  | 0  |     z4 = DEQUANTIZE(inptr[DCTSIZE*4], quantptr[DCTSIZE*4]);  | 
4534  | 0  |     z4 = MULTIPLY(z4, FIX(1.224744871)); /* c4 */  | 
4535  |  | 
  | 
4536  | 0  |     tmp10 = z3 + z4;  | 
4537  | 0  |     tmp11 = z3 - z4;  | 
4538  |  | 
  | 
4539  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
4540  | 0  |     z4 = MULTIPLY(z1, FIX(1.366025404)); /* c2 */  | 
4541  | 0  |     z1 <<= CONST_BITS;  | 
4542  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*6], quantptr[DCTSIZE*6]);  | 
4543  | 0  |     z2 <<= CONST_BITS;  | 
4544  |  | 
  | 
4545  | 0  |     tmp12 = z1 - z2;  | 
4546  |  | 
  | 
4547  | 0  |     tmp21 = z3 + tmp12;  | 
4548  | 0  |     tmp24 = z3 - tmp12;  | 
4549  |  | 
  | 
4550  | 0  |     tmp12 = z4 + z2;  | 
4551  |  | 
  | 
4552  | 0  |     tmp20 = tmp10 + tmp12;  | 
4553  | 0  |     tmp25 = tmp10 - tmp12;  | 
4554  |  | 
  | 
4555  | 0  |     tmp12 = z4 - z1 - z2;  | 
4556  |  | 
  | 
4557  | 0  |     tmp22 = tmp11 + tmp12;  | 
4558  | 0  |     tmp23 = tmp11 - tmp12;  | 
4559  |  |  | 
4560  |  |     /* Odd part */  | 
4561  |  | 
  | 
4562  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
4563  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
4564  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*5], quantptr[DCTSIZE*5]);  | 
4565  | 0  |     z4 = DEQUANTIZE(inptr[DCTSIZE*7], quantptr[DCTSIZE*7]);  | 
4566  |  | 
  | 
4567  | 0  |     tmp11 = MULTIPLY(z2, FIX(1.306562965));                  /* c3 */  | 
4568  | 0  |     tmp14 = MULTIPLY(z2, - FIX_0_541196100);                 /* -c9 */  | 
4569  |  | 
  | 
4570  | 0  |     tmp10 = z1 + z3;  | 
4571  | 0  |     tmp15 = MULTIPLY(tmp10 + z4, FIX(0.860918669));          /* c7 */  | 
4572  | 0  |     tmp12 = tmp15 + MULTIPLY(tmp10, FIX(0.261052384));       /* c5-c7 */  | 
4573  | 0  |     tmp10 = tmp12 + tmp11 + MULTIPLY(z1, FIX(0.280143716));  /* c1-c5 */  | 
4574  | 0  |     tmp13 = MULTIPLY(z3 + z4, - FIX(1.045510580));           /* -(c7+c11) */  | 
4575  | 0  |     tmp12 += tmp13 + tmp14 - MULTIPLY(z3, FIX(1.478575242)); /* c1+c5-c7-c11 */  | 
4576  | 0  |     tmp13 += tmp15 - tmp11 + MULTIPLY(z4, FIX(1.586706681)); /* c1+c11 */  | 
4577  | 0  |     tmp15 += tmp14 - MULTIPLY(z1, FIX(0.676326758)) -        /* c7-c11 */  | 
4578  | 0  |        MULTIPLY(z4, FIX(1.982889723));                 /* c5+c7 */  | 
4579  |  | 
  | 
4580  | 0  |     z1 -= z4;  | 
4581  | 0  |     z2 -= z3;  | 
4582  | 0  |     z3 = MULTIPLY(z1 + z2, FIX_0_541196100);                 /* c9 */  | 
4583  | 0  |     tmp11 = z3 + MULTIPLY(z1, FIX_0_765366865);              /* c3-c9 */  | 
4584  | 0  |     tmp14 = z3 - MULTIPLY(z2, FIX_1_847759065);              /* c3+c9 */  | 
4585  |  |  | 
4586  |  |     /* Final output stage */  | 
4587  |  | 
  | 
4588  | 0  |     wsptr[6*0]  = (int) RIGHT_SHIFT(tmp20 + tmp10, CONST_BITS-PASS1_BITS);  | 
4589  | 0  |     wsptr[6*11] = (int) RIGHT_SHIFT(tmp20 - tmp10, CONST_BITS-PASS1_BITS);  | 
4590  | 0  |     wsptr[6*1]  = (int) RIGHT_SHIFT(tmp21 + tmp11, CONST_BITS-PASS1_BITS);  | 
4591  | 0  |     wsptr[6*10] = (int) RIGHT_SHIFT(tmp21 - tmp11, CONST_BITS-PASS1_BITS);  | 
4592  | 0  |     wsptr[6*2]  = (int) RIGHT_SHIFT(tmp22 + tmp12, CONST_BITS-PASS1_BITS);  | 
4593  | 0  |     wsptr[6*9]  = (int) RIGHT_SHIFT(tmp22 - tmp12, CONST_BITS-PASS1_BITS);  | 
4594  | 0  |     wsptr[6*3]  = (int) RIGHT_SHIFT(tmp23 + tmp13, CONST_BITS-PASS1_BITS);  | 
4595  | 0  |     wsptr[6*8]  = (int) RIGHT_SHIFT(tmp23 - tmp13, CONST_BITS-PASS1_BITS);  | 
4596  | 0  |     wsptr[6*4]  = (int) RIGHT_SHIFT(tmp24 + tmp14, CONST_BITS-PASS1_BITS);  | 
4597  | 0  |     wsptr[6*7]  = (int) RIGHT_SHIFT(tmp24 - tmp14, CONST_BITS-PASS1_BITS);  | 
4598  | 0  |     wsptr[6*5]  = (int) RIGHT_SHIFT(tmp25 + tmp15, CONST_BITS-PASS1_BITS);  | 
4599  | 0  |     wsptr[6*6]  = (int) RIGHT_SHIFT(tmp25 - tmp15, CONST_BITS-PASS1_BITS);  | 
4600  | 0  |   }  | 
4601  |  |  | 
4602  |  |   /* Pass 2: process 12 rows from work array, store into output array.  | 
4603  |  |    * 6-point IDCT kernel, cK represents sqrt(2) * cos(K*pi/12).  | 
4604  |  |    */  | 
4605  |  | 
  | 
4606  | 0  |   wsptr = workspace;  | 
4607  | 0  |   for (ctr = 0; ctr < 12; ctr++) { | 
4608  | 0  |     outptr = output_buf[ctr] + output_col;  | 
4609  |  |  | 
4610  |  |     /* Even part */  | 
4611  |  |  | 
4612  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
4613  | 0  |     tmp10 = (INT32) wsptr[0] +  | 
4614  | 0  |         ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
4615  | 0  |          (ONE << (PASS1_BITS+2)));  | 
4616  | 0  |     tmp10 <<= CONST_BITS;  | 
4617  | 0  |     tmp12 = (INT32) wsptr[4];  | 
4618  | 0  |     tmp20 = MULTIPLY(tmp12, FIX(0.707106781));   /* c4 */  | 
4619  | 0  |     tmp11 = tmp10 + tmp20;  | 
4620  | 0  |     tmp21 = tmp10 - tmp20 - tmp20;  | 
4621  | 0  |     tmp20 = (INT32) wsptr[2];  | 
4622  | 0  |     tmp10 = MULTIPLY(tmp20, FIX(1.224744871));   /* c2 */  | 
4623  | 0  |     tmp20 = tmp11 + tmp10;  | 
4624  | 0  |     tmp22 = tmp11 - tmp10;  | 
4625  |  |  | 
4626  |  |     /* Odd part */  | 
4627  |  | 
  | 
4628  | 0  |     z1 = (INT32) wsptr[1];  | 
4629  | 0  |     z2 = (INT32) wsptr[3];  | 
4630  | 0  |     z3 = (INT32) wsptr[5];  | 
4631  | 0  |     tmp11 = MULTIPLY(z1 + z3, FIX(0.366025404)); /* c5 */  | 
4632  | 0  |     tmp10 = tmp11 + ((z1 + z2) << CONST_BITS);  | 
4633  | 0  |     tmp12 = tmp11 + ((z3 - z2) << CONST_BITS);  | 
4634  | 0  |     tmp11 = (z1 - z2 - z3) << CONST_BITS;  | 
4635  |  |  | 
4636  |  |     /* Final output stage */  | 
4637  |  | 
  | 
4638  | 0  |     outptr[0] = range_limit[(int) RIGHT_SHIFT(tmp20 + tmp10,  | 
4639  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4640  | 0  |           & RANGE_MASK];  | 
4641  | 0  |     outptr[5] = range_limit[(int) RIGHT_SHIFT(tmp20 - tmp10,  | 
4642  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4643  | 0  |           & RANGE_MASK];  | 
4644  | 0  |     outptr[1] = range_limit[(int) RIGHT_SHIFT(tmp21 + tmp11,  | 
4645  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4646  | 0  |           & RANGE_MASK];  | 
4647  | 0  |     outptr[4] = range_limit[(int) RIGHT_SHIFT(tmp21 - tmp11,  | 
4648  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4649  | 0  |           & RANGE_MASK];  | 
4650  | 0  |     outptr[2] = range_limit[(int) RIGHT_SHIFT(tmp22 + tmp12,  | 
4651  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4652  | 0  |           & RANGE_MASK];  | 
4653  | 0  |     outptr[3] = range_limit[(int) RIGHT_SHIFT(tmp22 - tmp12,  | 
4654  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4655  | 0  |           & RANGE_MASK];  | 
4656  |  | 
  | 
4657  | 0  |     wsptr += 6;   /* advance pointer to next row */  | 
4658  | 0  |   }  | 
4659  | 0  | }  | 
4660  |  |  | 
4661  |  |  | 
4662  |  | /*  | 
4663  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
4664  |  |  * producing a 5x10 output block.  | 
4665  |  |  *  | 
4666  |  |  * 10-point IDCT in pass 1 (columns), 5-point in pass 2 (rows).  | 
4667  |  |  */  | 
4668  |  |  | 
4669  |  | GLOBAL(void)  | 
4670  |  | jpeg_idct_5x10 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
4671  |  |     JCOEFPTR coef_block,  | 
4672  |  |     JSAMPARRAY output_buf, JDIMENSION output_col)  | 
4673  | 0  | { | 
4674  | 0  |   INT32 tmp10, tmp11, tmp12, tmp13, tmp14;  | 
4675  | 0  |   INT32 tmp20, tmp21, tmp22, tmp23, tmp24;  | 
4676  | 0  |   INT32 z1, z2, z3, z4, z5;  | 
4677  | 0  |   JCOEFPTR inptr;  | 
4678  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
4679  | 0  |   int * wsptr;  | 
4680  | 0  |   JSAMPROW outptr;  | 
4681  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
4682  | 0  |   int ctr;  | 
4683  | 0  |   int workspace[5*10];  /* buffers data between passes */  | 
4684  |  |   SHIFT_TEMPS  | 
4685  |  |  | 
4686  |  |   /* Pass 1: process columns from input, store into work array.  | 
4687  |  |    * 10-point IDCT kernel, cK represents sqrt(2) * cos(K*pi/20).  | 
4688  |  |    */  | 
4689  |  | 
  | 
4690  | 0  |   inptr = coef_block;  | 
4691  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
4692  | 0  |   wsptr = workspace;  | 
4693  | 0  |   for (ctr = 0; ctr < 5; ctr++, inptr++, quantptr++, wsptr++) { | 
4694  |  |     /* Even part */  | 
4695  |  | 
  | 
4696  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
4697  | 0  |     z3 <<= CONST_BITS;  | 
4698  |  |     /* Add fudge factor here for final descale. */  | 
4699  | 0  |     z3 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
4700  | 0  |     z4 = DEQUANTIZE(inptr[DCTSIZE*4], quantptr[DCTSIZE*4]);  | 
4701  | 0  |     z1 = MULTIPLY(z4, FIX(1.144122806));         /* c4 */  | 
4702  | 0  |     z2 = MULTIPLY(z4, FIX(0.437016024));         /* c8 */  | 
4703  | 0  |     tmp10 = z3 + z1;  | 
4704  | 0  |     tmp11 = z3 - z2;  | 
4705  |  | 
  | 
4706  | 0  |     tmp22 = RIGHT_SHIFT(z3 - ((z1 - z2) << 1),   /* c0 = (c4-c8)*2 */  | 
4707  | 0  |       CONST_BITS-PASS1_BITS);  | 
4708  |  | 
  | 
4709  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
4710  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*6], quantptr[DCTSIZE*6]);  | 
4711  |  | 
  | 
4712  | 0  |     z1 = MULTIPLY(z2 + z3, FIX(0.831253876));    /* c6 */  | 
4713  | 0  |     tmp12 = z1 + MULTIPLY(z2, FIX(0.513743148)); /* c2-c6 */  | 
4714  | 0  |     tmp13 = z1 - MULTIPLY(z3, FIX(2.176250899)); /* c2+c6 */  | 
4715  |  | 
  | 
4716  | 0  |     tmp20 = tmp10 + tmp12;  | 
4717  | 0  |     tmp24 = tmp10 - tmp12;  | 
4718  | 0  |     tmp21 = tmp11 + tmp13;  | 
4719  | 0  |     tmp23 = tmp11 - tmp13;  | 
4720  |  |  | 
4721  |  |     /* Odd part */  | 
4722  |  | 
  | 
4723  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
4724  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
4725  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*5], quantptr[DCTSIZE*5]);  | 
4726  | 0  |     z4 = DEQUANTIZE(inptr[DCTSIZE*7], quantptr[DCTSIZE*7]);  | 
4727  |  | 
  | 
4728  | 0  |     tmp11 = z2 + z4;  | 
4729  | 0  |     tmp13 = z2 - z4;  | 
4730  |  | 
  | 
4731  | 0  |     tmp12 = MULTIPLY(tmp13, FIX(0.309016994));        /* (c3-c7)/2 */  | 
4732  | 0  |     z5 = z3 << CONST_BITS;  | 
4733  |  | 
  | 
4734  | 0  |     z2 = MULTIPLY(tmp11, FIX(0.951056516));           /* (c3+c7)/2 */  | 
4735  | 0  |     z4 = z5 + tmp12;  | 
4736  |  | 
  | 
4737  | 0  |     tmp10 = MULTIPLY(z1, FIX(1.396802247)) + z2 + z4; /* c1 */  | 
4738  | 0  |     tmp14 = MULTIPLY(z1, FIX(0.221231742)) - z2 + z4; /* c9 */  | 
4739  |  | 
  | 
4740  | 0  |     z2 = MULTIPLY(tmp11, FIX(0.587785252));           /* (c1-c9)/2 */  | 
4741  | 0  |     z4 = z5 - tmp12 - (tmp13 << (CONST_BITS - 1));  | 
4742  |  | 
  | 
4743  | 0  |     tmp12 = (z1 - tmp13 - z3) << PASS1_BITS;  | 
4744  |  | 
  | 
4745  | 0  |     tmp11 = MULTIPLY(z1, FIX(1.260073511)) - z2 - z4; /* c3 */  | 
4746  | 0  |     tmp13 = MULTIPLY(z1, FIX(0.642039522)) - z2 + z4; /* c7 */  | 
4747  |  |  | 
4748  |  |     /* Final output stage */  | 
4749  |  | 
  | 
4750  | 0  |     wsptr[5*0] = (int) RIGHT_SHIFT(tmp20 + tmp10, CONST_BITS-PASS1_BITS);  | 
4751  | 0  |     wsptr[5*9] = (int) RIGHT_SHIFT(tmp20 - tmp10, CONST_BITS-PASS1_BITS);  | 
4752  | 0  |     wsptr[5*1] = (int) RIGHT_SHIFT(tmp21 + tmp11, CONST_BITS-PASS1_BITS);  | 
4753  | 0  |     wsptr[5*8] = (int) RIGHT_SHIFT(tmp21 - tmp11, CONST_BITS-PASS1_BITS);  | 
4754  | 0  |     wsptr[5*2] = (int) (tmp22 + tmp12);  | 
4755  | 0  |     wsptr[5*7] = (int) (tmp22 - tmp12);  | 
4756  | 0  |     wsptr[5*3] = (int) RIGHT_SHIFT(tmp23 + tmp13, CONST_BITS-PASS1_BITS);  | 
4757  | 0  |     wsptr[5*6] = (int) RIGHT_SHIFT(tmp23 - tmp13, CONST_BITS-PASS1_BITS);  | 
4758  | 0  |     wsptr[5*4] = (int) RIGHT_SHIFT(tmp24 + tmp14, CONST_BITS-PASS1_BITS);  | 
4759  | 0  |     wsptr[5*5] = (int) RIGHT_SHIFT(tmp24 - tmp14, CONST_BITS-PASS1_BITS);  | 
4760  | 0  |   }  | 
4761  |  |  | 
4762  |  |   /* Pass 2: process 10 rows from work array, store into output array.  | 
4763  |  |    * 5-point IDCT kernel, cK represents sqrt(2) * cos(K*pi/10).  | 
4764  |  |    */  | 
4765  |  | 
  | 
4766  | 0  |   wsptr = workspace;  | 
4767  | 0  |   for (ctr = 0; ctr < 10; ctr++) { | 
4768  | 0  |     outptr = output_buf[ctr] + output_col;  | 
4769  |  |  | 
4770  |  |     /* Even part */  | 
4771  |  |  | 
4772  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
4773  | 0  |     tmp12 = (INT32) wsptr[0] +  | 
4774  | 0  |         ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
4775  | 0  |          (ONE << (PASS1_BITS+2)));  | 
4776  | 0  |     tmp12 <<= CONST_BITS;  | 
4777  | 0  |     tmp13 = (INT32) wsptr[2];  | 
4778  | 0  |     tmp14 = (INT32) wsptr[4];  | 
4779  | 0  |     z1 = MULTIPLY(tmp13 + tmp14, FIX(0.790569415)); /* (c2+c4)/2 */  | 
4780  | 0  |     z2 = MULTIPLY(tmp13 - tmp14, FIX(0.353553391)); /* (c2-c4)/2 */  | 
4781  | 0  |     z3 = tmp12 + z2;  | 
4782  | 0  |     tmp10 = z3 + z1;  | 
4783  | 0  |     tmp11 = z3 - z1;  | 
4784  | 0  |     tmp12 -= z2 << 2;  | 
4785  |  |  | 
4786  |  |     /* Odd part */  | 
4787  |  | 
  | 
4788  | 0  |     z2 = (INT32) wsptr[1];  | 
4789  | 0  |     z3 = (INT32) wsptr[3];  | 
4790  |  | 
  | 
4791  | 0  |     z1 = MULTIPLY(z2 + z3, FIX(0.831253876));       /* c3 */  | 
4792  | 0  |     tmp13 = z1 + MULTIPLY(z2, FIX(0.513743148));    /* c1-c3 */  | 
4793  | 0  |     tmp14 = z1 - MULTIPLY(z3, FIX(2.176250899));    /* c1+c3 */  | 
4794  |  |  | 
4795  |  |     /* Final output stage */  | 
4796  |  | 
  | 
4797  | 0  |     outptr[0] = range_limit[(int) RIGHT_SHIFT(tmp10 + tmp13,  | 
4798  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4799  | 0  |           & RANGE_MASK];  | 
4800  | 0  |     outptr[4] = range_limit[(int) RIGHT_SHIFT(tmp10 - tmp13,  | 
4801  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4802  | 0  |           & RANGE_MASK];  | 
4803  | 0  |     outptr[1] = range_limit[(int) RIGHT_SHIFT(tmp11 + tmp14,  | 
4804  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4805  | 0  |           & RANGE_MASK];  | 
4806  | 0  |     outptr[3] = range_limit[(int) RIGHT_SHIFT(tmp11 - tmp14,  | 
4807  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4808  | 0  |           & RANGE_MASK];  | 
4809  | 0  |     outptr[2] = range_limit[(int) RIGHT_SHIFT(tmp12,  | 
4810  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4811  | 0  |           & RANGE_MASK];  | 
4812  |  | 
  | 
4813  | 0  |     wsptr += 5;   /* advance pointer to next row */  | 
4814  | 0  |   }  | 
4815  | 0  | }  | 
4816  |  |  | 
4817  |  |  | 
4818  |  | /*  | 
4819  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
4820  |  |  * producing a 4x8 output block.  | 
4821  |  |  *  | 
4822  |  |  * 8-point IDCT in pass 1 (columns), 4-point in pass 2 (rows).  | 
4823  |  |  */  | 
4824  |  |  | 
4825  |  | GLOBAL(void)  | 
4826  |  | jpeg_idct_4x8 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
4827  |  |          JCOEFPTR coef_block,  | 
4828  |  |          JSAMPARRAY output_buf, JDIMENSION output_col)  | 
4829  | 0  | { | 
4830  | 0  |   INT32 tmp0, tmp1, tmp2, tmp3;  | 
4831  | 0  |   INT32 tmp10, tmp11, tmp12, tmp13;  | 
4832  | 0  |   INT32 z1, z2, z3;  | 
4833  | 0  |   JCOEFPTR inptr;  | 
4834  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
4835  | 0  |   int * wsptr;  | 
4836  | 0  |   JSAMPROW outptr;  | 
4837  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
4838  | 0  |   int ctr;  | 
4839  | 0  |   int workspace[4*8]; /* buffers data between passes */  | 
4840  |  |   SHIFT_TEMPS  | 
4841  |  |  | 
4842  |  |   /* Pass 1: process columns from input, store into work array.  | 
4843  |  |    * Note results are scaled up by sqrt(8) compared to a true IDCT;  | 
4844  |  |    * furthermore, we scale the results by 2**PASS1_BITS.  | 
4845  |  |    * 8-point IDCT kernel, cK represents sqrt(2) * cos(K*pi/16).  | 
4846  |  |    */  | 
4847  |  | 
  | 
4848  | 0  |   inptr = coef_block;  | 
4849  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
4850  | 0  |   wsptr = workspace;  | 
4851  | 0  |   for (ctr = 4; ctr > 0; ctr--) { | 
4852  |  |     /* Due to quantization, we will usually find that many of the input  | 
4853  |  |      * coefficients are zero, especially the AC terms.  We can exploit this  | 
4854  |  |      * by short-circuiting the IDCT calculation for any column in which all  | 
4855  |  |      * the AC terms are zero.  In that case each output is equal to the  | 
4856  |  |      * DC coefficient (with scale factor as needed).  | 
4857  |  |      * With typical images and quantization tables, half or more of the  | 
4858  |  |      * column DCT calculations can be simplified this way.  | 
4859  |  |      */  | 
4860  |  | 
  | 
4861  | 0  |     if (inptr[DCTSIZE*1] == 0 && inptr[DCTSIZE*2] == 0 &&  | 
4862  | 0  |   inptr[DCTSIZE*3] == 0 && inptr[DCTSIZE*4] == 0 &&  | 
4863  | 0  |   inptr[DCTSIZE*5] == 0 && inptr[DCTSIZE*6] == 0 &&  | 
4864  | 0  |   inptr[DCTSIZE*7] == 0) { | 
4865  |  |       /* AC terms all zero */  | 
4866  | 0  |       int dcval = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]) << PASS1_BITS;  | 
4867  |  | 
  | 
4868  | 0  |       wsptr[4*0] = dcval;  | 
4869  | 0  |       wsptr[4*1] = dcval;  | 
4870  | 0  |       wsptr[4*2] = dcval;  | 
4871  | 0  |       wsptr[4*3] = dcval;  | 
4872  | 0  |       wsptr[4*4] = dcval;  | 
4873  | 0  |       wsptr[4*5] = dcval;  | 
4874  | 0  |       wsptr[4*6] = dcval;  | 
4875  | 0  |       wsptr[4*7] = dcval;  | 
4876  |  | 
  | 
4877  | 0  |       inptr++;      /* advance pointers to next column */  | 
4878  | 0  |       quantptr++;  | 
4879  | 0  |       wsptr++;  | 
4880  | 0  |       continue;  | 
4881  | 0  |     }  | 
4882  |  |  | 
4883  |  |     /* Even part: reverse the even part of the forward DCT.  | 
4884  |  |      * The rotator is c(-6).  | 
4885  |  |      */  | 
4886  |  |  | 
4887  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
4888  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*4], quantptr[DCTSIZE*4]);  | 
4889  | 0  |     z2 <<= CONST_BITS;  | 
4890  | 0  |     z3 <<= CONST_BITS;  | 
4891  |  |     /* Add fudge factor here for final descale. */  | 
4892  | 0  |     z2 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
4893  |  | 
  | 
4894  | 0  |     tmp0 = z2 + z3;  | 
4895  | 0  |     tmp1 = z2 - z3;  | 
4896  |  | 
  | 
4897  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
4898  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*6], quantptr[DCTSIZE*6]);  | 
4899  |  | 
  | 
4900  | 0  |     z1 = MULTIPLY(z2 + z3, FIX_0_541196100);       /* c6 */  | 
4901  | 0  |     tmp2 = z1 + MULTIPLY(z2, FIX_0_765366865);     /* c2-c6 */  | 
4902  | 0  |     tmp3 = z1 - MULTIPLY(z3, FIX_1_847759065);     /* c2+c6 */  | 
4903  |  | 
  | 
4904  | 0  |     tmp10 = tmp0 + tmp2;  | 
4905  | 0  |     tmp13 = tmp0 - tmp2;  | 
4906  | 0  |     tmp11 = tmp1 + tmp3;  | 
4907  | 0  |     tmp12 = tmp1 - tmp3;  | 
4908  |  |  | 
4909  |  |     /* Odd part per figure 8; the matrix is unitary and hence its  | 
4910  |  |      * transpose is its inverse.  i0..i3 are y7,y5,y3,y1 respectively.  | 
4911  |  |      */  | 
4912  |  | 
  | 
4913  | 0  |     tmp0 = DEQUANTIZE(inptr[DCTSIZE*7], quantptr[DCTSIZE*7]);  | 
4914  | 0  |     tmp1 = DEQUANTIZE(inptr[DCTSIZE*5], quantptr[DCTSIZE*5]);  | 
4915  | 0  |     tmp2 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
4916  | 0  |     tmp3 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
4917  |  | 
  | 
4918  | 0  |     z2 = tmp0 + tmp2;  | 
4919  | 0  |     z3 = tmp1 + tmp3;  | 
4920  |  | 
  | 
4921  | 0  |     z1 = MULTIPLY(z2 + z3, FIX_1_175875602);       /*  c3 */  | 
4922  | 0  |     z2 = MULTIPLY(z2, - FIX_1_961570560);          /* -c3-c5 */  | 
4923  | 0  |     z3 = MULTIPLY(z3, - FIX_0_390180644);          /* -c3+c5 */  | 
4924  | 0  |     z2 += z1;  | 
4925  | 0  |     z3 += z1;  | 
4926  |  | 
  | 
4927  | 0  |     z1 = MULTIPLY(tmp0 + tmp3, - FIX_0_899976223); /* -c3+c7 */  | 
4928  | 0  |     tmp0 = MULTIPLY(tmp0, FIX_0_298631336);        /* -c1+c3+c5-c7 */  | 
4929  | 0  |     tmp3 = MULTIPLY(tmp3, FIX_1_501321110);        /*  c1+c3-c5-c7 */  | 
4930  | 0  |     tmp0 += z1 + z2;  | 
4931  | 0  |     tmp3 += z1 + z3;  | 
4932  |  | 
  | 
4933  | 0  |     z1 = MULTIPLY(tmp1 + tmp2, - FIX_2_562915447); /* -c1-c3 */  | 
4934  | 0  |     tmp1 = MULTIPLY(tmp1, FIX_2_053119869);        /*  c1+c3-c5+c7 */  | 
4935  | 0  |     tmp2 = MULTIPLY(tmp2, FIX_3_072711026);        /*  c1+c3+c5-c7 */  | 
4936  | 0  |     tmp1 += z1 + z3;  | 
4937  | 0  |     tmp2 += z1 + z2;  | 
4938  |  |  | 
4939  |  |     /* Final output stage: inputs are tmp10..tmp13, tmp0..tmp3 */  | 
4940  |  | 
  | 
4941  | 0  |     wsptr[4*0] = (int) RIGHT_SHIFT(tmp10 + tmp3, CONST_BITS-PASS1_BITS);  | 
4942  | 0  |     wsptr[4*7] = (int) RIGHT_SHIFT(tmp10 - tmp3, CONST_BITS-PASS1_BITS);  | 
4943  | 0  |     wsptr[4*1] = (int) RIGHT_SHIFT(tmp11 + tmp2, CONST_BITS-PASS1_BITS);  | 
4944  | 0  |     wsptr[4*6] = (int) RIGHT_SHIFT(tmp11 - tmp2, CONST_BITS-PASS1_BITS);  | 
4945  | 0  |     wsptr[4*2] = (int) RIGHT_SHIFT(tmp12 + tmp1, CONST_BITS-PASS1_BITS);  | 
4946  | 0  |     wsptr[4*5] = (int) RIGHT_SHIFT(tmp12 - tmp1, CONST_BITS-PASS1_BITS);  | 
4947  | 0  |     wsptr[4*3] = (int) RIGHT_SHIFT(tmp13 + tmp0, CONST_BITS-PASS1_BITS);  | 
4948  | 0  |     wsptr[4*4] = (int) RIGHT_SHIFT(tmp13 - tmp0, CONST_BITS-PASS1_BITS);  | 
4949  |  | 
  | 
4950  | 0  |     inptr++;      /* advance pointers to next column */  | 
4951  | 0  |     quantptr++;  | 
4952  | 0  |     wsptr++;  | 
4953  | 0  |   }  | 
4954  |  |  | 
4955  |  |   /* Pass 2: process 8 rows from work array, store into output array.  | 
4956  |  |    * 4-point IDCT kernel,  | 
4957  |  |    * cK represents sqrt(2) * cos(K*pi/16) [refers to 8-point IDCT].  | 
4958  |  |    */  | 
4959  |  | 
  | 
4960  | 0  |   wsptr = workspace;  | 
4961  | 0  |   for (ctr = 0; ctr < 8; ctr++) { | 
4962  | 0  |     outptr = output_buf[ctr] + output_col;  | 
4963  |  |  | 
4964  |  |     /* Even part */  | 
4965  |  |  | 
4966  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
4967  | 0  |     tmp0 = (INT32) wsptr[0] +  | 
4968  | 0  |        ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
4969  | 0  |         (ONE << (PASS1_BITS+2)));  | 
4970  | 0  |     tmp2 = (INT32) wsptr[2];  | 
4971  |  | 
  | 
4972  | 0  |     tmp10 = (tmp0 + tmp2) << CONST_BITS;  | 
4973  | 0  |     tmp12 = (tmp0 - tmp2) << CONST_BITS;  | 
4974  |  |  | 
4975  |  |     /* Odd part */  | 
4976  |  |     /* Same rotation as in the even part of the 8x8 LL&M IDCT */  | 
4977  |  | 
  | 
4978  | 0  |     z2 = (INT32) wsptr[1];  | 
4979  | 0  |     z3 = (INT32) wsptr[3];  | 
4980  |  | 
  | 
4981  | 0  |     z1 = MULTIPLY(z2 + z3, FIX_0_541196100);   /* c6 */  | 
4982  | 0  |     tmp0 = z1 + MULTIPLY(z2, FIX_0_765366865); /* c2-c6 */  | 
4983  | 0  |     tmp2 = z1 - MULTIPLY(z3, FIX_1_847759065); /* c2+c6 */  | 
4984  |  |  | 
4985  |  |     /* Final output stage */  | 
4986  |  | 
  | 
4987  | 0  |     outptr[0] = range_limit[(int) RIGHT_SHIFT(tmp10 + tmp0,  | 
4988  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4989  | 0  |           & RANGE_MASK];  | 
4990  | 0  |     outptr[3] = range_limit[(int) RIGHT_SHIFT(tmp10 - tmp0,  | 
4991  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4992  | 0  |           & RANGE_MASK];  | 
4993  | 0  |     outptr[1] = range_limit[(int) RIGHT_SHIFT(tmp12 + tmp2,  | 
4994  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4995  | 0  |           & RANGE_MASK];  | 
4996  | 0  |     outptr[2] = range_limit[(int) RIGHT_SHIFT(tmp12 - tmp2,  | 
4997  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
4998  | 0  |           & RANGE_MASK];  | 
4999  |  | 
  | 
5000  | 0  |     wsptr += 4;   /* advance pointer to next row */  | 
5001  | 0  |   }  | 
5002  | 0  | }  | 
5003  |  |  | 
5004  |  |  | 
5005  |  | /*  | 
5006  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
5007  |  |  * producing a 3x6 output block.  | 
5008  |  |  *  | 
5009  |  |  * 6-point IDCT in pass 1 (columns), 3-point in pass 2 (rows).  | 
5010  |  |  */  | 
5011  |  |  | 
5012  |  | GLOBAL(void)  | 
5013  |  | jpeg_idct_3x6 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
5014  |  |          JCOEFPTR coef_block,  | 
5015  |  |          JSAMPARRAY output_buf, JDIMENSION output_col)  | 
5016  | 0  | { | 
5017  | 0  |   INT32 tmp0, tmp1, tmp2, tmp10, tmp11, tmp12;  | 
5018  | 0  |   INT32 z1, z2, z3;  | 
5019  | 0  |   JCOEFPTR inptr;  | 
5020  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
5021  | 0  |   int * wsptr;  | 
5022  | 0  |   JSAMPROW outptr;  | 
5023  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
5024  | 0  |   int ctr;  | 
5025  | 0  |   int workspace[3*6]; /* buffers data between passes */  | 
5026  |  |   SHIFT_TEMPS  | 
5027  |  |  | 
5028  |  |   /* Pass 1: process columns from input, store into work array.  | 
5029  |  |    * 6-point IDCT kernel, cK represents sqrt(2) * cos(K*pi/12).  | 
5030  |  |    */  | 
5031  |  | 
  | 
5032  | 0  |   inptr = coef_block;  | 
5033  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
5034  | 0  |   wsptr = workspace;  | 
5035  | 0  |   for (ctr = 0; ctr < 3; ctr++, inptr++, quantptr++, wsptr++) { | 
5036  |  |     /* Even part */  | 
5037  |  | 
  | 
5038  | 0  |     tmp0 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
5039  | 0  |     tmp0 <<= CONST_BITS;  | 
5040  |  |     /* Add fudge factor here for final descale. */  | 
5041  | 0  |     tmp0 += ONE << (CONST_BITS-PASS1_BITS-1);  | 
5042  | 0  |     tmp2 = DEQUANTIZE(inptr[DCTSIZE*4], quantptr[DCTSIZE*4]);  | 
5043  | 0  |     tmp10 = MULTIPLY(tmp2, FIX(0.707106781));   /* c4 */  | 
5044  | 0  |     tmp1 = tmp0 + tmp10;  | 
5045  | 0  |     tmp11 = RIGHT_SHIFT(tmp0 - tmp10 - tmp10, CONST_BITS-PASS1_BITS);  | 
5046  | 0  |     tmp10 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
5047  | 0  |     tmp0 = MULTIPLY(tmp10, FIX(1.224744871));   /* c2 */  | 
5048  | 0  |     tmp10 = tmp1 + tmp0;  | 
5049  | 0  |     tmp12 = tmp1 - tmp0;  | 
5050  |  |  | 
5051  |  |     /* Odd part */  | 
5052  |  | 
  | 
5053  | 0  |     z1 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
5054  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
5055  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*5], quantptr[DCTSIZE*5]);  | 
5056  | 0  |     tmp1 = MULTIPLY(z1 + z3, FIX(0.366025404)); /* c5 */  | 
5057  | 0  |     tmp0 = tmp1 + ((z1 + z2) << CONST_BITS);  | 
5058  | 0  |     tmp2 = tmp1 + ((z3 - z2) << CONST_BITS);  | 
5059  | 0  |     tmp1 = (z1 - z2 - z3) << PASS1_BITS;  | 
5060  |  |  | 
5061  |  |     /* Final output stage */  | 
5062  |  | 
  | 
5063  | 0  |     wsptr[3*0] = (int) RIGHT_SHIFT(tmp10 + tmp0, CONST_BITS-PASS1_BITS);  | 
5064  | 0  |     wsptr[3*5] = (int) RIGHT_SHIFT(tmp10 - tmp0, CONST_BITS-PASS1_BITS);  | 
5065  | 0  |     wsptr[3*1] = (int) (tmp11 + tmp1);  | 
5066  | 0  |     wsptr[3*4] = (int) (tmp11 - tmp1);  | 
5067  | 0  |     wsptr[3*2] = (int) RIGHT_SHIFT(tmp12 + tmp2, CONST_BITS-PASS1_BITS);  | 
5068  | 0  |     wsptr[3*3] = (int) RIGHT_SHIFT(tmp12 - tmp2, CONST_BITS-PASS1_BITS);  | 
5069  | 0  |   }  | 
5070  |  |  | 
5071  |  |   /* Pass 2: process 6 rows from work array, store into output array.  | 
5072  |  |    * 3-point IDCT kernel, cK represents sqrt(2) * cos(K*pi/6).  | 
5073  |  |    */  | 
5074  |  | 
  | 
5075  | 0  |   wsptr = workspace;  | 
5076  | 0  |   for (ctr = 0; ctr < 6; ctr++) { | 
5077  | 0  |     outptr = output_buf[ctr] + output_col;  | 
5078  |  |  | 
5079  |  |     /* Even part */  | 
5080  |  |  | 
5081  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
5082  | 0  |     tmp0 = (INT32) wsptr[0] +  | 
5083  | 0  |        ((((INT32) RANGE_CENTER) << (PASS1_BITS+3)) +  | 
5084  | 0  |         (ONE << (PASS1_BITS+2)));  | 
5085  | 0  |     tmp0 <<= CONST_BITS;  | 
5086  | 0  |     tmp2 = (INT32) wsptr[2];  | 
5087  | 0  |     tmp12 = MULTIPLY(tmp2, FIX(0.707106781)); /* c2 */  | 
5088  | 0  |     tmp10 = tmp0 + tmp12;  | 
5089  | 0  |     tmp2 = tmp0 - tmp12 - tmp12;  | 
5090  |  |  | 
5091  |  |     /* Odd part */  | 
5092  |  | 
  | 
5093  | 0  |     tmp12 = (INT32) wsptr[1];  | 
5094  | 0  |     tmp0 = MULTIPLY(tmp12, FIX(1.224744871)); /* c1 */  | 
5095  |  |  | 
5096  |  |     /* Final output stage */  | 
5097  |  | 
  | 
5098  | 0  |     outptr[0] = range_limit[(int) RIGHT_SHIFT(tmp10 + tmp0,  | 
5099  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
5100  | 0  |           & RANGE_MASK];  | 
5101  | 0  |     outptr[2] = range_limit[(int) RIGHT_SHIFT(tmp10 - tmp0,  | 
5102  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
5103  | 0  |           & RANGE_MASK];  | 
5104  | 0  |     outptr[1] = range_limit[(int) RIGHT_SHIFT(tmp2,  | 
5105  | 0  |                 CONST_BITS+PASS1_BITS+3)  | 
5106  | 0  |           & RANGE_MASK];  | 
5107  |  | 
  | 
5108  | 0  |     wsptr += 3;   /* advance pointer to next row */  | 
5109  | 0  |   }  | 
5110  | 0  | }  | 
5111  |  |  | 
5112  |  |  | 
5113  |  | /*  | 
5114  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
5115  |  |  * producing a 2x4 output block.  | 
5116  |  |  *  | 
5117  |  |  * 4-point IDCT in pass 1 (columns), 2-point in pass 2 (rows).  | 
5118  |  |  */  | 
5119  |  |  | 
5120  |  | GLOBAL(void)  | 
5121  |  | jpeg_idct_2x4 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
5122  |  |          JCOEFPTR coef_block,  | 
5123  |  |          JSAMPARRAY output_buf, JDIMENSION output_col)  | 
5124  | 0  | { | 
5125  | 0  |   INT32 tmp0, tmp2, tmp10, tmp12;  | 
5126  | 0  |   INT32 z1, z2, z3;  | 
5127  | 0  |   JCOEFPTR inptr;  | 
5128  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
5129  | 0  |   INT32 * wsptr;  | 
5130  | 0  |   JSAMPROW outptr;  | 
5131  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
5132  | 0  |   int ctr;  | 
5133  | 0  |   INT32 workspace[2*4]; /* buffers data between passes */  | 
5134  |  |   SHIFT_TEMPS  | 
5135  |  |  | 
5136  |  |   /* Pass 1: process columns from input, store into work array.  | 
5137  |  |    * 4-point IDCT kernel,  | 
5138  |  |    * cK represents sqrt(2) * cos(K*pi/16) [refers to 8-point IDCT].  | 
5139  |  |    */  | 
5140  |  | 
  | 
5141  | 0  |   inptr = coef_block;  | 
5142  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
5143  | 0  |   wsptr = workspace;  | 
5144  | 0  |   for (ctr = 0; ctr < 2; ctr++, inptr++, quantptr++, wsptr++) { | 
5145  |  |     /* Even part */  | 
5146  |  | 
  | 
5147  | 0  |     tmp0 = DEQUANTIZE(inptr[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
5148  | 0  |     tmp2 = DEQUANTIZE(inptr[DCTSIZE*2], quantptr[DCTSIZE*2]);  | 
5149  |  | 
  | 
5150  | 0  |     tmp10 = (tmp0 + tmp2) << CONST_BITS;  | 
5151  | 0  |     tmp12 = (tmp0 - tmp2) << CONST_BITS;  | 
5152  |  |  | 
5153  |  |     /* Odd part */  | 
5154  |  |     /* Same rotation as in the even part of the 8x8 LL&M IDCT */  | 
5155  |  | 
  | 
5156  | 0  |     z2 = DEQUANTIZE(inptr[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
5157  | 0  |     z3 = DEQUANTIZE(inptr[DCTSIZE*3], quantptr[DCTSIZE*3]);  | 
5158  |  | 
  | 
5159  | 0  |     z1 = MULTIPLY(z2 + z3, FIX_0_541196100);   /* c6 */  | 
5160  | 0  |     tmp0 = z1 + MULTIPLY(z2, FIX_0_765366865); /* c2-c6 */  | 
5161  | 0  |     tmp2 = z1 - MULTIPLY(z3, FIX_1_847759065); /* c2+c6 */  | 
5162  |  |  | 
5163  |  |     /* Final output stage */  | 
5164  |  | 
  | 
5165  | 0  |     wsptr[2*0] = tmp10 + tmp0;  | 
5166  | 0  |     wsptr[2*3] = tmp10 - tmp0;  | 
5167  | 0  |     wsptr[2*1] = tmp12 + tmp2;  | 
5168  | 0  |     wsptr[2*2] = tmp12 - tmp2;  | 
5169  | 0  |   }  | 
5170  |  |  | 
5171  |  |   /* Pass 2: process 4 rows from work array, store into output array. */  | 
5172  |  | 
  | 
5173  | 0  |   wsptr = workspace;  | 
5174  | 0  |   for (ctr = 0; ctr < 4; ctr++) { | 
5175  | 0  |     outptr = output_buf[ctr] + output_col;  | 
5176  |  |  | 
5177  |  |     /* Even part */  | 
5178  |  |  | 
5179  |  |     /* Add range center and fudge factor for final descale and range-limit. */  | 
5180  | 0  |     tmp10 = wsptr[0] +  | 
5181  | 0  |         ((((INT32) RANGE_CENTER) << (CONST_BITS+3)) +  | 
5182  | 0  |          (ONE << (CONST_BITS+2)));  | 
5183  |  |  | 
5184  |  |     /* Odd part */  | 
5185  |  | 
  | 
5186  | 0  |     tmp0 = wsptr[1];  | 
5187  |  |  | 
5188  |  |     /* Final output stage */  | 
5189  |  | 
  | 
5190  | 0  |     outptr[0] = range_limit[(int) RIGHT_SHIFT(tmp10 + tmp0, CONST_BITS+3)  | 
5191  | 0  |           & RANGE_MASK];  | 
5192  | 0  |     outptr[1] = range_limit[(int) RIGHT_SHIFT(tmp10 - tmp0, CONST_BITS+3)  | 
5193  | 0  |           & RANGE_MASK];  | 
5194  |  | 
  | 
5195  | 0  |     wsptr += 2;   /* advance pointer to next row */  | 
5196  | 0  |   }  | 
5197  | 0  | }  | 
5198  |  |  | 
5199  |  |  | 
5200  |  | /*  | 
5201  |  |  * Perform dequantization and inverse DCT on one block of coefficients,  | 
5202  |  |  * producing a 1x2 output block.  | 
5203  |  |  *  | 
5204  |  |  * 2-point IDCT in pass 1 (columns), 1-point in pass 2 (rows).  | 
5205  |  |  */  | 
5206  |  |  | 
5207  |  | GLOBAL(void)  | 
5208  |  | jpeg_idct_1x2 (j_decompress_ptr cinfo, jpeg_component_info * compptr,  | 
5209  |  |          JCOEFPTR coef_block,  | 
5210  |  |          JSAMPARRAY output_buf, JDIMENSION output_col)  | 
5211  | 0  | { | 
5212  | 0  |   DCTELEM tmp0, tmp1;  | 
5213  | 0  |   ISLOW_MULT_TYPE * quantptr;  | 
5214  | 0  |   JSAMPLE *range_limit = IDCT_range_limit(cinfo);  | 
5215  | 0  |   ISHIFT_TEMPS  | 
5216  |  |  | 
5217  |  |   /* Process 1 column from input, store into output array. */  | 
5218  |  | 
  | 
5219  | 0  |   quantptr = (ISLOW_MULT_TYPE *) compptr->dct_table;  | 
5220  |  |  | 
5221  |  |   /* Even part */  | 
5222  |  | 
  | 
5223  | 0  |   tmp0 = DEQUANTIZE(coef_block[DCTSIZE*0], quantptr[DCTSIZE*0]);  | 
5224  |  |   /* Add range center and fudge factor for final descale and range-limit. */  | 
5225  | 0  |   tmp0 += (((DCTELEM) RANGE_CENTER) << 3) + (1 << 2);  | 
5226  |  |  | 
5227  |  |   /* Odd part */  | 
5228  |  | 
  | 
5229  | 0  |   tmp1 = DEQUANTIZE(coef_block[DCTSIZE*1], quantptr[DCTSIZE*1]);  | 
5230  |  |  | 
5231  |  |   /* Final output stage */  | 
5232  |  | 
  | 
5233  | 0  |   output_buf[0][output_col] =  | 
5234  | 0  |     range_limit[(int) IRIGHT_SHIFT(tmp0 + tmp1, 3) & RANGE_MASK];  | 
5235  | 0  |   output_buf[1][output_col] =  | 
5236  | 0  |     range_limit[(int) IRIGHT_SHIFT(tmp0 - tmp1, 3) & RANGE_MASK];  | 
5237  | 0  | }  | 
5238  |  |  | 
5239  |  | #endif /* IDCT_SCALING_SUPPORTED */  | 
5240  |  | #endif /* DCT_ISLOW_SUPPORTED */  |