| 1 | // © 2016 and later: Unicode, Inc. and others. | 
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| 2 | // License & terms of use: http://www.unicode.org/copyright.html | 
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| 3 | /* | 
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| 4 | ********************************************************************** | 
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| 5 | * Copyright (c) 2003-2008, International Business Machines | 
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| 6 | * Corporation and others.  All Rights Reserved. | 
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| 7 | ********************************************************************** | 
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| 8 | * Author: Alan Liu | 
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| 9 | * Created: September 2 2003 | 
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| 10 | * Since: ICU 2.8 | 
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| 11 | ********************************************************************** | 
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| 12 | */ | 
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| 13 |  | 
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| 14 | #include "gregoimp.h" | 
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| 15 |  | 
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| 16 | #if !UCONFIG_NO_FORMATTING | 
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| 17 |  | 
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| 18 | #include "unicode/ucal.h" | 
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| 19 | #include "uresimp.h" | 
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| 20 | #include "cstring.h" | 
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| 21 | #include "uassert.h" | 
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| 22 |  | 
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| 23 | U_NAMESPACE_BEGIN | 
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| 24 |  | 
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| 25 | int32_t ClockMath::floorDivide(int32_t numerator, int32_t denominator) { | 
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| 26 | return (numerator >= 0) ? | 
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| 27 | numerator / denominator : ((numerator + 1) / denominator) - 1; | 
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| 28 | } | 
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| 29 |  | 
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| 30 | int64_t ClockMath::floorDivide(int64_t numerator, int64_t denominator) { | 
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| 31 | return (numerator >= 0) ? | 
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| 32 | numerator / denominator : ((numerator + 1) / denominator) - 1; | 
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| 33 | } | 
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| 34 |  | 
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| 35 | int32_t ClockMath::floorDivide(double numerator, int32_t denominator, | 
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| 36 | int32_t& remainder) { | 
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| 37 | double quotient; | 
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| 38 | quotient = uprv_floor(numerator / denominator); | 
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| 39 | remainder = (int32_t) (numerator - (quotient * denominator)); | 
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| 40 | return (int32_t) quotient; | 
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| 41 | } | 
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| 42 |  | 
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| 43 | double ClockMath::floorDivide(double dividend, double divisor, | 
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| 44 | double& remainder) { | 
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| 45 | // Only designed to work for positive divisors | 
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| 46 | U_ASSERT(divisor > 0); | 
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| 47 | double quotient = floorDivide(dividend, divisor); | 
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| 48 | remainder = dividend - (quotient * divisor); | 
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| 49 | // N.B. For certain large dividends, on certain platforms, there | 
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| 50 | // is a bug such that the quotient is off by one.  If you doubt | 
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| 51 | // this to be true, set a breakpoint below and run cintltst. | 
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| 52 | if (remainder < 0 || remainder >= divisor) { | 
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| 53 | // E.g. 6.7317038241449352e+022 / 86400000.0 is wrong on my | 
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| 54 | // machine (too high by one).  4.1792057231752762e+024 / | 
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| 55 | // 86400000.0 is wrong the other way (too low). | 
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| 56 | double q = quotient; | 
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| 57 | quotient += (remainder < 0) ? -1 : +1; | 
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| 58 | if (q == quotient) { | 
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| 59 | // For quotients > ~2^53, we won't be able to add or | 
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| 60 | // subtract one, since the LSB of the mantissa will be > | 
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| 61 | // 2^0; that is, the exponent (base 2) will be larger than | 
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| 62 | // the length, in bits, of the mantissa.  In that case, we | 
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| 63 | // can't give a correct answer, so we set the remainder to | 
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| 64 | // zero.  This has the desired effect of making extreme | 
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| 65 | // values give back an approximate answer rather than | 
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| 66 | // crashing.  For example, UDate values above a ~10^25 | 
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| 67 | // might all have a time of midnight. | 
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| 68 | remainder = 0; | 
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| 69 | } else { | 
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| 70 | remainder = dividend - (quotient * divisor); | 
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| 71 | } | 
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| 72 | } | 
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| 73 | U_ASSERT(0 <= remainder && remainder < divisor); | 
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| 74 | return quotient; | 
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| 75 | } | 
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| 76 |  | 
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| 77 | const int32_t JULIAN_1_CE    = 1721426; // January 1, 1 CE Gregorian | 
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| 78 | const int32_t JULIAN_1970_CE = 2440588; // January 1, 1970 CE Gregorian | 
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| 79 |  | 
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| 80 | const int16_t Grego::DAYS_BEFORE[24] = | 
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| 81 | {0,31,59,90,120,151,181,212,243,273,304,334, | 
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| 82 | 0,31,60,91,121,152,182,213,244,274,305,335}; | 
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| 83 |  | 
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| 84 | const int8_t Grego::MONTH_LENGTH[24] = | 
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| 85 | {31,28,31,30,31,30,31,31,30,31,30,31, | 
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| 86 | 31,29,31,30,31,30,31,31,30,31,30,31}; | 
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| 87 |  | 
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| 88 | double Grego::fieldsToDay(int32_t year, int32_t month, int32_t dom) { | 
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| 89 |  | 
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| 90 | int32_t y = year - 1; | 
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| 91 |  | 
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| 92 | double julian = 365 * y + ClockMath::floorDivide(y, 4) + (JULIAN_1_CE - 3) + // Julian cal | 
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| 93 | ClockMath::floorDivide(y, 400) - ClockMath::floorDivide(y, 100) + 2 + // => Gregorian cal | 
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| 94 | DAYS_BEFORE[month + (isLeapYear(year) ? 12 : 0)] + dom; // => month/dom | 
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| 95 |  | 
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| 96 | return julian - JULIAN_1970_CE; // JD => epoch day | 
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| 97 | } | 
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| 98 |  | 
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| 99 | void Grego::dayToFields(double day, int32_t& year, int32_t& month, | 
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| 100 | int32_t& dom, int32_t& dow, int32_t& doy) { | 
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| 101 |  | 
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| 102 | // Convert from 1970 CE epoch to 1 CE epoch (Gregorian calendar) | 
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| 103 | day += JULIAN_1970_CE - JULIAN_1_CE; | 
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| 104 |  | 
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| 105 | // Convert from the day number to the multiple radix | 
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| 106 | // representation.  We use 400-year, 100-year, and 4-year cycles. | 
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| 107 | // For example, the 4-year cycle has 4 years + 1 leap day; giving | 
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| 108 | // 1461 == 365*4 + 1 days. | 
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| 109 | int32_t n400 = ClockMath::floorDivide(day, 146097, doy); // 400-year cycle length | 
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| 110 | int32_t n100 = ClockMath::floorDivide(doy, 36524, doy); // 100-year cycle length | 
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| 111 | int32_t n4   = ClockMath::floorDivide(doy, 1461, doy); // 4-year cycle length | 
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| 112 | int32_t n1   = ClockMath::floorDivide(doy, 365, doy); | 
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| 113 | year = 400*n400 + 100*n100 + 4*n4 + n1; | 
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| 114 | if (n100 == 4 || n1 == 4) { | 
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| 115 | doy = 365; // Dec 31 at end of 4- or 400-year cycle | 
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| 116 | } else { | 
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| 117 | ++year; | 
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| 118 | } | 
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| 119 |  | 
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| 120 | UBool isLeap = isLeapYear(year); | 
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| 121 |  | 
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| 122 | // Gregorian day zero is a Monday. | 
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| 123 | dow = (int32_t) uprv_fmod(day + 1, 7); | 
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| 124 | dow += (dow < 0) ? (UCAL_SUNDAY + 7) : UCAL_SUNDAY; | 
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| 125 |  | 
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| 126 | // Common Julian/Gregorian calculation | 
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| 127 | int32_t correction = 0; | 
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| 128 | int32_t march1 = isLeap ? 60 : 59; // zero-based DOY for March 1 | 
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| 129 | if (doy >= march1) { | 
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| 130 | correction = isLeap ? 1 : 2; | 
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| 131 | } | 
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| 132 | month = (12 * (doy + correction) + 6) / 367; // zero-based month | 
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| 133 | dom = doy - DAYS_BEFORE[month + (isLeap ? 12 : 0)] + 1; // one-based DOM | 
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| 134 | doy++; // one-based doy | 
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| 135 | } | 
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| 136 |  | 
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| 137 | void Grego::timeToFields(UDate time, int32_t& year, int32_t& month, | 
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| 138 | int32_t& dom, int32_t& dow, int32_t& doy, int32_t& mid) { | 
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| 139 | double millisInDay; | 
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| 140 | double day = ClockMath::floorDivide((double)time, (double)U_MILLIS_PER_DAY, millisInDay); | 
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| 141 | mid = (int32_t)millisInDay; | 
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| 142 | dayToFields(day, year, month, dom, dow, doy); | 
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| 143 | } | 
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| 144 |  | 
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| 145 | int32_t Grego::dayOfWeek(double day) { | 
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| 146 | int32_t dow; | 
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| 147 | ClockMath::floorDivide(day + UCAL_THURSDAY, 7, dow); | 
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| 148 | return (dow == 0) ? UCAL_SATURDAY : dow; | 
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| 149 | } | 
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| 150 |  | 
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| 151 | int32_t Grego::dayOfWeekInMonth(int32_t year, int32_t month, int32_t dom) { | 
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| 152 | int32_t weekInMonth = (dom + 6)/7; | 
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| 153 | if (weekInMonth == 4) { | 
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| 154 | if (dom + 7 > monthLength(year, month)) { | 
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| 155 | weekInMonth = -1; | 
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| 156 | } | 
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| 157 | } else if (weekInMonth == 5) { | 
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| 158 | weekInMonth = -1; | 
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| 159 | } | 
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| 160 | return weekInMonth; | 
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| 161 | } | 
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| 162 |  | 
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| 163 | U_NAMESPACE_END | 
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| 164 |  | 
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| 165 | #endif | 
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| 166 | //eof | 
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| 167 |  | 
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