/src/aac/libAACenc/src/intensity.cpp
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1  |  | /* -----------------------------------------------------------------------------  | 
2  |  | Software License for The Fraunhofer FDK AAC Codec Library for Android  | 
3  |  |  | 
4  |  | © Copyright  1995 - 2019 Fraunhofer-Gesellschaft zur Förderung der angewandten  | 
5  |  | Forschung e.V. All rights reserved.  | 
6  |  |  | 
7  |  |  1.    INTRODUCTION  | 
8  |  | The Fraunhofer FDK AAC Codec Library for Android ("FDK AAC Codec") is software | 
9  |  | that implements the MPEG Advanced Audio Coding ("AAC") encoding and decoding | 
10  |  | scheme for digital audio. This FDK AAC Codec software is intended to be used on  | 
11  |  | a wide variety of Android devices.  | 
12  |  |  | 
13  |  | AAC's HE-AAC and HE-AAC v2 versions are regarded as today's most efficient  | 
14  |  | general perceptual audio codecs. AAC-ELD is considered the best-performing  | 
15  |  | full-bandwidth communications codec by independent studies and is widely  | 
16  |  | deployed. AAC has been standardized by ISO and IEC as part of the MPEG  | 
17  |  | specifications.  | 
18  |  |  | 
19  |  | Patent licenses for necessary patent claims for the FDK AAC Codec (including  | 
20  |  | those of Fraunhofer) may be obtained through Via Licensing  | 
21  |  | (www.vialicensing.com) or through the respective patent owners individually for  | 
22  |  | the purpose of encoding or decoding bit streams in products that are compliant  | 
23  |  | with the ISO/IEC MPEG audio standards. Please note that most manufacturers of  | 
24  |  | Android devices already license these patent claims through Via Licensing or  | 
25  |  | directly from the patent owners, and therefore FDK AAC Codec software may  | 
26  |  | already be covered under those patent licenses when it is used for those  | 
27  |  | licensed purposes only.  | 
28  |  |  | 
29  |  | Commercially-licensed AAC software libraries, including floating-point versions  | 
30  |  | with enhanced sound quality, are also available from Fraunhofer. Users are  | 
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32  |  | information and documentation.  | 
33  |  |  | 
34  |  | 2.    COPYRIGHT LICENSE  | 
35  |  |  | 
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38  |  | satisfy the following conditions:  | 
39  |  |  | 
40  |  | You must retain the complete text of this software license in redistributions of  | 
41  |  | the FDK AAC Codec or your modifications thereto in source code form.  | 
42  |  |  | 
43  |  | You must retain the complete text of this software license in the documentation  | 
44  |  | and/or other materials provided with redistributions of the FDK AAC Codec or  | 
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58  |  | must be replaced by the term "Third-Party Modified Version of the Fraunhofer FDK  | 
59  |  | AAC Codec Library for Android."  | 
60  |  |  | 
61  |  | 3.    NO PATENT LICENSE  | 
62  |  |  | 
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66  |  | software.  | 
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68  |  | You may use this FDK AAC Codec software or modifications thereto only for  | 
69  |  | purposes that are authorized by appropriate patent licenses.  | 
70  |  |  | 
71  |  | 4.    DISCLAIMER  | 
72  |  |  | 
73  |  | This FDK AAC Codec software is provided by Fraunhofer on behalf of the copyright  | 
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83  |  |  | 
84  |  | 5.    CONTACT INFORMATION  | 
85  |  |  | 
86  |  | Fraunhofer Institute for Integrated Circuits IIS  | 
87  |  | Attention: Audio and Multimedia Departments - FDK AAC LL  | 
88  |  | Am Wolfsmantel 33  | 
89  |  | 91058 Erlangen, Germany  | 
90  |  |  | 
91  |  | www.iis.fraunhofer.de/amm  | 
92  |  | amm-info@iis.fraunhofer.de  | 
93  |  | ----------------------------------------------------------------------------- */  | 
94  |  |  | 
95  |  | /**************************** AAC encoder library ******************************  | 
96  |  |  | 
97  |  |    Author(s):   A. Horndasch (code originally from lwr) / Josef Hoepfl (FDK)  | 
98  |  |  | 
99  |  |    Description: intensity stereo processing  | 
100  |  |  | 
101  |  | *******************************************************************************/  | 
102  |  |  | 
103  |  | #include "intensity.h"  | 
104  |  |  | 
105  |  | #include "interface.h"  | 
106  |  | #include "psy_configuration.h"  | 
107  |  | #include "psy_const.h"  | 
108  |  | #include "qc_main.h"  | 
109  |  | #include "bit_cnt.h"  | 
110  |  |  | 
111  |  | /* only set an IS seed it left/right channel correlation is above IS_CORR_THRESH  | 
112  |  |  */  | 
113  | 0  | #define IS_CORR_THRESH FL2FXCONST_DBL(0.95f)  | 
114  |  |  | 
115  |  | /* when expanding the IS region to more SFBs only accept an error that is  | 
116  |  |  * not more than IS_TOTAL_ERROR_THRESH overall and  | 
117  |  |  * not more than IS_LOCAL_ERROR_THRESH for the current SFB */  | 
118  | 0  | #define IS_TOTAL_ERROR_THRESH FL2FXCONST_DBL(0.04f)  | 
119  | 0  | #define IS_LOCAL_ERROR_THRESH FL2FXCONST_DBL(0.01f)  | 
120  |  |  | 
121  |  | /* the maximum allowed change of the intensity direction (unit: IS scale) -  | 
122  |  |  * scaled with factor 0.25 - */  | 
123  | 0  | #define IS_DIRECTION_DEVIATION_THRESH_SF 2  | 
124  |  | #define IS_DIRECTION_DEVIATION_THRESH \  | 
125  | 0  |   FL2FXCONST_DBL(2.0f / (1 << IS_DIRECTION_DEVIATION_THRESH_SF))  | 
126  |  |  | 
127  |  | /* IS regions need to have a minimal percentage of the overall loudness, e.g.  | 
128  |  |  * 0.06 == 6% */  | 
129  | 0  | #define IS_REGION_MIN_LOUDNESS FL2FXCONST_DBL(0.1f)  | 
130  |  |  | 
131  |  | /* only perform IS if IS_MIN_SFBS neighboring SFBs can be processed */  | 
132  | 0  | #define IS_MIN_SFBS 6  | 
133  |  |  | 
134  |  | /* only do IS if  | 
135  |  |  * if IS_LEFT_RIGHT_RATIO_THRESH < sfbEnergyLeft[sfb]/sfbEnergyRight[sfb] < 1 /  | 
136  |  |  * IS_LEFT_RIGHT_RATIO_THRESH  | 
137  |  |  * -> no IS if the panning angle is not far from the middle, MS will do */  | 
138  |  | /* this is equivalent to a scale of +/-1.02914634566 */  | 
139  | 0  | #define IS_LEFT_RIGHT_RATIO_THRESH FL2FXCONST_DBL(0.7f)  | 
140  |  |  | 
141  |  | /* scalefactor of realScale */  | 
142  | 0  | #define REAL_SCALE_SF 1  | 
143  |  |  | 
144  |  | /* scalefactor overallLoudness */  | 
145  | 0  | #define OVERALL_LOUDNESS_SF 6  | 
146  |  |  | 
147  |  | /* scalefactor for sum over max samples per goup */  | 
148  | 0  | #define MAX_SFB_PER_GROUP_SF 6  | 
149  |  |  | 
150  |  | /* scalefactor for sum of mdct spectrum */  | 
151  | 0  | #define MDCT_SPEC_SF 6  | 
152  |  |  | 
153  |  | typedef struct { | 
154  |  |   FIXP_DBL corr_thresh; /*!< Only set an IS seed it left/right channel  | 
155  |  |                            correlation is above corr_thresh */  | 
156  |  |  | 
157  |  |   FIXP_DBL total_error_thresh; /*!< When expanding the IS region to more SFBs  | 
158  |  |                                   only accept an error that is not more than  | 
159  |  |                                   'total_error_thresh' overall. */  | 
160  |  |  | 
161  |  |   FIXP_DBL local_error_thresh; /*!< When expanding the IS region to more SFBs  | 
162  |  |                                   only accept an error that is not more than  | 
163  |  |                                   'local_error_thresh' for the current SFB. */  | 
164  |  |  | 
165  |  |   FIXP_DBL direction_deviation_thresh; /*!< The maximum allowed change of the  | 
166  |  |                                           intensity direction (unit: IS scale)  | 
167  |  |                                         */  | 
168  |  |  | 
169  |  |   FIXP_DBL is_region_min_loudness; /*!< IS regions need to have a minimal  | 
170  |  |                                       percentage of the overall loudness, e.g.  | 
171  |  |                                       0.06 == 6% */  | 
172  |  |  | 
173  |  |   INT min_is_sfbs; /*!< Only perform IS if 'min_is_sfbs' neighboring SFBs can be  | 
174  |  |                       processed */  | 
175  |  |  | 
176  |  |   FIXP_DBL left_right_ratio_threshold; /*!< No IS if the panning angle is not  | 
177  |  |                                           far from the middle, MS will do */  | 
178  |  |  | 
179  |  | } INTENSITY_PARAMETERS;  | 
180  |  |  | 
181  |  | /*****************************************************************************  | 
182  |  |  | 
183  |  |     functionname: calcSfbMaxScale  | 
184  |  |  | 
185  |  |     description:  Calc max value in scalefactor band  | 
186  |  |  | 
187  |  |     input:        *mdctSpectrum  | 
188  |  |                    l1  | 
189  |  |                    l2  | 
190  |  |  | 
191  |  |     output:       none  | 
192  |  |  | 
193  |  |     returns:      scalefactor  | 
194  |  |  | 
195  |  | *****************************************************************************/  | 
196  |  | static INT calcSfbMaxScale(const FIXP_DBL *mdctSpectrum, const INT l1,  | 
197  | 0  |                            const INT l2) { | 
198  | 0  |   INT i;  | 
199  | 0  |   INT sfbMaxScale;  | 
200  | 0  |   FIXP_DBL maxSpc;  | 
201  |  | 
  | 
202  | 0  |   maxSpc = FL2FXCONST_DBL(0.0);  | 
203  | 0  |   for (i = l1; i < l2; i++) { | 
204  | 0  |     FIXP_DBL tmp = fixp_abs((FIXP_DBL)mdctSpectrum[i]);  | 
205  | 0  |     maxSpc = fixMax(maxSpc, tmp);  | 
206  | 0  |   }  | 
207  | 0  |   sfbMaxScale = (maxSpc == FL2FXCONST_DBL(0.0)) ? (DFRACT_BITS - 2)  | 
208  | 0  |                                                 : CntLeadingZeros(maxSpc) - 1;  | 
209  |  | 
  | 
210  | 0  |   return sfbMaxScale;  | 
211  | 0  | }  | 
212  |  |  | 
213  |  | /*****************************************************************************  | 
214  |  |  | 
215  |  |     functionname: FDKaacEnc_initIsParams  | 
216  |  |  | 
217  |  |     description:  Initialization of intensity parameters  | 
218  |  |  | 
219  |  |     input:        isParams  | 
220  |  |  | 
221  |  |     output:       isParams  | 
222  |  |  | 
223  |  |     returns:      none  | 
224  |  |  | 
225  |  | *****************************************************************************/  | 
226  | 0  | static void FDKaacEnc_initIsParams(INTENSITY_PARAMETERS *isParams) { | 
227  | 0  |   isParams->corr_thresh = IS_CORR_THRESH;  | 
228  | 0  |   isParams->total_error_thresh = IS_TOTAL_ERROR_THRESH;  | 
229  | 0  |   isParams->local_error_thresh = IS_LOCAL_ERROR_THRESH;  | 
230  | 0  |   isParams->direction_deviation_thresh = IS_DIRECTION_DEVIATION_THRESH;  | 
231  | 0  |   isParams->is_region_min_loudness = IS_REGION_MIN_LOUDNESS;  | 
232  | 0  |   isParams->min_is_sfbs = IS_MIN_SFBS;  | 
233  | 0  |   isParams->left_right_ratio_threshold = IS_LEFT_RIGHT_RATIO_THRESH;  | 
234  | 0  | }  | 
235  |  |  | 
236  |  | /*****************************************************************************  | 
237  |  |  | 
238  |  |     functionname: FDKaacEnc_prepareIntensityDecision  | 
239  |  |  | 
240  |  |     description:  Prepares intensity decision  | 
241  |  |  | 
242  |  |     input:        sfbEnergyLeft  | 
243  |  |                   sfbEnergyRight  | 
244  |  |                   sfbEnergyLdDataLeft  | 
245  |  |                   sfbEnergyLdDataRight  | 
246  |  |                   mdctSpectrumLeft  | 
247  |  |                   sfbEnergyLdDataRight  | 
248  |  |                   isParams  | 
249  |  |  | 
250  |  |     output:       hrrErr            scale: none  | 
251  |  |                   isMask            scale: none  | 
252  |  |                   realScale         scale: LD_DATA_SHIFT + REAL_SCALE_SF  | 
253  |  |                   normSfbLoudness   scale: none  | 
254  |  |  | 
255  |  |     returns:      none  | 
256  |  |  | 
257  |  | *****************************************************************************/  | 
258  |  | static void FDKaacEnc_prepareIntensityDecision(  | 
259  |  |     const FIXP_DBL *sfbEnergyLeft, const FIXP_DBL *sfbEnergyRight,  | 
260  |  |     const FIXP_DBL *sfbEnergyLdDataLeft, const FIXP_DBL *sfbEnergyLdDataRight,  | 
261  |  |     const FIXP_DBL *mdctSpectrumLeft, const FIXP_DBL *mdctSpectrumRight,  | 
262  |  |     const INTENSITY_PARAMETERS *isParams, FIXP_DBL *hrrErr, INT *isMask,  | 
263  |  |     FIXP_DBL *realScale, FIXP_DBL *normSfbLoudness, const INT sfbCnt,  | 
264  | 0  |     const INT sfbPerGroup, const INT maxSfbPerGroup, const INT *sfbOffset) { | 
265  | 0  |   INT j, sfb, sfboffs;  | 
266  | 0  |   INT grpCounter;  | 
267  |  |  | 
268  |  |   /* temporary variables to compute loudness */  | 
269  | 0  |   FIXP_DBL overallLoudness[MAX_NO_OF_GROUPS];  | 
270  |  |  | 
271  |  |   /* temporary variables to compute correlation */  | 
272  | 0  |   FIXP_DBL channelCorr[MAX_GROUPED_SFB];  | 
273  | 0  |   FIXP_DBL ml, mr;  | 
274  | 0  |   FIXP_DBL prod_lr;  | 
275  | 0  |   FIXP_DBL square_l, square_r;  | 
276  | 0  |   FIXP_DBL tmp_l, tmp_r;  | 
277  | 0  |   FIXP_DBL inv_n;  | 
278  |  | 
  | 
279  | 0  |   FDKmemclear(channelCorr, MAX_GROUPED_SFB * sizeof(FIXP_DBL));  | 
280  | 0  |   FDKmemclear(normSfbLoudness, MAX_GROUPED_SFB * sizeof(FIXP_DBL));  | 
281  | 0  |   FDKmemclear(overallLoudness, MAX_NO_OF_GROUPS * sizeof(FIXP_DBL));  | 
282  | 0  |   FDKmemclear(realScale, MAX_GROUPED_SFB * sizeof(FIXP_DBL));  | 
283  |  | 
  | 
284  | 0  |   for (grpCounter = 0, sfboffs = 0; sfboffs < sfbCnt;  | 
285  | 0  |        sfboffs += sfbPerGroup, grpCounter++) { | 
286  | 0  |     overallLoudness[grpCounter] = FL2FXCONST_DBL(0.0f);  | 
287  | 0  |     for (sfb = 0; sfb < maxSfbPerGroup; sfb++) { | 
288  | 0  |       INT sL, sR, s;  | 
289  | 0  |       FIXP_DBL isValue = sfbEnergyLdDataLeft[sfb + sfboffs] -  | 
290  | 0  |                          sfbEnergyLdDataRight[sfb + sfboffs];  | 
291  |  |  | 
292  |  |       /* delimitate intensity scale value to representable range */  | 
293  | 0  |       realScale[sfb + sfboffs] = fixMin(  | 
294  | 0  |           FL2FXCONST_DBL(60.f / (1 << (REAL_SCALE_SF + LD_DATA_SHIFT))),  | 
295  | 0  |           fixMax(FL2FXCONST_DBL(-60.f / (1 << (REAL_SCALE_SF + LD_DATA_SHIFT))),  | 
296  | 0  |                  isValue));  | 
297  |  | 
  | 
298  | 0  |       sL = fixMax(0, (CntLeadingZeros(sfbEnergyLeft[sfb + sfboffs]) - 1));  | 
299  | 0  |       sR = fixMax(0, (CntLeadingZeros(sfbEnergyRight[sfb + sfboffs]) - 1));  | 
300  | 0  |       s = (fixMin(sL, sR) >> 2) << 2;  | 
301  | 0  |       normSfbLoudness[sfb + sfboffs] =  | 
302  | 0  |           sqrtFixp(sqrtFixp(((sfbEnergyLeft[sfb + sfboffs] << s) >> 1) +  | 
303  | 0  |                             ((sfbEnergyRight[sfb + sfboffs] << s) >> 1))) >>  | 
304  | 0  |           (s >> 2);  | 
305  |  | 
  | 
306  | 0  |       overallLoudness[grpCounter] +=  | 
307  | 0  |           normSfbLoudness[sfb + sfboffs] >> OVERALL_LOUDNESS_SF;  | 
308  |  |       /* don't do intensity if  | 
309  |  |        * - panning angle is too close to the middle or  | 
310  |  |        * - one channel is non-existent or  | 
311  |  |        * - if it is dual mono */  | 
312  | 0  |       if ((sfbEnergyLeft[sfb + sfboffs] >=  | 
313  | 0  |            fMult(isParams->left_right_ratio_threshold,  | 
314  | 0  |                  sfbEnergyRight[sfb + sfboffs])) &&  | 
315  | 0  |           (fMult(isParams->left_right_ratio_threshold,  | 
316  | 0  |                  sfbEnergyLeft[sfb + sfboffs]) <=  | 
317  | 0  |            sfbEnergyRight[sfb + sfboffs])) { | 
318  |  |         /* this will prevent post processing from considering this SFB for  | 
319  |  |          * merging */  | 
320  | 0  |         hrrErr[sfb + sfboffs] = FL2FXCONST_DBL(1.0 / 8.0);  | 
321  | 0  |       }  | 
322  | 0  |     }  | 
323  | 0  |   }  | 
324  |  | 
  | 
325  | 0  |   for (grpCounter = 0, sfboffs = 0; sfboffs < sfbCnt;  | 
326  | 0  |        sfboffs += sfbPerGroup, grpCounter++) { | 
327  | 0  |     INT invOverallLoudnessSF;  | 
328  | 0  |     FIXP_DBL invOverallLoudness;  | 
329  |  | 
  | 
330  | 0  |     if (overallLoudness[grpCounter] == FL2FXCONST_DBL(0.0)) { | 
331  | 0  |       invOverallLoudness = FL2FXCONST_DBL(0.0);  | 
332  | 0  |       invOverallLoudnessSF = 0;  | 
333  | 0  |     } else { | 
334  | 0  |       invOverallLoudness =  | 
335  | 0  |           fDivNorm((FIXP_DBL)MAXVAL_DBL, overallLoudness[grpCounter],  | 
336  | 0  |                    &invOverallLoudnessSF);  | 
337  | 0  |       invOverallLoudnessSF =  | 
338  | 0  |           invOverallLoudnessSF - OVERALL_LOUDNESS_SF +  | 
339  | 0  |           1; /* +1: compensate fMultDiv2() in subsequent loop */  | 
340  | 0  |     }  | 
341  | 0  |     invOverallLoudnessSF = fixMin(  | 
342  | 0  |         fixMax(invOverallLoudnessSF, -(DFRACT_BITS - 1)), DFRACT_BITS - 1);  | 
343  |  | 
  | 
344  | 0  |     for (sfb = 0; sfb < maxSfbPerGroup; sfb++) { | 
345  | 0  |       FIXP_DBL tmp;  | 
346  |  | 
  | 
347  | 0  |       tmp = fMultDiv2((normSfbLoudness[sfb + sfboffs] >> OVERALL_LOUDNESS_SF)  | 
348  | 0  |                           << OVERALL_LOUDNESS_SF,  | 
349  | 0  |                       invOverallLoudness);  | 
350  |  | 
  | 
351  | 0  |       normSfbLoudness[sfb + sfboffs] = scaleValue(tmp, invOverallLoudnessSF);  | 
352  |  | 
  | 
353  | 0  |       channelCorr[sfb + sfboffs] = FL2FXCONST_DBL(0.0f);  | 
354  |  |  | 
355  |  |       /* max width of scalefactorband is 96; width's are always even */  | 
356  |  |       /* inv_n is scaled with factor 2 to compensate fMultDiv2() in subsequent  | 
357  |  |        * loops */  | 
358  | 0  |       inv_n = GetInvInt(  | 
359  | 0  |           (sfbOffset[sfb + sfboffs + 1] - sfbOffset[sfb + sfboffs]) >> 1);  | 
360  |  | 
  | 
361  | 0  |       if (inv_n > FL2FXCONST_DBL(0.0f)) { | 
362  | 0  |         INT s, sL, sR;  | 
363  |  |  | 
364  |  |         /* correlation := Pearson's product-moment coefficient */  | 
365  |  |         /* compute correlation between channels and check if it is over  | 
366  |  |          * threshold */  | 
367  | 0  |         ml = FL2FXCONST_DBL(0.0f);  | 
368  | 0  |         mr = FL2FXCONST_DBL(0.0f);  | 
369  | 0  |         prod_lr = FL2FXCONST_DBL(0.0f);  | 
370  | 0  |         square_l = FL2FXCONST_DBL(0.0f);  | 
371  | 0  |         square_r = FL2FXCONST_DBL(0.0f);  | 
372  |  | 
  | 
373  | 0  |         sL = calcSfbMaxScale(mdctSpectrumLeft, sfbOffset[sfb + sfboffs],  | 
374  | 0  |                              sfbOffset[sfb + sfboffs + 1]);  | 
375  | 0  |         sR = calcSfbMaxScale(mdctSpectrumRight, sfbOffset[sfb + sfboffs],  | 
376  | 0  |                              sfbOffset[sfb + sfboffs + 1]);  | 
377  | 0  |         s = fixMin(sL, sR);  | 
378  |  | 
  | 
379  | 0  |         for (j = sfbOffset[sfb + sfboffs]; j < sfbOffset[sfb + sfboffs + 1];  | 
380  | 0  |              j++) { | 
381  | 0  |           ml += fMultDiv2((mdctSpectrumLeft[j] << s),  | 
382  | 0  |                           inv_n);  // scaled with mdctScale - s + inv_n  | 
383  | 0  |           mr += fMultDiv2((mdctSpectrumRight[j] << s),  | 
384  | 0  |                           inv_n);  // scaled with mdctScale - s + inv_n  | 
385  | 0  |         }  | 
386  | 0  |         ml = fMultDiv2(ml, inv_n);  // scaled with mdctScale - s + inv_n  | 
387  | 0  |         mr = fMultDiv2(mr, inv_n);  // scaled with mdctScale - s + inv_n  | 
388  |  | 
  | 
389  | 0  |         for (j = sfbOffset[sfb + sfboffs]; j < sfbOffset[sfb + sfboffs + 1];  | 
390  | 0  |              j++) { | 
391  | 0  |           tmp_l = fMultDiv2((mdctSpectrumLeft[j] << s), inv_n) -  | 
392  | 0  |                   ml;  // scaled with mdctScale - s + inv_n  | 
393  | 0  |           tmp_r = fMultDiv2((mdctSpectrumRight[j] << s), inv_n) -  | 
394  | 0  |                   mr;  // scaled with mdctScale - s + inv_n  | 
395  |  | 
  | 
396  | 0  |           prod_lr += fMultDiv2(  | 
397  | 0  |               tmp_l, tmp_r);  // scaled with 2*(mdctScale - s + inv_n) + 1  | 
398  | 0  |           square_l +=  | 
399  | 0  |               fPow2Div2(tmp_l);  // scaled with 2*(mdctScale - s + inv_n) + 1  | 
400  | 0  |           square_r +=  | 
401  | 0  |               fPow2Div2(tmp_r);  // scaled with 2*(mdctScale - s + inv_n) + 1  | 
402  | 0  |         }  | 
403  | 0  |         prod_lr = prod_lr << 1;    // scaled with 2*(mdctScale - s + inv_n)  | 
404  | 0  |         square_l = square_l << 1;  // scaled with 2*(mdctScale - s + inv_n)  | 
405  | 0  |         square_r = square_r << 1;  // scaled with 2*(mdctScale - s + inv_n)  | 
406  |  | 
  | 
407  | 0  |         if (square_l > FL2FXCONST_DBL(0.0f) &&  | 
408  | 0  |             square_r > FL2FXCONST_DBL(0.0f)) { | 
409  | 0  |           INT channelCorrSF = 0;  | 
410  |  |  | 
411  |  |           /* local scaling of square_l and square_r is compensated after sqrt  | 
412  |  |            * calculation */  | 
413  | 0  |           sL = fixMax(0, (CntLeadingZeros(square_l) - 1));  | 
414  | 0  |           sR = fixMax(0, (CntLeadingZeros(square_r) - 1));  | 
415  | 0  |           s = ((sL + sR) >> 1) << 1;  | 
416  | 0  |           sL = fixMin(sL, s);  | 
417  | 0  |           sR = s - sL;  | 
418  | 0  |           tmp = fMult(square_l << sL, square_r << sR);  | 
419  | 0  |           tmp = sqrtFixp(tmp);  | 
420  |  | 
  | 
421  | 0  |           FDK_ASSERT(tmp > FL2FXCONST_DBL(0.0f));  | 
422  |  |  | 
423  |  |           /* numerator and denominator have the same scaling */  | 
424  | 0  |           if (prod_lr < FL2FXCONST_DBL(0.0f)) { | 
425  | 0  |             channelCorr[sfb + sfboffs] =  | 
426  | 0  |                 -(fDivNorm(-prod_lr, tmp, &channelCorrSF));  | 
427  |  | 
  | 
428  | 0  |           } else { | 
429  | 0  |             channelCorr[sfb + sfboffs] =  | 
430  | 0  |                 (fDivNorm(prod_lr, tmp, &channelCorrSF));  | 
431  | 0  |           }  | 
432  | 0  |           channelCorrSF = fixMin(  | 
433  | 0  |               fixMax((channelCorrSF + ((sL + sR) >> 1)), -(DFRACT_BITS - 1)),  | 
434  | 0  |               DFRACT_BITS - 1);  | 
435  |  | 
  | 
436  | 0  |           if (channelCorrSF < 0) { | 
437  | 0  |             channelCorr[sfb + sfboffs] =  | 
438  | 0  |                 channelCorr[sfb + sfboffs] >> (-channelCorrSF);  | 
439  | 0  |           } else { | 
440  |  |             /* avoid overflows due to limited computational accuracy */  | 
441  | 0  |             if (fAbs(channelCorr[sfb + sfboffs]) >  | 
442  | 0  |                 (((FIXP_DBL)MAXVAL_DBL) >> channelCorrSF)) { | 
443  | 0  |               if (channelCorr[sfb + sfboffs] < FL2FXCONST_DBL(0.0f))  | 
444  | 0  |                 channelCorr[sfb + sfboffs] = -(FIXP_DBL)MAXVAL_DBL;  | 
445  | 0  |               else  | 
446  | 0  |                 channelCorr[sfb + sfboffs] = (FIXP_DBL)MAXVAL_DBL;  | 
447  | 0  |             } else { | 
448  | 0  |               channelCorr[sfb + sfboffs] = channelCorr[sfb + sfboffs]  | 
449  | 0  |                                            << channelCorrSF;  | 
450  | 0  |             }  | 
451  | 0  |           }  | 
452  | 0  |         }  | 
453  | 0  |       }  | 
454  |  |  | 
455  |  |       /* for post processing: hrrErr is the error in terms of (too little)  | 
456  |  |        * correlation weighted with the loudness of the SFB; SFBs with small  | 
457  |  |        * hrrErr can be merged */  | 
458  | 0  |       if (hrrErr[sfb + sfboffs] == FL2FXCONST_DBL(1.0 / 8.0)) { | 
459  | 0  |         continue;  | 
460  | 0  |       }  | 
461  |  |  | 
462  | 0  |       hrrErr[sfb + sfboffs] =  | 
463  | 0  |           fMultDiv2((FL2FXCONST_DBL(0.25f) - (channelCorr[sfb + sfboffs] >> 2)),  | 
464  | 0  |                     normSfbLoudness[sfb + sfboffs]);  | 
465  |  |  | 
466  |  |       /* set IS mask/vector to 1, if correlation is high enough */  | 
467  | 0  |       if (fAbs(channelCorr[sfb + sfboffs]) >= isParams->corr_thresh) { | 
468  | 0  |         isMask[sfb + sfboffs] = 1;  | 
469  | 0  |       }  | 
470  | 0  |     }  | 
471  | 0  |   }  | 
472  | 0  | }  | 
473  |  |  | 
474  |  | /*****************************************************************************  | 
475  |  |  | 
476  |  |     functionname: FDKaacEnc_finalizeIntensityDecision  | 
477  |  |  | 
478  |  |     description:  Finalizes intensity decision  | 
479  |  |  | 
480  |  |     input:        isParams          scale: none  | 
481  |  |                   hrrErr            scale: none  | 
482  |  |                   realIsScale       scale: LD_DATA_SHIFT + REAL_SCALE_SF  | 
483  |  |                   normSfbLoudness   scale: none  | 
484  |  |  | 
485  |  |     output:       isMask            scale: none  | 
486  |  |  | 
487  |  |     returns:      none  | 
488  |  |  | 
489  |  | *****************************************************************************/  | 
490  |  | static void FDKaacEnc_finalizeIntensityDecision(  | 
491  |  |     const FIXP_DBL *hrrErr, INT *isMask, const FIXP_DBL *realIsScale,  | 
492  |  |     const FIXP_DBL *normSfbLoudness, const INTENSITY_PARAMETERS *isParams,  | 
493  | 0  |     const INT sfbCnt, const INT sfbPerGroup, const INT maxSfbPerGroup) { | 
494  | 0  |   INT sfb, sfboffs, j;  | 
495  | 0  |   FIXP_DBL isScaleLast = FL2FXCONST_DBL(0.0f);  | 
496  | 0  |   INT isStartValueFound = 0;  | 
497  |  | 
  | 
498  | 0  |   for (sfboffs = 0; sfboffs < sfbCnt; sfboffs += sfbPerGroup) { | 
499  | 0  |     INT startIsSfb = 0;  | 
500  | 0  |     INT inIsBlock = 0;  | 
501  | 0  |     INT currentIsSfbCount = 0;  | 
502  | 0  |     FIXP_DBL overallHrrError = FL2FXCONST_DBL(0.0f);  | 
503  | 0  |     FIXP_DBL isRegionLoudness = FL2FXCONST_DBL(0.0f);  | 
504  |  | 
  | 
505  | 0  |     for (sfb = 0; sfb < maxSfbPerGroup; sfb++) { | 
506  | 0  |       if (isMask[sfboffs + sfb] == 1) { | 
507  | 0  |         if (currentIsSfbCount == 0) { | 
508  | 0  |           startIsSfb = sfboffs + sfb;  | 
509  | 0  |         }  | 
510  | 0  |         if (isStartValueFound == 0) { | 
511  | 0  |           isScaleLast = realIsScale[sfboffs + sfb];  | 
512  | 0  |           isStartValueFound = 1;  | 
513  | 0  |         }  | 
514  | 0  |         inIsBlock = 1;  | 
515  | 0  |         currentIsSfbCount++;  | 
516  | 0  |         overallHrrError += hrrErr[sfboffs + sfb] >> (MAX_SFB_PER_GROUP_SF - 3);  | 
517  | 0  |         isRegionLoudness +=  | 
518  | 0  |             normSfbLoudness[sfboffs + sfb] >> MAX_SFB_PER_GROUP_SF;  | 
519  | 0  |       } else { | 
520  |  |         /* based on correlation, IS should not be used  | 
521  |  |          * -> use it anyway, if overall error is below threshold  | 
522  |  |          *    and if local error does not exceed threshold  | 
523  |  |          * otherwise: check if there are enough IS SFBs  | 
524  |  |          */  | 
525  | 0  |         if (inIsBlock) { | 
526  | 0  |           overallHrrError +=  | 
527  | 0  |               hrrErr[sfboffs + sfb] >> (MAX_SFB_PER_GROUP_SF - 3);  | 
528  | 0  |           isRegionLoudness +=  | 
529  | 0  |               normSfbLoudness[sfboffs + sfb] >> MAX_SFB_PER_GROUP_SF;  | 
530  |  | 
  | 
531  | 0  |           if ((hrrErr[sfboffs + sfb] < (isParams->local_error_thresh >> 3)) &&  | 
532  | 0  |               (overallHrrError <  | 
533  | 0  |                (isParams->total_error_thresh >> MAX_SFB_PER_GROUP_SF))) { | 
534  | 0  |             currentIsSfbCount++;  | 
535  |  |             /* overwrite correlation based decision */  | 
536  | 0  |             isMask[sfboffs + sfb] = 1;  | 
537  | 0  |           } else { | 
538  | 0  |             inIsBlock = 0;  | 
539  | 0  |           }  | 
540  | 0  |         }  | 
541  | 0  |       }  | 
542  |  |       /* check for large direction deviation */  | 
543  | 0  |       if (inIsBlock) { | 
544  | 0  |         if (fAbs(isScaleLast - realIsScale[sfboffs + sfb]) <  | 
545  | 0  |             (isParams->direction_deviation_thresh >>  | 
546  | 0  |              (REAL_SCALE_SF + LD_DATA_SHIFT -  | 
547  | 0  |               IS_DIRECTION_DEVIATION_THRESH_SF))) { | 
548  | 0  |           isScaleLast = realIsScale[sfboffs + sfb];  | 
549  | 0  |         } else { | 
550  | 0  |           isMask[sfboffs + sfb] = 0;  | 
551  | 0  |           inIsBlock = 0;  | 
552  | 0  |           currentIsSfbCount--;  | 
553  | 0  |         }  | 
554  | 0  |       }  | 
555  |  | 
  | 
556  | 0  |       if (currentIsSfbCount > 0 && (!inIsBlock || sfb == maxSfbPerGroup - 1)) { | 
557  |  |         /* not enough SFBs -> do not use IS */  | 
558  | 0  |         if (currentIsSfbCount < isParams->min_is_sfbs ||  | 
559  | 0  |             (isRegionLoudness<isParams->is_region_min_loudness>>  | 
560  | 0  |              MAX_SFB_PER_GROUP_SF)) { | 
561  | 0  |           for (j = startIsSfb; j <= sfboffs + sfb; j++) { | 
562  | 0  |             isMask[j] = 0;  | 
563  | 0  |           }  | 
564  | 0  |           isScaleLast = FL2FXCONST_DBL(0.0f);  | 
565  | 0  |           isStartValueFound = 0;  | 
566  | 0  |           for (j = 0; j < startIsSfb; j++) { | 
567  | 0  |             if (isMask[j] != 0) { | 
568  | 0  |               isScaleLast = realIsScale[j];  | 
569  | 0  |               isStartValueFound = 1;  | 
570  | 0  |             }  | 
571  | 0  |           }  | 
572  | 0  |         }  | 
573  | 0  |         currentIsSfbCount = 0;  | 
574  | 0  |         overallHrrError = FL2FXCONST_DBL(0.0f);  | 
575  | 0  |         isRegionLoudness = FL2FXCONST_DBL(0.0f);  | 
576  | 0  |       }  | 
577  | 0  |     }  | 
578  | 0  |   }  | 
579  | 0  | }  | 
580  |  |  | 
581  |  | /*****************************************************************************  | 
582  |  |  | 
583  |  |     functionname: FDKaacEnc_IntensityStereoProcessing  | 
584  |  |  | 
585  |  |     description:  Intensity stereo processing tool  | 
586  |  |  | 
587  |  |     input:        sfbEnergyLeft  | 
588  |  |                   sfbEnergyRight  | 
589  |  |                   mdctSpectrumLeft  | 
590  |  |                   mdctSpectrumRight  | 
591  |  |                   sfbThresholdLeft  | 
592  |  |                   sfbThresholdRight  | 
593  |  |                   sfbSpreadEnLeft  | 
594  |  |                   sfbSpreadEnRight  | 
595  |  |                   sfbEnergyLdDataLeft  | 
596  |  |                   sfbEnergyLdDataRight  | 
597  |  |  | 
598  |  |     output:       isBook  | 
599  |  |                   isScale  | 
600  |  |                   pnsData->pnsFlag  | 
601  |  |                   msDigest                 zeroed from start to sfbCnt  | 
602  |  |                   msMask                   zeroed from start to sfbCnt  | 
603  |  |                   mdctSpectrumRight        zeroed where isBook!=0  | 
604  |  |                   sfbEnergyRight           zeroed where isBook!=0  | 
605  |  |                   sfbSpreadEnRight       zeroed where isBook!=0  | 
606  |  |                   sfbThresholdRight        zeroed where isBook!=0  | 
607  |  |                   sfbEnergyLdDataRight     FL2FXCONST_DBL(-1.0) where isBook!=0  | 
608  |  |                   sfbThresholdLdDataRight  FL2FXCONST_DBL(-0.515625f) where  | 
609  |  | isBook!=0  | 
610  |  |  | 
611  |  |     returns:      none  | 
612  |  |  | 
613  |  | *****************************************************************************/  | 
614  |  | void FDKaacEnc_IntensityStereoProcessing(  | 
615  |  |     FIXP_DBL *sfbEnergyLeft, FIXP_DBL *sfbEnergyRight,  | 
616  |  |     FIXP_DBL *mdctSpectrumLeft, FIXP_DBL *mdctSpectrumRight,  | 
617  |  |     FIXP_DBL *sfbThresholdLeft, FIXP_DBL *sfbThresholdRight,  | 
618  |  |     FIXP_DBL *sfbThresholdLdDataRight, FIXP_DBL *sfbSpreadEnLeft,  | 
619  |  |     FIXP_DBL *sfbSpreadEnRight, FIXP_DBL *sfbEnergyLdDataLeft,  | 
620  |  |     FIXP_DBL *sfbEnergyLdDataRight, INT *msDigest, INT *msMask,  | 
621  |  |     const INT sfbCnt, const INT sfbPerGroup, const INT maxSfbPerGroup,  | 
622  |  |     const INT *sfbOffset, const INT allowIS, INT *isBook, INT *isScale,  | 
623  | 0  |     PNS_DATA *RESTRICT pnsData[2]) { | 
624  | 0  |   INT sfb, sfboffs, j;  | 
625  | 0  |   FIXP_DBL scale;  | 
626  | 0  |   FIXP_DBL lr;  | 
627  | 0  |   FIXP_DBL hrrErr[MAX_GROUPED_SFB];  | 
628  | 0  |   FIXP_DBL normSfbLoudness[MAX_GROUPED_SFB];  | 
629  | 0  |   FIXP_DBL realIsScale[MAX_GROUPED_SFB];  | 
630  | 0  |   INTENSITY_PARAMETERS isParams;  | 
631  | 0  |   INT isMask[MAX_GROUPED_SFB];  | 
632  |  | 
  | 
633  | 0  |   FDKmemclear((void *)isBook, sfbCnt * sizeof(INT));  | 
634  | 0  |   FDKmemclear((void *)isMask, sfbCnt * sizeof(INT));  | 
635  | 0  |   FDKmemclear((void *)realIsScale, sfbCnt * sizeof(FIXP_DBL));  | 
636  | 0  |   FDKmemclear((void *)isScale, sfbCnt * sizeof(INT));  | 
637  | 0  |   FDKmemclear((void *)hrrErr, sfbCnt * sizeof(FIXP_DBL));  | 
638  |  | 
  | 
639  | 0  |   if (!allowIS) return;  | 
640  |  |  | 
641  | 0  |   FDKaacEnc_initIsParams(&isParams);  | 
642  |  |  | 
643  |  |   /* compute / set the following values per SFB:  | 
644  |  |    * - left/right ratio between channels  | 
645  |  |    * - normalized loudness  | 
646  |  |    *   + loudness == average of energy in channels to 0.25  | 
647  |  |    *   + normalization: division by sum of all SFB loudnesses  | 
648  |  |    * - isMask (is set to 0 if channels are the same or one is 0)  | 
649  |  |    */  | 
650  | 0  |   FDKaacEnc_prepareIntensityDecision(  | 
651  | 0  |       sfbEnergyLeft, sfbEnergyRight, sfbEnergyLdDataLeft, sfbEnergyLdDataRight,  | 
652  | 0  |       mdctSpectrumLeft, mdctSpectrumRight, &isParams, hrrErr, isMask,  | 
653  | 0  |       realIsScale, normSfbLoudness, sfbCnt, sfbPerGroup, maxSfbPerGroup,  | 
654  | 0  |       sfbOffset);  | 
655  |  | 
  | 
656  | 0  |   FDKaacEnc_finalizeIntensityDecision(hrrErr, isMask, realIsScale,  | 
657  | 0  |                                       normSfbLoudness, &isParams, sfbCnt,  | 
658  | 0  |                                       sfbPerGroup, maxSfbPerGroup);  | 
659  |  | 
  | 
660  | 0  |   for (sfb = 0; sfb < sfbCnt; sfb += sfbPerGroup) { | 
661  | 0  |     for (sfboffs = 0; sfboffs < maxSfbPerGroup; sfboffs++) { | 
662  | 0  |       INT sL, sR;  | 
663  | 0  |       FIXP_DBL inv_n;  | 
664  | 0  |       INT mdct_spec_sf = MDCT_SPEC_SF;  | 
665  |  | 
  | 
666  | 0  |       msMask[sfb + sfboffs] = 0;  | 
667  | 0  |       if (isMask[sfb + sfboffs] == 0) { | 
668  | 0  |         continue;  | 
669  | 0  |       }  | 
670  |  |  | 
671  | 0  |       if ((sfbEnergyLeft[sfb + sfboffs] < sfbThresholdLeft[sfb + sfboffs]) &&  | 
672  | 0  |           (fMult(FL2FXCONST_DBL(1.0f / 1.5f), sfbEnergyRight[sfb + sfboffs]) >  | 
673  | 0  |            sfbThresholdRight[sfb + sfboffs])) { | 
674  | 0  |         continue;  | 
675  | 0  |       }  | 
676  |  |       /* NEW: if there is a big-enough IS region, switch off PNS */  | 
677  | 0  |       if (pnsData[0]) { | 
678  | 0  |         if (pnsData[0]->pnsFlag[sfb + sfboffs]) { | 
679  | 0  |           pnsData[0]->pnsFlag[sfb + sfboffs] = 0;  | 
680  | 0  |         }  | 
681  | 0  |         if (pnsData[1]->pnsFlag[sfb + sfboffs]) { | 
682  | 0  |           pnsData[1]->pnsFlag[sfb + sfboffs] = 0;  | 
683  | 0  |         }  | 
684  | 0  |       }  | 
685  |  | 
  | 
686  | 0  |       if (sfbOffset[sfb + sfboffs + 1] - sfbOffset[sfb + sfboffs] >  | 
687  | 0  |           1 << mdct_spec_sf) { | 
688  | 0  |         mdct_spec_sf++; /* This is for rare cases where the number of bins in a  | 
689  |  |                            scale factor band is > 64 */  | 
690  | 0  |       }  | 
691  |  | 
  | 
692  | 0  |       inv_n = GetInvInt(  | 
693  | 0  |           (sfbOffset[sfb + sfboffs + 1] - sfbOffset[sfb + sfboffs]) >>  | 
694  | 0  |           1);  // scaled with 2 to compensate fMultDiv2() in subsequent loop  | 
695  | 0  |       sL = calcSfbMaxScale(mdctSpectrumLeft, sfbOffset[sfb + sfboffs],  | 
696  | 0  |                            sfbOffset[sfb + sfboffs + 1]);  | 
697  | 0  |       sR = calcSfbMaxScale(mdctSpectrumRight, sfbOffset[sfb + sfboffs],  | 
698  | 0  |                            sfbOffset[sfb + sfboffs + 1]);  | 
699  |  | 
  | 
700  | 0  |       lr = FL2FXCONST_DBL(0.0f);  | 
701  | 0  |       for (j = sfbOffset[sfb + sfboffs]; j < sfbOffset[sfb + sfboffs + 1]; j++)  | 
702  | 0  |         lr += fMultDiv2(  | 
703  | 0  |             fMultDiv2(mdctSpectrumLeft[j] << sL, mdctSpectrumRight[j] << sR),  | 
704  | 0  |             inv_n);  | 
705  | 0  |       lr = lr << 1;  | 
706  |  | 
  | 
707  | 0  |       if (lr < FL2FXCONST_DBL(0.0f)) { | 
708  |  |         /* This means OUT OF phase intensity stereo, cf. standard */  | 
709  | 0  |         INT s0, s1, s2;  | 
710  | 0  |         FIXP_DBL tmp, d, ed = FL2FXCONST_DBL(0.0f);  | 
711  |  | 
  | 
712  | 0  |         s0 = fixMin(sL, sR);  | 
713  | 0  |         for (j = sfbOffset[sfb + sfboffs]; j < sfbOffset[sfb + sfboffs + 1];  | 
714  | 0  |              j++) { | 
715  | 0  |           d = ((mdctSpectrumLeft[j] << s0) >> 1) -  | 
716  | 0  |               ((mdctSpectrumRight[j] << s0) >> 1);  | 
717  | 0  |           ed += fMultDiv2(d, d) >> (mdct_spec_sf - 1);  | 
718  | 0  |         }  | 
719  | 0  |         msMask[sfb + sfboffs] = 1;  | 
720  | 0  |         tmp = fDivNorm(sfbEnergyLeft[sfb + sfboffs], ed, &s1);  | 
721  | 0  |         s2 = (s1) + (2 * s0) - 2 - mdct_spec_sf;  | 
722  | 0  |         if (s2 & 1) { | 
723  | 0  |           tmp = tmp >> 1;  | 
724  | 0  |           s2 = s2 + 1;  | 
725  | 0  |         }  | 
726  | 0  |         s2 = (s2 >> 1) + 1;  // +1 compensate fMultDiv2() in subsequent loop  | 
727  | 0  |         s2 = fixMin(fixMax(s2, -(DFRACT_BITS - 1)), (DFRACT_BITS - 1));  | 
728  | 0  |         scale = sqrtFixp(tmp);  | 
729  | 0  |         if (s2 < 0) { | 
730  | 0  |           s2 = -s2;  | 
731  | 0  |           for (j = sfbOffset[sfb + sfboffs]; j < sfbOffset[sfb + sfboffs + 1];  | 
732  | 0  |                j++) { | 
733  | 0  |             mdctSpectrumLeft[j] = (fMultDiv2(mdctSpectrumLeft[j], scale) -  | 
734  | 0  |                                    fMultDiv2(mdctSpectrumRight[j], scale)) >>  | 
735  | 0  |                                   s2;  | 
736  | 0  |             mdctSpectrumRight[j] = FL2FXCONST_DBL(0.0f);  | 
737  | 0  |           }  | 
738  | 0  |         } else { | 
739  | 0  |           for (j = sfbOffset[sfb + sfboffs]; j < sfbOffset[sfb + sfboffs + 1];  | 
740  | 0  |                j++) { | 
741  | 0  |             mdctSpectrumLeft[j] = (fMultDiv2(mdctSpectrumLeft[j], scale) -  | 
742  | 0  |                                    fMultDiv2(mdctSpectrumRight[j], scale))  | 
743  | 0  |                                   << s2;  | 
744  | 0  |             mdctSpectrumRight[j] = FL2FXCONST_DBL(0.0f);  | 
745  | 0  |           }  | 
746  | 0  |         }  | 
747  | 0  |       } else { | 
748  |  |         /* This means IN phase intensity stereo, cf. standard */  | 
749  | 0  |         INT s0, s1, s2;  | 
750  | 0  |         FIXP_DBL tmp, s, es = FL2FXCONST_DBL(0.0f);  | 
751  |  | 
  | 
752  | 0  |         s0 = fixMin(sL, sR);  | 
753  | 0  |         for (j = sfbOffset[sfb + sfboffs]; j < sfbOffset[sfb + sfboffs + 1];  | 
754  | 0  |              j++) { | 
755  | 0  |           s = ((mdctSpectrumLeft[j] << s0) >> 1) +  | 
756  | 0  |               ((mdctSpectrumRight[j] << s0) >> 1);  | 
757  | 0  |           es += fMultDiv2(s, s) >>  | 
758  | 0  |                 (mdct_spec_sf -  | 
759  | 0  |                  1);  // scaled 2*(mdctScale - s0 + 1) + mdct_spec_sf  | 
760  | 0  |         }  | 
761  | 0  |         msMask[sfb + sfboffs] = 0;  | 
762  | 0  |         tmp = fDivNorm(sfbEnergyLeft[sfb + sfboffs], es, &s1);  | 
763  | 0  |         s2 = (s1) + (2 * s0) - 2 - mdct_spec_sf;  | 
764  | 0  |         if (s2 & 1) { | 
765  | 0  |           tmp = tmp >> 1;  | 
766  | 0  |           s2 = s2 + 1;  | 
767  | 0  |         }  | 
768  | 0  |         s2 = (s2 >> 1) + 1;  // +1 compensate fMultDiv2() in subsequent loop  | 
769  | 0  |         s2 = fixMin(fixMax(s2, -(DFRACT_BITS - 1)), (DFRACT_BITS - 1));  | 
770  | 0  |         scale = sqrtFixp(tmp);  | 
771  | 0  |         if (s2 < 0) { | 
772  | 0  |           s2 = -s2;  | 
773  | 0  |           for (j = sfbOffset[sfb + sfboffs]; j < sfbOffset[sfb + sfboffs + 1];  | 
774  | 0  |                j++) { | 
775  | 0  |             mdctSpectrumLeft[j] = (fMultDiv2(mdctSpectrumLeft[j], scale) +  | 
776  | 0  |                                    fMultDiv2(mdctSpectrumRight[j], scale)) >>  | 
777  | 0  |                                   s2;  | 
778  | 0  |             mdctSpectrumRight[j] = FL2FXCONST_DBL(0.0f);  | 
779  | 0  |           }  | 
780  | 0  |         } else { | 
781  | 0  |           for (j = sfbOffset[sfb + sfboffs]; j < sfbOffset[sfb + sfboffs + 1];  | 
782  | 0  |                j++) { | 
783  | 0  |             mdctSpectrumLeft[j] = (fMultDiv2(mdctSpectrumLeft[j], scale) +  | 
784  | 0  |                                    fMultDiv2(mdctSpectrumRight[j], scale))  | 
785  | 0  |                                   << s2;  | 
786  | 0  |             mdctSpectrumRight[j] = FL2FXCONST_DBL(0.0f);  | 
787  | 0  |           }  | 
788  | 0  |         }  | 
789  | 0  |       }  | 
790  |  | 
  | 
791  | 0  |       isBook[sfb + sfboffs] = CODE_BOOK_IS_IN_PHASE_NO;  | 
792  |  | 
  | 
793  | 0  |       if (realIsScale[sfb + sfboffs] < FL2FXCONST_DBL(0.0f)) { | 
794  | 0  |         isScale[sfb + sfboffs] =  | 
795  | 0  |             (INT)(((realIsScale[sfb + sfboffs] >> 1) -  | 
796  | 0  |                    FL2FXCONST_DBL(  | 
797  | 0  |                        0.5f / (1 << (REAL_SCALE_SF + LD_DATA_SHIFT + 1)))) >>  | 
798  | 0  |                   (DFRACT_BITS - 1 - REAL_SCALE_SF - LD_DATA_SHIFT - 1)) +  | 
799  | 0  |             1;  | 
800  | 0  |       } else { | 
801  | 0  |         isScale[sfb + sfboffs] =  | 
802  | 0  |             (INT)(((realIsScale[sfb + sfboffs] >> 1) +  | 
803  | 0  |                    FL2FXCONST_DBL(  | 
804  | 0  |                        0.5f / (1 << (REAL_SCALE_SF + LD_DATA_SHIFT + 1)))) >>  | 
805  | 0  |                   (DFRACT_BITS - 1 - REAL_SCALE_SF - LD_DATA_SHIFT - 1));  | 
806  | 0  |       }  | 
807  |  | 
  | 
808  | 0  |       sfbEnergyRight[sfb + sfboffs] = FL2FXCONST_DBL(0.0f);  | 
809  | 0  |       sfbEnergyLdDataRight[sfb + sfboffs] = FL2FXCONST_DBL(-1.0f);  | 
810  | 0  |       sfbThresholdRight[sfb + sfboffs] = FL2FXCONST_DBL(0.0f);  | 
811  | 0  |       sfbThresholdLdDataRight[sfb + sfboffs] = FL2FXCONST_DBL(-0.515625f);  | 
812  | 0  |       sfbSpreadEnRight[sfb + sfboffs] = FL2FXCONST_DBL(0.0f);  | 
813  |  | 
  | 
814  | 0  |       *msDigest = MS_SOME;  | 
815  | 0  |     }  | 
816  | 0  |   }  | 
817  | 0  | }  |