/src/icu/source/i18n/indiancal.cpp
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1  |  | // © 2016 and later: Unicode, Inc. and others.  | 
2  |  | // License & terms of use: http://www.unicode.org/copyright.html  | 
3  |  | /*  | 
4  |  |  * Copyright (C) 2003-2014, International Business Machines Corporation  | 
5  |  |  * and others. All Rights Reserved.  | 
6  |  |  ******************************************************************************  | 
7  |  |  *  | 
8  |  |  * File INDIANCAL.CPP  | 
9  |  |  *****************************************************************************  | 
10  |  |  */  | 
11  |  |  | 
12  |  | #include "indiancal.h"  | 
13  |  | #include <stdlib.h>  | 
14  |  | #if !UCONFIG_NO_FORMATTING  | 
15  |  |  | 
16  |  | #include "mutex.h"  | 
17  |  | #include <float.h>  | 
18  |  | #include "gregoimp.h" // Math  | 
19  |  | #include "astro.h" // CalendarAstronomer  | 
20  |  | #include "uhash.h"  | 
21  |  |  | 
22  |  | // Debugging  | 
23  |  | #ifdef U_DEBUG_INDIANCAL  | 
24  |  | #include <stdio.h>  | 
25  |  | #include <stdarg.h>  | 
26  |  |  | 
27  |  | #endif  | 
28  |  |  | 
29  |  | U_NAMESPACE_BEGIN  | 
30  |  |  | 
31  |  | // Implementation of the IndianCalendar class  | 
32  |  |  | 
33  |  | //-------------------------------------------------------------------------  | 
34  |  | // Constructors...  | 
35  |  | //-------------------------------------------------------------------------  | 
36  |  |  | 
37  |  |  | 
38  | 0  | IndianCalendar* IndianCalendar::clone() const { | 
39  | 0  |   return new IndianCalendar(*this);  | 
40  | 0  | }  | 
41  |  |  | 
42  |  | IndianCalendar::IndianCalendar(const Locale& aLocale, UErrorCode& success)  | 
43  | 0  |   :   Calendar(TimeZone::forLocaleOrDefault(aLocale), aLocale, success)  | 
44  | 0  | { | 
45  | 0  |   setTimeInMillis(getNow(), success); // Call this again now that the vtable is set up properly.  | 
46  | 0  | }  | 
47  |  |  | 
48  | 0  | IndianCalendar::IndianCalendar(const IndianCalendar& other) : Calendar(other) { | 
49  | 0  | }  | 
50  |  |  | 
51  |  | IndianCalendar::~IndianCalendar()  | 
52  | 0  | { | 
53  | 0  | }  | 
54  | 0  | const char *IndianCalendar::getType() const {  | 
55  | 0  |    return "indian";  | 
56  | 0  | }  | 
57  |  |     | 
58  |  | static const int32_t LIMITS[UCAL_FIELD_COUNT][4] = { | 
59  |  |     // Minimum  Greatest     Least   Maximum  | 
60  |  |     //           Minimum   Maximum  | 
61  |  |     {        0,        0,        0,        0}, // ERA | 
62  |  |     { -5000000, -5000000,  5000000,  5000000}, // YEAR | 
63  |  |     {        0,        0,       11,       11}, // MONTH | 
64  |  |     {        1,        1,       52,       53}, // WEEK_OF_YEAR | 
65  |  |     {/*N/A*/-1,/*N/A*/-1,/*N/A*/-1,/*N/A*/-1}, // WEEK_OF_MONTH | 
66  |  |     {        1,        1,       30,       31}, // DAY_OF_MONTH | 
67  |  |     {        1,        1,      365,      366}, // DAY_OF_YEAR | 
68  |  |     {/*N/A*/-1,/*N/A*/-1,/*N/A*/-1,/*N/A*/-1}, // DAY_OF_WEEK | 
69  |  |     {       -1,       -1,        5,        5}, // DAY_OF_WEEK_IN_MONTH | 
70  |  |     {/*N/A*/-1,/*N/A*/-1,/*N/A*/-1,/*N/A*/-1}, // AM_PM | 
71  |  |     {/*N/A*/-1,/*N/A*/-1,/*N/A*/-1,/*N/A*/-1}, // HOUR | 
72  |  |     {/*N/A*/-1,/*N/A*/-1,/*N/A*/-1,/*N/A*/-1}, // HOUR_OF_DAY | 
73  |  |     {/*N/A*/-1,/*N/A*/-1,/*N/A*/-1,/*N/A*/-1}, // MINUTE | 
74  |  |     {/*N/A*/-1,/*N/A*/-1,/*N/A*/-1,/*N/A*/-1}, // SECOND | 
75  |  |     {/*N/A*/-1,/*N/A*/-1,/*N/A*/-1,/*N/A*/-1}, // MILLISECOND | 
76  |  |     {/*N/A*/-1,/*N/A*/-1,/*N/A*/-1,/*N/A*/-1}, // ZONE_OFFSET | 
77  |  |     {/*N/A*/-1,/*N/A*/-1,/*N/A*/-1,/*N/A*/-1}, // DST_OFFSET | 
78  |  |     { -5000000, -5000000,  5000000,  5000000}, // YEAR_WOY | 
79  |  |     {/*N/A*/-1,/*N/A*/-1,/*N/A*/-1,/*N/A*/-1}, // DOW_LOCAL | 
80  |  |     { -5000000, -5000000,  5000000,  5000000}, // EXTENDED_YEAR | 
81  |  |     {/*N/A*/-1,/*N/A*/-1,/*N/A*/-1,/*N/A*/-1}, // JULIAN_DAY | 
82  |  |     {/*N/A*/-1,/*N/A*/-1,/*N/A*/-1,/*N/A*/-1}, // MILLISECONDS_IN_DAY | 
83  |  |     {/*N/A*/-1,/*N/A*/-1,/*N/A*/-1,/*N/A*/-1}, // IS_LEAP_MONTH | 
84  |  | };  | 
85  |  |  | 
86  |  | static const int32_t INDIAN_ERA_START  = 78;  | 
87  |  | static const int32_t INDIAN_YEAR_START = 80;  | 
88  |  |  | 
89  | 0  | int32_t IndianCalendar::handleGetLimit(UCalendarDateFields field, ELimitType limitType) const { | 
90  | 0  |   return LIMITS[field][limitType];  | 
91  | 0  | }  | 
92  |  |  | 
93  |  | /*  | 
94  |  |  * Determine whether the given gregorian year is a Leap year   | 
95  |  |  */  | 
96  |  | static UBool isGregorianLeap(int32_t year)  | 
97  | 0  | { | 
98  | 0  |     return Grego::isLeapYear(year);  | 
99  | 0  | }  | 
100  |  |     | 
101  |  | //----------------------------------------------------------------------  | 
102  |  | // Calendar framework  | 
103  |  | //----------------------------------------------------------------------  | 
104  |  |  | 
105  |  | /*  | 
106  |  |  * Return the length (in days) of the given month.  | 
107  |  |  *  | 
108  |  |  * @param eyear  The year in Saka Era  | 
109  |  |  * @param month  The month(0-based) in Indian calendar  | 
110  |  |  */  | 
111  | 0  | int32_t IndianCalendar::handleGetMonthLength(int32_t eyear, int32_t month) const { | 
112  | 0  |    if (month < 0 || month > 11) { | 
113  | 0  |       eyear += ClockMath::floorDivide(month, 12, month);  | 
114  | 0  |    }  | 
115  |  | 
  | 
116  | 0  |    if (isGregorianLeap(eyear + INDIAN_ERA_START) && month == 0) { | 
117  | 0  |        return 31;  | 
118  | 0  |    }  | 
119  |  |  | 
120  | 0  |    if (month >= 1 && month <= 5) { | 
121  | 0  |        return 31;  | 
122  | 0  |    }  | 
123  |  |  | 
124  | 0  |    return 30;  | 
125  | 0  | }  | 
126  |  |  | 
127  |  | /*  | 
128  |  |  * Return the number of days in the given Indian year  | 
129  |  |  *  | 
130  |  |  * @param eyear The year in Saka Era.  | 
131  |  |  */  | 
132  | 0  | int32_t IndianCalendar::handleGetYearLength(int32_t eyear) const { | 
133  | 0  |     return isGregorianLeap(eyear + INDIAN_ERA_START) ? 366 : 365;  | 
134  | 0  | }  | 
135  |  | /*  | 
136  |  |  * Returns the Julian Day corresponding to gregorian date  | 
137  |  |  *  | 
138  |  |  * @param year The Gregorian year  | 
139  |  |  * @param month The month in Gregorian Year, 0 based.  | 
140  |  |  * @param date The date in Gregorian day in month  | 
141  |  |  */  | 
142  | 0  | static double gregorianToJD(int32_t year, int32_t month, int32_t date) { | 
143  | 0  |    return Grego::fieldsToDay(year, month, date) + kEpochStartAsJulianDay - 0.5;  | 
144  | 0  | }  | 
145  |  |  | 
146  |  | /*  | 
147  |  |  * Returns the Gregorian Date corresponding to a given Julian Day  | 
148  |  |  * Month is 0 based.  | 
149  |  |  * @param jd The Julian Day  | 
150  |  |  */  | 
151  | 0  | static int32_t* jdToGregorian(double jd, int32_t gregorianDate[3]) { | 
152  | 0  |    int32_t gdow;  | 
153  | 0  |    Grego::dayToFields(jd - kEpochStartAsJulianDay,  | 
154  | 0  |                       gregorianDate[0], gregorianDate[1], gregorianDate[2], gdow);  | 
155  | 0  |    return gregorianDate;  | 
156  | 0  | }  | 
157  |  |  | 
158  |  |      | 
159  |  | //-------------------------------------------------------------------------  | 
160  |  | // Functions for converting from field values to milliseconds....  | 
161  |  | //-------------------------------------------------------------------------  | 
162  | 0  | static double IndianToJD(int32_t year, int32_t month, int32_t date) { | 
163  | 0  |    int32_t leapMonth, gyear, m;  | 
164  | 0  |    double start, jd;  | 
165  |  | 
  | 
166  | 0  |    gyear = year + INDIAN_ERA_START;  | 
167  |  |  | 
168  |  | 
  | 
169  | 0  |    if(isGregorianLeap(gyear)) { | 
170  | 0  |       leapMonth = 31;  | 
171  | 0  |       start = gregorianToJD(gyear, 2 /* The third month in 0 based month */, 21);  | 
172  | 0  |    }   | 
173  | 0  |    else { | 
174  | 0  |       leapMonth = 30;  | 
175  | 0  |       start = gregorianToJD(gyear, 2 /* The third month in 0 based month */, 22);  | 
176  | 0  |    }  | 
177  |  | 
  | 
178  | 0  |    if (month == 1) { | 
179  | 0  |       jd = start + (date - 1);  | 
180  | 0  |    } else { | 
181  | 0  |       jd = start + leapMonth;  | 
182  | 0  |       m = month - 2;  | 
183  |  |  | 
184  |  |       //m = Math.min(m, 5);  | 
185  | 0  |       if (m > 5) { | 
186  | 0  |           m = 5;  | 
187  | 0  |       }  | 
188  |  | 
  | 
189  | 0  |       jd += m * 31;  | 
190  |  | 
  | 
191  | 0  |       if (month >= 8) { | 
192  | 0  |          m = month - 7;  | 
193  | 0  |          jd += m * 30;  | 
194  | 0  |       }  | 
195  | 0  |       jd += date - 1;  | 
196  | 0  |    }  | 
197  |  | 
  | 
198  | 0  |    return jd;  | 
199  | 0  | }  | 
200  |  |  | 
201  |  | /*  | 
202  |  |  * Return JD of start of given month/year of Indian Calendar  | 
203  |  |  * @param eyear The year in Indian Calendar measured from Saka Era (78 AD).  | 
204  |  |  * @param month The month in Indian calendar  | 
205  |  |  */  | 
206  | 0  | int32_t IndianCalendar::handleComputeMonthStart(int32_t eyear, int32_t month, UBool /* useMonth */ ) const { | 
207  |  |  | 
208  |  |    //month is 0 based; converting it to 1-based   | 
209  | 0  |    int32_t imonth;  | 
210  |  |  | 
211  |  |     // If the month is out of range, adjust it into range, and adjust the extended year accordingly  | 
212  | 0  |    if (month < 0 || month > 11) { | 
213  | 0  |       eyear += (int32_t)ClockMath::floorDivide(month, 12, month);  | 
214  | 0  |    }  | 
215  |  | 
  | 
216  | 0  |    if(month == 12){ | 
217  | 0  |        imonth = 1;  | 
218  | 0  |    } else { | 
219  | 0  |        imonth = month + 1;   | 
220  | 0  |    }  | 
221  |  |      | 
222  | 0  |    double jd = IndianToJD(eyear ,imonth, 1);  | 
223  |  | 
  | 
224  | 0  |    return (int32_t)jd;  | 
225  | 0  | }  | 
226  |  |  | 
227  |  | //-------------------------------------------------------------------------  | 
228  |  | // Functions for converting from milliseconds to field values  | 
229  |  | //-------------------------------------------------------------------------  | 
230  |  |  | 
231  | 0  | int32_t IndianCalendar::handleGetExtendedYear() { | 
232  | 0  |     int32_t year;  | 
233  |  | 
  | 
234  | 0  |     if (newerField(UCAL_EXTENDED_YEAR, UCAL_YEAR) == UCAL_EXTENDED_YEAR) { | 
235  | 0  |         year = internalGet(UCAL_EXTENDED_YEAR, 1); // Default to year 1  | 
236  | 0  |     } else { | 
237  | 0  |         year = internalGet(UCAL_YEAR, 1); // Default to year 1  | 
238  | 0  |     }  | 
239  |  | 
  | 
240  | 0  |     return year;  | 
241  | 0  | }  | 
242  |  |  | 
243  |  | /*  | 
244  |  |  * Override Calendar to compute several fields specific to the Indian  | 
245  |  |  * calendar system.  These are:  | 
246  |  |  *  | 
247  |  |  * <ul><li>ERA  | 
248  |  |  * <li>YEAR  | 
249  |  |  * <li>MONTH  | 
250  |  |  * <li>DAY_OF_MONTH  | 
251  |  |  * <li>EXTENDED_YEAR</ul>  | 
252  |  |  *   | 
253  |  |  * The DAY_OF_WEEK and DOW_LOCAL fields are already set when this  | 
254  |  |  * method is called. The getGregorianXxx() methods return Gregorian  | 
255  |  |  * calendar equivalents for the given Julian day.  | 
256  |  |  */  | 
257  | 0  | void IndianCalendar::handleComputeFields(int32_t julianDay, UErrorCode&  /* status */) { | 
258  | 0  |     double jdAtStartOfGregYear;  | 
259  | 0  |     int32_t leapMonth, IndianYear, yday, IndianMonth, IndianDayOfMonth, mday;  | 
260  | 0  |     int32_t gregorianYear;      // Stores gregorian date corresponding to Julian day;  | 
261  | 0  |     int32_t gd[3];  | 
262  |  | 
  | 
263  | 0  |     gregorianYear = jdToGregorian(julianDay, gd)[0];          // Gregorian date for Julian day  | 
264  | 0  |     IndianYear = gregorianYear - INDIAN_ERA_START;            // Year in Saka era  | 
265  | 0  |     jdAtStartOfGregYear = gregorianToJD(gregorianYear, 0, 1); // JD at start of Gregorian year  | 
266  | 0  |     yday = (int32_t)(julianDay - jdAtStartOfGregYear);        // Day number in Gregorian year (starting from 0)  | 
267  |  | 
  | 
268  | 0  |     if (yday < INDIAN_YEAR_START) { | 
269  |  |         // Day is at the end of the preceding Saka year  | 
270  | 0  |         IndianYear -= 1;  | 
271  | 0  |         leapMonth = isGregorianLeap(gregorianYear - 1) ? 31 : 30; // Days in leapMonth this year, previous Gregorian year  | 
272  | 0  |         yday += leapMonth + (31 * 5) + (30 * 3) + 10;  | 
273  | 0  |     } else { | 
274  | 0  |         leapMonth = isGregorianLeap(gregorianYear) ? 31 : 30; // Days in leapMonth this year  | 
275  | 0  |         yday -= INDIAN_YEAR_START;  | 
276  | 0  |     }  | 
277  |  | 
  | 
278  | 0  |     if (yday < leapMonth) { | 
279  | 0  |         IndianMonth = 0;  | 
280  | 0  |         IndianDayOfMonth = yday + 1;  | 
281  | 0  |     } else { | 
282  | 0  |         mday = yday - leapMonth;  | 
283  | 0  |         if (mday < (31 * 5)) { | 
284  | 0  |             IndianMonth = (int32_t)uprv_floor(mday / 31) + 1;  | 
285  | 0  |             IndianDayOfMonth = (mday % 31) + 1;  | 
286  | 0  |         } else { | 
287  | 0  |             mday -= 31 * 5;  | 
288  | 0  |             IndianMonth = (int32_t)uprv_floor(mday / 30) + 6;  | 
289  | 0  |             IndianDayOfMonth = (mday % 30) + 1;  | 
290  | 0  |         }  | 
291  | 0  |    }  | 
292  |  | 
  | 
293  | 0  |    internalSet(UCAL_ERA, 0);  | 
294  | 0  |    internalSet(UCAL_EXTENDED_YEAR, IndianYear);  | 
295  | 0  |    internalSet(UCAL_YEAR, IndianYear);  | 
296  | 0  |    internalSet(UCAL_MONTH, IndianMonth);  | 
297  | 0  |    internalSet(UCAL_DAY_OF_MONTH, IndianDayOfMonth);  | 
298  | 0  |    internalSet(UCAL_DAY_OF_YEAR, yday + 1); // yday is 0-based  | 
299  | 0  | }      | 
300  |  |  | 
301  |  | UBool  | 
302  |  | IndianCalendar::inDaylightTime(UErrorCode& status) const  | 
303  | 0  | { | 
304  |  |     // copied from GregorianCalendar  | 
305  | 0  |     if (U_FAILURE(status) || !getTimeZone().useDaylightTime()) { | 
306  | 0  |         return FALSE;  | 
307  | 0  |     }  | 
308  |  |  | 
309  |  |     // Force an update of the state of the Calendar.  | 
310  | 0  |     ((IndianCalendar*)this)->complete(status); // cast away const  | 
311  |  | 
  | 
312  | 0  |     return (UBool)(U_SUCCESS(status) ? (internalGet(UCAL_DST_OFFSET) != 0) : FALSE);  | 
313  | 0  | }  | 
314  |  |  | 
315  |  |  | 
316  |  | /**  | 
317  |  |  * The system maintains a static default century start date and Year.  They are  | 
318  |  |  * initialized the first time they are used.  Once the system default century date  | 
319  |  |  * and year are set, they do not change.  | 
320  |  |  */  | 
321  |  | static UDate           gSystemDefaultCenturyStart       = DBL_MIN;  | 
322  |  | static int32_t         gSystemDefaultCenturyStartYear   = -1;  | 
323  |  | static icu::UInitOnce  gSystemDefaultCenturyInit        = U_INITONCE_INITIALIZER;  | 
324  |  |  | 
325  |  |  | 
326  |  | UBool IndianCalendar::haveDefaultCentury() const  | 
327  | 0  | { | 
328  | 0  |     return TRUE;  | 
329  | 0  | }  | 
330  |  |  | 
331  |  | static void U_CALLCONV  | 
332  |  | initializeSystemDefaultCentury()  | 
333  | 0  | { | 
334  |  |     // initialize systemDefaultCentury and systemDefaultCenturyYear based  | 
335  |  |     // on the current time.  They'll be set to 80 years before  | 
336  |  |     // the current time.  | 
337  | 0  |     UErrorCode status = U_ZERO_ERROR;  | 
338  |  | 
  | 
339  | 0  |     IndianCalendar calendar ( Locale ( "@calendar=Indian" ), status);  | 
340  | 0  |     if ( U_SUCCESS ( status ) ) { | 
341  | 0  |         calendar.setTime ( Calendar::getNow(), status );  | 
342  | 0  |         calendar.add ( UCAL_YEAR, -80, status );  | 
343  |  | 
  | 
344  | 0  |         UDate    newStart = calendar.getTime ( status );  | 
345  | 0  |         int32_t  newYear  = calendar.get ( UCAL_YEAR, status );  | 
346  |  | 
  | 
347  | 0  |         gSystemDefaultCenturyStart = newStart;  | 
348  | 0  |         gSystemDefaultCenturyStartYear = newYear;  | 
349  | 0  |     }  | 
350  |  |     // We have no recourse upon failure.  | 
351  | 0  | }  | 
352  |  |  | 
353  |  |  | 
354  |  | UDate  | 
355  |  | IndianCalendar::defaultCenturyStart() const  | 
356  | 0  | { | 
357  |  |     // lazy-evaluate systemDefaultCenturyStart  | 
358  | 0  |     umtx_initOnce(gSystemDefaultCenturyInit, &initializeSystemDefaultCentury);  | 
359  | 0  |     return gSystemDefaultCenturyStart;  | 
360  | 0  | }  | 
361  |  |  | 
362  |  | int32_t  | 
363  |  | IndianCalendar::defaultCenturyStartYear() const  | 
364  | 0  | { | 
365  |  |     // lazy-evaluate systemDefaultCenturyStartYear  | 
366  | 0  |     umtx_initOnce(gSystemDefaultCenturyInit, &initializeSystemDefaultCentury);  | 
367  | 0  |     return    gSystemDefaultCenturyStartYear;  | 
368  | 0  | }  | 
369  |  |  | 
370  |  |  | 
371  |  | UOBJECT_DEFINE_RTTI_IMPLEMENTATION(IndianCalendar)  | 
372  |  |  | 
373  |  | U_NAMESPACE_END  | 
374  |  |  | 
375  |  | #endif  | 
376  |  |  |