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Chris Lattnerb39cdde2007-08-20 22:49:32 +00001//===-- APFloat.cpp - Implement APFloat class -----------------------------===//
2//
3// The LLVM Compiler Infrastructure
4//
Chris Lattner4ee451d2007-12-29 20:36:04 +00005// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
Chris Lattnerb39cdde2007-08-20 22:49:32 +00007//
8//===----------------------------------------------------------------------===//
9//
10// This file implements a class to represent arbitrary precision floating
11// point values and provide a variety of arithmetic operations on them.
12//
13//===----------------------------------------------------------------------===//
14
Chris Lattner36d26c22007-12-08 19:00:03 +000015#include "llvm/ADT/APFloat.h"
Jeffrey Yasskin3d42bfb2011-07-15 07:04:56 +000016#include "llvm/ADT/APSInt.h"
Ted Kremenek1f801fa2008-02-11 17:24:50 +000017#include "llvm/ADT/FoldingSet.h"
Chandler Carruthed7692a2012-03-04 12:02:57 +000018#include "llvm/ADT/Hashing.h"
Jordan Rose8a53a832013-01-18 21:45:30 +000019#include "llvm/ADT/StringExtras.h"
Chandler Carruthed7692a2012-03-04 12:02:57 +000020#include "llvm/ADT/StringRef.h"
Torok Edwinc25e7582009-07-11 20:10:48 +000021#include "llvm/Support/ErrorHandling.h"
Dale Johannesend3b51fd2007-08-24 05:08:11 +000022#include "llvm/Support/MathExtras.h"
Chris Lattnerfad86b02008-08-17 07:19:36 +000023#include <cstring>
Chandler Carruthd04a8d42012-12-03 16:50:05 +000024#include <limits.h>
Chris Lattnerb39cdde2007-08-20 22:49:32 +000025
26using namespace llvm;
27
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +000028/// A macro used to combine two fcCategory enums into one key which can be used
29/// in a switch statement to classify how the interaction of two APFloat's
30/// categories affects an operation.
31///
32/// TODO: If clang source code is ever allowed to use constexpr in its own
33/// codebase, change this into a static inline function.
34#define PackCategoriesIntoKey(_lhs, _rhs) ((_lhs) * 4 + (_rhs))
Chris Lattnerb39cdde2007-08-20 22:49:32 +000035
Neil Bootha30b0ee2007-10-03 22:26:02 +000036/* Assumed in hexadecimal significand parsing, and conversion to
37 hexadecimal strings. */
Chris Lattner9f17eb02008-08-17 04:58:58 +000038#define COMPILE_TIME_ASSERT(cond) extern int CTAssert[(cond) ? 1 : -1]
Chris Lattnerb39cdde2007-08-20 22:49:32 +000039COMPILE_TIME_ASSERT(integerPartWidth % 4 == 0);
40
41namespace llvm {
42
43 /* Represents floating point arithmetic semantics. */
44 struct fltSemantics {
45 /* The largest E such that 2^E is representable; this matches the
46 definition of IEEE 754. */
Michael Gottesmandb045ab2013-06-24 04:06:23 +000047 APFloat::ExponentType maxExponent;
Chris Lattnerb39cdde2007-08-20 22:49:32 +000048
49 /* The smallest E such that 2^E is a normalized number; this
50 matches the definition of IEEE 754. */
Michael Gottesmandb045ab2013-06-24 04:06:23 +000051 APFloat::ExponentType minExponent;
Chris Lattnerb39cdde2007-08-20 22:49:32 +000052
53 /* Number of bits in the significand. This includes the integer
54 bit. */
Neil Booth7a951ca2007-10-12 15:33:27 +000055 unsigned int precision;
Chris Lattnerb39cdde2007-08-20 22:49:32 +000056 };
57
Ulrich Weigand159c7352012-10-29 18:18:44 +000058 const fltSemantics APFloat::IEEEhalf = { 15, -14, 11 };
59 const fltSemantics APFloat::IEEEsingle = { 127, -126, 24 };
60 const fltSemantics APFloat::IEEEdouble = { 1023, -1022, 53 };
61 const fltSemantics APFloat::IEEEquad = { 16383, -16382, 113 };
62 const fltSemantics APFloat::x87DoubleExtended = { 16383, -16382, 64 };
63 const fltSemantics APFloat::Bogus = { 0, 0, 0 };
Dale Johannesena471c2e2007-10-11 18:07:22 +000064
Ulrich Weigand69c9c8c2012-10-29 18:09:01 +000065 /* The PowerPC format consists of two doubles. It does not map cleanly
66 onto the usual format above. It is approximated using twice the
67 mantissa bits. Note that for exponents near the double minimum,
68 we no longer can represent the full 106 mantissa bits, so those
69 will be treated as denormal numbers.
70
71 FIXME: While this approximation is equivalent to what GCC uses for
72 compile-time arithmetic on PPC double-double numbers, it is not able
73 to represent all possible values held by a PPC double-double number,
74 for example: (long double) 1.0 + (long double) 0x1p-106
75 Should this be replaced by a full emulation of PPC double-double? */
Ulrich Weigand159c7352012-10-29 18:18:44 +000076 const fltSemantics APFloat::PPCDoubleDouble = { 1023, -1022 + 53, 53 + 53 };
Neil Booth96c74712007-10-12 16:02:31 +000077
78 /* A tight upper bound on number of parts required to hold the value
79 pow(5, power) is
80
Neil Booth686700e2007-10-15 15:00:55 +000081 power * 815 / (351 * integerPartWidth) + 1
Dan Gohman16e02092010-03-24 19:38:02 +000082
Neil Booth96c74712007-10-12 16:02:31 +000083 However, whilst the result may require only this many parts,
84 because we are multiplying two values to get it, the
85 multiplication may require an extra part with the excess part
86 being zero (consider the trivial case of 1 * 1, tcFullMultiply
87 requires two parts to hold the single-part result). So we add an
88 extra one to guarantee enough space whilst multiplying. */
89 const unsigned int maxExponent = 16383;
90 const unsigned int maxPrecision = 113;
91 const unsigned int maxPowerOfFiveExponent = maxExponent + maxPrecision - 1;
Neil Booth686700e2007-10-15 15:00:55 +000092 const unsigned int maxPowerOfFiveParts = 2 + ((maxPowerOfFiveExponent * 815)
93 / (351 * integerPartWidth));
Chris Lattnerb39cdde2007-08-20 22:49:32 +000094}
95
Chris Lattnere213f3f2009-03-12 23:59:55 +000096/* A bunch of private, handy routines. */
Chris Lattnerb39cdde2007-08-20 22:49:32 +000097
Chris Lattnere213f3f2009-03-12 23:59:55 +000098static inline unsigned int
99partCountForBits(unsigned int bits)
100{
101 return ((bits) + integerPartWidth - 1) / integerPartWidth;
102}
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000103
Chris Lattnere213f3f2009-03-12 23:59:55 +0000104/* Returns 0U-9U. Return values >= 10U are not digits. */
105static inline unsigned int
106decDigitValue(unsigned int c)
107{
108 return c - '0';
109}
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000110
Chris Lattnere213f3f2009-03-12 23:59:55 +0000111/* Return the value of a decimal exponent of the form
112 [+-]ddddddd.
Neil Booth1870f292007-10-14 10:16:12 +0000113
Chris Lattnere213f3f2009-03-12 23:59:55 +0000114 If the exponent overflows, returns a large exponent with the
115 appropriate sign. */
116static int
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000117readExponent(StringRef::iterator begin, StringRef::iterator end)
Chris Lattnere213f3f2009-03-12 23:59:55 +0000118{
119 bool isNegative;
120 unsigned int absExponent;
121 const unsigned int overlargeExponent = 24000; /* FIXME. */
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000122 StringRef::iterator p = begin;
123
124 assert(p != end && "Exponent has no digits");
Neil Booth1870f292007-10-14 10:16:12 +0000125
Chris Lattnere213f3f2009-03-12 23:59:55 +0000126 isNegative = (*p == '-');
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000127 if (*p == '-' || *p == '+') {
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000128 p++;
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000129 assert(p != end && "Exponent has no digits");
130 }
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000131
Chris Lattnere213f3f2009-03-12 23:59:55 +0000132 absExponent = decDigitValue(*p++);
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000133 assert(absExponent < 10U && "Invalid character in exponent");
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000134
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000135 for (; p != end; ++p) {
Chris Lattnere213f3f2009-03-12 23:59:55 +0000136 unsigned int value;
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000137
Chris Lattnere213f3f2009-03-12 23:59:55 +0000138 value = decDigitValue(*p);
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000139 assert(value < 10U && "Invalid character in exponent");
Chris Lattnere213f3f2009-03-12 23:59:55 +0000140
Chris Lattnere213f3f2009-03-12 23:59:55 +0000141 value += absExponent * 10;
142 if (absExponent >= overlargeExponent) {
143 absExponent = overlargeExponent;
Dale Johannesenb1508d12010-08-19 17:58:35 +0000144 p = end; /* outwit assert below */
Chris Lattnere213f3f2009-03-12 23:59:55 +0000145 break;
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000146 }
Chris Lattnere213f3f2009-03-12 23:59:55 +0000147 absExponent = value;
148 }
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000149
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000150 assert(p == end && "Invalid exponent in exponent");
151
Chris Lattnere213f3f2009-03-12 23:59:55 +0000152 if (isNegative)
153 return -(int) absExponent;
154 else
155 return (int) absExponent;
156}
157
158/* This is ugly and needs cleaning up, but I don't immediately see
159 how whilst remaining safe. */
160static int
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000161totalExponent(StringRef::iterator p, StringRef::iterator end,
162 int exponentAdjustment)
Chris Lattnere213f3f2009-03-12 23:59:55 +0000163{
164 int unsignedExponent;
165 bool negative, overflow;
Ted Kremenek584520e2011-01-23 17:05:06 +0000166 int exponent = 0;
Chris Lattnere213f3f2009-03-12 23:59:55 +0000167
Erick Tryzelaarc78b33b2009-08-20 23:30:43 +0000168 assert(p != end && "Exponent has no digits");
169
Chris Lattnere213f3f2009-03-12 23:59:55 +0000170 negative = *p == '-';
Dan Gohman16e02092010-03-24 19:38:02 +0000171 if (*p == '-' || *p == '+') {
Chris Lattnere213f3f2009-03-12 23:59:55 +0000172 p++;
Erick Tryzelaarc78b33b2009-08-20 23:30:43 +0000173 assert(p != end && "Exponent has no digits");
174 }
Chris Lattnere213f3f2009-03-12 23:59:55 +0000175
176 unsignedExponent = 0;
177 overflow = false;
Dan Gohman16e02092010-03-24 19:38:02 +0000178 for (; p != end; ++p) {
Chris Lattnere213f3f2009-03-12 23:59:55 +0000179 unsigned int value;
180
181 value = decDigitValue(*p);
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000182 assert(value < 10U && "Invalid character in exponent");
Chris Lattnere213f3f2009-03-12 23:59:55 +0000183
Chris Lattnere213f3f2009-03-12 23:59:55 +0000184 unsignedExponent = unsignedExponent * 10 + value;
Richard Smithb080e2f2012-08-24 00:01:19 +0000185 if (unsignedExponent > 32767) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000186 overflow = true;
Richard Smithb080e2f2012-08-24 00:01:19 +0000187 break;
188 }
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000189 }
190
Abramo Bagnara4bb46f42011-01-06 16:55:14 +0000191 if (exponentAdjustment > 32767 || exponentAdjustment < -32768)
Chris Lattnere213f3f2009-03-12 23:59:55 +0000192 overflow = true;
193
Dan Gohman16e02092010-03-24 19:38:02 +0000194 if (!overflow) {
Chris Lattnere213f3f2009-03-12 23:59:55 +0000195 exponent = unsignedExponent;
Dan Gohman16e02092010-03-24 19:38:02 +0000196 if (negative)
Chris Lattnere213f3f2009-03-12 23:59:55 +0000197 exponent = -exponent;
198 exponent += exponentAdjustment;
Abramo Bagnara4bb46f42011-01-06 16:55:14 +0000199 if (exponent > 32767 || exponent < -32768)
Chris Lattnere213f3f2009-03-12 23:59:55 +0000200 overflow = true;
201 }
202
Dan Gohman16e02092010-03-24 19:38:02 +0000203 if (overflow)
Abramo Bagnara4bb46f42011-01-06 16:55:14 +0000204 exponent = negative ? -32768: 32767;
Chris Lattnere213f3f2009-03-12 23:59:55 +0000205
206 return exponent;
207}
208
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000209static StringRef::iterator
210skipLeadingZeroesAndAnyDot(StringRef::iterator begin, StringRef::iterator end,
211 StringRef::iterator *dot)
Chris Lattnere213f3f2009-03-12 23:59:55 +0000212{
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000213 StringRef::iterator p = begin;
214 *dot = end;
Dan Gohman16e02092010-03-24 19:38:02 +0000215 while (*p == '0' && p != end)
Chris Lattnere213f3f2009-03-12 23:59:55 +0000216 p++;
217
Dan Gohman16e02092010-03-24 19:38:02 +0000218 if (*p == '.') {
Chris Lattnere213f3f2009-03-12 23:59:55 +0000219 *dot = p++;
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000220
Erick Tryzelaarc78b33b2009-08-20 23:30:43 +0000221 assert(end - begin != 1 && "Significand has no digits");
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000222
Dan Gohman16e02092010-03-24 19:38:02 +0000223 while (*p == '0' && p != end)
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000224 p++;
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000225 }
226
Chris Lattnere213f3f2009-03-12 23:59:55 +0000227 return p;
228}
Neil Booth1870f292007-10-14 10:16:12 +0000229
Chris Lattnere213f3f2009-03-12 23:59:55 +0000230/* Given a normal decimal floating point number of the form
Neil Booth1870f292007-10-14 10:16:12 +0000231
Chris Lattnere213f3f2009-03-12 23:59:55 +0000232 dddd.dddd[eE][+-]ddd
Neil Booth686700e2007-10-15 15:00:55 +0000233
Chris Lattnere213f3f2009-03-12 23:59:55 +0000234 where the decimal point and exponent are optional, fill out the
235 structure D. Exponent is appropriate if the significand is
236 treated as an integer, and normalizedExponent if the significand
237 is taken to have the decimal point after a single leading
238 non-zero digit.
Neil Booth1870f292007-10-14 10:16:12 +0000239
Chris Lattnere213f3f2009-03-12 23:59:55 +0000240 If the value is zero, V->firstSigDigit points to a non-digit, and
241 the return exponent is zero.
242*/
243struct decimalInfo {
244 const char *firstSigDigit;
245 const char *lastSigDigit;
246 int exponent;
247 int normalizedExponent;
248};
Neil Booth1870f292007-10-14 10:16:12 +0000249
Chris Lattnere213f3f2009-03-12 23:59:55 +0000250static void
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000251interpretDecimal(StringRef::iterator begin, StringRef::iterator end,
252 decimalInfo *D)
Chris Lattnere213f3f2009-03-12 23:59:55 +0000253{
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000254 StringRef::iterator dot = end;
255 StringRef::iterator p = skipLeadingZeroesAndAnyDot (begin, end, &dot);
Neil Booth1870f292007-10-14 10:16:12 +0000256
Chris Lattnere213f3f2009-03-12 23:59:55 +0000257 D->firstSigDigit = p;
258 D->exponent = 0;
259 D->normalizedExponent = 0;
260
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000261 for (; p != end; ++p) {
Chris Lattnere213f3f2009-03-12 23:59:55 +0000262 if (*p == '.') {
Erick Tryzelaarc78b33b2009-08-20 23:30:43 +0000263 assert(dot == end && "String contains multiple dots");
Chris Lattnere213f3f2009-03-12 23:59:55 +0000264 dot = p++;
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000265 if (p == end)
266 break;
Neil Booth1870f292007-10-14 10:16:12 +0000267 }
Chris Lattnere213f3f2009-03-12 23:59:55 +0000268 if (decDigitValue(*p) >= 10U)
269 break;
Chris Lattnere213f3f2009-03-12 23:59:55 +0000270 }
Neil Booth1870f292007-10-14 10:16:12 +0000271
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000272 if (p != end) {
Erick Tryzelaarc78b33b2009-08-20 23:30:43 +0000273 assert((*p == 'e' || *p == 'E') && "Invalid character in significand");
274 assert(p != begin && "Significand has no digits");
275 assert((dot == end || p - begin != 1) && "Significand has no digits");
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000276
277 /* p points to the first non-digit in the string */
Erick Tryzelaarc78b33b2009-08-20 23:30:43 +0000278 D->exponent = readExponent(p + 1, end);
Neil Booth1870f292007-10-14 10:16:12 +0000279
Chris Lattnere213f3f2009-03-12 23:59:55 +0000280 /* Implied decimal point? */
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000281 if (dot == end)
Chris Lattnere213f3f2009-03-12 23:59:55 +0000282 dot = p;
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000283 }
Neil Booth1870f292007-10-14 10:16:12 +0000284
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000285 /* If number is all zeroes accept any exponent. */
286 if (p != D->firstSigDigit) {
Chris Lattnere213f3f2009-03-12 23:59:55 +0000287 /* Drop insignificant trailing zeroes. */
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000288 if (p != begin) {
Neil Booth1870f292007-10-14 10:16:12 +0000289 do
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000290 do
291 p--;
292 while (p != begin && *p == '0');
293 while (p != begin && *p == '.');
294 }
Neil Booth1870f292007-10-14 10:16:12 +0000295
Chris Lattnere213f3f2009-03-12 23:59:55 +0000296 /* Adjust the exponents for any decimal point. */
Michael Gottesmandb045ab2013-06-24 04:06:23 +0000297 D->exponent += static_cast<APFloat::ExponentType>((dot - p) - (dot > p));
Chris Lattnere213f3f2009-03-12 23:59:55 +0000298 D->normalizedExponent = (D->exponent +
Michael Gottesmandb045ab2013-06-24 04:06:23 +0000299 static_cast<APFloat::ExponentType>((p - D->firstSigDigit)
Chris Lattnere213f3f2009-03-12 23:59:55 +0000300 - (dot > D->firstSigDigit && dot < p)));
Neil Booth1870f292007-10-14 10:16:12 +0000301 }
302
Chris Lattnere213f3f2009-03-12 23:59:55 +0000303 D->lastSigDigit = p;
304}
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000305
Chris Lattnere213f3f2009-03-12 23:59:55 +0000306/* Return the trailing fraction of a hexadecimal number.
307 DIGITVALUE is the first hex digit of the fraction, P points to
308 the next digit. */
309static lostFraction
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000310trailingHexadecimalFraction(StringRef::iterator p, StringRef::iterator end,
311 unsigned int digitValue)
Chris Lattnere213f3f2009-03-12 23:59:55 +0000312{
313 unsigned int hexDigit;
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000314
Chris Lattnere213f3f2009-03-12 23:59:55 +0000315 /* If the first trailing digit isn't 0 or 8 we can work out the
316 fraction immediately. */
Dan Gohman16e02092010-03-24 19:38:02 +0000317 if (digitValue > 8)
Chris Lattnere213f3f2009-03-12 23:59:55 +0000318 return lfMoreThanHalf;
Dan Gohman16e02092010-03-24 19:38:02 +0000319 else if (digitValue < 8 && digitValue > 0)
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000320 return lfLessThanHalf;
Chris Lattnere213f3f2009-03-12 23:59:55 +0000321
Eli Friedman763c0662013-07-17 22:17:29 +0000322 // Otherwise we need to find the first non-zero digit.
323 while (p != end && (*p == '0' || *p == '.'))
Chris Lattnere213f3f2009-03-12 23:59:55 +0000324 p++;
325
Erick Tryzelaara15d8902009-08-16 23:36:19 +0000326 assert(p != end && "Invalid trailing hexadecimal fraction!");
327
Chris Lattnere213f3f2009-03-12 23:59:55 +0000328 hexDigit = hexDigitValue(*p);
329
330 /* If we ran off the end it is exactly zero or one-half, otherwise
331 a little more. */
Dan Gohman16e02092010-03-24 19:38:02 +0000332 if (hexDigit == -1U)
Chris Lattnere213f3f2009-03-12 23:59:55 +0000333 return digitValue == 0 ? lfExactlyZero: lfExactlyHalf;
334 else
335 return digitValue == 0 ? lfLessThanHalf: lfMoreThanHalf;
336}
337
338/* Return the fraction lost were a bignum truncated losing the least
339 significant BITS bits. */
340static lostFraction
341lostFractionThroughTruncation(const integerPart *parts,
342 unsigned int partCount,
343 unsigned int bits)
344{
345 unsigned int lsb;
346
347 lsb = APInt::tcLSB(parts, partCount);
348
349 /* Note this is guaranteed true if bits == 0, or LSB == -1U. */
Dan Gohman16e02092010-03-24 19:38:02 +0000350 if (bits <= lsb)
Chris Lattnere213f3f2009-03-12 23:59:55 +0000351 return lfExactlyZero;
Dan Gohman16e02092010-03-24 19:38:02 +0000352 if (bits == lsb + 1)
Chris Lattnere213f3f2009-03-12 23:59:55 +0000353 return lfExactlyHalf;
Dan Gohman16e02092010-03-24 19:38:02 +0000354 if (bits <= partCount * integerPartWidth &&
355 APInt::tcExtractBit(parts, bits - 1))
Chris Lattnere213f3f2009-03-12 23:59:55 +0000356 return lfMoreThanHalf;
357
358 return lfLessThanHalf;
359}
360
361/* Shift DST right BITS bits noting lost fraction. */
362static lostFraction
363shiftRight(integerPart *dst, unsigned int parts, unsigned int bits)
364{
365 lostFraction lost_fraction;
366
367 lost_fraction = lostFractionThroughTruncation(dst, parts, bits);
368
369 APInt::tcShiftRight(dst, parts, bits);
370
371 return lost_fraction;
372}
373
374/* Combine the effect of two lost fractions. */
375static lostFraction
376combineLostFractions(lostFraction moreSignificant,
377 lostFraction lessSignificant)
378{
Dan Gohman16e02092010-03-24 19:38:02 +0000379 if (lessSignificant != lfExactlyZero) {
380 if (moreSignificant == lfExactlyZero)
Chris Lattnere213f3f2009-03-12 23:59:55 +0000381 moreSignificant = lfLessThanHalf;
Dan Gohman16e02092010-03-24 19:38:02 +0000382 else if (moreSignificant == lfExactlyHalf)
Chris Lattnere213f3f2009-03-12 23:59:55 +0000383 moreSignificant = lfMoreThanHalf;
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000384 }
385
Chris Lattnere213f3f2009-03-12 23:59:55 +0000386 return moreSignificant;
387}
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000388
Chris Lattnere213f3f2009-03-12 23:59:55 +0000389/* The error from the true value, in half-ulps, on multiplying two
390 floating point numbers, which differ from the value they
391 approximate by at most HUE1 and HUE2 half-ulps, is strictly less
392 than the returned value.
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000393
Chris Lattnere213f3f2009-03-12 23:59:55 +0000394 See "How to Read Floating Point Numbers Accurately" by William D
395 Clinger. */
396static unsigned int
397HUerrBound(bool inexactMultiply, unsigned int HUerr1, unsigned int HUerr2)
398{
399 assert(HUerr1 < 2 || HUerr2 < 2 || (HUerr1 + HUerr2 < 8));
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000400
Chris Lattnere213f3f2009-03-12 23:59:55 +0000401 if (HUerr1 + HUerr2 == 0)
402 return inexactMultiply * 2; /* <= inexactMultiply half-ulps. */
403 else
404 return inexactMultiply + 2 * (HUerr1 + HUerr2);
405}
Neil Bootha30b0ee2007-10-03 22:26:02 +0000406
Chris Lattnere213f3f2009-03-12 23:59:55 +0000407/* The number of ulps from the boundary (zero, or half if ISNEAREST)
408 when the least significant BITS are truncated. BITS cannot be
409 zero. */
410static integerPart
411ulpsFromBoundary(const integerPart *parts, unsigned int bits, bool isNearest)
412{
413 unsigned int count, partBits;
414 integerPart part, boundary;
Neil Booth33d4c922007-10-07 08:51:21 +0000415
Evan Cheng99ebfa52009-10-27 21:35:42 +0000416 assert(bits != 0);
Neil Bootha30b0ee2007-10-03 22:26:02 +0000417
Chris Lattnere213f3f2009-03-12 23:59:55 +0000418 bits--;
419 count = bits / integerPartWidth;
420 partBits = bits % integerPartWidth + 1;
Neil Booth96c74712007-10-12 16:02:31 +0000421
Chris Lattnere213f3f2009-03-12 23:59:55 +0000422 part = parts[count] & (~(integerPart) 0 >> (integerPartWidth - partBits));
Neil Booth96c74712007-10-12 16:02:31 +0000423
Chris Lattnere213f3f2009-03-12 23:59:55 +0000424 if (isNearest)
425 boundary = (integerPart) 1 << (partBits - 1);
426 else
427 boundary = 0;
428
429 if (count == 0) {
430 if (part - boundary <= boundary - part)
431 return part - boundary;
Neil Booth96c74712007-10-12 16:02:31 +0000432 else
Chris Lattnere213f3f2009-03-12 23:59:55 +0000433 return boundary - part;
Neil Booth96c74712007-10-12 16:02:31 +0000434 }
435
Chris Lattnere213f3f2009-03-12 23:59:55 +0000436 if (part == boundary) {
437 while (--count)
438 if (parts[count])
439 return ~(integerPart) 0; /* A lot. */
Neil Booth96c74712007-10-12 16:02:31 +0000440
Chris Lattnere213f3f2009-03-12 23:59:55 +0000441 return parts[0];
442 } else if (part == boundary - 1) {
443 while (--count)
444 if (~parts[count])
445 return ~(integerPart) 0; /* A lot. */
Neil Booth96c74712007-10-12 16:02:31 +0000446
Chris Lattnere213f3f2009-03-12 23:59:55 +0000447 return -parts[0];
448 }
Neil Booth96c74712007-10-12 16:02:31 +0000449
Chris Lattnere213f3f2009-03-12 23:59:55 +0000450 return ~(integerPart) 0; /* A lot. */
451}
Neil Booth96c74712007-10-12 16:02:31 +0000452
Chris Lattnere213f3f2009-03-12 23:59:55 +0000453/* Place pow(5, power) in DST, and return the number of parts used.
454 DST must be at least one part larger than size of the answer. */
455static unsigned int
456powerOf5(integerPart *dst, unsigned int power)
457{
458 static const integerPart firstEightPowers[] = { 1, 5, 25, 125, 625, 3125,
459 15625, 78125 };
Chris Lattneree167a72009-03-13 00:24:01 +0000460 integerPart pow5s[maxPowerOfFiveParts * 2 + 5];
461 pow5s[0] = 78125 * 5;
Dan Gohman16e02092010-03-24 19:38:02 +0000462
Chris Lattner807926a2009-03-13 00:03:51 +0000463 unsigned int partsCount[16] = { 1 };
Chris Lattnere213f3f2009-03-12 23:59:55 +0000464 integerPart scratch[maxPowerOfFiveParts], *p1, *p2, *pow5;
465 unsigned int result;
Chris Lattnere213f3f2009-03-12 23:59:55 +0000466 assert(power <= maxExponent);
467
468 p1 = dst;
469 p2 = scratch;
470
471 *p1 = firstEightPowers[power & 7];
472 power >>= 3;
473
474 result = 1;
475 pow5 = pow5s;
476
477 for (unsigned int n = 0; power; power >>= 1, n++) {
478 unsigned int pc;
479
480 pc = partsCount[n];
481
482 /* Calculate pow(5,pow(2,n+3)) if we haven't yet. */
483 if (pc == 0) {
484 pc = partsCount[n - 1];
485 APInt::tcFullMultiply(pow5, pow5 - pc, pow5 - pc, pc, pc);
486 pc *= 2;
487 if (pow5[pc - 1] == 0)
488 pc--;
489 partsCount[n] = pc;
Neil Booth96c74712007-10-12 16:02:31 +0000490 }
491
Chris Lattnere213f3f2009-03-12 23:59:55 +0000492 if (power & 1) {
493 integerPart *tmp;
Neil Booth96c74712007-10-12 16:02:31 +0000494
Chris Lattnere213f3f2009-03-12 23:59:55 +0000495 APInt::tcFullMultiply(p2, p1, pow5, result, pc);
496 result += pc;
497 if (p2[result - 1] == 0)
498 result--;
Neil Booth96c74712007-10-12 16:02:31 +0000499
Chris Lattnere213f3f2009-03-12 23:59:55 +0000500 /* Now result is in p1 with partsCount parts and p2 is scratch
501 space. */
502 tmp = p1, p1 = p2, p2 = tmp;
Neil Booth96c74712007-10-12 16:02:31 +0000503 }
504
Chris Lattnere213f3f2009-03-12 23:59:55 +0000505 pow5 += pc;
Neil Booth96c74712007-10-12 16:02:31 +0000506 }
507
Chris Lattnere213f3f2009-03-12 23:59:55 +0000508 if (p1 != dst)
509 APInt::tcAssign(dst, p1, result);
Neil Booth96c74712007-10-12 16:02:31 +0000510
Chris Lattnere213f3f2009-03-12 23:59:55 +0000511 return result;
512}
Neil Booth96c74712007-10-12 16:02:31 +0000513
Chris Lattnere213f3f2009-03-12 23:59:55 +0000514/* Zero at the end to avoid modular arithmetic when adding one; used
515 when rounding up during hexadecimal output. */
516static const char hexDigitsLower[] = "0123456789abcdef0";
517static const char hexDigitsUpper[] = "0123456789ABCDEF0";
518static const char infinityL[] = "infinity";
519static const char infinityU[] = "INFINITY";
520static const char NaNL[] = "nan";
521static const char NaNU[] = "NAN";
Neil Booth96c74712007-10-12 16:02:31 +0000522
Chris Lattnere213f3f2009-03-12 23:59:55 +0000523/* Write out an integerPart in hexadecimal, starting with the most
524 significant nibble. Write out exactly COUNT hexdigits, return
525 COUNT. */
526static unsigned int
527partAsHex (char *dst, integerPart part, unsigned int count,
528 const char *hexDigitChars)
529{
530 unsigned int result = count;
Neil Booth96c74712007-10-12 16:02:31 +0000531
Evan Cheng99ebfa52009-10-27 21:35:42 +0000532 assert(count != 0 && count <= integerPartWidth / 4);
Neil Booth96c74712007-10-12 16:02:31 +0000533
Chris Lattnere213f3f2009-03-12 23:59:55 +0000534 part >>= (integerPartWidth - 4 * count);
535 while (count--) {
536 dst[count] = hexDigitChars[part & 0xf];
537 part >>= 4;
Neil Booth96c74712007-10-12 16:02:31 +0000538 }
539
Chris Lattnere213f3f2009-03-12 23:59:55 +0000540 return result;
541}
Neil Bootha30b0ee2007-10-03 22:26:02 +0000542
Chris Lattnere213f3f2009-03-12 23:59:55 +0000543/* Write out an unsigned decimal integer. */
544static char *
545writeUnsignedDecimal (char *dst, unsigned int n)
546{
547 char buff[40], *p;
Neil Bootha30b0ee2007-10-03 22:26:02 +0000548
Chris Lattnere213f3f2009-03-12 23:59:55 +0000549 p = buff;
550 do
551 *p++ = '0' + n % 10;
552 while (n /= 10);
Neil Bootha30b0ee2007-10-03 22:26:02 +0000553
Chris Lattnere213f3f2009-03-12 23:59:55 +0000554 do
555 *dst++ = *--p;
556 while (p != buff);
Neil Bootha30b0ee2007-10-03 22:26:02 +0000557
Chris Lattnere213f3f2009-03-12 23:59:55 +0000558 return dst;
559}
Neil Bootha30b0ee2007-10-03 22:26:02 +0000560
Chris Lattnere213f3f2009-03-12 23:59:55 +0000561/* Write out a signed decimal integer. */
562static char *
563writeSignedDecimal (char *dst, int value)
564{
565 if (value < 0) {
566 *dst++ = '-';
567 dst = writeUnsignedDecimal(dst, -(unsigned) value);
568 } else
569 dst = writeUnsignedDecimal(dst, value);
Neil Bootha30b0ee2007-10-03 22:26:02 +0000570
Chris Lattnere213f3f2009-03-12 23:59:55 +0000571 return dst;
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000572}
573
574/* Constructors. */
575void
576APFloat::initialize(const fltSemantics *ourSemantics)
577{
578 unsigned int count;
579
580 semantics = ourSemantics;
581 count = partCount();
Dan Gohman16e02092010-03-24 19:38:02 +0000582 if (count > 1)
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000583 significand.parts = new integerPart[count];
584}
585
586void
587APFloat::freeSignificand()
588{
Manuel Klimekabff3aa2013-06-03 13:03:05 +0000589 if (needsCleanup())
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000590 delete [] significand.parts;
591}
592
593void
594APFloat::assign(const APFloat &rhs)
595{
596 assert(semantics == rhs.semantics);
597
598 sign = rhs.sign;
599 category = rhs.category;
600 exponent = rhs.exponent;
Michael Gottesman41489dd2013-06-26 23:17:28 +0000601 if (isFiniteNonZero() || category == fcNaN)
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000602 copySignificand(rhs);
603}
604
605void
606APFloat::copySignificand(const APFloat &rhs)
607{
Michael Gottesman41489dd2013-06-26 23:17:28 +0000608 assert(isFiniteNonZero() || category == fcNaN);
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000609 assert(rhs.partCount() >= partCount());
610
611 APInt::tcAssign(significandParts(), rhs.significandParts(),
Neil Booth4f881702007-09-26 21:33:42 +0000612 partCount());
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000613}
614
Neil Boothe5e01942007-10-14 10:39:51 +0000615/* Make this number a NaN, with an arbitrary but deterministic value
Dale Johannesen541ed9f2009-01-21 20:32:55 +0000616 for the significand. If double or longer, this is a signalling NaN,
Mike Stumpc5ca7132009-05-30 03:49:43 +0000617 which may not be ideal. If float, this is QNaN(0). */
John McCalle12b7382010-02-28 02:51:25 +0000618void APFloat::makeNaN(bool SNaN, bool Negative, const APInt *fill)
Neil Boothe5e01942007-10-14 10:39:51 +0000619{
620 category = fcNaN;
John McCalle12b7382010-02-28 02:51:25 +0000621 sign = Negative;
622
John McCall165e96b2010-02-28 12:49:50 +0000623 integerPart *significand = significandParts();
624 unsigned numParts = partCount();
625
John McCalle12b7382010-02-28 02:51:25 +0000626 // Set the significand bits to the fill.
John McCall165e96b2010-02-28 12:49:50 +0000627 if (!fill || fill->getNumWords() < numParts)
628 APInt::tcSet(significand, 0, numParts);
629 if (fill) {
John McCalld44c6cc2010-03-01 18:38:45 +0000630 APInt::tcAssign(significand, fill->getRawData(),
631 std::min(fill->getNumWords(), numParts));
John McCall165e96b2010-02-28 12:49:50 +0000632
633 // Zero out the excess bits of the significand.
634 unsigned bitsToPreserve = semantics->precision - 1;
635 unsigned part = bitsToPreserve / 64;
636 bitsToPreserve %= 64;
637 significand[part] &= ((1ULL << bitsToPreserve) - 1);
638 for (part++; part != numParts; ++part)
639 significand[part] = 0;
640 }
641
642 unsigned QNaNBit = semantics->precision - 2;
John McCalle12b7382010-02-28 02:51:25 +0000643
644 if (SNaN) {
645 // We always have to clear the QNaN bit to make it an SNaN.
John McCall165e96b2010-02-28 12:49:50 +0000646 APInt::tcClearBit(significand, QNaNBit);
John McCalle12b7382010-02-28 02:51:25 +0000647
648 // If there are no bits set in the payload, we have to set
649 // *something* to make it a NaN instead of an infinity;
650 // conventionally, this is the next bit down from the QNaN bit.
John McCall165e96b2010-02-28 12:49:50 +0000651 if (APInt::tcIsZero(significand, numParts))
652 APInt::tcSetBit(significand, QNaNBit - 1);
John McCalle12b7382010-02-28 02:51:25 +0000653 } else {
654 // We always have to set the QNaN bit to make it a QNaN.
John McCall165e96b2010-02-28 12:49:50 +0000655 APInt::tcSetBit(significand, QNaNBit);
John McCalle12b7382010-02-28 02:51:25 +0000656 }
John McCall165e96b2010-02-28 12:49:50 +0000657
658 // For x87 extended precision, we want to make a NaN, not a
659 // pseudo-NaN. Maybe we should expose the ability to make
660 // pseudo-NaNs?
661 if (semantics == &APFloat::x87DoubleExtended)
662 APInt::tcSetBit(significand, QNaNBit + 1);
John McCalle12b7382010-02-28 02:51:25 +0000663}
664
665APFloat APFloat::makeNaN(const fltSemantics &Sem, bool SNaN, bool Negative,
666 const APInt *fill) {
667 APFloat value(Sem, uninitialized);
668 value.makeNaN(SNaN, Negative, fill);
669 return value;
Neil Boothe5e01942007-10-14 10:39:51 +0000670}
671
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000672APFloat &
673APFloat::operator=(const APFloat &rhs)
674{
Dan Gohman16e02092010-03-24 19:38:02 +0000675 if (this != &rhs) {
676 if (semantics != rhs.semantics) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000677 freeSignificand();
678 initialize(rhs.semantics);
679 }
680 assign(rhs);
681 }
682
683 return *this;
684}
685
Dale Johannesen343e7702007-08-24 00:56:33 +0000686bool
Shuxin Yang7aa1c322013-01-07 18:59:35 +0000687APFloat::isDenormal() const {
Michael Gottesman07969dc2013-06-19 21:23:18 +0000688 return isFiniteNonZero() && (exponent == semantics->minExponent) &&
Shuxin Yang7aa1c322013-01-07 18:59:35 +0000689 (APInt::tcExtractBit(significandParts(),
690 semantics->precision - 1) == 0);
691}
692
693bool
Michael Gottesman964722c2013-05-30 18:07:13 +0000694APFloat::isSmallest() const {
695 // The smallest number by magnitude in our format will be the smallest
Michael Gottesman15c6aa92013-06-19 07:34:21 +0000696 // denormal, i.e. the floating point number with exponent being minimum
Michael Gottesman964722c2013-05-30 18:07:13 +0000697 // exponent and significand bitwise equal to 1 (i.e. with MSB equal to 0).
Michael Gottesman07969dc2013-06-19 21:23:18 +0000698 return isFiniteNonZero() && exponent == semantics->minExponent &&
Michael Gottesman964722c2013-05-30 18:07:13 +0000699 significandMSB() == 0;
700}
701
702bool APFloat::isSignificandAllOnes() const {
703 // Test if the significand excluding the integral bit is all ones. This allows
704 // us to test for binade boundaries.
705 const integerPart *Parts = significandParts();
706 const unsigned PartCount = partCount();
707 for (unsigned i = 0; i < PartCount - 1; i++)
708 if (~Parts[i])
709 return false;
710
711 // Set the unused high bits to all ones when we compare.
712 const unsigned NumHighBits =
713 PartCount*integerPartWidth - semantics->precision + 1;
714 assert(NumHighBits <= integerPartWidth && "Can not have more high bits to "
715 "fill than integerPartWidth");
716 const integerPart HighBitFill =
717 ~integerPart(0) << (integerPartWidth - NumHighBits);
718 if (~(Parts[PartCount - 1] | HighBitFill))
719 return false;
720
721 return true;
722}
723
724bool APFloat::isSignificandAllZeros() const {
725 // Test if the significand excluding the integral bit is all zeros. This
726 // allows us to test for binade boundaries.
727 const integerPart *Parts = significandParts();
728 const unsigned PartCount = partCount();
729
730 for (unsigned i = 0; i < PartCount - 1; i++)
731 if (Parts[i])
732 return false;
733
734 const unsigned NumHighBits =
735 PartCount*integerPartWidth - semantics->precision + 1;
736 assert(NumHighBits <= integerPartWidth && "Can not have more high bits to "
737 "clear than integerPartWidth");
738 const integerPart HighBitMask = ~integerPart(0) >> NumHighBits;
739
740 if (Parts[PartCount - 1] & HighBitMask)
741 return false;
742
743 return true;
744}
745
746bool
747APFloat::isLargest() const {
748 // The largest number by magnitude in our format will be the floating point
749 // number with maximum exponent and with significand that is all ones.
Michael Gottesman07969dc2013-06-19 21:23:18 +0000750 return isFiniteNonZero() && exponent == semantics->maxExponent
Michael Gottesman964722c2013-05-30 18:07:13 +0000751 && isSignificandAllOnes();
752}
753
754bool
Dale Johannesen12595d72007-08-24 22:09:56 +0000755APFloat::bitwiseIsEqual(const APFloat &rhs) const {
Dale Johannesen343e7702007-08-24 00:56:33 +0000756 if (this == &rhs)
757 return true;
758 if (semantics != rhs.semantics ||
Dale Johanneseneaf08942007-08-31 04:03:46 +0000759 category != rhs.category ||
760 sign != rhs.sign)
Dale Johannesen343e7702007-08-24 00:56:33 +0000761 return false;
Dale Johanneseneaf08942007-08-31 04:03:46 +0000762 if (category==fcZero || category==fcInfinity)
Dale Johannesen343e7702007-08-24 00:56:33 +0000763 return true;
Michael Gottesman41489dd2013-06-26 23:17:28 +0000764 else if (isFiniteNonZero() && exponent!=rhs.exponent)
Dale Johanneseneaf08942007-08-31 04:03:46 +0000765 return false;
Dale Johannesen343e7702007-08-24 00:56:33 +0000766 else {
Dale Johannesen343e7702007-08-24 00:56:33 +0000767 int i= partCount();
768 const integerPart* p=significandParts();
769 const integerPart* q=rhs.significandParts();
770 for (; i>0; i--, p++, q++) {
771 if (*p != *q)
772 return false;
773 }
774 return true;
775 }
776}
777
Ulrich Weigandfce241d2012-10-29 18:17:42 +0000778APFloat::APFloat(const fltSemantics &ourSemantics, integerPart value) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000779 initialize(&ourSemantics);
780 sign = 0;
Michael Gottesman060d34b2013-07-27 21:49:21 +0000781 category = fcNormal;
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000782 zeroSignificand();
783 exponent = ourSemantics.precision - 1;
784 significandParts()[0] = value;
785 normalize(rmNearestTiesToEven, lfExactlyZero);
786}
787
Ulrich Weigandfce241d2012-10-29 18:17:42 +0000788APFloat::APFloat(const fltSemantics &ourSemantics) {
Chris Lattnerd7bd78e2009-09-17 01:08:43 +0000789 initialize(&ourSemantics);
790 category = fcZero;
791 sign = false;
792}
793
Ulrich Weigandfce241d2012-10-29 18:17:42 +0000794APFloat::APFloat(const fltSemantics &ourSemantics, uninitializedTag tag) {
John McCalle12b7382010-02-28 02:51:25 +0000795 // Allocates storage if necessary but does not initialize it.
796 initialize(&ourSemantics);
797}
Chris Lattnerd7bd78e2009-09-17 01:08:43 +0000798
Ulrich Weigandfce241d2012-10-29 18:17:42 +0000799APFloat::APFloat(const fltSemantics &ourSemantics, StringRef text) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000800 initialize(&ourSemantics);
801 convertFromString(text, rmNearestTiesToEven);
802}
803
Ulrich Weigandfce241d2012-10-29 18:17:42 +0000804APFloat::APFloat(const APFloat &rhs) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000805 initialize(rhs.semantics);
806 assign(rhs);
807}
808
809APFloat::~APFloat()
810{
811 freeSignificand();
812}
813
Ted Kremenek1f801fa2008-02-11 17:24:50 +0000814// Profile - This method 'profiles' an APFloat for use with FoldingSet.
815void APFloat::Profile(FoldingSetNodeID& ID) const {
Dale Johannesen7111b022008-10-09 18:53:47 +0000816 ID.Add(bitcastToAPInt());
Ted Kremenek1f801fa2008-02-11 17:24:50 +0000817}
818
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000819unsigned int
820APFloat::partCount() const
821{
Dale Johannesena72a5a02007-09-20 23:47:58 +0000822 return partCountForBits(semantics->precision + 1);
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000823}
824
825unsigned int
826APFloat::semanticsPrecision(const fltSemantics &semantics)
827{
828 return semantics.precision;
829}
830
831const integerPart *
832APFloat::significandParts() const
833{
834 return const_cast<APFloat *>(this)->significandParts();
835}
836
837integerPart *
838APFloat::significandParts()
839{
Evan Cheng99ebfa52009-10-27 21:35:42 +0000840 if (partCount() > 1)
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000841 return significand.parts;
842 else
843 return &significand.part;
844}
845
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000846void
847APFloat::zeroSignificand()
848{
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000849 APInt::tcSet(significandParts(), 0, partCount());
850}
851
852/* Increment an fcNormal floating point number's significand. */
853void
854APFloat::incrementSignificand()
855{
856 integerPart carry;
857
858 carry = APInt::tcIncrement(significandParts(), partCount());
859
860 /* Our callers should never cause us to overflow. */
861 assert(carry == 0);
Duncan Sands1f6a3292011-08-12 14:54:45 +0000862 (void)carry;
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000863}
864
865/* Add the significand of the RHS. Returns the carry flag. */
866integerPart
867APFloat::addSignificand(const APFloat &rhs)
868{
869 integerPart *parts;
870
871 parts = significandParts();
872
873 assert(semantics == rhs.semantics);
874 assert(exponent == rhs.exponent);
875
876 return APInt::tcAdd(parts, rhs.significandParts(), 0, partCount());
877}
878
879/* Subtract the significand of the RHS with a borrow flag. Returns
880 the borrow flag. */
881integerPart
882APFloat::subtractSignificand(const APFloat &rhs, integerPart borrow)
883{
884 integerPart *parts;
885
886 parts = significandParts();
887
888 assert(semantics == rhs.semantics);
889 assert(exponent == rhs.exponent);
890
891 return APInt::tcSubtract(parts, rhs.significandParts(), borrow,
Neil Booth4f881702007-09-26 21:33:42 +0000892 partCount());
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000893}
894
895/* Multiply the significand of the RHS. If ADDEND is non-NULL, add it
896 on to the full-precision result of the multiplication. Returns the
897 lost fraction. */
898lostFraction
899APFloat::multiplySignificand(const APFloat &rhs, const APFloat *addend)
900{
Neil Booth4f881702007-09-26 21:33:42 +0000901 unsigned int omsb; // One, not zero, based MSB.
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000902 unsigned int partsCount, newPartsCount, precision;
903 integerPart *lhsSignificand;
904 integerPart scratch[4];
905 integerPart *fullSignificand;
906 lostFraction lost_fraction;
Dale Johannesen23a98552008-10-09 23:00:39 +0000907 bool ignored;
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000908
909 assert(semantics == rhs.semantics);
910
911 precision = semantics->precision;
912 newPartsCount = partCountForBits(precision * 2);
913
Dan Gohman16e02092010-03-24 19:38:02 +0000914 if (newPartsCount > 4)
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000915 fullSignificand = new integerPart[newPartsCount];
916 else
917 fullSignificand = scratch;
918
919 lhsSignificand = significandParts();
920 partsCount = partCount();
921
922 APInt::tcFullMultiply(fullSignificand, lhsSignificand,
Neil Booth978661d2007-10-06 00:24:48 +0000923 rhs.significandParts(), partsCount, partsCount);
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000924
925 lost_fraction = lfExactlyZero;
926 omsb = APInt::tcMSB(fullSignificand, newPartsCount) + 1;
927 exponent += rhs.exponent;
928
Shuxin Yang4b6b53b2013-05-13 18:03:12 +0000929 // Assume the operands involved in the multiplication are single-precision
930 // FP, and the two multiplicants are:
931 // *this = a23 . a22 ... a0 * 2^e1
932 // rhs = b23 . b22 ... b0 * 2^e2
933 // the result of multiplication is:
934 // *this = c47 c46 . c45 ... c0 * 2^(e1+e2)
935 // Note that there are two significant bits at the left-hand side of the
936 // radix point. Move the radix point toward left by one bit, and adjust
937 // exponent accordingly.
938 exponent += 1;
939
Dan Gohman16e02092010-03-24 19:38:02 +0000940 if (addend) {
Shuxin Yang4b6b53b2013-05-13 18:03:12 +0000941 // The intermediate result of the multiplication has "2 * precision"
942 // signicant bit; adjust the addend to be consistent with mul result.
943 //
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000944 Significand savedSignificand = significand;
945 const fltSemantics *savedSemantics = semantics;
946 fltSemantics extendedSemantics;
947 opStatus status;
948 unsigned int extendedPrecision;
949
950 /* Normalize our MSB. */
Shuxin Yang4b6b53b2013-05-13 18:03:12 +0000951 extendedPrecision = 2 * precision;
Dan Gohman16e02092010-03-24 19:38:02 +0000952 if (omsb != extendedPrecision) {
Shuxin Yang4b6b53b2013-05-13 18:03:12 +0000953 assert(extendedPrecision > omsb);
Dan Gohman16e02092010-03-24 19:38:02 +0000954 APInt::tcShiftLeft(fullSignificand, newPartsCount,
955 extendedPrecision - omsb);
956 exponent -= extendedPrecision - omsb;
957 }
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000958
959 /* Create new semantics. */
960 extendedSemantics = *semantics;
961 extendedSemantics.precision = extendedPrecision;
962
Dan Gohman16e02092010-03-24 19:38:02 +0000963 if (newPartsCount == 1)
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000964 significand.part = fullSignificand[0];
965 else
966 significand.parts = fullSignificand;
967 semantics = &extendedSemantics;
968
969 APFloat extendedAddend(*addend);
Dale Johannesen23a98552008-10-09 23:00:39 +0000970 status = extendedAddend.convert(extendedSemantics, rmTowardZero, &ignored);
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000971 assert(status == opOK);
Duncan Sands1f6a3292011-08-12 14:54:45 +0000972 (void)status;
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000973 lost_fraction = addOrSubtractSignificand(extendedAddend, false);
974
975 /* Restore our state. */
Dan Gohman16e02092010-03-24 19:38:02 +0000976 if (newPartsCount == 1)
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000977 fullSignificand[0] = significand.part;
978 significand = savedSignificand;
979 semantics = savedSemantics;
980
981 omsb = APInt::tcMSB(fullSignificand, newPartsCount) + 1;
982 }
983
Shuxin Yang4b6b53b2013-05-13 18:03:12 +0000984 // Convert the result having "2 * precision" significant-bits back to the one
985 // having "precision" significant-bits. First, move the radix point from
986 // poision "2*precision - 1" to "precision - 1". The exponent need to be
987 // adjusted by "2*precision - 1" - "precision - 1" = "precision".
988 exponent -= precision;
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000989
Shuxin Yang4b6b53b2013-05-13 18:03:12 +0000990 // In case MSB resides at the left-hand side of radix point, shift the
991 // mantissa right by some amount to make sure the MSB reside right before
992 // the radix point (i.e. "MSB . rest-significant-bits").
993 //
994 // Note that the result is not normalized when "omsb < precision". So, the
995 // caller needs to call APFloat::normalize() if normalized value is expected.
Dan Gohman16e02092010-03-24 19:38:02 +0000996 if (omsb > precision) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +0000997 unsigned int bits, significantParts;
998 lostFraction lf;
999
1000 bits = omsb - precision;
1001 significantParts = partCountForBits(omsb);
1002 lf = shiftRight(fullSignificand, significantParts, bits);
1003 lost_fraction = combineLostFractions(lf, lost_fraction);
1004 exponent += bits;
1005 }
1006
1007 APInt::tcAssign(lhsSignificand, fullSignificand, partsCount);
1008
Dan Gohman16e02092010-03-24 19:38:02 +00001009 if (newPartsCount > 4)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001010 delete [] fullSignificand;
1011
1012 return lost_fraction;
1013}
1014
1015/* Multiply the significands of LHS and RHS to DST. */
1016lostFraction
1017APFloat::divideSignificand(const APFloat &rhs)
1018{
1019 unsigned int bit, i, partsCount;
1020 const integerPart *rhsSignificand;
1021 integerPart *lhsSignificand, *dividend, *divisor;
1022 integerPart scratch[4];
1023 lostFraction lost_fraction;
1024
1025 assert(semantics == rhs.semantics);
1026
1027 lhsSignificand = significandParts();
1028 rhsSignificand = rhs.significandParts();
1029 partsCount = partCount();
1030
Dan Gohman16e02092010-03-24 19:38:02 +00001031 if (partsCount > 2)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001032 dividend = new integerPart[partsCount * 2];
1033 else
1034 dividend = scratch;
1035
1036 divisor = dividend + partsCount;
1037
1038 /* Copy the dividend and divisor as they will be modified in-place. */
Dan Gohman16e02092010-03-24 19:38:02 +00001039 for (i = 0; i < partsCount; i++) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001040 dividend[i] = lhsSignificand[i];
1041 divisor[i] = rhsSignificand[i];
1042 lhsSignificand[i] = 0;
1043 }
1044
1045 exponent -= rhs.exponent;
1046
1047 unsigned int precision = semantics->precision;
1048
1049 /* Normalize the divisor. */
1050 bit = precision - APInt::tcMSB(divisor, partsCount) - 1;
Dan Gohman16e02092010-03-24 19:38:02 +00001051 if (bit) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001052 exponent += bit;
1053 APInt::tcShiftLeft(divisor, partsCount, bit);
1054 }
1055
1056 /* Normalize the dividend. */
1057 bit = precision - APInt::tcMSB(dividend, partsCount) - 1;
Dan Gohman16e02092010-03-24 19:38:02 +00001058 if (bit) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001059 exponent -= bit;
1060 APInt::tcShiftLeft(dividend, partsCount, bit);
1061 }
1062
Neil Booth96c74712007-10-12 16:02:31 +00001063 /* Ensure the dividend >= divisor initially for the loop below.
1064 Incidentally, this means that the division loop below is
1065 guaranteed to set the integer bit to one. */
Dan Gohman16e02092010-03-24 19:38:02 +00001066 if (APInt::tcCompare(dividend, divisor, partsCount) < 0) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001067 exponent--;
1068 APInt::tcShiftLeft(dividend, partsCount, 1);
1069 assert(APInt::tcCompare(dividend, divisor, partsCount) >= 0);
1070 }
1071
1072 /* Long division. */
Dan Gohman16e02092010-03-24 19:38:02 +00001073 for (bit = precision; bit; bit -= 1) {
1074 if (APInt::tcCompare(dividend, divisor, partsCount) >= 0) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001075 APInt::tcSubtract(dividend, divisor, 0, partsCount);
1076 APInt::tcSetBit(lhsSignificand, bit - 1);
1077 }
1078
1079 APInt::tcShiftLeft(dividend, partsCount, 1);
1080 }
1081
1082 /* Figure out the lost fraction. */
1083 int cmp = APInt::tcCompare(dividend, divisor, partsCount);
1084
Dan Gohman16e02092010-03-24 19:38:02 +00001085 if (cmp > 0)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001086 lost_fraction = lfMoreThanHalf;
Dan Gohman16e02092010-03-24 19:38:02 +00001087 else if (cmp == 0)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001088 lost_fraction = lfExactlyHalf;
Dan Gohman16e02092010-03-24 19:38:02 +00001089 else if (APInt::tcIsZero(dividend, partsCount))
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001090 lost_fraction = lfExactlyZero;
1091 else
1092 lost_fraction = lfLessThanHalf;
1093
Dan Gohman16e02092010-03-24 19:38:02 +00001094 if (partsCount > 2)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001095 delete [] dividend;
1096
1097 return lost_fraction;
1098}
1099
1100unsigned int
1101APFloat::significandMSB() const
1102{
1103 return APInt::tcMSB(significandParts(), partCount());
1104}
1105
1106unsigned int
1107APFloat::significandLSB() const
1108{
1109 return APInt::tcLSB(significandParts(), partCount());
1110}
1111
1112/* Note that a zero result is NOT normalized to fcZero. */
1113lostFraction
1114APFloat::shiftSignificandRight(unsigned int bits)
1115{
1116 /* Our exponent should not overflow. */
Michael Gottesmandb045ab2013-06-24 04:06:23 +00001117 assert((ExponentType) (exponent + bits) >= exponent);
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001118
1119 exponent += bits;
1120
1121 return shiftRight(significandParts(), partCount(), bits);
1122}
1123
1124/* Shift the significand left BITS bits, subtract BITS from its exponent. */
1125void
1126APFloat::shiftSignificandLeft(unsigned int bits)
1127{
1128 assert(bits < semantics->precision);
1129
Dan Gohman16e02092010-03-24 19:38:02 +00001130 if (bits) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001131 unsigned int partsCount = partCount();
1132
1133 APInt::tcShiftLeft(significandParts(), partsCount, bits);
1134 exponent -= bits;
1135
1136 assert(!APInt::tcIsZero(significandParts(), partsCount));
1137 }
1138}
1139
1140APFloat::cmpResult
1141APFloat::compareAbsoluteValue(const APFloat &rhs) const
1142{
1143 int compare;
1144
1145 assert(semantics == rhs.semantics);
Michael Gottesman41489dd2013-06-26 23:17:28 +00001146 assert(isFiniteNonZero());
1147 assert(rhs.isFiniteNonZero());
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001148
1149 compare = exponent - rhs.exponent;
1150
1151 /* If exponents are equal, do an unsigned bignum comparison of the
1152 significands. */
Dan Gohman16e02092010-03-24 19:38:02 +00001153 if (compare == 0)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001154 compare = APInt::tcCompare(significandParts(), rhs.significandParts(),
Neil Booth4f881702007-09-26 21:33:42 +00001155 partCount());
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001156
Dan Gohman16e02092010-03-24 19:38:02 +00001157 if (compare > 0)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001158 return cmpGreaterThan;
Dan Gohman16e02092010-03-24 19:38:02 +00001159 else if (compare < 0)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001160 return cmpLessThan;
1161 else
1162 return cmpEqual;
1163}
1164
1165/* Handle overflow. Sign is preserved. We either become infinity or
1166 the largest finite number. */
1167APFloat::opStatus
1168APFloat::handleOverflow(roundingMode rounding_mode)
1169{
1170 /* Infinity? */
Dan Gohman16e02092010-03-24 19:38:02 +00001171 if (rounding_mode == rmNearestTiesToEven ||
1172 rounding_mode == rmNearestTiesToAway ||
1173 (rounding_mode == rmTowardPositive && !sign) ||
1174 (rounding_mode == rmTowardNegative && sign)) {
1175 category = fcInfinity;
1176 return (opStatus) (opOverflow | opInexact);
1177 }
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001178
1179 /* Otherwise we become the largest finite number. */
1180 category = fcNormal;
1181 exponent = semantics->maxExponent;
1182 APInt::tcSetLeastSignificantBits(significandParts(), partCount(),
Neil Booth4f881702007-09-26 21:33:42 +00001183 semantics->precision);
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001184
1185 return opInexact;
1186}
1187
Neil Boothb7dea4c2007-10-03 15:16:41 +00001188/* Returns TRUE if, when truncating the current number, with BIT the
1189 new LSB, with the given lost fraction and rounding mode, the result
1190 would need to be rounded away from zero (i.e., by increasing the
1191 signficand). This routine must work for fcZero of both signs, and
1192 fcNormal numbers. */
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001193bool
1194APFloat::roundAwayFromZero(roundingMode rounding_mode,
Neil Boothb7dea4c2007-10-03 15:16:41 +00001195 lostFraction lost_fraction,
1196 unsigned int bit) const
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001197{
Dale Johanneseneaf08942007-08-31 04:03:46 +00001198 /* NaNs and infinities should not have lost fractions. */
Michael Gottesman41489dd2013-06-26 23:17:28 +00001199 assert(isFiniteNonZero() || category == fcZero);
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001200
Neil Boothb7dea4c2007-10-03 15:16:41 +00001201 /* Current callers never pass this so we don't handle it. */
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001202 assert(lost_fraction != lfExactlyZero);
1203
Mike Stumpf3dc0c02009-05-13 23:23:20 +00001204 switch (rounding_mode) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001205 case rmNearestTiesToAway:
1206 return lost_fraction == lfExactlyHalf || lost_fraction == lfMoreThanHalf;
1207
1208 case rmNearestTiesToEven:
Dan Gohman16e02092010-03-24 19:38:02 +00001209 if (lost_fraction == lfMoreThanHalf)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001210 return true;
1211
1212 /* Our zeroes don't have a significand to test. */
Dan Gohman16e02092010-03-24 19:38:02 +00001213 if (lost_fraction == lfExactlyHalf && category != fcZero)
Neil Boothb7dea4c2007-10-03 15:16:41 +00001214 return APInt::tcExtractBit(significandParts(), bit);
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001215
1216 return false;
1217
1218 case rmTowardZero:
1219 return false;
1220
1221 case rmTowardPositive:
1222 return sign == false;
1223
1224 case rmTowardNegative:
1225 return sign == true;
1226 }
Chandler Carruth732f05c2012-01-10 18:08:01 +00001227 llvm_unreachable("Invalid rounding mode found");
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001228}
1229
1230APFloat::opStatus
1231APFloat::normalize(roundingMode rounding_mode,
Neil Booth4f881702007-09-26 21:33:42 +00001232 lostFraction lost_fraction)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001233{
Neil Booth4f881702007-09-26 21:33:42 +00001234 unsigned int omsb; /* One, not zero, based MSB. */
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001235 int exponentChange;
1236
Michael Gottesman41489dd2013-06-26 23:17:28 +00001237 if (!isFiniteNonZero())
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001238 return opOK;
1239
1240 /* Before rounding normalize the exponent of fcNormal numbers. */
1241 omsb = significandMSB() + 1;
1242
Dan Gohman16e02092010-03-24 19:38:02 +00001243 if (omsb) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001244 /* OMSB is numbered from 1. We want to place it in the integer
Nick Lewycky03dd4e82011-10-03 21:30:08 +00001245 bit numbered PRECISION if possible, with a compensating change in
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001246 the exponent. */
1247 exponentChange = omsb - semantics->precision;
1248
1249 /* If the resulting exponent is too high, overflow according to
1250 the rounding mode. */
Dan Gohman16e02092010-03-24 19:38:02 +00001251 if (exponent + exponentChange > semantics->maxExponent)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001252 return handleOverflow(rounding_mode);
1253
1254 /* Subnormal numbers have exponent minExponent, and their MSB
1255 is forced based on that. */
Dan Gohman16e02092010-03-24 19:38:02 +00001256 if (exponent + exponentChange < semantics->minExponent)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001257 exponentChange = semantics->minExponent - exponent;
1258
1259 /* Shifting left is easy as we don't lose precision. */
Dan Gohman16e02092010-03-24 19:38:02 +00001260 if (exponentChange < 0) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001261 assert(lost_fraction == lfExactlyZero);
1262
1263 shiftSignificandLeft(-exponentChange);
1264
1265 return opOK;
1266 }
1267
Dan Gohman16e02092010-03-24 19:38:02 +00001268 if (exponentChange > 0) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001269 lostFraction lf;
1270
1271 /* Shift right and capture any new lost fraction. */
1272 lf = shiftSignificandRight(exponentChange);
1273
1274 lost_fraction = combineLostFractions(lf, lost_fraction);
1275
1276 /* Keep OMSB up-to-date. */
Dan Gohman16e02092010-03-24 19:38:02 +00001277 if (omsb > (unsigned) exponentChange)
Neil Booth96c74712007-10-12 16:02:31 +00001278 omsb -= exponentChange;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001279 else
Neil Booth4f881702007-09-26 21:33:42 +00001280 omsb = 0;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001281 }
1282 }
1283
1284 /* Now round the number according to rounding_mode given the lost
1285 fraction. */
1286
1287 /* As specified in IEEE 754, since we do not trap we do not report
1288 underflow for exact results. */
Dan Gohman16e02092010-03-24 19:38:02 +00001289 if (lost_fraction == lfExactlyZero) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001290 /* Canonicalize zeroes. */
Dan Gohman16e02092010-03-24 19:38:02 +00001291 if (omsb == 0)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001292 category = fcZero;
1293
1294 return opOK;
1295 }
1296
1297 /* Increment the significand if we're rounding away from zero. */
Dan Gohman16e02092010-03-24 19:38:02 +00001298 if (roundAwayFromZero(rounding_mode, lost_fraction, 0)) {
1299 if (omsb == 0)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001300 exponent = semantics->minExponent;
1301
1302 incrementSignificand();
1303 omsb = significandMSB() + 1;
1304
1305 /* Did the significand increment overflow? */
Dan Gohman16e02092010-03-24 19:38:02 +00001306 if (omsb == (unsigned) semantics->precision + 1) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001307 /* Renormalize by incrementing the exponent and shifting our
Neil Booth4f881702007-09-26 21:33:42 +00001308 significand right one. However if we already have the
1309 maximum exponent we overflow to infinity. */
Dan Gohman16e02092010-03-24 19:38:02 +00001310 if (exponent == semantics->maxExponent) {
Neil Booth4f881702007-09-26 21:33:42 +00001311 category = fcInfinity;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001312
Neil Booth4f881702007-09-26 21:33:42 +00001313 return (opStatus) (opOverflow | opInexact);
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001314 }
1315
1316 shiftSignificandRight(1);
1317
1318 return opInexact;
1319 }
1320 }
1321
1322 /* The normal case - we were and are not denormal, and any
1323 significand increment above didn't overflow. */
Dan Gohman16e02092010-03-24 19:38:02 +00001324 if (omsb == semantics->precision)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001325 return opInexact;
1326
1327 /* We have a non-zero denormal. */
1328 assert(omsb < semantics->precision);
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001329
1330 /* Canonicalize zeroes. */
Dan Gohman16e02092010-03-24 19:38:02 +00001331 if (omsb == 0)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001332 category = fcZero;
1333
1334 /* The fcZero case is a denormal that underflowed to zero. */
1335 return (opStatus) (opUnderflow | opInexact);
1336}
1337
1338APFloat::opStatus
1339APFloat::addOrSubtractSpecials(const APFloat &rhs, bool subtract)
1340{
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001341 switch (PackCategoriesIntoKey(category, rhs.category)) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001342 default:
Torok Edwinc23197a2009-07-14 16:55:14 +00001343 llvm_unreachable(0);
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001344
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001345 case PackCategoriesIntoKey(fcNaN, fcZero):
1346 case PackCategoriesIntoKey(fcNaN, fcNormal):
1347 case PackCategoriesIntoKey(fcNaN, fcInfinity):
1348 case PackCategoriesIntoKey(fcNaN, fcNaN):
1349 case PackCategoriesIntoKey(fcNormal, fcZero):
1350 case PackCategoriesIntoKey(fcInfinity, fcNormal):
1351 case PackCategoriesIntoKey(fcInfinity, fcZero):
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001352 return opOK;
1353
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001354 case PackCategoriesIntoKey(fcZero, fcNaN):
1355 case PackCategoriesIntoKey(fcNormal, fcNaN):
1356 case PackCategoriesIntoKey(fcInfinity, fcNaN):
Dale Johanneseneaf08942007-08-31 04:03:46 +00001357 category = fcNaN;
1358 copySignificand(rhs);
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001359 return opOK;
1360
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001361 case PackCategoriesIntoKey(fcNormal, fcInfinity):
1362 case PackCategoriesIntoKey(fcZero, fcInfinity):
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001363 category = fcInfinity;
1364 sign = rhs.sign ^ subtract;
1365 return opOK;
1366
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001367 case PackCategoriesIntoKey(fcZero, fcNormal):
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001368 assign(rhs);
1369 sign = rhs.sign ^ subtract;
1370 return opOK;
1371
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001372 case PackCategoriesIntoKey(fcZero, fcZero):
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001373 /* Sign depends on rounding mode; handled by caller. */
1374 return opOK;
1375
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001376 case PackCategoriesIntoKey(fcInfinity, fcInfinity):
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001377 /* Differently signed infinities can only be validly
1378 subtracted. */
Dan Gohman16e02092010-03-24 19:38:02 +00001379 if (((sign ^ rhs.sign)!=0) != subtract) {
Neil Boothe5e01942007-10-14 10:39:51 +00001380 makeNaN();
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001381 return opInvalidOp;
1382 }
1383
1384 return opOK;
1385
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001386 case PackCategoriesIntoKey(fcNormal, fcNormal):
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001387 return opDivByZero;
1388 }
1389}
1390
1391/* Add or subtract two normal numbers. */
1392lostFraction
1393APFloat::addOrSubtractSignificand(const APFloat &rhs, bool subtract)
1394{
1395 integerPart carry;
1396 lostFraction lost_fraction;
1397 int bits;
1398
1399 /* Determine if the operation on the absolute values is effectively
1400 an addition or subtraction. */
Hartmut Kaiser8df77a92007-10-25 23:15:31 +00001401 subtract ^= (sign ^ rhs.sign) ? true : false;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001402
1403 /* Are we bigger exponent-wise than the RHS? */
1404 bits = exponent - rhs.exponent;
1405
1406 /* Subtraction is more subtle than one might naively expect. */
Dan Gohman16e02092010-03-24 19:38:02 +00001407 if (subtract) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001408 APFloat temp_rhs(rhs);
1409 bool reverse;
1410
Chris Lattnerada530b2007-08-24 03:02:34 +00001411 if (bits == 0) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001412 reverse = compareAbsoluteValue(temp_rhs) == cmpLessThan;
1413 lost_fraction = lfExactlyZero;
Chris Lattnerada530b2007-08-24 03:02:34 +00001414 } else if (bits > 0) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001415 lost_fraction = temp_rhs.shiftSignificandRight(bits - 1);
1416 shiftSignificandLeft(1);
1417 reverse = false;
Chris Lattnerada530b2007-08-24 03:02:34 +00001418 } else {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001419 lost_fraction = shiftSignificandRight(-bits - 1);
1420 temp_rhs.shiftSignificandLeft(1);
1421 reverse = true;
1422 }
1423
Chris Lattnerada530b2007-08-24 03:02:34 +00001424 if (reverse) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001425 carry = temp_rhs.subtractSignificand
Neil Booth4f881702007-09-26 21:33:42 +00001426 (*this, lost_fraction != lfExactlyZero);
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001427 copySignificand(temp_rhs);
1428 sign = !sign;
1429 } else {
1430 carry = subtractSignificand
Neil Booth4f881702007-09-26 21:33:42 +00001431 (temp_rhs, lost_fraction != lfExactlyZero);
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001432 }
1433
1434 /* Invert the lost fraction - it was on the RHS and
1435 subtracted. */
Dan Gohman16e02092010-03-24 19:38:02 +00001436 if (lost_fraction == lfLessThanHalf)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001437 lost_fraction = lfMoreThanHalf;
Dan Gohman16e02092010-03-24 19:38:02 +00001438 else if (lost_fraction == lfMoreThanHalf)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001439 lost_fraction = lfLessThanHalf;
1440
1441 /* The code above is intended to ensure that no borrow is
1442 necessary. */
1443 assert(!carry);
Duncan Sands1f6a3292011-08-12 14:54:45 +00001444 (void)carry;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001445 } else {
Dan Gohman16e02092010-03-24 19:38:02 +00001446 if (bits > 0) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001447 APFloat temp_rhs(rhs);
1448
1449 lost_fraction = temp_rhs.shiftSignificandRight(bits);
1450 carry = addSignificand(temp_rhs);
1451 } else {
1452 lost_fraction = shiftSignificandRight(-bits);
1453 carry = addSignificand(rhs);
1454 }
1455
1456 /* We have a guard bit; generating a carry cannot happen. */
1457 assert(!carry);
Duncan Sands1f6a3292011-08-12 14:54:45 +00001458 (void)carry;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001459 }
1460
1461 return lost_fraction;
1462}
1463
1464APFloat::opStatus
1465APFloat::multiplySpecials(const APFloat &rhs)
1466{
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001467 switch (PackCategoriesIntoKey(category, rhs.category)) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001468 default:
Torok Edwinc23197a2009-07-14 16:55:14 +00001469 llvm_unreachable(0);
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001470
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001471 case PackCategoriesIntoKey(fcNaN, fcZero):
1472 case PackCategoriesIntoKey(fcNaN, fcNormal):
1473 case PackCategoriesIntoKey(fcNaN, fcInfinity):
1474 case PackCategoriesIntoKey(fcNaN, fcNaN):
Dale Johanneseneaf08942007-08-31 04:03:46 +00001475 return opOK;
1476
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001477 case PackCategoriesIntoKey(fcZero, fcNaN):
1478 case PackCategoriesIntoKey(fcNormal, fcNaN):
1479 case PackCategoriesIntoKey(fcInfinity, fcNaN):
Dale Johanneseneaf08942007-08-31 04:03:46 +00001480 category = fcNaN;
1481 copySignificand(rhs);
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001482 return opOK;
1483
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001484 case PackCategoriesIntoKey(fcNormal, fcInfinity):
1485 case PackCategoriesIntoKey(fcInfinity, fcNormal):
1486 case PackCategoriesIntoKey(fcInfinity, fcInfinity):
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001487 category = fcInfinity;
1488 return opOK;
1489
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001490 case PackCategoriesIntoKey(fcZero, fcNormal):
1491 case PackCategoriesIntoKey(fcNormal, fcZero):
1492 case PackCategoriesIntoKey(fcZero, fcZero):
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001493 category = fcZero;
1494 return opOK;
1495
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001496 case PackCategoriesIntoKey(fcZero, fcInfinity):
1497 case PackCategoriesIntoKey(fcInfinity, fcZero):
Neil Boothe5e01942007-10-14 10:39:51 +00001498 makeNaN();
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001499 return opInvalidOp;
1500
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001501 case PackCategoriesIntoKey(fcNormal, fcNormal):
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001502 return opOK;
1503 }
1504}
1505
1506APFloat::opStatus
1507APFloat::divideSpecials(const APFloat &rhs)
1508{
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001509 switch (PackCategoriesIntoKey(category, rhs.category)) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001510 default:
Torok Edwinc23197a2009-07-14 16:55:14 +00001511 llvm_unreachable(0);
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001512
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001513 case PackCategoriesIntoKey(fcNaN, fcZero):
1514 case PackCategoriesIntoKey(fcNaN, fcNormal):
1515 case PackCategoriesIntoKey(fcNaN, fcInfinity):
1516 case PackCategoriesIntoKey(fcNaN, fcNaN):
1517 case PackCategoriesIntoKey(fcInfinity, fcZero):
1518 case PackCategoriesIntoKey(fcInfinity, fcNormal):
1519 case PackCategoriesIntoKey(fcZero, fcInfinity):
1520 case PackCategoriesIntoKey(fcZero, fcNormal):
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001521 return opOK;
1522
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001523 case PackCategoriesIntoKey(fcZero, fcNaN):
1524 case PackCategoriesIntoKey(fcNormal, fcNaN):
1525 case PackCategoriesIntoKey(fcInfinity, fcNaN):
Dale Johanneseneaf08942007-08-31 04:03:46 +00001526 category = fcNaN;
1527 copySignificand(rhs);
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001528 return opOK;
1529
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001530 case PackCategoriesIntoKey(fcNormal, fcInfinity):
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001531 category = fcZero;
1532 return opOK;
1533
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001534 case PackCategoriesIntoKey(fcNormal, fcZero):
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001535 category = fcInfinity;
1536 return opDivByZero;
1537
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001538 case PackCategoriesIntoKey(fcInfinity, fcInfinity):
1539 case PackCategoriesIntoKey(fcZero, fcZero):
Neil Boothe5e01942007-10-14 10:39:51 +00001540 makeNaN();
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001541 return opInvalidOp;
1542
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001543 case PackCategoriesIntoKey(fcNormal, fcNormal):
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001544 return opOK;
1545 }
1546}
1547
Dale Johannesened6af242009-01-21 00:35:19 +00001548APFloat::opStatus
1549APFloat::modSpecials(const APFloat &rhs)
1550{
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001551 switch (PackCategoriesIntoKey(category, rhs.category)) {
Dale Johannesened6af242009-01-21 00:35:19 +00001552 default:
Torok Edwinc23197a2009-07-14 16:55:14 +00001553 llvm_unreachable(0);
Dale Johannesened6af242009-01-21 00:35:19 +00001554
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001555 case PackCategoriesIntoKey(fcNaN, fcZero):
1556 case PackCategoriesIntoKey(fcNaN, fcNormal):
1557 case PackCategoriesIntoKey(fcNaN, fcInfinity):
1558 case PackCategoriesIntoKey(fcNaN, fcNaN):
1559 case PackCategoriesIntoKey(fcZero, fcInfinity):
1560 case PackCategoriesIntoKey(fcZero, fcNormal):
1561 case PackCategoriesIntoKey(fcNormal, fcInfinity):
Dale Johannesened6af242009-01-21 00:35:19 +00001562 return opOK;
1563
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001564 case PackCategoriesIntoKey(fcZero, fcNaN):
1565 case PackCategoriesIntoKey(fcNormal, fcNaN):
1566 case PackCategoriesIntoKey(fcInfinity, fcNaN):
Dale Johannesened6af242009-01-21 00:35:19 +00001567 category = fcNaN;
1568 copySignificand(rhs);
1569 return opOK;
1570
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001571 case PackCategoriesIntoKey(fcNormal, fcZero):
1572 case PackCategoriesIntoKey(fcInfinity, fcZero):
1573 case PackCategoriesIntoKey(fcInfinity, fcNormal):
1574 case PackCategoriesIntoKey(fcInfinity, fcInfinity):
1575 case PackCategoriesIntoKey(fcZero, fcZero):
Dale Johannesened6af242009-01-21 00:35:19 +00001576 makeNaN();
1577 return opInvalidOp;
1578
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001579 case PackCategoriesIntoKey(fcNormal, fcNormal):
Dale Johannesened6af242009-01-21 00:35:19 +00001580 return opOK;
1581 }
1582}
1583
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001584/* Change sign. */
1585void
1586APFloat::changeSign()
1587{
1588 /* Look mummy, this one's easy. */
1589 sign = !sign;
1590}
1591
Dale Johannesene15c2db2007-08-31 23:35:31 +00001592void
1593APFloat::clearSign()
1594{
1595 /* So is this one. */
1596 sign = 0;
1597}
1598
1599void
1600APFloat::copySign(const APFloat &rhs)
1601{
1602 /* And this one. */
1603 sign = rhs.sign;
1604}
1605
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001606/* Normalized addition or subtraction. */
1607APFloat::opStatus
1608APFloat::addOrSubtract(const APFloat &rhs, roundingMode rounding_mode,
Neil Booth4f881702007-09-26 21:33:42 +00001609 bool subtract)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001610{
1611 opStatus fs;
1612
1613 fs = addOrSubtractSpecials(rhs, subtract);
1614
1615 /* This return code means it was not a simple case. */
Dan Gohman16e02092010-03-24 19:38:02 +00001616 if (fs == opDivByZero) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001617 lostFraction lost_fraction;
1618
1619 lost_fraction = addOrSubtractSignificand(rhs, subtract);
1620 fs = normalize(rounding_mode, lost_fraction);
1621
1622 /* Can only be zero if we lost no fraction. */
1623 assert(category != fcZero || lost_fraction == lfExactlyZero);
1624 }
1625
1626 /* If two numbers add (exactly) to zero, IEEE 754 decrees it is a
1627 positive zero unless rounding to minus infinity, except that
1628 adding two like-signed zeroes gives that zero. */
Dan Gohman16e02092010-03-24 19:38:02 +00001629 if (category == fcZero) {
1630 if (rhs.category != fcZero || (sign == rhs.sign) == subtract)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001631 sign = (rounding_mode == rmTowardNegative);
1632 }
1633
1634 return fs;
1635}
1636
1637/* Normalized addition. */
1638APFloat::opStatus
1639APFloat::add(const APFloat &rhs, roundingMode rounding_mode)
1640{
1641 return addOrSubtract(rhs, rounding_mode, false);
1642}
1643
1644/* Normalized subtraction. */
1645APFloat::opStatus
1646APFloat::subtract(const APFloat &rhs, roundingMode rounding_mode)
1647{
1648 return addOrSubtract(rhs, rounding_mode, true);
1649}
1650
1651/* Normalized multiply. */
1652APFloat::opStatus
1653APFloat::multiply(const APFloat &rhs, roundingMode rounding_mode)
1654{
1655 opStatus fs;
1656
1657 sign ^= rhs.sign;
1658 fs = multiplySpecials(rhs);
1659
Michael Gottesman41489dd2013-06-26 23:17:28 +00001660 if (isFiniteNonZero()) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001661 lostFraction lost_fraction = multiplySignificand(rhs, 0);
1662 fs = normalize(rounding_mode, lost_fraction);
Dan Gohman16e02092010-03-24 19:38:02 +00001663 if (lost_fraction != lfExactlyZero)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001664 fs = (opStatus) (fs | opInexact);
1665 }
1666
1667 return fs;
1668}
1669
1670/* Normalized divide. */
1671APFloat::opStatus
1672APFloat::divide(const APFloat &rhs, roundingMode rounding_mode)
1673{
1674 opStatus fs;
1675
1676 sign ^= rhs.sign;
1677 fs = divideSpecials(rhs);
1678
Michael Gottesman41489dd2013-06-26 23:17:28 +00001679 if (isFiniteNonZero()) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001680 lostFraction lost_fraction = divideSignificand(rhs);
1681 fs = normalize(rounding_mode, lost_fraction);
Dan Gohman16e02092010-03-24 19:38:02 +00001682 if (lost_fraction != lfExactlyZero)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001683 fs = (opStatus) (fs | opInexact);
1684 }
1685
1686 return fs;
1687}
1688
Dale Johannesen24b66a82009-01-20 18:35:05 +00001689/* Normalized remainder. This is not currently correct in all cases. */
1690APFloat::opStatus
1691APFloat::remainder(const APFloat &rhs)
1692{
1693 opStatus fs;
1694 APFloat V = *this;
1695 unsigned int origSign = sign;
1696
Dale Johannesen24b66a82009-01-20 18:35:05 +00001697 fs = V.divide(rhs, rmNearestTiesToEven);
1698 if (fs == opDivByZero)
1699 return fs;
1700
1701 int parts = partCount();
1702 integerPart *x = new integerPart[parts];
1703 bool ignored;
1704 fs = V.convertToInteger(x, parts * integerPartWidth, true,
1705 rmNearestTiesToEven, &ignored);
1706 if (fs==opInvalidOp)
1707 return fs;
1708
1709 fs = V.convertFromZeroExtendedInteger(x, parts * integerPartWidth, true,
1710 rmNearestTiesToEven);
1711 assert(fs==opOK); // should always work
1712
1713 fs = V.multiply(rhs, rmNearestTiesToEven);
1714 assert(fs==opOK || fs==opInexact); // should not overflow or underflow
1715
1716 fs = subtract(V, rmNearestTiesToEven);
1717 assert(fs==opOK || fs==opInexact); // likewise
1718
1719 if (isZero())
1720 sign = origSign; // IEEE754 requires this
1721 delete[] x;
1722 return fs;
1723}
1724
Dan Gohman16e02092010-03-24 19:38:02 +00001725/* Normalized llvm frem (C fmod).
Dale Johannesen24b66a82009-01-20 18:35:05 +00001726 This is not currently correct in all cases. */
Dale Johannesene15c2db2007-08-31 23:35:31 +00001727APFloat::opStatus
1728APFloat::mod(const APFloat &rhs, roundingMode rounding_mode)
1729{
1730 opStatus fs;
Dale Johannesened6af242009-01-21 00:35:19 +00001731 fs = modSpecials(rhs);
Dale Johannesene15c2db2007-08-31 23:35:31 +00001732
Michael Gottesman41489dd2013-06-26 23:17:28 +00001733 if (isFiniteNonZero() && rhs.isFiniteNonZero()) {
Dale Johannesened6af242009-01-21 00:35:19 +00001734 APFloat V = *this;
1735 unsigned int origSign = sign;
Dale Johannesene15c2db2007-08-31 23:35:31 +00001736
Dale Johannesened6af242009-01-21 00:35:19 +00001737 fs = V.divide(rhs, rmNearestTiesToEven);
1738 if (fs == opDivByZero)
1739 return fs;
Dale Johannesen58c2e4c2007-09-05 20:39:49 +00001740
Dale Johannesened6af242009-01-21 00:35:19 +00001741 int parts = partCount();
1742 integerPart *x = new integerPart[parts];
1743 bool ignored;
1744 fs = V.convertToInteger(x, parts * integerPartWidth, true,
1745 rmTowardZero, &ignored);
1746 if (fs==opInvalidOp)
1747 return fs;
Dale Johannesen58c2e4c2007-09-05 20:39:49 +00001748
Dale Johannesened6af242009-01-21 00:35:19 +00001749 fs = V.convertFromZeroExtendedInteger(x, parts * integerPartWidth, true,
1750 rmNearestTiesToEven);
1751 assert(fs==opOK); // should always work
Dale Johannesen58c2e4c2007-09-05 20:39:49 +00001752
Dale Johannesened6af242009-01-21 00:35:19 +00001753 fs = V.multiply(rhs, rounding_mode);
1754 assert(fs==opOK || fs==opInexact); // should not overflow or underflow
1755
1756 fs = subtract(V, rounding_mode);
1757 assert(fs==opOK || fs==opInexact); // likewise
1758
1759 if (isZero())
1760 sign = origSign; // IEEE754 requires this
1761 delete[] x;
1762 }
Dale Johannesene15c2db2007-08-31 23:35:31 +00001763 return fs;
1764}
1765
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001766/* Normalized fused-multiply-add. */
1767APFloat::opStatus
1768APFloat::fusedMultiplyAdd(const APFloat &multiplicand,
Neil Booth4f881702007-09-26 21:33:42 +00001769 const APFloat &addend,
1770 roundingMode rounding_mode)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001771{
1772 opStatus fs;
1773
1774 /* Post-multiplication sign, before addition. */
1775 sign ^= multiplicand.sign;
1776
1777 /* If and only if all arguments are normal do we need to do an
1778 extended-precision calculation. */
Michael Gottesman41489dd2013-06-26 23:17:28 +00001779 if (isFiniteNonZero() &&
1780 multiplicand.isFiniteNonZero() &&
1781 addend.isFiniteNonZero()) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001782 lostFraction lost_fraction;
1783
1784 lost_fraction = multiplySignificand(multiplicand, &addend);
1785 fs = normalize(rounding_mode, lost_fraction);
Dan Gohman16e02092010-03-24 19:38:02 +00001786 if (lost_fraction != lfExactlyZero)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001787 fs = (opStatus) (fs | opInexact);
1788
1789 /* If two numbers add (exactly) to zero, IEEE 754 decrees it is a
1790 positive zero unless rounding to minus infinity, except that
1791 adding two like-signed zeroes gives that zero. */
Dan Gohman16e02092010-03-24 19:38:02 +00001792 if (category == fcZero && sign != addend.sign)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001793 sign = (rounding_mode == rmTowardNegative);
1794 } else {
1795 fs = multiplySpecials(multiplicand);
1796
1797 /* FS can only be opOK or opInvalidOp. There is no more work
1798 to do in the latter case. The IEEE-754R standard says it is
1799 implementation-defined in this case whether, if ADDEND is a
Dale Johanneseneaf08942007-08-31 04:03:46 +00001800 quiet NaN, we raise invalid op; this implementation does so.
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001801
1802 If we need to do the addition we can do so with normal
1803 precision. */
Dan Gohman16e02092010-03-24 19:38:02 +00001804 if (fs == opOK)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001805 fs = addOrSubtract(addend, rounding_mode, false);
1806 }
1807
1808 return fs;
1809}
1810
Owen Anderson7c626d32012-08-13 23:32:49 +00001811/* Rounding-mode corrrect round to integral value. */
1812APFloat::opStatus APFloat::roundToIntegral(roundingMode rounding_mode) {
1813 opStatus fs;
Owen Anderson7c626d32012-08-13 23:32:49 +00001814
Owen Andersonc82cc582012-08-15 18:28:45 +00001815 // If the exponent is large enough, we know that this value is already
1816 // integral, and the arithmetic below would potentially cause it to saturate
1817 // to +/-Inf. Bail out early instead.
Michael Gottesman41489dd2013-06-26 23:17:28 +00001818 if (isFiniteNonZero() && exponent+1 >= (int)semanticsPrecision(*semantics))
Owen Andersonc82cc582012-08-15 18:28:45 +00001819 return opOK;
1820
Owen Anderson7c626d32012-08-13 23:32:49 +00001821 // The algorithm here is quite simple: we add 2^(p-1), where p is the
1822 // precision of our format, and then subtract it back off again. The choice
1823 // of rounding modes for the addition/subtraction determines the rounding mode
1824 // for our integral rounding as well.
Owen Anderson7c289782012-08-15 16:42:53 +00001825 // NOTE: When the input value is negative, we do subtraction followed by
Owen Andersonf7a5dfc2012-08-15 05:39:46 +00001826 // addition instead.
Owen Andersond7a85b12012-08-14 18:51:15 +00001827 APInt IntegerConstant(NextPowerOf2(semanticsPrecision(*semantics)), 1);
1828 IntegerConstant <<= semanticsPrecision(*semantics)-1;
Owen Anderson7c626d32012-08-13 23:32:49 +00001829 APFloat MagicConstant(*semantics);
1830 fs = MagicConstant.convertFromAPInt(IntegerConstant, false,
1831 rmNearestTiesToEven);
Owen Andersonf7a5dfc2012-08-15 05:39:46 +00001832 MagicConstant.copySign(*this);
1833
Owen Anderson7c626d32012-08-13 23:32:49 +00001834 if (fs != opOK)
1835 return fs;
1836
Owen Andersonf7a5dfc2012-08-15 05:39:46 +00001837 // Preserve the input sign so that we can handle 0.0/-0.0 cases correctly.
1838 bool inputSign = isNegative();
1839
Owen Anderson7c626d32012-08-13 23:32:49 +00001840 fs = add(MagicConstant, rounding_mode);
1841 if (fs != opOK && fs != opInexact)
1842 return fs;
1843
1844 fs = subtract(MagicConstant, rounding_mode);
Owen Andersonf7a5dfc2012-08-15 05:39:46 +00001845
1846 // Restore the input sign.
1847 if (inputSign != isNegative())
1848 changeSign();
1849
Owen Anderson7c626d32012-08-13 23:32:49 +00001850 return fs;
1851}
1852
1853
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001854/* Comparison requires normalized numbers. */
1855APFloat::cmpResult
1856APFloat::compare(const APFloat &rhs) const
1857{
1858 cmpResult result;
1859
1860 assert(semantics == rhs.semantics);
1861
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001862 switch (PackCategoriesIntoKey(category, rhs.category)) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001863 default:
Torok Edwinc23197a2009-07-14 16:55:14 +00001864 llvm_unreachable(0);
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001865
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001866 case PackCategoriesIntoKey(fcNaN, fcZero):
1867 case PackCategoriesIntoKey(fcNaN, fcNormal):
1868 case PackCategoriesIntoKey(fcNaN, fcInfinity):
1869 case PackCategoriesIntoKey(fcNaN, fcNaN):
1870 case PackCategoriesIntoKey(fcZero, fcNaN):
1871 case PackCategoriesIntoKey(fcNormal, fcNaN):
1872 case PackCategoriesIntoKey(fcInfinity, fcNaN):
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001873 return cmpUnordered;
1874
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001875 case PackCategoriesIntoKey(fcInfinity, fcNormal):
1876 case PackCategoriesIntoKey(fcInfinity, fcZero):
1877 case PackCategoriesIntoKey(fcNormal, fcZero):
Dan Gohman16e02092010-03-24 19:38:02 +00001878 if (sign)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001879 return cmpLessThan;
1880 else
1881 return cmpGreaterThan;
1882
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001883 case PackCategoriesIntoKey(fcNormal, fcInfinity):
1884 case PackCategoriesIntoKey(fcZero, fcInfinity):
1885 case PackCategoriesIntoKey(fcZero, fcNormal):
Dan Gohman16e02092010-03-24 19:38:02 +00001886 if (rhs.sign)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001887 return cmpGreaterThan;
1888 else
1889 return cmpLessThan;
1890
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001891 case PackCategoriesIntoKey(fcInfinity, fcInfinity):
Dan Gohman16e02092010-03-24 19:38:02 +00001892 if (sign == rhs.sign)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001893 return cmpEqual;
Dan Gohman16e02092010-03-24 19:38:02 +00001894 else if (sign)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001895 return cmpLessThan;
1896 else
1897 return cmpGreaterThan;
1898
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001899 case PackCategoriesIntoKey(fcZero, fcZero):
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001900 return cmpEqual;
1901
Michael Gottesmanc29f5dc2013-06-24 09:57:57 +00001902 case PackCategoriesIntoKey(fcNormal, fcNormal):
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001903 break;
1904 }
1905
1906 /* Two normal numbers. Do they have the same sign? */
Dan Gohman16e02092010-03-24 19:38:02 +00001907 if (sign != rhs.sign) {
1908 if (sign)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001909 result = cmpLessThan;
1910 else
1911 result = cmpGreaterThan;
1912 } else {
1913 /* Compare absolute values; invert result if negative. */
1914 result = compareAbsoluteValue(rhs);
1915
Dan Gohman16e02092010-03-24 19:38:02 +00001916 if (sign) {
1917 if (result == cmpLessThan)
Neil Booth4f881702007-09-26 21:33:42 +00001918 result = cmpGreaterThan;
Dan Gohman16e02092010-03-24 19:38:02 +00001919 else if (result == cmpGreaterThan)
Neil Booth4f881702007-09-26 21:33:42 +00001920 result = cmpLessThan;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001921 }
1922 }
1923
1924 return result;
1925}
1926
Dale Johannesen23a98552008-10-09 23:00:39 +00001927/// APFloat::convert - convert a value of one floating point type to another.
1928/// The return value corresponds to the IEEE754 exceptions. *losesInfo
1929/// records whether the transformation lost information, i.e. whether
1930/// converting the result back to the original type will produce the
1931/// original value (this is almost the same as return value==fsOK, but there
1932/// are edge cases where this is not so).
1933
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001934APFloat::opStatus
1935APFloat::convert(const fltSemantics &toSemantics,
Dale Johannesen23a98552008-10-09 23:00:39 +00001936 roundingMode rounding_mode, bool *losesInfo)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001937{
Neil Boothc8db43d2007-09-22 02:56:19 +00001938 lostFraction lostFraction;
1939 unsigned int newPartCount, oldPartCount;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001940 opStatus fs;
Eli Friedman44551422011-11-26 03:38:02 +00001941 int shift;
1942 const fltSemantics &fromSemantics = *semantics;
Neil Booth4f881702007-09-26 21:33:42 +00001943
Neil Boothc8db43d2007-09-22 02:56:19 +00001944 lostFraction = lfExactlyZero;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001945 newPartCount = partCountForBits(toSemantics.precision + 1);
Neil Boothc8db43d2007-09-22 02:56:19 +00001946 oldPartCount = partCount();
Eli Friedman44551422011-11-26 03:38:02 +00001947 shift = toSemantics.precision - fromSemantics.precision;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001948
Eli Friedman44551422011-11-26 03:38:02 +00001949 bool X86SpecialNan = false;
1950 if (&fromSemantics == &APFloat::x87DoubleExtended &&
1951 &toSemantics != &APFloat::x87DoubleExtended && category == fcNaN &&
1952 (!(*significandParts() & 0x8000000000000000ULL) ||
1953 !(*significandParts() & 0x4000000000000000ULL))) {
1954 // x86 has some unusual NaNs which cannot be represented in any other
1955 // format; note them here.
1956 X86SpecialNan = true;
1957 }
1958
Ulrich Weigandf0d0a162013-07-16 13:03:25 +00001959 // If this is a truncation of a denormal number, and the target semantics
1960 // has larger exponent range than the source semantics (this can happen
1961 // when truncating from PowerPC double-double to double format), the
1962 // right shift could lose result mantissa bits. Adjust exponent instead
1963 // of performing excessive shift.
1964 if (shift < 0 && isFiniteNonZero()) {
1965 int exponentChange = significandMSB() + 1 - fromSemantics.precision;
1966 if (exponent + exponentChange < toSemantics.minExponent)
1967 exponentChange = toSemantics.minExponent - exponent;
1968 if (exponentChange < shift)
1969 exponentChange = shift;
1970 if (exponentChange < 0) {
1971 shift -= exponentChange;
1972 exponent += exponentChange;
1973 }
1974 }
1975
Eli Friedman44551422011-11-26 03:38:02 +00001976 // If this is a truncation, perform the shift before we narrow the storage.
Michael Gottesman41489dd2013-06-26 23:17:28 +00001977 if (shift < 0 && (isFiniteNonZero() || category==fcNaN))
Eli Friedman44551422011-11-26 03:38:02 +00001978 lostFraction = shiftRight(significandParts(), oldPartCount, -shift);
1979
1980 // Fix the storage so it can hold to new value.
Neil Boothc8db43d2007-09-22 02:56:19 +00001981 if (newPartCount > oldPartCount) {
Eli Friedman44551422011-11-26 03:38:02 +00001982 // The new type requires more storage; make it available.
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001983 integerPart *newParts;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001984 newParts = new integerPart[newPartCount];
1985 APInt::tcSet(newParts, 0, newPartCount);
Michael Gottesman41489dd2013-06-26 23:17:28 +00001986 if (isFiniteNonZero() || category==fcNaN)
Dale Johannesen902ff942007-09-25 17:25:00 +00001987 APInt::tcAssign(newParts, significandParts(), oldPartCount);
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001988 freeSignificand();
1989 significand.parts = newParts;
Eli Friedman44551422011-11-26 03:38:02 +00001990 } else if (newPartCount == 1 && oldPartCount != 1) {
1991 // Switch to built-in storage for a single part.
1992 integerPart newPart = 0;
Michael Gottesman41489dd2013-06-26 23:17:28 +00001993 if (isFiniteNonZero() || category==fcNaN)
Eli Friedman44551422011-11-26 03:38:02 +00001994 newPart = significandParts()[0];
1995 freeSignificand();
1996 significand.part = newPart;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00001997 }
1998
Eli Friedman44551422011-11-26 03:38:02 +00001999 // Now that we have the right storage, switch the semantics.
2000 semantics = &toSemantics;
2001
2002 // If this is an extension, perform the shift now that the storage is
2003 // available.
Michael Gottesman41489dd2013-06-26 23:17:28 +00002004 if (shift > 0 && (isFiniteNonZero() || category==fcNaN))
Eli Friedman44551422011-11-26 03:38:02 +00002005 APInt::tcShiftLeft(significandParts(), newPartCount, shift);
2006
Michael Gottesman41489dd2013-06-26 23:17:28 +00002007 if (isFiniteNonZero()) {
Neil Boothc8db43d2007-09-22 02:56:19 +00002008 fs = normalize(rounding_mode, lostFraction);
Dale Johannesen23a98552008-10-09 23:00:39 +00002009 *losesInfo = (fs != opOK);
Dale Johannesen902ff942007-09-25 17:25:00 +00002010 } else if (category == fcNaN) {
Eli Friedman44551422011-11-26 03:38:02 +00002011 *losesInfo = lostFraction != lfExactlyZero || X86SpecialNan;
Benjamin Kramerbd7561e2013-01-25 17:01:00 +00002012
2013 // For x87 extended precision, we want to make a NaN, not a special NaN if
2014 // the input wasn't special either.
2015 if (!X86SpecialNan && semantics == &APFloat::x87DoubleExtended)
2016 APInt::tcSetBit(significandParts(), semantics->precision - 1);
2017
Dale Johannesen902ff942007-09-25 17:25:00 +00002018 // gcc forces the Quiet bit on, which means (float)(double)(float_sNan)
2019 // does not give you back the same bits. This is dubious, and we
2020 // don't currently do it. You're really supposed to get
2021 // an invalid operation signal at runtime, but nobody does that.
Dale Johannesen23a98552008-10-09 23:00:39 +00002022 fs = opOK;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002023 } else {
Dale Johannesen23a98552008-10-09 23:00:39 +00002024 *losesInfo = false;
Eli Friedmanf9b1cd02011-11-28 18:50:37 +00002025 fs = opOK;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002026 }
2027
2028 return fs;
2029}
2030
2031/* Convert a floating point number to an integer according to the
2032 rounding mode. If the rounded integer value is out of range this
Neil Boothee7ae382007-11-01 22:43:37 +00002033 returns an invalid operation exception and the contents of the
2034 destination parts are unspecified. If the rounded value is in
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002035 range but the floating point number is not the exact integer, the C
2036 standard doesn't require an inexact exception to be raised. IEEE
2037 854 does require it so we do that.
2038
2039 Note that for conversions to integer type the C standard requires
2040 round-to-zero to always be used. */
2041APFloat::opStatus
Neil Boothee7ae382007-11-01 22:43:37 +00002042APFloat::convertToSignExtendedInteger(integerPart *parts, unsigned int width,
2043 bool isSigned,
Dale Johannesen23a98552008-10-09 23:00:39 +00002044 roundingMode rounding_mode,
2045 bool *isExact) const
Neil Boothee7ae382007-11-01 22:43:37 +00002046{
2047 lostFraction lost_fraction;
2048 const integerPart *src;
2049 unsigned int dstPartsCount, truncatedBits;
2050
Dale Johannesen23a98552008-10-09 23:00:39 +00002051 *isExact = false;
2052
Neil Boothee7ae382007-11-01 22:43:37 +00002053 /* Handle the three special cases first. */
Dan Gohman16e02092010-03-24 19:38:02 +00002054 if (category == fcInfinity || category == fcNaN)
Neil Boothee7ae382007-11-01 22:43:37 +00002055 return opInvalidOp;
2056
2057 dstPartsCount = partCountForBits(width);
2058
Dan Gohman16e02092010-03-24 19:38:02 +00002059 if (category == fcZero) {
Neil Boothee7ae382007-11-01 22:43:37 +00002060 APInt::tcSet(parts, 0, dstPartsCount);
Dale Johannesene4a42452008-10-07 00:40:01 +00002061 // Negative zero can't be represented as an int.
Dale Johannesen23a98552008-10-09 23:00:39 +00002062 *isExact = !sign;
2063 return opOK;
Neil Boothee7ae382007-11-01 22:43:37 +00002064 }
2065
2066 src = significandParts();
2067
2068 /* Step 1: place our absolute value, with any fraction truncated, in
2069 the destination. */
2070 if (exponent < 0) {
2071 /* Our absolute value is less than one; truncate everything. */
2072 APInt::tcSet(parts, 0, dstPartsCount);
Dale Johannesen1f54f582009-01-19 21:17:05 +00002073 /* For exponent -1 the integer bit represents .5, look at that.
2074 For smaller exponents leftmost truncated bit is 0. */
2075 truncatedBits = semantics->precision -1U - exponent;
Neil Boothee7ae382007-11-01 22:43:37 +00002076 } else {
2077 /* We want the most significant (exponent + 1) bits; the rest are
2078 truncated. */
2079 unsigned int bits = exponent + 1U;
2080
2081 /* Hopelessly large in magnitude? */
2082 if (bits > width)
2083 return opInvalidOp;
2084
2085 if (bits < semantics->precision) {
2086 /* We truncate (semantics->precision - bits) bits. */
2087 truncatedBits = semantics->precision - bits;
2088 APInt::tcExtract(parts, dstPartsCount, src, bits, truncatedBits);
2089 } else {
2090 /* We want at least as many bits as are available. */
2091 APInt::tcExtract(parts, dstPartsCount, src, semantics->precision, 0);
2092 APInt::tcShiftLeft(parts, dstPartsCount, bits - semantics->precision);
2093 truncatedBits = 0;
2094 }
2095 }
2096
2097 /* Step 2: work out any lost fraction, and increment the absolute
2098 value if we would round away from zero. */
2099 if (truncatedBits) {
2100 lost_fraction = lostFractionThroughTruncation(src, partCount(),
2101 truncatedBits);
Dan Gohman16e02092010-03-24 19:38:02 +00002102 if (lost_fraction != lfExactlyZero &&
2103 roundAwayFromZero(rounding_mode, lost_fraction, truncatedBits)) {
Neil Boothee7ae382007-11-01 22:43:37 +00002104 if (APInt::tcIncrement(parts, dstPartsCount))
2105 return opInvalidOp; /* Overflow. */
2106 }
2107 } else {
2108 lost_fraction = lfExactlyZero;
2109 }
2110
2111 /* Step 3: check if we fit in the destination. */
2112 unsigned int omsb = APInt::tcMSB(parts, dstPartsCount) + 1;
2113
2114 if (sign) {
2115 if (!isSigned) {
2116 /* Negative numbers cannot be represented as unsigned. */
2117 if (omsb != 0)
2118 return opInvalidOp;
2119 } else {
2120 /* It takes omsb bits to represent the unsigned integer value.
2121 We lose a bit for the sign, but care is needed as the
2122 maximally negative integer is a special case. */
2123 if (omsb == width && APInt::tcLSB(parts, dstPartsCount) + 1 != omsb)
2124 return opInvalidOp;
2125
2126 /* This case can happen because of rounding. */
2127 if (omsb > width)
2128 return opInvalidOp;
2129 }
2130
2131 APInt::tcNegate (parts, dstPartsCount);
2132 } else {
2133 if (omsb >= width + !isSigned)
2134 return opInvalidOp;
2135 }
2136
Dale Johannesen23a98552008-10-09 23:00:39 +00002137 if (lost_fraction == lfExactlyZero) {
2138 *isExact = true;
Neil Boothee7ae382007-11-01 22:43:37 +00002139 return opOK;
Dale Johannesen23a98552008-10-09 23:00:39 +00002140 } else
Neil Boothee7ae382007-11-01 22:43:37 +00002141 return opInexact;
2142}
2143
2144/* Same as convertToSignExtendedInteger, except we provide
2145 deterministic values in case of an invalid operation exception,
2146 namely zero for NaNs and the minimal or maximal value respectively
Dale Johannesen23a98552008-10-09 23:00:39 +00002147 for underflow or overflow.
2148 The *isExact output tells whether the result is exact, in the sense
2149 that converting it back to the original floating point type produces
2150 the original value. This is almost equivalent to result==opOK,
2151 except for negative zeroes.
2152*/
Neil Boothee7ae382007-11-01 22:43:37 +00002153APFloat::opStatus
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002154APFloat::convertToInteger(integerPart *parts, unsigned int width,
Neil Booth4f881702007-09-26 21:33:42 +00002155 bool isSigned,
Dale Johannesen23a98552008-10-09 23:00:39 +00002156 roundingMode rounding_mode, bool *isExact) const
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002157{
Neil Boothee7ae382007-11-01 22:43:37 +00002158 opStatus fs;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002159
Dan Gohman16e02092010-03-24 19:38:02 +00002160 fs = convertToSignExtendedInteger(parts, width, isSigned, rounding_mode,
Dale Johannesen23a98552008-10-09 23:00:39 +00002161 isExact);
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002162
Neil Boothee7ae382007-11-01 22:43:37 +00002163 if (fs == opInvalidOp) {
2164 unsigned int bits, dstPartsCount;
2165
2166 dstPartsCount = partCountForBits(width);
2167
2168 if (category == fcNaN)
2169 bits = 0;
2170 else if (sign)
2171 bits = isSigned;
2172 else
2173 bits = width - isSigned;
2174
2175 APInt::tcSetLeastSignificantBits(parts, dstPartsCount, bits);
2176 if (sign && isSigned)
2177 APInt::tcShiftLeft(parts, dstPartsCount, width - 1);
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002178 }
2179
Neil Boothee7ae382007-11-01 22:43:37 +00002180 return fs;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002181}
2182
Jeffrey Yasskin3d42bfb2011-07-15 07:04:56 +00002183/* Same as convertToInteger(integerPart*, ...), except the result is returned in
2184 an APSInt, whose initial bit-width and signed-ness are used to determine the
2185 precision of the conversion.
2186 */
2187APFloat::opStatus
2188APFloat::convertToInteger(APSInt &result,
2189 roundingMode rounding_mode, bool *isExact) const
2190{
2191 unsigned bitWidth = result.getBitWidth();
2192 SmallVector<uint64_t, 4> parts(result.getNumWords());
2193 opStatus status = convertToInteger(
2194 parts.data(), bitWidth, result.isSigned(), rounding_mode, isExact);
2195 // Keeps the original signed-ness.
Jeffrey Yasskin3ba292d2011-07-18 21:45:40 +00002196 result = APInt(bitWidth, parts);
Jeffrey Yasskin3d42bfb2011-07-15 07:04:56 +00002197 return status;
2198}
2199
Neil Booth643ce592007-10-07 12:07:53 +00002200/* Convert an unsigned integer SRC to a floating point number,
2201 rounding according to ROUNDING_MODE. The sign of the floating
2202 point number is not modified. */
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002203APFloat::opStatus
Neil Booth643ce592007-10-07 12:07:53 +00002204APFloat::convertFromUnsignedParts(const integerPart *src,
2205 unsigned int srcCount,
2206 roundingMode rounding_mode)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002207{
Neil Booth5477f852007-10-08 14:39:42 +00002208 unsigned int omsb, precision, dstCount;
Neil Booth643ce592007-10-07 12:07:53 +00002209 integerPart *dst;
Neil Booth5477f852007-10-08 14:39:42 +00002210 lostFraction lost_fraction;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002211
2212 category = fcNormal;
Neil Booth5477f852007-10-08 14:39:42 +00002213 omsb = APInt::tcMSB(src, srcCount) + 1;
Neil Booth643ce592007-10-07 12:07:53 +00002214 dst = significandParts();
2215 dstCount = partCount();
Neil Booth5477f852007-10-08 14:39:42 +00002216 precision = semantics->precision;
Neil Booth643ce592007-10-07 12:07:53 +00002217
Nick Lewycky03dd4e82011-10-03 21:30:08 +00002218 /* We want the most significant PRECISION bits of SRC. There may not
Neil Booth5477f852007-10-08 14:39:42 +00002219 be that many; extract what we can. */
2220 if (precision <= omsb) {
2221 exponent = omsb - 1;
Neil Booth643ce592007-10-07 12:07:53 +00002222 lost_fraction = lostFractionThroughTruncation(src, srcCount,
Neil Booth5477f852007-10-08 14:39:42 +00002223 omsb - precision);
2224 APInt::tcExtract(dst, dstCount, src, precision, omsb - precision);
2225 } else {
2226 exponent = precision - 1;
2227 lost_fraction = lfExactlyZero;
2228 APInt::tcExtract(dst, dstCount, src, omsb, 0);
Neil Booth643ce592007-10-07 12:07:53 +00002229 }
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002230
2231 return normalize(rounding_mode, lost_fraction);
2232}
2233
Dan Gohman93c276e2008-02-29 01:26:11 +00002234APFloat::opStatus
2235APFloat::convertFromAPInt(const APInt &Val,
2236 bool isSigned,
2237 roundingMode rounding_mode)
2238{
2239 unsigned int partCount = Val.getNumWords();
2240 APInt api = Val;
2241
2242 sign = false;
2243 if (isSigned && api.isNegative()) {
2244 sign = true;
2245 api = -api;
2246 }
2247
2248 return convertFromUnsignedParts(api.getRawData(), partCount, rounding_mode);
2249}
2250
Neil Boothf16c5952007-10-07 12:15:41 +00002251/* Convert a two's complement integer SRC to a floating point number,
2252 rounding according to ROUNDING_MODE. ISSIGNED is true if the
2253 integer is signed, in which case it must be sign-extended. */
2254APFloat::opStatus
2255APFloat::convertFromSignExtendedInteger(const integerPart *src,
2256 unsigned int srcCount,
2257 bool isSigned,
2258 roundingMode rounding_mode)
2259{
2260 opStatus status;
2261
Dan Gohman16e02092010-03-24 19:38:02 +00002262 if (isSigned &&
2263 APInt::tcExtractBit(src, srcCount * integerPartWidth - 1)) {
Neil Boothf16c5952007-10-07 12:15:41 +00002264 integerPart *copy;
2265
2266 /* If we're signed and negative negate a copy. */
2267 sign = true;
2268 copy = new integerPart[srcCount];
2269 APInt::tcAssign(copy, src, srcCount);
2270 APInt::tcNegate(copy, srcCount);
2271 status = convertFromUnsignedParts(copy, srcCount, rounding_mode);
2272 delete [] copy;
2273 } else {
2274 sign = false;
2275 status = convertFromUnsignedParts(src, srcCount, rounding_mode);
2276 }
2277
2278 return status;
2279}
2280
Neil Boothccf596a2007-10-07 11:45:55 +00002281/* FIXME: should this just take a const APInt reference? */
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002282APFloat::opStatus
Neil Boothccf596a2007-10-07 11:45:55 +00002283APFloat::convertFromZeroExtendedInteger(const integerPart *parts,
2284 unsigned int width, bool isSigned,
2285 roundingMode rounding_mode)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002286{
Dale Johannesen910993e2007-09-21 22:09:37 +00002287 unsigned int partCount = partCountForBits(width);
Jeffrey Yasskin3ba292d2011-07-18 21:45:40 +00002288 APInt api = APInt(width, makeArrayRef(parts, partCount));
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002289
2290 sign = false;
Dan Gohman16e02092010-03-24 19:38:02 +00002291 if (isSigned && APInt::tcExtractBit(parts, width - 1)) {
Dale Johannesencce23a42007-09-30 18:17:01 +00002292 sign = true;
2293 api = -api;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002294 }
2295
Neil Booth7a7bc0f2007-10-07 12:10:57 +00002296 return convertFromUnsignedParts(api.getRawData(), partCount, rounding_mode);
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002297}
2298
2299APFloat::opStatus
Benjamin Kramer38e59892010-07-14 22:38:02 +00002300APFloat::convertFromHexadecimalString(StringRef s, roundingMode rounding_mode)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002301{
Erick Tryzelaarf8bc8012009-08-18 18:20:37 +00002302 lostFraction lost_fraction = lfExactlyZero;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002303
Michael Gottesman060d34b2013-07-27 21:49:21 +00002304 category = fcNormal;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002305 zeroSignificand();
2306 exponent = 0;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002307
Eli Friedman763c0662013-07-17 22:17:29 +00002308 integerPart *significand = significandParts();
2309 unsigned partsCount = partCount();
2310 unsigned bitPos = partsCount * integerPartWidth;
2311 bool computedTrailingFraction = false;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002312
Eli Friedman763c0662013-07-17 22:17:29 +00002313 // Skip leading zeroes and any (hexa)decimal point.
Erick Tryzelaarc78b33b2009-08-20 23:30:43 +00002314 StringRef::iterator begin = s.begin();
2315 StringRef::iterator end = s.end();
Eli Friedman763c0662013-07-17 22:17:29 +00002316 StringRef::iterator dot;
Erick Tryzelaarc78b33b2009-08-20 23:30:43 +00002317 StringRef::iterator p = skipLeadingZeroesAndAnyDot(begin, end, &dot);
Eli Friedman763c0662013-07-17 22:17:29 +00002318 StringRef::iterator firstSignificantDigit = p;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002319
Eli Friedman763c0662013-07-17 22:17:29 +00002320 while (p != end) {
Dale Johannesen386f3e92008-05-14 22:53:25 +00002321 integerPart hex_value;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002322
Dan Gohman16e02092010-03-24 19:38:02 +00002323 if (*p == '.') {
Erick Tryzelaarc78b33b2009-08-20 23:30:43 +00002324 assert(dot == end && "String contains multiple dots");
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002325 dot = p++;
Eli Friedman763c0662013-07-17 22:17:29 +00002326 continue;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002327 }
2328
2329 hex_value = hexDigitValue(*p);
Eli Friedman763c0662013-07-17 22:17:29 +00002330 if (hex_value == -1U)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002331 break;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002332
2333 p++;
2334
Eli Friedman763c0662013-07-17 22:17:29 +00002335 // Store the number while we have space.
2336 if (bitPos) {
2337 bitPos -= 4;
2338 hex_value <<= bitPos % integerPartWidth;
2339 significand[bitPos / integerPartWidth] |= hex_value;
2340 } else if (!computedTrailingFraction) {
2341 lost_fraction = trailingHexadecimalFraction(p, end, hex_value);
2342 computedTrailingFraction = true;
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002343 }
2344 }
2345
2346 /* Hex floats require an exponent but not a hexadecimal point. */
Erick Tryzelaarc78b33b2009-08-20 23:30:43 +00002347 assert(p != end && "Hex strings require an exponent");
2348 assert((*p == 'p' || *p == 'P') && "Invalid character in significand");
2349 assert(p != begin && "Significand has no digits");
2350 assert((dot == end || p - begin != 1) && "Significand has no digits");
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002351
2352 /* Ignore the exponent if we are zero. */
Dan Gohman16e02092010-03-24 19:38:02 +00002353 if (p != firstSignificantDigit) {
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002354 int expAdjustment;
2355
2356 /* Implicit hexadecimal point? */
Erick Tryzelaarc78b33b2009-08-20 23:30:43 +00002357 if (dot == end)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002358 dot = p;
2359
2360 /* Calculate the exponent adjustment implicit in the number of
2361 significant digits. */
Evan Cheng48e8c802008-05-02 21:15:08 +00002362 expAdjustment = static_cast<int>(dot - firstSignificantDigit);
Dan Gohman16e02092010-03-24 19:38:02 +00002363 if (expAdjustment < 0)
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002364 expAdjustment++;
2365 expAdjustment = expAdjustment * 4 - 1;
2366
2367 /* Adjust for writing the significand starting at the most
2368 significant nibble. */
2369 expAdjustment += semantics->precision;
2370 expAdjustment -= partsCount * integerPartWidth;
2371
2372 /* Adjust for the given exponent. */
Erick Tryzelaarc78b33b2009-08-20 23:30:43 +00002373 exponent = totalExponent(p + 1, end, expAdjustment);
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002374 }
2375
2376 return normalize(rounding_mode, lost_fraction);
2377}
2378
2379APFloat::opStatus
Neil Booth96c74712007-10-12 16:02:31 +00002380APFloat::roundSignificandWithExponent(const integerPart *decSigParts,
2381 unsigned sigPartCount, int exp,
2382 roundingMode rounding_mode)
2383{
2384 unsigned int parts, pow5PartCount;
Ulrich Weigand159c7352012-10-29 18:18:44 +00002385 fltSemantics calcSemantics = { 32767, -32767, 0 };
Neil Booth96c74712007-10-12 16:02:31 +00002386 integerPart pow5Parts[maxPowerOfFiveParts];
2387 bool isNearest;
2388
Dan Gohman16e02092010-03-24 19:38:02 +00002389 isNearest = (rounding_mode == rmNearestTiesToEven ||
2390 rounding_mode == rmNearestTiesToAway);
Neil Booth96c74712007-10-12 16:02:31 +00002391
2392 parts = partCountForBits(semantics->precision + 11);
2393
2394 /* Calculate pow(5, abs(exp)). */
2395 pow5PartCount = powerOf5(pow5Parts, exp >= 0 ? exp: -exp);
2396
2397 for (;; parts *= 2) {
2398 opStatus sigStatus, powStatus;
2399 unsigned int excessPrecision, truncatedBits;
2400
2401 calcSemantics.precision = parts * integerPartWidth - 1;
2402 excessPrecision = calcSemantics.precision - semantics->precision;
2403 truncatedBits = excessPrecision;
2404
Michael Gottesman4dfc2572013-06-27 21:58:19 +00002405 APFloat decSig = APFloat::getZero(calcSemantics, sign);
2406 APFloat pow5(calcSemantics);
Neil Booth96c74712007-10-12 16:02:31 +00002407
2408 sigStatus = decSig.convertFromUnsignedParts(decSigParts, sigPartCount,
2409 rmNearestTiesToEven);
2410 powStatus = pow5.convertFromUnsignedParts(pow5Parts, pow5PartCount,
2411 rmNearestTiesToEven);
2412 /* Add exp, as 10^n = 5^n * 2^n. */
2413 decSig.exponent += exp;
2414
2415 lostFraction calcLostFraction;
Evan Cheng48e8c802008-05-02 21:15:08 +00002416 integerPart HUerr, HUdistance;
2417 unsigned int powHUerr;
Neil Booth96c74712007-10-12 16:02:31 +00002418
2419 if (exp >= 0) {
2420 /* multiplySignificand leaves the precision-th bit set to 1. */
2421 calcLostFraction = decSig.multiplySignificand(pow5, NULL);
2422 powHUerr = powStatus != opOK;
2423 } else {
2424 calcLostFraction = decSig.divideSignificand(pow5);
2425 /* Denormal numbers have less precision. */
2426 if (decSig.exponent < semantics->minExponent) {
2427 excessPrecision += (semantics->minExponent - decSig.exponent);
2428 truncatedBits = excessPrecision;
2429 if (excessPrecision > calcSemantics.precision)
2430 excessPrecision = calcSemantics.precision;
2431 }
2432 /* Extra half-ulp lost in reciprocal of exponent. */
Evan Cheng48e8c802008-05-02 21:15:08 +00002433 powHUerr = (powStatus == opOK && calcLostFraction == lfExactlyZero) ? 0:2;
Neil Booth96c74712007-10-12 16:02:31 +00002434 }
2435
2436 /* Both multiplySignificand and divideSignificand return the
2437 result with the integer bit set. */
Evan Cheng99ebfa52009-10-27 21:35:42 +00002438 assert(APInt::tcExtractBit
2439 (decSig.significandParts(), calcSemantics.precision - 1) == 1);
Neil Booth96c74712007-10-12 16:02:31 +00002440
2441 HUerr = HUerrBound(calcLostFraction != lfExactlyZero, sigStatus != opOK,
2442 powHUerr);
2443 HUdistance = 2 * ulpsFromBoundary(decSig.significandParts(),
2444 excessPrecision, isNearest);
2445
2446 /* Are we guaranteed to round correctly if we truncate? */
2447 if (HUdistance >= HUerr) {
2448 APInt::tcExtract(significandParts(), partCount(), decSig.significandParts(),
2449 calcSemantics.precision - excessPrecision,
2450 excessPrecision);
2451 /* Take the exponent of decSig. If we tcExtract-ed less bits
2452 above we must adjust our exponent to compensate for the
2453 implicit right shift. */
2454 exponent = (decSig.exponent + semantics->precision
2455 - (calcSemantics.precision - excessPrecision));
2456 calcLostFraction = lostFractionThroughTruncation(decSig.significandParts(),
2457 decSig.partCount(),
2458 truncatedBits);
2459 return normalize(rounding_mode, calcLostFraction);
2460 }
2461 }
2462}
2463
2464APFloat::opStatus
Benjamin Kramer38e59892010-07-14 22:38:02 +00002465APFloat::convertFromDecimalString(StringRef str, roundingMode rounding_mode)
Neil Booth96c74712007-10-12 16:02:31 +00002466{
Neil Booth1870f292007-10-14 10:16:12 +00002467 decimalInfo D;
Neil Booth96c74712007-10-12 16:02:31 +00002468 opStatus fs;
2469
Neil Booth1870f292007-10-14 10:16:12 +00002470 /* Scan the text. */
Erick Tryzelaara15d8902009-08-16 23:36:19 +00002471 StringRef::iterator p = str.begin();
2472 interpretDecimal(p, str.end(), &D);
Neil Booth96c74712007-10-12 16:02:31 +00002473
Neil Booth686700e2007-10-15 15:00:55 +00002474 /* Handle the quick cases. First the case of no significant digits,
2475 i.e. zero, and then exponents that are obviously too large or too
2476 small. Writing L for log 10 / log 2, a number d.ddddd*10^exp
2477 definitely overflows if
2478
2479 (exp - 1) * L >= maxExponent
2480
2481 and definitely underflows to zero where
2482
2483 (exp + 1) * L <= minExponent - precision
2484
2485 With integer arithmetic the tightest bounds for L are
2486
2487 93/28 < L < 196/59 [ numerator <= 256 ]
2488 42039/12655 < L < 28738/8651 [ numerator <= 65536 ]
2489 */
2490
Michael Gottesmanb5777032013-07-01 23:54:08 +00002491 // Test if we have a zero number allowing for strings with no null terminators
2492 // and zero decimals with non-zero exponents.
2493 //
2494 // We computed firstSigDigit by ignoring all zeros and dots. Thus if
2495 // D->firstSigDigit equals str.end(), every digit must be a zero and there can
2496 // be at most one dot. On the other hand, if we have a zero with a non-zero
2497 // exponent, then we know that D.firstSigDigit will be non-numeric.
Michael Gottesmanc93bee02013-07-02 15:50:05 +00002498 if (D.firstSigDigit == str.end() || decDigitValue(*D.firstSigDigit) >= 10U) {
Neil Booth96c74712007-10-12 16:02:31 +00002499 category = fcZero;
2500 fs = opOK;
John McCall8b3f3302010-02-26 22:20:41 +00002501
2502 /* Check whether the normalized exponent is high enough to overflow
2503 max during the log-rebasing in the max-exponent check below. */
2504 } else if (D.normalizedExponent - 1 > INT_MAX / 42039) {
2505 fs = handleOverflow(rounding_mode);
2506
2507 /* If it wasn't, then it also wasn't high enough to overflow max
2508 during the log-rebasing in the min-exponent check. Check that it
2509 won't overflow min in either check, then perform the min-exponent
2510 check. */
2511 } else if (D.normalizedExponent - 1 < INT_MIN / 42039 ||
2512 (D.normalizedExponent + 1) * 28738 <=
2513 8651 * (semantics->minExponent - (int) semantics->precision)) {
Neil Booth686700e2007-10-15 15:00:55 +00002514 /* Underflow to zero and round. */
Michael Gottesman060d34b2013-07-27 21:49:21 +00002515 category = fcNormal;
Neil Booth686700e2007-10-15 15:00:55 +00002516 zeroSignificand();
2517 fs = normalize(rounding_mode, lfLessThanHalf);
John McCall8b3f3302010-02-26 22:20:41 +00002518
2519 /* We can finally safely perform the max-exponent check. */
Neil Booth686700e2007-10-15 15:00:55 +00002520 } else if ((D.normalizedExponent - 1) * 42039
2521 >= 12655 * semantics->maxExponent) {
2522 /* Overflow and round. */
2523 fs = handleOverflow(rounding_mode);
Neil Booth96c74712007-10-12 16:02:31 +00002524 } else {
Neil Booth1870f292007-10-14 10:16:12 +00002525 integerPart *decSignificand;
2526 unsigned int partCount;
Neil Booth96c74712007-10-12 16:02:31 +00002527
Neil Booth1870f292007-10-14 10:16:12 +00002528 /* A tight upper bound on number of bits required to hold an
Neil Booth686700e2007-10-15 15:00:55 +00002529 N-digit decimal integer is N * 196 / 59. Allocate enough space
Neil Booth1870f292007-10-14 10:16:12 +00002530 to hold the full significand, and an extra part required by
2531 tcMultiplyPart. */
Evan Cheng48e8c802008-05-02 21:15:08 +00002532 partCount = static_cast<unsigned int>(D.lastSigDigit - D.firstSigDigit) + 1;
Neil Booth686700e2007-10-15 15:00:55 +00002533 partCount = partCountForBits(1 + 196 * partCount / 59);
Neil Booth1870f292007-10-14 10:16:12 +00002534 decSignificand = new integerPart[partCount + 1];
2535 partCount = 0;
Neil Booth96c74712007-10-12 16:02:31 +00002536
Neil Booth1870f292007-10-14 10:16:12 +00002537 /* Convert to binary efficiently - we do almost all multiplication
2538 in an integerPart. When this would overflow do we do a single
2539 bignum multiplication, and then revert again to multiplication
2540 in an integerPart. */
2541 do {
2542 integerPart decValue, val, multiplier;
2543
2544 val = 0;
2545 multiplier = 1;
2546
2547 do {
Erick Tryzelaara15d8902009-08-16 23:36:19 +00002548 if (*p == '.') {
Neil Booth1870f292007-10-14 10:16:12 +00002549 p++;
Erick Tryzelaara15d8902009-08-16 23:36:19 +00002550 if (p == str.end()) {
2551 break;
2552 }
2553 }
Neil Booth1870f292007-10-14 10:16:12 +00002554 decValue = decDigitValue(*p++);
Erick Tryzelaarc78b33b2009-08-20 23:30:43 +00002555 assert(decValue < 10U && "Invalid character in significand");
Neil Booth1870f292007-10-14 10:16:12 +00002556 multiplier *= 10;
2557 val = val * 10 + decValue;
2558 /* The maximum number that can be multiplied by ten with any
2559 digit added without overflowing an integerPart. */
2560 } while (p <= D.lastSigDigit && multiplier <= (~ (integerPart) 0 - 9) / 10);
2561
2562 /* Multiply out the current part. */
2563 APInt::tcMultiplyPart(decSignificand, decSignificand, multiplier, val,
2564 partCount, partCount + 1, false);
2565
2566 /* If we used another part (likely but not guaranteed), increase
2567 the count. */
2568 if (decSignificand[partCount])
2569 partCount++;
2570 } while (p <= D.lastSigDigit);
Neil Booth96c74712007-10-12 16:02:31 +00002571
Neil Booth43a4b282007-11-01 22:51:07 +00002572 category = fcNormal;
Neil Booth96c74712007-10-12 16:02:31 +00002573 fs = roundSignificandWithExponent(decSignificand, partCount,
Neil Booth1870f292007-10-14 10:16:12 +00002574 D.exponent, rounding_mode);
Neil Booth96c74712007-10-12 16:02:31 +00002575
Neil Booth1870f292007-10-14 10:16:12 +00002576 delete [] decSignificand;
2577 }
Neil Booth96c74712007-10-12 16:02:31 +00002578
2579 return fs;
2580}
2581
Michael Gottesman575694b2013-06-24 09:58:05 +00002582bool
2583APFloat::convertFromStringSpecials(StringRef str) {
2584 if (str.equals("inf") || str.equals("INFINITY")) {
2585 makeInf(false);
2586 return true;
2587 }
2588
2589 if (str.equals("-inf") || str.equals("-INFINITY")) {
2590 makeInf(true);
2591 return true;
2592 }
2593
2594 if (str.equals("nan") || str.equals("NaN")) {
2595 makeNaN(false, false);
2596 return true;
2597 }
2598
2599 if (str.equals("-nan") || str.equals("-NaN")) {
2600 makeNaN(false, true);
2601 return true;
2602 }
2603
2604 return false;
2605}
2606
Neil Booth96c74712007-10-12 16:02:31 +00002607APFloat::opStatus
Benjamin Kramer38e59892010-07-14 22:38:02 +00002608APFloat::convertFromString(StringRef str, roundingMode rounding_mode)
Neil Booth4f881702007-09-26 21:33:42 +00002609{
Erick Tryzelaara15d8902009-08-16 23:36:19 +00002610 assert(!str.empty() && "Invalid string length");
Neil Boothcaf19d72007-10-14 10:29:28 +00002611
Michael Gottesman575694b2013-06-24 09:58:05 +00002612 // Handle special cases.
2613 if (convertFromStringSpecials(str))
2614 return opOK;
2615
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002616 /* Handle a leading minus sign. */
Erick Tryzelaara15d8902009-08-16 23:36:19 +00002617 StringRef::iterator p = str.begin();
2618 size_t slen = str.size();
Erick Tryzelaarc78b33b2009-08-20 23:30:43 +00002619 sign = *p == '-' ? 1 : 0;
Dan Gohman16e02092010-03-24 19:38:02 +00002620 if (*p == '-' || *p == '+') {
Erick Tryzelaara15d8902009-08-16 23:36:19 +00002621 p++;
2622 slen--;
Erick Tryzelaarc78b33b2009-08-20 23:30:43 +00002623 assert(slen && "String has no digits");
Erick Tryzelaara15d8902009-08-16 23:36:19 +00002624 }
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002625
Dan Gohman16e02092010-03-24 19:38:02 +00002626 if (slen >= 2 && p[0] == '0' && (p[1] == 'x' || p[1] == 'X')) {
Erick Tryzelaara15d8902009-08-16 23:36:19 +00002627 assert(slen - 2 && "Invalid string");
Erick Tryzelaarc78b33b2009-08-20 23:30:43 +00002628 return convertFromHexadecimalString(StringRef(p + 2, slen - 2),
Erick Tryzelaara15d8902009-08-16 23:36:19 +00002629 rounding_mode);
2630 }
Bill Wendlingb7c0d942008-11-27 08:00:12 +00002631
Erick Tryzelaarc78b33b2009-08-20 23:30:43 +00002632 return convertFromDecimalString(StringRef(p, slen), rounding_mode);
Chris Lattnerb39cdde2007-08-20 22:49:32 +00002633}
Dale Johannesen343e7702007-08-24 00:56:33 +00002634
Neil Bootha30b0ee2007-10-03 22:26:02 +00002635/* Write out a hexadecimal representation of the floating point value
2636 to DST, which must be of sufficient size, in the C99 form
2637 [-]0xh.hhhhp[+-]d. Return the number of characters written,
2638 excluding the terminating NUL.
2639
2640 If UPPERCASE, the output is in upper case, otherwise in lower case.
2641
2642 HEXDIGITS digits appear altogether, rounding the value if
2643 necessary. If HEXDIGITS is 0, the minimal precision to display the
2644 number precisely is used instead. If nothing would appear after
2645 the decimal point it is suppressed.
2646
2647 The decimal exponent is always printed and has at least one digit.
2648 Zero values display an exponent of zero. Infinities and NaNs
2649 appear as "infinity" or "nan" respectively.
2650
2651 The above rules are as specified by C99. There is ambiguity about
2652 what the leading hexadecimal digit should be. This implementation
2653 uses whatever is necessary so that the exponent is displayed as
2654 stored. This implies the exponent will fall within the IEEE format
2655 range, and the leading hexadecimal digit will be 0 (for denormals),
2656 1 (normal numbers) or 2 (normal numbers rounded-away-from-zero with
2657 any other digits zero).
2658*/
2659unsigned int
2660APFloat::convertToHexString(char *dst, unsigned int hexDigits,
2661 bool upperCase, roundingMode rounding_mode) const
2662{
2663 char *p;
2664
2665 p = dst;
2666 if (sign)
2667 *dst++ = '-';
2668
2669 switch (category) {
2670 case fcInfinity:
2671 memcpy (dst, upperCase ? infinityU: infinityL, sizeof infinityU - 1);
2672 dst += sizeof infinityL - 1;
2673 break;
2674
2675 case fcNaN:
2676 memcpy (dst, upperCase ? NaNU: NaNL, sizeof NaNU - 1);
2677 dst += sizeof NaNU - 1;
2678 break;
2679
2680 case fcZero:
2681 *dst++ = '0';
2682 *dst++ = upperCase ? 'X': 'x';
2683 *dst++ = '0';
2684 if (hexDigits > 1) {
2685 *dst++ = '.';
2686 memset (dst, '0', hexDigits - 1);
2687 dst += hexDigits - 1;
2688 }
2689 *dst++ = upperCase ? 'P': 'p';
2690 *dst++ = '0';
2691 break;
2692
2693 case fcNormal:
2694 dst = convertNormalToHexString (dst, hexDigits, upperCase, rounding_mode);
2695 break;
2696 }
2697
2698 *dst = 0;
2699
Evan Cheng48e8c802008-05-02 21:15:08 +00002700 return static_cast<unsigned int>(dst - p);
Neil Bootha30b0ee2007-10-03 22:26:02 +00002701}
2702
2703/* Does the hard work of outputting the correctly rounded hexadecimal
2704 form of a normal floating point number with the specified number of
2705 hexadecimal digits. If HEXDIGITS is zero the minimum number of
2706 digits necessary to print the value precisely is output. */
2707char *
2708APFloat::convertNormalToHexString(char *dst, unsigned int hexDigits,
2709 bool upperCase,
2710 roundingMode rounding_mode) const
2711{
2712 unsigned int count, valueBits, shift, partsCount, outputDigits;
2713 const char *hexDigitChars;
2714 const integerPart *significand;
2715 char *p;
2716 bool roundUp;
2717
2718 *dst++ = '0';
2719 *dst++ = upperCase ? 'X': 'x';
2720
2721 roundUp = false;
2722 hexDigitChars = upperCase ? hexDigitsUpper: hexDigitsLower;
2723
2724 significand = significandParts();
2725 partsCount = partCount();
2726
2727 /* +3 because the first digit only uses the single integer bit, so
2728 we have 3 virtual zero most-significant-bits. */
2729 valueBits = semantics->precision + 3;
2730 shift = integerPartWidth - valueBits % integerPartWidth;
2731
2732 /* The natural number of digits required ignoring trailing
2733 insignificant zeroes. */
2734 outputDigits = (valueBits - significandLSB () + 3) / 4;
2735
2736 /* hexDigits of zero means use the required number for the
2737 precision. Otherwise, see if we are truncating. If we are,
Neil Booth978661d2007-10-06 00:24:48 +00002738 find out if we need to round away from zero. */
Neil Bootha30b0ee2007-10-03 22:26:02 +00002739 if (hexDigits) {
2740 if (hexDigits < outputDigits) {
2741 /* We are dropping non-zero bits, so need to check how to round.
2742 "bits" is the number of dropped bits. */
2743 unsigned int bits;
2744 lostFraction fraction;
2745
2746 bits = valueBits - hexDigits * 4;
2747 fraction = lostFractionThroughTruncation (significand, partsCount, bits);
2748 roundUp = roundAwayFromZero(rounding_mode, fraction, bits);
2749 }
2750 outputDigits = hexDigits;
2751 }
2752
2753 /* Write the digits consecutively, and start writing in the location
2754 of the hexadecimal point. We move the most significant digit
2755 left and add the hexadecimal point later. */
2756 p = ++dst;
2757
2758 count = (valueBits + integerPartWidth - 1) / integerPartWidth;
2759
2760 while (outputDigits && count) {
2761 integerPart part;
2762
2763 /* Put the most significant integerPartWidth bits in "part". */
2764 if (--count == partsCount)
2765 part = 0; /* An imaginary higher zero part. */
2766 else
2767 part = significand[count] << shift;
2768
2769 if (count && shift)
2770 part |= significand[count - 1] >> (integerPartWidth - shift);
2771
2772 /* Convert as much of "part" to hexdigits as we can. */
2773 unsigned int curDigits = integerPartWidth / 4;
2774
2775 if (curDigits > outputDigits)
2776 curDigits = outputDigits;
2777 dst += partAsHex (dst, part, curDigits, hexDigitChars);
2778 outputDigits -= curDigits;
2779 }
2780
2781 if (roundUp) {
2782 char *q = dst;
2783
2784 /* Note that hexDigitChars has a trailing '0'. */
2785 do {
2786 q--;
2787 *q = hexDigitChars[hexDigitValue (*q) + 1];
Neil Booth978661d2007-10-06 00:24:48 +00002788 } while (*q == '0');
Evan Cheng99ebfa52009-10-27 21:35:42 +00002789 assert(q >= p);
Neil Bootha30b0ee2007-10-03 22:26:02 +00002790 } else {
2791 /* Add trailing zeroes. */
2792 memset (dst, '0', outputDigits);
2793 dst += outputDigits;
2794 }
2795
2796 /* Move the most significant digit to before the point, and if there
2797 is something after the decimal point add it. This must come
2798 after rounding above. */
2799 p[-1] = p[0];
2800 if (dst -1 == p)
2801 dst--;
2802 else
2803 p[0] = '.';
2804
2805 /* Finally output the exponent. */
2806 *dst++ = upperCase ? 'P': 'p';
2807
Neil Booth92f7e8d2007-10-06 07:29:25 +00002808 return writeSignedDecimal (dst, exponent);
Neil Bootha30b0ee2007-10-03 22:26:02 +00002809}
2810
Chandler Carruthed7692a2012-03-04 12:02:57 +00002811hash_code llvm::hash_value(const APFloat &Arg) {
Michael Gottesman41489dd2013-06-26 23:17:28 +00002812 if (!Arg.isFiniteNonZero())
Chandler Carruthed7692a2012-03-04 12:02:57 +00002813 return hash_combine((uint8_t)Arg.category,
2814 // NaN has no sign, fix it at zero.
2815 Arg.isNaN() ? (uint8_t)0 : (uint8_t)Arg.sign,
2816 Arg.semantics->precision);
2817
2818 // Normal floats need their exponent and significand hashed.
2819 return hash_combine((uint8_t)Arg.category, (uint8_t)Arg.sign,
2820 Arg.semantics->precision, Arg.exponent,
2821 hash_combine_range(
2822 Arg.significandParts(),
2823 Arg.significandParts() + Arg.partCount()));
Dale Johannesen343e7702007-08-24 00:56:33 +00002824}
2825
2826// Conversion from APFloat to/from host float/double. It may eventually be
2827// possible to eliminate these and have everybody deal with APFloats, but that
2828// will take a while. This approach will not easily extend to long double.
Dale Johannesena72a5a02007-09-20 23:47:58 +00002829// Current implementation requires integerPartWidth==64, which is correct at
2830// the moment but could be made more general.
Dale Johannesen343e7702007-08-24 00:56:33 +00002831
Dale Johannesen58c2e4c2007-09-05 20:39:49 +00002832// Denormals have exponent minExponent in APFloat, but minExponent-1 in
Dale Johannesena72a5a02007-09-20 23:47:58 +00002833// the actual IEEE respresentations. We compensate for that here.
Dale Johannesen58c2e4c2007-09-05 20:39:49 +00002834
Dale Johannesen3f6eb742007-09-11 18:32:33 +00002835APInt
Neil Booth4f881702007-09-26 21:33:42 +00002836APFloat::convertF80LongDoubleAPFloatToAPInt() const
2837{
Dan Gohmanb10abe12008-01-29 12:08:20 +00002838 assert(semantics == (const llvm::fltSemantics*)&x87DoubleExtended);
Evan Cheng99ebfa52009-10-27 21:35:42 +00002839 assert(partCount()==2);
Dale Johannesen3f6eb742007-09-11 18:32:33 +00002840
2841 uint64_t myexponent, mysignificand;
2842
Michael Gottesman41489dd2013-06-26 23:17:28 +00002843 if (isFiniteNonZero()) {
Dale Johannesen3f6eb742007-09-11 18:32:33 +00002844 myexponent = exponent+16383; //bias
Dale Johannesena72a5a02007-09-20 23:47:58 +00002845 mysignificand = significandParts()[0];
Dale Johannesen3f6eb742007-09-11 18:32:33 +00002846 if (myexponent==1 && !(mysignificand & 0x8000000000000000ULL))
2847 myexponent = 0; // denormal
2848 } else if (category==fcZero) {
2849 myexponent = 0;
2850 mysignificand = 0;
2851 } else if (category==fcInfinity) {
2852 myexponent = 0x7fff;
2853 mysignificand = 0x8000000000000000ULL;
Chris Lattnera11ef822007-10-06 06:13:42 +00002854 } else {
2855 assert(category == fcNaN && "Unknown category");
Dale Johannesen3f6eb742007-09-11 18:32:33 +00002856 myexponent = 0x7fff;
Dale Johannesena72a5a02007-09-20 23:47:58 +00002857 mysignificand = significandParts()[0];
Chris Lattnera11ef822007-10-06 06:13:42 +00002858 }
Dale Johannesen3f6eb742007-09-11 18:32:33 +00002859
2860 uint64_t words[2];
Dale Johannesen1b25cb22009-03-23 21:16:53 +00002861 words[0] = mysignificand;
2862 words[1] = ((uint64_t)(sign & 1) << 15) |
2863 (myexponent & 0x7fffLL);
Jeffrey Yasskin3ba292d2011-07-18 21:45:40 +00002864 return APInt(80, words);
Dale Johannesen3f6eb742007-09-11 18:32:33 +00002865}
2866
2867APInt
Dale Johannesena471c2e2007-10-11 18:07:22 +00002868APFloat::convertPPCDoubleDoubleAPFloatToAPInt() const
2869{
Dan Gohmanb10abe12008-01-29 12:08:20 +00002870 assert(semantics == (const llvm::fltSemantics*)&PPCDoubleDouble);
Evan Cheng99ebfa52009-10-27 21:35:42 +00002871 assert(partCount()==2);
Dale Johannesena471c2e2007-10-11 18:07:22 +00002872
Ulrich Weigand69c9c8c2012-10-29 18:09:01 +00002873 uint64_t words[2];
2874 opStatus fs;
2875 bool losesInfo;
Dale Johannesena471c2e2007-10-11 18:07:22 +00002876
Ulrich Weigand69c9c8c2012-10-29 18:09:01 +00002877 // Convert number to double. To avoid spurious underflows, we re-
2878 // normalize against the "double" minExponent first, and only *then*
2879 // truncate the mantissa. The result of that second conversion
2880 // may be inexact, but should never underflow.
Alexey Samsonov999d8bc2012-11-30 22:27:54 +00002881 // Declare fltSemantics before APFloat that uses it (and
2882 // saves pointer to it) to ensure correct destruction order.
Ulrich Weigand69c9c8c2012-10-29 18:09:01 +00002883 fltSemantics extendedSemantics = *semantics;
2884 extendedSemantics.minExponent = IEEEdouble.minExponent;
Alexey Samsonov999d8bc2012-11-30 22:27:54 +00002885 APFloat extended(*this);
Ulrich Weigand69c9c8c2012-10-29 18:09:01 +00002886 fs = extended.convert(extendedSemantics, rmNearestTiesToEven, &losesInfo);
2887 assert(fs == opOK && !losesInfo);
2888 (void)fs;
2889
2890 APFloat u(extended);
2891 fs = u.convert(IEEEdouble, rmNearestTiesToEven, &losesInfo);
2892 assert(fs == opOK || fs == opInexact);
2893 (void)fs;
2894 words[0] = *u.convertDoubleAPFloatToAPInt().getRawData();
2895
2896 // If conversion was exact or resulted in a special case, we're done;
2897 // just set the second double to zero. Otherwise, re-convert back to
2898 // the extended format and compute the difference. This now should
2899 // convert exactly to double.
Michael Gottesman41489dd2013-06-26 23:17:28 +00002900 if (u.isFiniteNonZero() && losesInfo) {
Ulrich Weigand69c9c8c2012-10-29 18:09:01 +00002901 fs = u.convert(extendedSemantics, rmNearestTiesToEven, &losesInfo);
2902 assert(fs == opOK && !losesInfo);
2903 (void)fs;
2904
2905 APFloat v(extended);
2906 v.subtract(u, rmNearestTiesToEven);
2907 fs = v.convert(IEEEdouble, rmNearestTiesToEven, &losesInfo);
2908 assert(fs == opOK && !losesInfo);
2909 (void)fs;
2910 words[1] = *v.convertDoubleAPFloatToAPInt().getRawData();
Dale Johannesena471c2e2007-10-11 18:07:22 +00002911 } else {
Ulrich Weigand69c9c8c2012-10-29 18:09:01 +00002912 words[1] = 0;
Dale Johannesena471c2e2007-10-11 18:07:22 +00002913 }
2914
Jeffrey Yasskin3ba292d2011-07-18 21:45:40 +00002915 return APInt(128, words);
Dale Johannesena471c2e2007-10-11 18:07:22 +00002916}
2917
2918APInt
Anton Korobeynikov7e844f12009-08-21 22:10:30 +00002919APFloat::convertQuadrupleAPFloatToAPInt() const
2920{
2921 assert(semantics == (const llvm::fltSemantics*)&IEEEquad);
Evan Cheng99ebfa52009-10-27 21:35:42 +00002922 assert(partCount()==2);
Anton Korobeynikov7e844f12009-08-21 22:10:30 +00002923
2924 uint64_t myexponent, mysignificand, mysignificand2;
2925
Michael Gottesman41489dd2013-06-26 23:17:28 +00002926 if (isFiniteNonZero()) {
Anton Korobeynikov7e844f12009-08-21 22:10:30 +00002927 myexponent = exponent+16383; //bias
2928 mysignificand = significandParts()[0];
2929 mysignificand2 = significandParts()[1];
2930 if (myexponent==1 && !(mysignificand2 & 0x1000000000000LL))
2931 myexponent = 0; // denormal
2932 } else if (category==fcZero) {
2933 myexponent = 0;
2934 mysignificand = mysignificand2 = 0;
2935 } else if (category==fcInfinity) {
2936 myexponent = 0x7fff;
2937 mysignificand = mysignificand2 = 0;
2938 } else {
2939 assert(category == fcNaN && "Unknown category!");
2940 myexponent = 0x7fff;
2941 mysignificand = significandParts()[0];
2942 mysignificand2 = significandParts()[1];
2943 }
2944
2945 uint64_t words[2];
2946 words[0] = mysignificand;
2947 words[1] = ((uint64_t)(sign & 1) << 63) |
2948 ((myexponent & 0x7fff) << 48) |
Anton Korobeynikov4755e992009-08-21 23:09:47 +00002949 (mysignificand2 & 0xffffffffffffLL);
Anton Korobeynikov7e844f12009-08-21 22:10:30 +00002950
Jeffrey Yasskin3ba292d2011-07-18 21:45:40 +00002951 return APInt(128, words);
Anton Korobeynikov7e844f12009-08-21 22:10:30 +00002952}
2953
2954APInt
Neil Booth4f881702007-09-26 21:33:42 +00002955APFloat::convertDoubleAPFloatToAPInt() const
2956{
Dan Gohmancb648f92007-09-14 20:08:19 +00002957 assert(semantics == (const llvm::fltSemantics*)&IEEEdouble);
Evan Cheng99ebfa52009-10-27 21:35:42 +00002958 assert(partCount()==1);
Dale Johannesen343e7702007-08-24 00:56:33 +00002959
Dale Johanneseneaf08942007-08-31 04:03:46 +00002960 uint64_t myexponent, mysignificand;
Dale Johannesen343e7702007-08-24 00:56:33 +00002961
Michael Gottesman41489dd2013-06-26 23:17:28 +00002962 if (isFiniteNonZero()) {
Dale Johannesen343e7702007-08-24 00:56:33 +00002963 myexponent = exponent+1023; //bias
Dale Johannesen58c2e4c2007-09-05 20:39:49 +00002964 mysignificand = *significandParts();
2965 if (myexponent==1 && !(mysignificand & 0x10000000000000LL))
2966 myexponent = 0; // denormal
Dale Johannesen343e7702007-08-24 00:56:33 +00002967 } else if (category==fcZero) {
Dale Johannesen343e7702007-08-24 00:56:33 +00002968 myexponent = 0;
2969 mysignificand = 0;
2970 } else if (category==fcInfinity) {
Dale Johannesen343e7702007-08-24 00:56:33 +00002971 myexponent = 0x7ff;
2972 mysignificand = 0;
Chris Lattnera11ef822007-10-06 06:13:42 +00002973 } else {
2974 assert(category == fcNaN && "Unknown category!");
Dale Johannesen343e7702007-08-24 00:56:33 +00002975 myexponent = 0x7ff;
Dale Johanneseneaf08942007-08-31 04:03:46 +00002976 mysignificand = *significandParts();
Chris Lattnera11ef822007-10-06 06:13:42 +00002977 }
Dale Johannesen343e7702007-08-24 00:56:33 +00002978
Evan Cheng48e8c802008-05-02 21:15:08 +00002979 return APInt(64, ((((uint64_t)(sign & 1) << 63) |
Chris Lattnera11ef822007-10-06 06:13:42 +00002980 ((myexponent & 0x7ff) << 52) |
2981 (mysignificand & 0xfffffffffffffLL))));
Dale Johannesen343e7702007-08-24 00:56:33 +00002982}
2983
Dale Johannesen3f6eb742007-09-11 18:32:33 +00002984APInt
Neil Booth4f881702007-09-26 21:33:42 +00002985APFloat::convertFloatAPFloatToAPInt() const
2986{
Dan Gohmancb648f92007-09-14 20:08:19 +00002987 assert(semantics == (const llvm::fltSemantics*)&IEEEsingle);
Evan Cheng99ebfa52009-10-27 21:35:42 +00002988 assert(partCount()==1);
Neil Booth4f881702007-09-26 21:33:42 +00002989
Dale Johanneseneaf08942007-08-31 04:03:46 +00002990 uint32_t myexponent, mysignificand;
Dale Johannesen343e7702007-08-24 00:56:33 +00002991
Michael Gottesman41489dd2013-06-26 23:17:28 +00002992 if (isFiniteNonZero()) {
Dale Johannesen343e7702007-08-24 00:56:33 +00002993 myexponent = exponent+127; //bias
Evan Cheng48e8c802008-05-02 21:15:08 +00002994 mysignificand = (uint32_t)*significandParts();
Dale Johannesend0763b92007-11-17 01:02:27 +00002995 if (myexponent == 1 && !(mysignificand & 0x800000))
Dale Johannesen58c2e4c2007-09-05 20:39:49 +00002996 myexponent = 0; // denormal
Dale Johannesen343e7702007-08-24 00:56:33 +00002997 } else if (category==fcZero) {
Dale Johannesen343e7702007-08-24 00:56:33 +00002998 myexponent = 0;
2999 mysignificand = 0;
3000 } else if (category==fcInfinity) {
Dale Johannesen343e7702007-08-24 00:56:33 +00003001 myexponent = 0xff;
3002 mysignificand = 0;
Chris Lattnera11ef822007-10-06 06:13:42 +00003003 } else {
3004 assert(category == fcNaN && "Unknown category!");
Dale Johannesen58c2e4c2007-09-05 20:39:49 +00003005 myexponent = 0xff;
Evan Cheng48e8c802008-05-02 21:15:08 +00003006 mysignificand = (uint32_t)*significandParts();
Chris Lattnera11ef822007-10-06 06:13:42 +00003007 }
Dale Johannesen343e7702007-08-24 00:56:33 +00003008
Chris Lattnera11ef822007-10-06 06:13:42 +00003009 return APInt(32, (((sign&1) << 31) | ((myexponent&0xff) << 23) |
3010 (mysignificand & 0x7fffff)));
Dale Johannesen343e7702007-08-24 00:56:33 +00003011}
3012
Chris Lattnercc4287a2009-10-16 02:13:51 +00003013APInt
3014APFloat::convertHalfAPFloatToAPInt() const
3015{
3016 assert(semantics == (const llvm::fltSemantics*)&IEEEhalf);
Evan Cheng99ebfa52009-10-27 21:35:42 +00003017 assert(partCount()==1);
Chris Lattnercc4287a2009-10-16 02:13:51 +00003018
3019 uint32_t myexponent, mysignificand;
3020
Michael Gottesman41489dd2013-06-26 23:17:28 +00003021 if (isFiniteNonZero()) {
Chris Lattnercc4287a2009-10-16 02:13:51 +00003022 myexponent = exponent+15; //bias
3023 mysignificand = (uint32_t)*significandParts();
3024 if (myexponent == 1 && !(mysignificand & 0x400))
3025 myexponent = 0; // denormal
3026 } else if (category==fcZero) {
3027 myexponent = 0;
3028 mysignificand = 0;
3029 } else if (category==fcInfinity) {
Dale Johannesena223aed2009-10-23 04:02:51 +00003030 myexponent = 0x1f;
Chris Lattnercc4287a2009-10-16 02:13:51 +00003031 mysignificand = 0;
3032 } else {
3033 assert(category == fcNaN && "Unknown category!");
Dale Johannesena223aed2009-10-23 04:02:51 +00003034 myexponent = 0x1f;
Chris Lattnercc4287a2009-10-16 02:13:51 +00003035 mysignificand = (uint32_t)*significandParts();
3036 }
3037
3038 return APInt(16, (((sign&1) << 15) | ((myexponent&0x1f) << 10) |
3039 (mysignificand & 0x3ff)));
3040}
3041
Dale Johannesena471c2e2007-10-11 18:07:22 +00003042// This function creates an APInt that is just a bit map of the floating
3043// point constant as it would appear in memory. It is not a conversion,
3044// and treating the result as a normal integer is unlikely to be useful.
3045
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003046APInt
Dale Johannesen7111b022008-10-09 18:53:47 +00003047APFloat::bitcastToAPInt() const
Neil Booth4f881702007-09-26 21:33:42 +00003048{
Chris Lattnercc4287a2009-10-16 02:13:51 +00003049 if (semantics == (const llvm::fltSemantics*)&IEEEhalf)
3050 return convertHalfAPFloatToAPInt();
3051
Dan Gohmanb10abe12008-01-29 12:08:20 +00003052 if (semantics == (const llvm::fltSemantics*)&IEEEsingle)
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003053 return convertFloatAPFloatToAPInt();
Anton Korobeynikov7e844f12009-08-21 22:10:30 +00003054
Dan Gohmanb10abe12008-01-29 12:08:20 +00003055 if (semantics == (const llvm::fltSemantics*)&IEEEdouble)
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003056 return convertDoubleAPFloatToAPInt();
Neil Booth4f881702007-09-26 21:33:42 +00003057
Anton Korobeynikov7e844f12009-08-21 22:10:30 +00003058 if (semantics == (const llvm::fltSemantics*)&IEEEquad)
3059 return convertQuadrupleAPFloatToAPInt();
3060
Dan Gohmanb10abe12008-01-29 12:08:20 +00003061 if (semantics == (const llvm::fltSemantics*)&PPCDoubleDouble)
Dale Johannesena471c2e2007-10-11 18:07:22 +00003062 return convertPPCDoubleDoubleAPFloatToAPInt();
3063
Dan Gohmanb10abe12008-01-29 12:08:20 +00003064 assert(semantics == (const llvm::fltSemantics*)&x87DoubleExtended &&
Chris Lattnera11ef822007-10-06 06:13:42 +00003065 "unknown format!");
3066 return convertF80LongDoubleAPFloatToAPInt();
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003067}
3068
Neil Booth4f881702007-09-26 21:33:42 +00003069float
3070APFloat::convertToFloat() const
3071{
Chris Lattnerad785002009-09-24 21:44:20 +00003072 assert(semantics == (const llvm::fltSemantics*)&IEEEsingle &&
3073 "Float semantics are not IEEEsingle");
Dale Johannesen7111b022008-10-09 18:53:47 +00003074 APInt api = bitcastToAPInt();
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003075 return api.bitsToFloat();
3076}
3077
Neil Booth4f881702007-09-26 21:33:42 +00003078double
3079APFloat::convertToDouble() const
3080{
Chris Lattnerad785002009-09-24 21:44:20 +00003081 assert(semantics == (const llvm::fltSemantics*)&IEEEdouble &&
3082 "Float semantics are not IEEEdouble");
Dale Johannesen7111b022008-10-09 18:53:47 +00003083 APInt api = bitcastToAPInt();
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003084 return api.bitsToDouble();
3085}
3086
Dale Johannesend3d8ce32008-10-06 18:22:29 +00003087/// Integer bit is explicit in this format. Intel hardware (387 and later)
3088/// does not support these bit patterns:
3089/// exponent = all 1's, integer bit 0, significand 0 ("pseudoinfinity")
3090/// exponent = all 1's, integer bit 0, significand nonzero ("pseudoNaN")
3091/// exponent = 0, integer bit 1 ("pseudodenormal")
3092/// exponent!=0 nor all 1's, integer bit 0 ("unnormal")
3093/// At the moment, the first two are treated as NaNs, the second two as Normal.
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003094void
Neil Booth4f881702007-09-26 21:33:42 +00003095APFloat::initFromF80LongDoubleAPInt(const APInt &api)
3096{
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003097 assert(api.getBitWidth()==80);
3098 uint64_t i1 = api.getRawData()[0];
3099 uint64_t i2 = api.getRawData()[1];
Dale Johannesen1b25cb22009-03-23 21:16:53 +00003100 uint64_t myexponent = (i2 & 0x7fff);
3101 uint64_t mysignificand = i1;
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003102
3103 initialize(&APFloat::x87DoubleExtended);
Dale Johannesena72a5a02007-09-20 23:47:58 +00003104 assert(partCount()==2);
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003105
Dale Johannesen1b25cb22009-03-23 21:16:53 +00003106 sign = static_cast<unsigned int>(i2>>15);
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003107 if (myexponent==0 && mysignificand==0) {
3108 // exponent, significand meaningless
3109 category = fcZero;
3110 } else if (myexponent==0x7fff && mysignificand==0x8000000000000000ULL) {
3111 // exponent, significand meaningless
3112 category = fcInfinity;
3113 } else if (myexponent==0x7fff && mysignificand!=0x8000000000000000ULL) {
3114 // exponent meaningless
3115 category = fcNaN;
Dale Johannesena72a5a02007-09-20 23:47:58 +00003116 significandParts()[0] = mysignificand;
3117 significandParts()[1] = 0;
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003118 } else {
3119 category = fcNormal;
3120 exponent = myexponent - 16383;
Dale Johannesena72a5a02007-09-20 23:47:58 +00003121 significandParts()[0] = mysignificand;
3122 significandParts()[1] = 0;
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003123 if (myexponent==0) // denormal
3124 exponent = -16382;
Neil Booth4f881702007-09-26 21:33:42 +00003125 }
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003126}
3127
3128void
Dale Johannesena471c2e2007-10-11 18:07:22 +00003129APFloat::initFromPPCDoubleDoubleAPInt(const APInt &api)
3130{
3131 assert(api.getBitWidth()==128);
3132 uint64_t i1 = api.getRawData()[0];
3133 uint64_t i2 = api.getRawData()[1];
Ulrich Weigand69c9c8c2012-10-29 18:09:01 +00003134 opStatus fs;
3135 bool losesInfo;
Dale Johannesena471c2e2007-10-11 18:07:22 +00003136
Ulrich Weigand69c9c8c2012-10-29 18:09:01 +00003137 // Get the first double and convert to our format.
3138 initFromDoubleAPInt(APInt(64, i1));
3139 fs = convert(PPCDoubleDouble, rmNearestTiesToEven, &losesInfo);
3140 assert(fs == opOK && !losesInfo);
3141 (void)fs;
Dale Johannesena471c2e2007-10-11 18:07:22 +00003142
Ulrich Weigand69c9c8c2012-10-29 18:09:01 +00003143 // Unless we have a special case, add in second double.
Michael Gottesman41489dd2013-06-26 23:17:28 +00003144 if (isFiniteNonZero()) {
Tim Northover0a29cb02013-01-22 09:46:31 +00003145 APFloat v(IEEEdouble, APInt(64, i2));
Ulrich Weigand69c9c8c2012-10-29 18:09:01 +00003146 fs = v.convert(PPCDoubleDouble, rmNearestTiesToEven, &losesInfo);
3147 assert(fs == opOK && !losesInfo);
3148 (void)fs;
3149
3150 add(v, rmNearestTiesToEven);
Dale Johannesena471c2e2007-10-11 18:07:22 +00003151 }
3152}
3153
3154void
Anton Korobeynikov7e844f12009-08-21 22:10:30 +00003155APFloat::initFromQuadrupleAPInt(const APInt &api)
3156{
3157 assert(api.getBitWidth()==128);
3158 uint64_t i1 = api.getRawData()[0];
3159 uint64_t i2 = api.getRawData()[1];
3160 uint64_t myexponent = (i2 >> 48) & 0x7fff;
3161 uint64_t mysignificand = i1;
3162 uint64_t mysignificand2 = i2 & 0xffffffffffffLL;
3163
3164 initialize(&APFloat::IEEEquad);
3165 assert(partCount()==2);
3166
3167 sign = static_cast<unsigned int>(i2>>63);
3168 if (myexponent==0 &&
3169 (mysignificand==0 && mysignificand2==0)) {
3170 // exponent, significand meaningless
3171 category = fcZero;
3172 } else if (myexponent==0x7fff &&
3173 (mysignificand==0 && mysignificand2==0)) {
3174 // exponent, significand meaningless
3175 category = fcInfinity;
3176 } else if (myexponent==0x7fff &&
3177 (mysignificand!=0 || mysignificand2 !=0)) {
3178 // exponent meaningless
3179 category = fcNaN;
3180 significandParts()[0] = mysignificand;
3181 significandParts()[1] = mysignificand2;
3182 } else {
3183 category = fcNormal;
3184 exponent = myexponent - 16383;
3185 significandParts()[0] = mysignificand;
3186 significandParts()[1] = mysignificand2;
3187 if (myexponent==0) // denormal
3188 exponent = -16382;
3189 else
3190 significandParts()[1] |= 0x1000000000000LL; // integer bit
3191 }
3192}
3193
3194void
Neil Booth4f881702007-09-26 21:33:42 +00003195APFloat::initFromDoubleAPInt(const APInt &api)
3196{
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003197 assert(api.getBitWidth()==64);
3198 uint64_t i = *api.getRawData();
Dale Johannesend3b51fd2007-08-24 05:08:11 +00003199 uint64_t myexponent = (i >> 52) & 0x7ff;
3200 uint64_t mysignificand = i & 0xfffffffffffffLL;
3201
Dale Johannesen343e7702007-08-24 00:56:33 +00003202 initialize(&APFloat::IEEEdouble);
Dale Johannesen343e7702007-08-24 00:56:33 +00003203 assert(partCount()==1);
3204
Evan Cheng48e8c802008-05-02 21:15:08 +00003205 sign = static_cast<unsigned int>(i>>63);
Dale Johannesen343e7702007-08-24 00:56:33 +00003206 if (myexponent==0 && mysignificand==0) {
3207 // exponent, significand meaningless
3208 category = fcZero;
Dale Johannesen343e7702007-08-24 00:56:33 +00003209 } else if (myexponent==0x7ff && mysignificand==0) {
3210 // exponent, significand meaningless
3211 category = fcInfinity;
Dale Johanneseneaf08942007-08-31 04:03:46 +00003212 } else if (myexponent==0x7ff && mysignificand!=0) {
3213 // exponent meaningless
3214 category = fcNaN;
3215 *significandParts() = mysignificand;
Dale Johannesen343e7702007-08-24 00:56:33 +00003216 } else {
Dale Johannesen343e7702007-08-24 00:56:33 +00003217 category = fcNormal;
3218 exponent = myexponent - 1023;
Dale Johannesen58c2e4c2007-09-05 20:39:49 +00003219 *significandParts() = mysignificand;
3220 if (myexponent==0) // denormal
3221 exponent = -1022;
3222 else
3223 *significandParts() |= 0x10000000000000LL; // integer bit
Neil Booth4f881702007-09-26 21:33:42 +00003224 }
Dale Johannesen343e7702007-08-24 00:56:33 +00003225}
3226
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003227void
Neil Booth4f881702007-09-26 21:33:42 +00003228APFloat::initFromFloatAPInt(const APInt & api)
3229{
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003230 assert(api.getBitWidth()==32);
3231 uint32_t i = (uint32_t)*api.getRawData();
Dale Johannesend3b51fd2007-08-24 05:08:11 +00003232 uint32_t myexponent = (i >> 23) & 0xff;
3233 uint32_t mysignificand = i & 0x7fffff;
3234
Dale Johannesen343e7702007-08-24 00:56:33 +00003235 initialize(&APFloat::IEEEsingle);
Dale Johannesen343e7702007-08-24 00:56:33 +00003236 assert(partCount()==1);
3237
Dale Johanneseneaf08942007-08-31 04:03:46 +00003238 sign = i >> 31;
Dale Johannesen343e7702007-08-24 00:56:33 +00003239 if (myexponent==0 && mysignificand==0) {
3240 // exponent, significand meaningless
3241 category = fcZero;
Dale Johannesen343e7702007-08-24 00:56:33 +00003242 } else if (myexponent==0xff && mysignificand==0) {
3243 // exponent, significand meaningless
3244 category = fcInfinity;
Dale Johannesen902ff942007-09-25 17:25:00 +00003245 } else if (myexponent==0xff && mysignificand!=0) {
Dale Johannesen343e7702007-08-24 00:56:33 +00003246 // sign, exponent, significand meaningless
Dale Johanneseneaf08942007-08-31 04:03:46 +00003247 category = fcNaN;
3248 *significandParts() = mysignificand;
Dale Johannesen343e7702007-08-24 00:56:33 +00003249 } else {
3250 category = fcNormal;
Dale Johannesen343e7702007-08-24 00:56:33 +00003251 exponent = myexponent - 127; //bias
Dale Johannesen58c2e4c2007-09-05 20:39:49 +00003252 *significandParts() = mysignificand;
3253 if (myexponent==0) // denormal
3254 exponent = -126;
3255 else
3256 *significandParts() |= 0x800000; // integer bit
Dale Johannesen343e7702007-08-24 00:56:33 +00003257 }
3258}
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003259
Chris Lattnercc4287a2009-10-16 02:13:51 +00003260void
3261APFloat::initFromHalfAPInt(const APInt & api)
3262{
3263 assert(api.getBitWidth()==16);
3264 uint32_t i = (uint32_t)*api.getRawData();
Dale Johannesena223aed2009-10-23 04:02:51 +00003265 uint32_t myexponent = (i >> 10) & 0x1f;
Chris Lattnercc4287a2009-10-16 02:13:51 +00003266 uint32_t mysignificand = i & 0x3ff;
3267
3268 initialize(&APFloat::IEEEhalf);
3269 assert(partCount()==1);
3270
3271 sign = i >> 15;
3272 if (myexponent==0 && mysignificand==0) {
3273 // exponent, significand meaningless
3274 category = fcZero;
3275 } else if (myexponent==0x1f && mysignificand==0) {
3276 // exponent, significand meaningless
3277 category = fcInfinity;
3278 } else if (myexponent==0x1f && mysignificand!=0) {
3279 // sign, exponent, significand meaningless
3280 category = fcNaN;
3281 *significandParts() = mysignificand;
3282 } else {
3283 category = fcNormal;
3284 exponent = myexponent - 15; //bias
3285 *significandParts() = mysignificand;
3286 if (myexponent==0) // denormal
3287 exponent = -14;
3288 else
3289 *significandParts() |= 0x400; // integer bit
3290 }
3291}
3292
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003293/// Treat api as containing the bits of a floating point number. Currently
Dale Johannesena471c2e2007-10-11 18:07:22 +00003294/// we infer the floating point type from the size of the APInt. The
3295/// isIEEE argument distinguishes between PPC128 and IEEE128 (not meaningful
3296/// when the size is anything else).
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003297void
Tim Northover0a29cb02013-01-22 09:46:31 +00003298APFloat::initFromAPInt(const fltSemantics* Sem, const APInt& api)
Neil Booth4f881702007-09-26 21:33:42 +00003299{
Tim Northover0a29cb02013-01-22 09:46:31 +00003300 if (Sem == &IEEEhalf)
Chris Lattnercc4287a2009-10-16 02:13:51 +00003301 return initFromHalfAPInt(api);
Tim Northover0a29cb02013-01-22 09:46:31 +00003302 if (Sem == &IEEEsingle)
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003303 return initFromFloatAPInt(api);
Tim Northover0a29cb02013-01-22 09:46:31 +00003304 if (Sem == &IEEEdouble)
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003305 return initFromDoubleAPInt(api);
Tim Northover0a29cb02013-01-22 09:46:31 +00003306 if (Sem == &x87DoubleExtended)
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003307 return initFromF80LongDoubleAPInt(api);
Tim Northover0a29cb02013-01-22 09:46:31 +00003308 if (Sem == &IEEEquad)
3309 return initFromQuadrupleAPInt(api);
3310 if (Sem == &PPCDoubleDouble)
3311 return initFromPPCDoubleDoubleAPInt(api);
3312
3313 llvm_unreachable(0);
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003314}
3315
Nadav Rotem093399c2011-02-17 21:22:27 +00003316APFloat
3317APFloat::getAllOnesValue(unsigned BitWidth, bool isIEEE)
3318{
Tim Northover0a29cb02013-01-22 09:46:31 +00003319 switch (BitWidth) {
3320 case 16:
3321 return APFloat(IEEEhalf, APInt::getAllOnesValue(BitWidth));
3322 case 32:
3323 return APFloat(IEEEsingle, APInt::getAllOnesValue(BitWidth));
3324 case 64:
3325 return APFloat(IEEEdouble, APInt::getAllOnesValue(BitWidth));
3326 case 80:
3327 return APFloat(x87DoubleExtended, APInt::getAllOnesValue(BitWidth));
3328 case 128:
3329 if (isIEEE)
3330 return APFloat(IEEEquad, APInt::getAllOnesValue(BitWidth));
3331 return APFloat(PPCDoubleDouble, APInt::getAllOnesValue(BitWidth));
3332 default:
3333 llvm_unreachable("Unknown floating bit width");
3334 }
Nadav Rotem093399c2011-02-17 21:22:27 +00003335}
3336
Michael Gottesman964722c2013-05-30 18:07:13 +00003337/// Make this number the largest magnitude normal number in the given
3338/// semantics.
3339void APFloat::makeLargest(bool Negative) {
John McCall00e65de2009-12-24 08:56:26 +00003340 // We want (in interchange format):
3341 // sign = {Negative}
3342 // exponent = 1..10
3343 // significand = 1..1
Michael Gottesman964722c2013-05-30 18:07:13 +00003344 category = fcNormal;
3345 sign = Negative;
3346 exponent = semantics->maxExponent;
John McCall00e65de2009-12-24 08:56:26 +00003347
Michael Gottesman964722c2013-05-30 18:07:13 +00003348 // Use memset to set all but the highest integerPart to all ones.
3349 integerPart *significand = significandParts();
3350 unsigned PartCount = partCount();
3351 memset(significand, 0xFF, sizeof(integerPart)*(PartCount - 1));
John McCall00e65de2009-12-24 08:56:26 +00003352
Michael Gottesman964722c2013-05-30 18:07:13 +00003353 // Set the high integerPart especially setting all unused top bits for
3354 // internal consistency.
3355 const unsigned NumUnusedHighBits =
3356 PartCount*integerPartWidth - semantics->precision;
3357 significand[PartCount - 1] = ~integerPart(0) >> NumUnusedHighBits;
John McCall00e65de2009-12-24 08:56:26 +00003358}
3359
Michael Gottesman964722c2013-05-30 18:07:13 +00003360/// Make this number the smallest magnitude denormal number in the given
3361/// semantics.
3362void APFloat::makeSmallest(bool Negative) {
John McCall00e65de2009-12-24 08:56:26 +00003363 // We want (in interchange format):
3364 // sign = {Negative}
3365 // exponent = 0..0
3366 // significand = 0..01
Michael Gottesman964722c2013-05-30 18:07:13 +00003367 category = fcNormal;
3368 sign = Negative;
3369 exponent = semantics->minExponent;
3370 APInt::tcSet(significandParts(), 1, partCount());
3371}
John McCall00e65de2009-12-24 08:56:26 +00003372
Michael Gottesman964722c2013-05-30 18:07:13 +00003373
3374APFloat APFloat::getLargest(const fltSemantics &Sem, bool Negative) {
3375 // We want (in interchange format):
3376 // sign = {Negative}
3377 // exponent = 1..10
3378 // significand = 1..1
3379 APFloat Val(Sem, uninitialized);
3380 Val.makeLargest(Negative);
3381 return Val;
3382}
3383
3384APFloat APFloat::getSmallest(const fltSemantics &Sem, bool Negative) {
3385 // We want (in interchange format):
3386 // sign = {Negative}
3387 // exponent = 0..0
3388 // significand = 0..01
3389 APFloat Val(Sem, uninitialized);
3390 Val.makeSmallest(Negative);
John McCall00e65de2009-12-24 08:56:26 +00003391 return Val;
3392}
3393
3394APFloat APFloat::getSmallestNormalized(const fltSemantics &Sem, bool Negative) {
Michael Gottesman4dfc2572013-06-27 21:58:19 +00003395 APFloat Val(Sem, uninitialized);
John McCall00e65de2009-12-24 08:56:26 +00003396
3397 // We want (in interchange format):
3398 // sign = {Negative}
3399 // exponent = 0..0
3400 // significand = 10..0
3401
Michael Gottesman060d34b2013-07-27 21:49:21 +00003402 Val.category = fcNormal;
Michael Gottesmand6bd98d2013-06-27 20:40:11 +00003403 Val.zeroSignificand();
Michael Gottesman4dfc2572013-06-27 21:58:19 +00003404 Val.sign = Negative;
3405 Val.exponent = Sem.minExponent;
Dan Gohman16e02092010-03-24 19:38:02 +00003406 Val.significandParts()[partCountForBits(Sem.precision)-1] |=
Eli Friedman90196fc2011-10-12 21:56:19 +00003407 (((integerPart) 1) << ((Sem.precision - 1) % integerPartWidth));
John McCall00e65de2009-12-24 08:56:26 +00003408
3409 return Val;
3410}
3411
Tim Northover0a29cb02013-01-22 09:46:31 +00003412APFloat::APFloat(const fltSemantics &Sem, const APInt &API) {
3413 initFromAPInt(&Sem, API);
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003414}
3415
Ulrich Weigandfce241d2012-10-29 18:17:42 +00003416APFloat::APFloat(float f) {
Tim Northover0a29cb02013-01-22 09:46:31 +00003417 initFromAPInt(&IEEEsingle, APInt::floatToBits(f));
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003418}
3419
Ulrich Weigandfce241d2012-10-29 18:17:42 +00003420APFloat::APFloat(double d) {
Tim Northover0a29cb02013-01-22 09:46:31 +00003421 initFromAPInt(&IEEEdouble, APInt::doubleToBits(d));
Dale Johannesen3f6eb742007-09-11 18:32:33 +00003422}
John McCall00e65de2009-12-24 08:56:26 +00003423
3424namespace {
David Blaikie9f14ed12012-07-25 18:04:24 +00003425 void append(SmallVectorImpl<char> &Buffer, StringRef Str) {
3426 Buffer.append(Str.begin(), Str.end());
John McCall00e65de2009-12-24 08:56:26 +00003427 }
3428
John McCall003a09c2009-12-24 12:16:56 +00003429 /// Removes data from the given significand until it is no more
3430 /// precise than is required for the desired precision.
3431 void AdjustToPrecision(APInt &significand,
3432 int &exp, unsigned FormatPrecision) {
3433 unsigned bits = significand.getActiveBits();
3434
3435 // 196/59 is a very slight overestimate of lg_2(10).
3436 unsigned bitsRequired = (FormatPrecision * 196 + 58) / 59;
3437
3438 if (bits <= bitsRequired) return;
3439
3440 unsigned tensRemovable = (bits - bitsRequired) * 59 / 196;
3441 if (!tensRemovable) return;
3442
3443 exp += tensRemovable;
3444
3445 APInt divisor(significand.getBitWidth(), 1);
3446 APInt powten(significand.getBitWidth(), 10);
3447 while (true) {
3448 if (tensRemovable & 1)
3449 divisor *= powten;
3450 tensRemovable >>= 1;
3451 if (!tensRemovable) break;
3452 powten *= powten;
3453 }
3454
3455 significand = significand.udiv(divisor);
3456
Hao Liub631a412013-03-20 01:46:36 +00003457 // Truncate the significand down to its active bit count.
3458 significand = significand.trunc(significand.getActiveBits());
John McCall003a09c2009-12-24 12:16:56 +00003459 }
3460
3461
John McCall00e65de2009-12-24 08:56:26 +00003462 void AdjustToPrecision(SmallVectorImpl<char> &buffer,
3463 int &exp, unsigned FormatPrecision) {
3464 unsigned N = buffer.size();
3465 if (N <= FormatPrecision) return;
3466
3467 // The most significant figures are the last ones in the buffer.
3468 unsigned FirstSignificant = N - FormatPrecision;
3469
3470 // Round.
3471 // FIXME: this probably shouldn't use 'round half up'.
3472
3473 // Rounding down is just a truncation, except we also want to drop
3474 // trailing zeros from the new result.
3475 if (buffer[FirstSignificant - 1] < '5') {
NAKAMURA Takumi752b2f02012-02-19 03:18:29 +00003476 while (FirstSignificant < N && buffer[FirstSignificant] == '0')
John McCall00e65de2009-12-24 08:56:26 +00003477 FirstSignificant++;
3478
3479 exp += FirstSignificant;
3480 buffer.erase(&buffer[0], &buffer[FirstSignificant]);
3481 return;
3482 }
3483
3484 // Rounding up requires a decimal add-with-carry. If we continue
3485 // the carry, the newly-introduced zeros will just be truncated.
3486 for (unsigned I = FirstSignificant; I != N; ++I) {
3487 if (buffer[I] == '9') {
3488 FirstSignificant++;
3489 } else {
3490 buffer[I]++;
3491 break;
3492 }
3493 }
3494
3495 // If we carried through, we have exactly one digit of precision.
3496 if (FirstSignificant == N) {
3497 exp += FirstSignificant;
3498 buffer.clear();
3499 buffer.push_back('1');
3500 return;
3501 }
3502
3503 exp += FirstSignificant;
3504 buffer.erase(&buffer[0], &buffer[FirstSignificant]);
3505 }
3506}
3507
3508void APFloat::toString(SmallVectorImpl<char> &Str,
3509 unsigned FormatPrecision,
Chris Lattner0ddda3b2010-03-06 19:20:13 +00003510 unsigned FormatMaxPadding) const {
John McCall00e65de2009-12-24 08:56:26 +00003511 switch (category) {
3512 case fcInfinity:
3513 if (isNegative())
3514 return append(Str, "-Inf");
3515 else
3516 return append(Str, "+Inf");
3517
3518 case fcNaN: return append(Str, "NaN");
3519
3520 case fcZero:
3521 if (isNegative())
3522 Str.push_back('-');
3523
3524 if (!FormatMaxPadding)
3525 append(Str, "0.0E+0");
3526 else
3527 Str.push_back('0');
3528 return;
3529
3530 case fcNormal:
3531 break;
3532 }
3533
3534 if (isNegative())
3535 Str.push_back('-');
3536
3537 // Decompose the number into an APInt and an exponent.
3538 int exp = exponent - ((int) semantics->precision - 1);
3539 APInt significand(semantics->precision,
Jeffrey Yasskin3ba292d2011-07-18 21:45:40 +00003540 makeArrayRef(significandParts(),
3541 partCountForBits(semantics->precision)));
John McCall00e65de2009-12-24 08:56:26 +00003542
John McCall6a09aff2009-12-24 23:18:09 +00003543 // Set FormatPrecision if zero. We want to do this before we
3544 // truncate trailing zeros, as those are part of the precision.
3545 if (!FormatPrecision) {
3546 // It's an interesting question whether to use the nominal
3547 // precision or the active precision here for denormals.
3548
3549 // FormatPrecision = ceil(significandBits / lg_2(10))
3550 FormatPrecision = (semantics->precision * 59 + 195) / 196;
3551 }
3552
John McCall00e65de2009-12-24 08:56:26 +00003553 // Ignore trailing binary zeros.
3554 int trailingZeros = significand.countTrailingZeros();
3555 exp += trailingZeros;
3556 significand = significand.lshr(trailingZeros);
3557
3558 // Change the exponent from 2^e to 10^e.
3559 if (exp == 0) {
3560 // Nothing to do.
3561 } else if (exp > 0) {
3562 // Just shift left.
Jay Foad40f8f622010-12-07 08:25:19 +00003563 significand = significand.zext(semantics->precision + exp);
John McCall00e65de2009-12-24 08:56:26 +00003564 significand <<= exp;
3565 exp = 0;
3566 } else { /* exp < 0 */
3567 int texp = -exp;
3568
3569 // We transform this using the identity:
3570 // (N)(2^-e) == (N)(5^e)(10^-e)
3571 // This means we have to multiply N (the significand) by 5^e.
3572 // To avoid overflow, we have to operate on numbers large
3573 // enough to store N * 5^e:
3574 // log2(N * 5^e) == log2(N) + e * log2(5)
John McCall6a09aff2009-12-24 23:18:09 +00003575 // <= semantics->precision + e * 137 / 59
3576 // (log_2(5) ~ 2.321928 < 2.322034 ~ 137/59)
Dan Gohman16e02092010-03-24 19:38:02 +00003577
Eli Friedman9eb6b4d2011-10-07 23:40:49 +00003578 unsigned precision = semantics->precision + (137 * texp + 136) / 59;
John McCall00e65de2009-12-24 08:56:26 +00003579
3580 // Multiply significand by 5^e.
3581 // N * 5^0101 == N * 5^(1*1) * 5^(0*2) * 5^(1*4) * 5^(0*8)
Jay Foad40f8f622010-12-07 08:25:19 +00003582 significand = significand.zext(precision);
John McCall00e65de2009-12-24 08:56:26 +00003583 APInt five_to_the_i(precision, 5);
3584 while (true) {
3585 if (texp & 1) significand *= five_to_the_i;
Dan Gohman16e02092010-03-24 19:38:02 +00003586
John McCall00e65de2009-12-24 08:56:26 +00003587 texp >>= 1;
3588 if (!texp) break;
3589 five_to_the_i *= five_to_the_i;
3590 }
3591 }
3592
John McCall003a09c2009-12-24 12:16:56 +00003593 AdjustToPrecision(significand, exp, FormatPrecision);
3594
Dmitri Gribenko96f498b2013-01-13 16:01:15 +00003595 SmallVector<char, 256> buffer;
John McCall00e65de2009-12-24 08:56:26 +00003596
3597 // Fill the buffer.
3598 unsigned precision = significand.getBitWidth();
3599 APInt ten(precision, 10);
3600 APInt digit(precision, 0);
3601
3602 bool inTrail = true;
3603 while (significand != 0) {
3604 // digit <- significand % 10
3605 // significand <- significand / 10
3606 APInt::udivrem(significand, ten, significand, digit);
3607
3608 unsigned d = digit.getZExtValue();
3609
3610 // Drop trailing zeros.
3611 if (inTrail && !d) exp++;
3612 else {
3613 buffer.push_back((char) ('0' + d));
3614 inTrail = false;
3615 }
3616 }
3617
3618 assert(!buffer.empty() && "no characters in buffer!");
3619
3620 // Drop down to FormatPrecision.
3621 // TODO: don't do more precise calculations above than are required.
3622 AdjustToPrecision(buffer, exp, FormatPrecision);
3623
3624 unsigned NDigits = buffer.size();
3625
John McCall6a09aff2009-12-24 23:18:09 +00003626 // Check whether we should use scientific notation.
John McCall00e65de2009-12-24 08:56:26 +00003627 bool FormatScientific;
3628 if (!FormatMaxPadding)
3629 FormatScientific = true;
3630 else {
John McCall00e65de2009-12-24 08:56:26 +00003631 if (exp >= 0) {
John McCall6a09aff2009-12-24 23:18:09 +00003632 // 765e3 --> 765000
3633 // ^^^
3634 // But we shouldn't make the number look more precise than it is.
3635 FormatScientific = ((unsigned) exp > FormatMaxPadding ||
3636 NDigits + (unsigned) exp > FormatPrecision);
John McCall00e65de2009-12-24 08:56:26 +00003637 } else {
John McCall6a09aff2009-12-24 23:18:09 +00003638 // Power of the most significant digit.
3639 int MSD = exp + (int) (NDigits - 1);
3640 if (MSD >= 0) {
John McCall00e65de2009-12-24 08:56:26 +00003641 // 765e-2 == 7.65
John McCall6a09aff2009-12-24 23:18:09 +00003642 FormatScientific = false;
John McCall00e65de2009-12-24 08:56:26 +00003643 } else {
3644 // 765e-5 == 0.00765
3645 // ^ ^^
John McCall6a09aff2009-12-24 23:18:09 +00003646 FormatScientific = ((unsigned) -MSD) > FormatMaxPadding;
John McCall00e65de2009-12-24 08:56:26 +00003647 }
3648 }
John McCall00e65de2009-12-24 08:56:26 +00003649 }
3650
3651 // Scientific formatting is pretty straightforward.
3652 if (FormatScientific) {
3653 exp += (NDigits - 1);
3654
3655 Str.push_back(buffer[NDigits-1]);
3656 Str.push_back('.');
3657 if (NDigits == 1)
3658 Str.push_back('0');
3659 else
3660 for (unsigned I = 1; I != NDigits; ++I)
3661 Str.push_back(buffer[NDigits-1-I]);
3662 Str.push_back('E');
3663
3664 Str.push_back(exp >= 0 ? '+' : '-');
3665 if (exp < 0) exp = -exp;
3666 SmallVector<char, 6> expbuf;
3667 do {
3668 expbuf.push_back((char) ('0' + (exp % 10)));
3669 exp /= 10;
3670 } while (exp);
3671 for (unsigned I = 0, E = expbuf.size(); I != E; ++I)
3672 Str.push_back(expbuf[E-1-I]);
3673 return;
3674 }
3675
3676 // Non-scientific, positive exponents.
3677 if (exp >= 0) {
3678 for (unsigned I = 0; I != NDigits; ++I)
3679 Str.push_back(buffer[NDigits-1-I]);
3680 for (unsigned I = 0; I != (unsigned) exp; ++I)
3681 Str.push_back('0');
3682 return;
3683 }
3684
3685 // Non-scientific, negative exponents.
3686
3687 // The number of digits to the left of the decimal point.
3688 int NWholeDigits = exp + (int) NDigits;
3689
3690 unsigned I = 0;
3691 if (NWholeDigits > 0) {
3692 for (; I != (unsigned) NWholeDigits; ++I)
3693 Str.push_back(buffer[NDigits-I-1]);
3694 Str.push_back('.');
3695 } else {
3696 unsigned NZeros = 1 + (unsigned) -NWholeDigits;
3697
3698 Str.push_back('0');
3699 Str.push_back('.');
3700 for (unsigned Z = 1; Z != NZeros; ++Z)
3701 Str.push_back('0');
3702 }
3703
3704 for (; I != NDigits; ++I)
3705 Str.push_back(buffer[NDigits-I-1]);
3706}
Benjamin Kramer27460002011-03-30 15:42:27 +00003707
3708bool APFloat::getExactInverse(APFloat *inv) const {
Benjamin Kramer27460002011-03-30 15:42:27 +00003709 // Special floats and denormals have no exact inverse.
Michael Gottesman41489dd2013-06-26 23:17:28 +00003710 if (!isFiniteNonZero())
Benjamin Kramer27460002011-03-30 15:42:27 +00003711 return false;
3712
3713 // Check that the number is a power of two by making sure that only the
3714 // integer bit is set in the significand.
3715 if (significandLSB() != semantics->precision - 1)
3716 return false;
3717
3718 // Get the inverse.
3719 APFloat reciprocal(*semantics, 1ULL);
3720 if (reciprocal.divide(*this, rmNearestTiesToEven) != opOK)
3721 return false;
3722
Benjamin Kramer83985122011-03-30 17:02:54 +00003723 // Avoid multiplication with a denormal, it is not safe on all platforms and
3724 // may be slower than a normal division.
Benjamin Kramer77e5c2a2013-06-01 11:26:33 +00003725 if (reciprocal.isDenormal())
Benjamin Kramer83985122011-03-30 17:02:54 +00003726 return false;
3727
Michael Gottesman41489dd2013-06-26 23:17:28 +00003728 assert(reciprocal.isFiniteNonZero() &&
Benjamin Kramer83985122011-03-30 17:02:54 +00003729 reciprocal.significandLSB() == reciprocal.semantics->precision - 1);
3730
Benjamin Kramer27460002011-03-30 15:42:27 +00003731 if (inv)
3732 *inv = reciprocal;
3733
3734 return true;
3735}
Michael Gottesman964722c2013-05-30 18:07:13 +00003736
3737bool APFloat::isSignaling() const {
3738 if (!isNaN())
3739 return false;
3740
3741 // IEEE-754R 2008 6.2.1: A signaling NaN bit string should be encoded with the
3742 // first bit of the trailing significand being 0.
3743 return !APInt::tcExtractBit(significandParts(), semantics->precision - 2);
3744}
3745
3746/// IEEE-754R 2008 5.3.1: nextUp/nextDown.
3747///
3748/// *NOTE* since nextDown(x) = -nextUp(-x), we only implement nextUp with
3749/// appropriate sign switching before/after the computation.
3750APFloat::opStatus APFloat::next(bool nextDown) {
3751 // If we are performing nextDown, swap sign so we have -x.
3752 if (nextDown)
3753 changeSign();
3754
3755 // Compute nextUp(x)
3756 opStatus result = opOK;
3757
3758 // Handle each float category separately.
3759 switch (category) {
3760 case fcInfinity:
3761 // nextUp(+inf) = +inf
3762 if (!isNegative())
3763 break;
3764 // nextUp(-inf) = -getLargest()
3765 makeLargest(true);
3766 break;
3767 case fcNaN:
3768 // IEEE-754R 2008 6.2 Par 2: nextUp(sNaN) = qNaN. Set Invalid flag.
3769 // IEEE-754R 2008 6.2: nextUp(qNaN) = qNaN. Must be identity so we do not
3770 // change the payload.
3771 if (isSignaling()) {
3772 result = opInvalidOp;
3773 // For consistency, propogate the sign of the sNaN to the qNaN.
3774 makeNaN(false, isNegative(), 0);
3775 }
3776 break;
3777 case fcZero:
3778 // nextUp(pm 0) = +getSmallest()
3779 makeSmallest(false);
3780 break;
3781 case fcNormal:
3782 // nextUp(-getSmallest()) = -0
3783 if (isSmallest() && isNegative()) {
3784 APInt::tcSet(significandParts(), 0, partCount());
3785 category = fcZero;
3786 exponent = 0;
3787 break;
3788 }
3789
3790 // nextUp(getLargest()) == INFINITY
3791 if (isLargest() && !isNegative()) {
3792 APInt::tcSet(significandParts(), 0, partCount());
3793 category = fcInfinity;
3794 exponent = semantics->maxExponent + 1;
3795 break;
3796 }
3797
3798 // nextUp(normal) == normal + inc.
3799 if (isNegative()) {
3800 // If we are negative, we need to decrement the significand.
3801
3802 // We only cross a binade boundary that requires adjusting the exponent
3803 // if:
3804 // 1. exponent != semantics->minExponent. This implies we are not in the
3805 // smallest binade or are dealing with denormals.
3806 // 2. Our significand excluding the integral bit is all zeros.
3807 bool WillCrossBinadeBoundary =
3808 exponent != semantics->minExponent && isSignificandAllZeros();
3809
3810 // Decrement the significand.
3811 //
3812 // We always do this since:
3813 // 1. If we are dealing with a non binade decrement, by definition we
3814 // just decrement the significand.
3815 // 2. If we are dealing with a normal -> normal binade decrement, since
3816 // we have an explicit integral bit the fact that all bits but the
3817 // integral bit are zero implies that subtracting one will yield a
3818 // significand with 0 integral bit and 1 in all other spots. Thus we
3819 // must just adjust the exponent and set the integral bit to 1.
3820 // 3. If we are dealing with a normal -> denormal binade decrement,
3821 // since we set the integral bit to 0 when we represent denormals, we
3822 // just decrement the significand.
3823 integerPart *Parts = significandParts();
3824 APInt::tcDecrement(Parts, partCount());
3825
3826 if (WillCrossBinadeBoundary) {
3827 // Our result is a normal number. Do the following:
3828 // 1. Set the integral bit to 1.
3829 // 2. Decrement the exponent.
3830 APInt::tcSetBit(Parts, semantics->precision - 1);
3831 exponent--;
3832 }
3833 } else {
3834 // If we are positive, we need to increment the significand.
3835
3836 // We only cross a binade boundary that requires adjusting the exponent if
3837 // the input is not a denormal and all of said input's significand bits
3838 // are set. If all of said conditions are true: clear the significand, set
3839 // the integral bit to 1, and increment the exponent. If we have a
3840 // denormal always increment since moving denormals and the numbers in the
3841 // smallest normal binade have the same exponent in our representation.
3842 bool WillCrossBinadeBoundary = !isDenormal() && isSignificandAllOnes();
3843
3844 if (WillCrossBinadeBoundary) {
3845 integerPart *Parts = significandParts();
3846 APInt::tcSet(Parts, 0, partCount());
3847 APInt::tcSetBit(Parts, semantics->precision - 1);
3848 assert(exponent != semantics->maxExponent &&
3849 "We can not increment an exponent beyond the maxExponent allowed"
3850 " by the given floating point semantics.");
3851 exponent++;
3852 } else {
3853 incrementSignificand();
3854 }
3855 }
3856 break;
3857 }
3858
3859 // If we are performing nextDown, swap sign so we have -nextUp(-x)
3860 if (nextDown)
3861 changeSign();
3862
3863 return result;
3864}
Michael Gottesmanfdec0c72013-06-24 09:58:02 +00003865
3866void
3867APFloat::makeInf(bool Negative) {
3868 category = fcInfinity;
3869 sign = Negative;
3870 exponent = semantics->maxExponent + 1;
3871 APInt::tcSet(significandParts(), 0, partCount());
3872}
3873
3874void
3875APFloat::makeZero(bool Negative) {
3876 category = fcZero;
3877 sign = Negative;
3878 exponent = semantics->minExponent-1;
3879 APInt::tcSet(significandParts(), 0, partCount());
3880}