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Zhou Shengdac63782007-02-06 03:00:16 +00001//===-- APInt.cpp - Implement APInt class ---------------------------------===//
2//
3// The LLVM Compiler Infrastructure
4//
Chris Lattnerf3ebc3f2007-12-29 20:36:04 +00005// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
Zhou Shengdac63782007-02-06 03:00:16 +00007//
8//===----------------------------------------------------------------------===//
9//
Reid Spencera41e93b2007-02-25 19:32:03 +000010// This file implements a class to represent arbitrary precision integer
11// constant values and provide a variety of arithmetic operations on them.
Zhou Shengdac63782007-02-06 03:00:16 +000012//
13//===----------------------------------------------------------------------===//
14
15#include "llvm/ADT/APInt.h"
Ted Kremenek5c75d542008-01-19 04:23:33 +000016#include "llvm/ADT/FoldingSet.h"
Chandler Carruth71bd7d12012-03-04 12:02:57 +000017#include "llvm/ADT/Hashing.h"
Chris Lattner17f71652008-08-17 07:19:36 +000018#include "llvm/ADT/SmallString.h"
Chandler Carruth71bd7d12012-03-04 12:02:57 +000019#include "llvm/ADT/StringRef.h"
Reid Spencera5e0d202007-02-24 03:58:46 +000020#include "llvm/Support/Debug.h"
Torok Edwin56d06592009-07-11 20:10:48 +000021#include "llvm/Support/ErrorHandling.h"
Zhou Shengdac63782007-02-06 03:00:16 +000022#include "llvm/Support/MathExtras.h"
Chris Lattner0c19df42008-08-23 22:23:09 +000023#include "llvm/Support/raw_ostream.h"
Chris Lattner17f71652008-08-17 07:19:36 +000024#include <cmath>
Zhou Shengdac63782007-02-06 03:00:16 +000025#include <cstdlib>
Chandler Carruthed0881b2012-12-03 16:50:05 +000026#include <cstring>
27#include <limits>
Zhou Shengdac63782007-02-06 03:00:16 +000028using namespace llvm;
29
Chandler Carruth64648262014-04-22 03:07:47 +000030#define DEBUG_TYPE "apint"
31
Reid Spencera41e93b2007-02-25 19:32:03 +000032/// A utility function for allocating memory, checking for allocation failures,
33/// and ensuring the contents are zeroed.
Chris Lattner77527f52009-01-21 18:09:24 +000034inline static uint64_t* getClearedMemory(unsigned numWords) {
Reid Spencera856b6e2007-02-18 18:38:44 +000035 uint64_t * result = new uint64_t[numWords];
36 assert(result && "APInt memory allocation fails!");
37 memset(result, 0, numWords * sizeof(uint64_t));
38 return result;
Zhou Sheng94b623a2007-02-06 06:04:53 +000039}
40
Eric Christopher820256b2009-08-21 04:06:45 +000041/// A utility function for allocating memory and checking for allocation
Reid Spencera41e93b2007-02-25 19:32:03 +000042/// failure. The content is not zeroed.
Chris Lattner77527f52009-01-21 18:09:24 +000043inline static uint64_t* getMemory(unsigned numWords) {
Reid Spencera856b6e2007-02-18 18:38:44 +000044 uint64_t * result = new uint64_t[numWords];
45 assert(result && "APInt memory allocation fails!");
46 return result;
47}
48
Erick Tryzelaardadb15712009-08-21 03:15:28 +000049/// A utility function that converts a character to a digit.
50inline static unsigned getDigit(char cdigit, uint8_t radix) {
Erick Tryzelaar60964092009-08-21 06:48:37 +000051 unsigned r;
52
Douglas Gregor663c0682011-09-14 15:54:46 +000053 if (radix == 16 || radix == 36) {
Erick Tryzelaar60964092009-08-21 06:48:37 +000054 r = cdigit - '0';
55 if (r <= 9)
56 return r;
57
58 r = cdigit - 'A';
Douglas Gregorc98ac852011-09-20 18:33:29 +000059 if (r <= radix - 11U)
Erick Tryzelaar60964092009-08-21 06:48:37 +000060 return r + 10;
61
62 r = cdigit - 'a';
Douglas Gregorc98ac852011-09-20 18:33:29 +000063 if (r <= radix - 11U)
Erick Tryzelaar60964092009-08-21 06:48:37 +000064 return r + 10;
Douglas Gregore4e20f42011-09-20 18:11:52 +000065
66 radix = 10;
Erick Tryzelaardadb15712009-08-21 03:15:28 +000067 }
68
Erick Tryzelaar60964092009-08-21 06:48:37 +000069 r = cdigit - '0';
70 if (r < radix)
71 return r;
72
73 return -1U;
Erick Tryzelaardadb15712009-08-21 03:15:28 +000074}
75
76
Chris Lattner77527f52009-01-21 18:09:24 +000077void APInt::initSlowCase(unsigned numBits, uint64_t val, bool isSigned) {
Chris Lattner1ac3e252008-08-20 17:02:31 +000078 pVal = getClearedMemory(getNumWords());
79 pVal[0] = val;
Eric Christopher820256b2009-08-21 04:06:45 +000080 if (isSigned && int64_t(val) < 0)
Chris Lattner1ac3e252008-08-20 17:02:31 +000081 for (unsigned i = 1; i < getNumWords(); ++i)
82 pVal[i] = -1ULL;
Zhou Shengdac63782007-02-06 03:00:16 +000083}
84
Chris Lattnerd57b7602008-10-11 22:07:19 +000085void APInt::initSlowCase(const APInt& that) {
86 pVal = getMemory(getNumWords());
87 memcpy(pVal, that.pVal, getNumWords() * APINT_WORD_SIZE);
88}
89
Jeffrey Yasskin7a162882011-07-18 21:45:40 +000090void APInt::initFromArray(ArrayRef<uint64_t> bigVal) {
Erick Tryzelaar1264bcb2009-08-21 03:15:14 +000091 assert(BitWidth && "Bitwidth too small");
Jeffrey Yasskin7a162882011-07-18 21:45:40 +000092 assert(bigVal.data() && "Null pointer detected!");
Zhou Shengdac63782007-02-06 03:00:16 +000093 if (isSingleWord())
Reid Spencerdf6cf5a2007-02-24 10:01:42 +000094 VAL = bigVal[0];
Zhou Shengdac63782007-02-06 03:00:16 +000095 else {
Reid Spencerdf6cf5a2007-02-24 10:01:42 +000096 // Get memory, cleared to 0
97 pVal = getClearedMemory(getNumWords());
98 // Calculate the number of words to copy
Jeffrey Yasskin7a162882011-07-18 21:45:40 +000099 unsigned words = std::min<unsigned>(bigVal.size(), getNumWords());
Reid Spencerdf6cf5a2007-02-24 10:01:42 +0000100 // Copy the words from bigVal to pVal
Jeffrey Yasskin7a162882011-07-18 21:45:40 +0000101 memcpy(pVal, bigVal.data(), words * APINT_WORD_SIZE);
Zhou Shengdac63782007-02-06 03:00:16 +0000102 }
Reid Spencerdf6cf5a2007-02-24 10:01:42 +0000103 // Make sure unused high bits are cleared
104 clearUnusedBits();
Zhou Shengdac63782007-02-06 03:00:16 +0000105}
106
Jeffrey Yasskin7a162882011-07-18 21:45:40 +0000107APInt::APInt(unsigned numBits, ArrayRef<uint64_t> bigVal)
108 : BitWidth(numBits), VAL(0) {
109 initFromArray(bigVal);
110}
111
112APInt::APInt(unsigned numBits, unsigned numWords, const uint64_t bigVal[])
113 : BitWidth(numBits), VAL(0) {
114 initFromArray(makeArrayRef(bigVal, numWords));
115}
116
Benjamin Kramer92d89982010-07-14 22:38:02 +0000117APInt::APInt(unsigned numbits, StringRef Str, uint8_t radix)
Reid Spencer1ba83352007-02-21 03:55:44 +0000118 : BitWidth(numbits), VAL(0) {
Erick Tryzelaar1264bcb2009-08-21 03:15:14 +0000119 assert(BitWidth && "Bitwidth too small");
Daniel Dunbar3a1efd112009-08-13 02:33:34 +0000120 fromString(numbits, Str, radix);
Zhou Sheng3e8022d2007-02-07 06:14:53 +0000121}
122
Chris Lattner1ac3e252008-08-20 17:02:31 +0000123APInt& APInt::AssignSlowCase(const APInt& RHS) {
Reid Spencer7c16cd22007-02-26 23:38:21 +0000124 // Don't do anything for X = X
125 if (this == &RHS)
126 return *this;
127
Reid Spencer7c16cd22007-02-26 23:38:21 +0000128 if (BitWidth == RHS.getBitWidth()) {
Chris Lattner1ac3e252008-08-20 17:02:31 +0000129 // assume same bit-width single-word case is already handled
130 assert(!isSingleWord());
131 memcpy(pVal, RHS.pVal, getNumWords() * APINT_WORD_SIZE);
Reid Spencer7c16cd22007-02-26 23:38:21 +0000132 return *this;
133 }
134
Chris Lattner1ac3e252008-08-20 17:02:31 +0000135 if (isSingleWord()) {
136 // assume case where both are single words is already handled
137 assert(!RHS.isSingleWord());
138 VAL = 0;
139 pVal = getMemory(RHS.getNumWords());
140 memcpy(pVal, RHS.pVal, RHS.getNumWords() * APINT_WORD_SIZE);
Eric Christopher820256b2009-08-21 04:06:45 +0000141 } else if (getNumWords() == RHS.getNumWords())
Reid Spencer7c16cd22007-02-26 23:38:21 +0000142 memcpy(pVal, RHS.pVal, RHS.getNumWords() * APINT_WORD_SIZE);
143 else if (RHS.isSingleWord()) {
144 delete [] pVal;
Reid Spencera856b6e2007-02-18 18:38:44 +0000145 VAL = RHS.VAL;
Reid Spencer7c16cd22007-02-26 23:38:21 +0000146 } else {
147 delete [] pVal;
148 pVal = getMemory(RHS.getNumWords());
149 memcpy(pVal, RHS.pVal, RHS.getNumWords() * APINT_WORD_SIZE);
150 }
151 BitWidth = RHS.BitWidth;
152 return clearUnusedBits();
Zhou Shengdac63782007-02-06 03:00:16 +0000153}
154
Zhou Shengdac63782007-02-06 03:00:16 +0000155APInt& APInt::operator=(uint64_t RHS) {
Eric Christopher820256b2009-08-21 04:06:45 +0000156 if (isSingleWord())
Reid Spencer1d072122007-02-16 22:36:51 +0000157 VAL = RHS;
Zhou Shengdac63782007-02-06 03:00:16 +0000158 else {
159 pVal[0] = RHS;
Reid Spencerbe4ddf62007-02-18 20:09:41 +0000160 memset(pVal+1, 0, (getNumWords() - 1) * APINT_WORD_SIZE);
Zhou Shengdac63782007-02-06 03:00:16 +0000161 }
Reid Spencer7c16cd22007-02-26 23:38:21 +0000162 return clearUnusedBits();
Zhou Shengdac63782007-02-06 03:00:16 +0000163}
164
Ted Kremenek5c75d542008-01-19 04:23:33 +0000165/// Profile - This method 'profiles' an APInt for use with FoldingSet.
166void APInt::Profile(FoldingSetNodeID& ID) const {
Ted Kremenek901540f2008-02-19 20:50:41 +0000167 ID.AddInteger(BitWidth);
Eric Christopher820256b2009-08-21 04:06:45 +0000168
Ted Kremenek5c75d542008-01-19 04:23:33 +0000169 if (isSingleWord()) {
170 ID.AddInteger(VAL);
171 return;
172 }
173
Chris Lattner77527f52009-01-21 18:09:24 +0000174 unsigned NumWords = getNumWords();
Ted Kremenek5c75d542008-01-19 04:23:33 +0000175 for (unsigned i = 0; i < NumWords; ++i)
176 ID.AddInteger(pVal[i]);
177}
178
Eric Christopher820256b2009-08-21 04:06:45 +0000179/// add_1 - This function adds a single "digit" integer, y, to the multiple
Reid Spencera856b6e2007-02-18 18:38:44 +0000180/// "digit" integer array, x[]. x[] is modified to reflect the addition and
181/// 1 is returned if there is a carry out, otherwise 0 is returned.
Reid Spencer100502d2007-02-17 03:16:00 +0000182/// @returns the carry of the addition.
Chris Lattner77527f52009-01-21 18:09:24 +0000183static bool add_1(uint64_t dest[], uint64_t x[], unsigned len, uint64_t y) {
184 for (unsigned i = 0; i < len; ++i) {
Reid Spenceree0a6852007-02-18 06:39:42 +0000185 dest[i] = y + x[i];
186 if (dest[i] < y)
Reid Spencerdf6cf5a2007-02-24 10:01:42 +0000187 y = 1; // Carry one to next digit.
Reid Spenceree0a6852007-02-18 06:39:42 +0000188 else {
Reid Spencerdf6cf5a2007-02-24 10:01:42 +0000189 y = 0; // No need to carry so exit early
Reid Spenceree0a6852007-02-18 06:39:42 +0000190 break;
191 }
Reid Spencer100502d2007-02-17 03:16:00 +0000192 }
Reid Spenceree0a6852007-02-18 06:39:42 +0000193 return y;
Reid Spencer100502d2007-02-17 03:16:00 +0000194}
195
Zhou Shengdac63782007-02-06 03:00:16 +0000196/// @brief Prefix increment operator. Increments the APInt by one.
197APInt& APInt::operator++() {
Eric Christopher820256b2009-08-21 04:06:45 +0000198 if (isSingleWord())
Reid Spencer1d072122007-02-16 22:36:51 +0000199 ++VAL;
Zhou Shengdac63782007-02-06 03:00:16 +0000200 else
Zhou Sheng3e8022d2007-02-07 06:14:53 +0000201 add_1(pVal, pVal, getNumWords(), 1);
Reid Spencera41e93b2007-02-25 19:32:03 +0000202 return clearUnusedBits();
Zhou Shengdac63782007-02-06 03:00:16 +0000203}
204
Eric Christopher820256b2009-08-21 04:06:45 +0000205/// sub_1 - This function subtracts a single "digit" (64-bit word), y, from
206/// the multi-digit integer array, x[], propagating the borrowed 1 value until
Reid Spencera856b6e2007-02-18 18:38:44 +0000207/// no further borrowing is neeeded or it runs out of "digits" in x. The result
208/// is 1 if "borrowing" exhausted the digits in x, or 0 if x was not exhausted.
209/// In other words, if y > x then this function returns 1, otherwise 0.
Reid Spencera41e93b2007-02-25 19:32:03 +0000210/// @returns the borrow out of the subtraction
Chris Lattner77527f52009-01-21 18:09:24 +0000211static bool sub_1(uint64_t x[], unsigned len, uint64_t y) {
212 for (unsigned i = 0; i < len; ++i) {
Reid Spencer100502d2007-02-17 03:16:00 +0000213 uint64_t X = x[i];
Reid Spenceree0a6852007-02-18 06:39:42 +0000214 x[i] -= y;
Eric Christopher820256b2009-08-21 04:06:45 +0000215 if (y > X)
Reid Spencera856b6e2007-02-18 18:38:44 +0000216 y = 1; // We have to "borrow 1" from next "digit"
Reid Spencer100502d2007-02-17 03:16:00 +0000217 else {
Reid Spencera856b6e2007-02-18 18:38:44 +0000218 y = 0; // No need to borrow
219 break; // Remaining digits are unchanged so exit early
Reid Spencer100502d2007-02-17 03:16:00 +0000220 }
221 }
Reid Spencera41e93b2007-02-25 19:32:03 +0000222 return bool(y);
Reid Spencer100502d2007-02-17 03:16:00 +0000223}
224
Zhou Shengdac63782007-02-06 03:00:16 +0000225/// @brief Prefix decrement operator. Decrements the APInt by one.
226APInt& APInt::operator--() {
Eric Christopher820256b2009-08-21 04:06:45 +0000227 if (isSingleWord())
Reid Spencera856b6e2007-02-18 18:38:44 +0000228 --VAL;
Zhou Shengdac63782007-02-06 03:00:16 +0000229 else
Zhou Sheng3e8022d2007-02-07 06:14:53 +0000230 sub_1(pVal, getNumWords(), 1);
Reid Spencera41e93b2007-02-25 19:32:03 +0000231 return clearUnusedBits();
Zhou Shengdac63782007-02-06 03:00:16 +0000232}
233
Reid Spencera41e93b2007-02-25 19:32:03 +0000234/// add - This function adds the integer array x to the integer array Y and
Eric Christopher820256b2009-08-21 04:06:45 +0000235/// places the result in dest.
Reid Spencera41e93b2007-02-25 19:32:03 +0000236/// @returns the carry out from the addition
237/// @brief General addition of 64-bit integer arrays
Eric Christopher820256b2009-08-21 04:06:45 +0000238static bool add(uint64_t *dest, const uint64_t *x, const uint64_t *y,
Chris Lattner77527f52009-01-21 18:09:24 +0000239 unsigned len) {
Reid Spencera5e0d202007-02-24 03:58:46 +0000240 bool carry = false;
Chris Lattner77527f52009-01-21 18:09:24 +0000241 for (unsigned i = 0; i< len; ++i) {
Reid Spencercb292e42007-02-23 01:57:13 +0000242 uint64_t limit = std::min(x[i],y[i]); // must come first in case dest == x
Reid Spencer7a6a8d52007-02-20 23:40:25 +0000243 dest[i] = x[i] + y[i] + carry;
Reid Spencerdb2abec2007-02-21 05:44:56 +0000244 carry = dest[i] < limit || (carry && dest[i] == limit);
Reid Spencer100502d2007-02-17 03:16:00 +0000245 }
246 return carry;
247}
248
Reid Spencera41e93b2007-02-25 19:32:03 +0000249/// Adds the RHS APint to this APInt.
250/// @returns this, after addition of RHS.
Eric Christopher820256b2009-08-21 04:06:45 +0000251/// @brief Addition assignment operator.
Zhou Shengdac63782007-02-06 03:00:16 +0000252APInt& APInt::operator+=(const APInt& RHS) {
Reid Spencera32372d12007-02-17 00:18:01 +0000253 assert(BitWidth == RHS.BitWidth && "Bit widths must be the same");
Eric Christopher820256b2009-08-21 04:06:45 +0000254 if (isSingleWord())
Reid Spencer7a6a8d52007-02-20 23:40:25 +0000255 VAL += RHS.VAL;
Zhou Shengdac63782007-02-06 03:00:16 +0000256 else {
Reid Spencer7a6a8d52007-02-20 23:40:25 +0000257 add(pVal, pVal, RHS.pVal, getNumWords());
Zhou Shengdac63782007-02-06 03:00:16 +0000258 }
Reid Spencera41e93b2007-02-25 19:32:03 +0000259 return clearUnusedBits();
Zhou Shengdac63782007-02-06 03:00:16 +0000260}
261
Eric Christopher820256b2009-08-21 04:06:45 +0000262/// Subtracts the integer array y from the integer array x
Reid Spencera41e93b2007-02-25 19:32:03 +0000263/// @returns returns the borrow out.
264/// @brief Generalized subtraction of 64-bit integer arrays.
Eric Christopher820256b2009-08-21 04:06:45 +0000265static bool sub(uint64_t *dest, const uint64_t *x, const uint64_t *y,
Chris Lattner77527f52009-01-21 18:09:24 +0000266 unsigned len) {
Reid Spencer1ba83352007-02-21 03:55:44 +0000267 bool borrow = false;
Chris Lattner77527f52009-01-21 18:09:24 +0000268 for (unsigned i = 0; i < len; ++i) {
Reid Spencer1ba83352007-02-21 03:55:44 +0000269 uint64_t x_tmp = borrow ? x[i] - 1 : x[i];
270 borrow = y[i] > x_tmp || (borrow && x[i] == 0);
271 dest[i] = x_tmp - y[i];
Reid Spencer100502d2007-02-17 03:16:00 +0000272 }
Reid Spencer7a6a8d52007-02-20 23:40:25 +0000273 return borrow;
Reid Spencer100502d2007-02-17 03:16:00 +0000274}
275
Reid Spencera41e93b2007-02-25 19:32:03 +0000276/// Subtracts the RHS APInt from this APInt
277/// @returns this, after subtraction
Eric Christopher820256b2009-08-21 04:06:45 +0000278/// @brief Subtraction assignment operator.
Zhou Shengdac63782007-02-06 03:00:16 +0000279APInt& APInt::operator-=(const APInt& RHS) {
Reid Spencera32372d12007-02-17 00:18:01 +0000280 assert(BitWidth == RHS.BitWidth && "Bit widths must be the same");
Eric Christopher820256b2009-08-21 04:06:45 +0000281 if (isSingleWord())
Reid Spencer7a6a8d52007-02-20 23:40:25 +0000282 VAL -= RHS.VAL;
283 else
284 sub(pVal, pVal, RHS.pVal, getNumWords());
Reid Spencera41e93b2007-02-25 19:32:03 +0000285 return clearUnusedBits();
Zhou Shengdac63782007-02-06 03:00:16 +0000286}
287
Dan Gohman4a618822010-02-10 16:03:48 +0000288/// Multiplies an integer array, x, by a uint64_t integer and places the result
Eric Christopher820256b2009-08-21 04:06:45 +0000289/// into dest.
Reid Spencera41e93b2007-02-25 19:32:03 +0000290/// @returns the carry out of the multiplication.
291/// @brief Multiply a multi-digit APInt by a single digit (64-bit) integer.
Chris Lattner77527f52009-01-21 18:09:24 +0000292static uint64_t mul_1(uint64_t dest[], uint64_t x[], unsigned len, uint64_t y) {
Reid Spencerdf6cf5a2007-02-24 10:01:42 +0000293 // Split y into high 32-bit part (hy) and low 32-bit part (ly)
Reid Spencer100502d2007-02-17 03:16:00 +0000294 uint64_t ly = y & 0xffffffffULL, hy = y >> 32;
Reid Spencera41e93b2007-02-25 19:32:03 +0000295 uint64_t carry = 0;
296
297 // For each digit of x.
Chris Lattner77527f52009-01-21 18:09:24 +0000298 for (unsigned i = 0; i < len; ++i) {
Reid Spencera41e93b2007-02-25 19:32:03 +0000299 // Split x into high and low words
300 uint64_t lx = x[i] & 0xffffffffULL;
301 uint64_t hx = x[i] >> 32;
302 // hasCarry - A flag to indicate if there is a carry to the next digit.
Reid Spencer100502d2007-02-17 03:16:00 +0000303 // hasCarry == 0, no carry
304 // hasCarry == 1, has carry
305 // hasCarry == 2, no carry and the calculation result == 0.
306 uint8_t hasCarry = 0;
307 dest[i] = carry + lx * ly;
308 // Determine if the add above introduces carry.
309 hasCarry = (dest[i] < carry) ? 1 : 0;
310 carry = hx * ly + (dest[i] >> 32) + (hasCarry ? (1ULL << 32) : 0);
Eric Christopher820256b2009-08-21 04:06:45 +0000311 // The upper limit of carry can be (2^32 - 1)(2^32 - 1) +
Reid Spencer100502d2007-02-17 03:16:00 +0000312 // (2^32 - 1) + 2^32 = 2^64.
313 hasCarry = (!carry && hasCarry) ? 1 : (!carry ? 2 : 0);
314
315 carry += (lx * hy) & 0xffffffffULL;
316 dest[i] = (carry << 32) | (dest[i] & 0xffffffffULL);
Eric Christopher820256b2009-08-21 04:06:45 +0000317 carry = (((!carry && hasCarry != 2) || hasCarry == 1) ? (1ULL << 32) : 0) +
Reid Spencer100502d2007-02-17 03:16:00 +0000318 (carry >> 32) + ((lx * hy) >> 32) + hx * hy;
319 }
Reid Spencer100502d2007-02-17 03:16:00 +0000320 return carry;
321}
322
Eric Christopher820256b2009-08-21 04:06:45 +0000323/// Multiplies integer array x by integer array y and stores the result into
Reid Spencera41e93b2007-02-25 19:32:03 +0000324/// the integer array dest. Note that dest's size must be >= xlen + ylen.
325/// @brief Generalized multiplicate of integer arrays.
Chris Lattner77527f52009-01-21 18:09:24 +0000326static void mul(uint64_t dest[], uint64_t x[], unsigned xlen, uint64_t y[],
327 unsigned ylen) {
Reid Spencer100502d2007-02-17 03:16:00 +0000328 dest[xlen] = mul_1(dest, x, xlen, y[0]);
Chris Lattner77527f52009-01-21 18:09:24 +0000329 for (unsigned i = 1; i < ylen; ++i) {
Reid Spencer100502d2007-02-17 03:16:00 +0000330 uint64_t ly = y[i] & 0xffffffffULL, hy = y[i] >> 32;
Reid Spencer58a6a432007-02-21 08:21:52 +0000331 uint64_t carry = 0, lx = 0, hx = 0;
Chris Lattner77527f52009-01-21 18:09:24 +0000332 for (unsigned j = 0; j < xlen; ++j) {
Reid Spencer100502d2007-02-17 03:16:00 +0000333 lx = x[j] & 0xffffffffULL;
334 hx = x[j] >> 32;
335 // hasCarry - A flag to indicate if has carry.
336 // hasCarry == 0, no carry
337 // hasCarry == 1, has carry
338 // hasCarry == 2, no carry and the calculation result == 0.
339 uint8_t hasCarry = 0;
340 uint64_t resul = carry + lx * ly;
341 hasCarry = (resul < carry) ? 1 : 0;
342 carry = (hasCarry ? (1ULL << 32) : 0) + hx * ly + (resul >> 32);
343 hasCarry = (!carry && hasCarry) ? 1 : (!carry ? 2 : 0);
344
345 carry += (lx * hy) & 0xffffffffULL;
346 resul = (carry << 32) | (resul & 0xffffffffULL);
347 dest[i+j] += resul;
348 carry = (((!carry && hasCarry != 2) || hasCarry == 1) ? (1ULL << 32) : 0)+
Eric Christopher820256b2009-08-21 04:06:45 +0000349 (carry >> 32) + (dest[i+j] < resul ? 1 : 0) +
Reid Spencer100502d2007-02-17 03:16:00 +0000350 ((lx * hy) >> 32) + hx * hy;
351 }
352 dest[i+xlen] = carry;
353 }
354}
355
Zhou Shengdac63782007-02-06 03:00:16 +0000356APInt& APInt::operator*=(const APInt& RHS) {
Reid Spencera32372d12007-02-17 00:18:01 +0000357 assert(BitWidth == RHS.BitWidth && "Bit widths must be the same");
Reid Spencer58a6a432007-02-21 08:21:52 +0000358 if (isSingleWord()) {
Reid Spencer4bb430c2007-02-20 20:42:10 +0000359 VAL *= RHS.VAL;
Reid Spencer58a6a432007-02-21 08:21:52 +0000360 clearUnusedBits();
361 return *this;
Zhou Shengdac63782007-02-06 03:00:16 +0000362 }
Reid Spencer58a6a432007-02-21 08:21:52 +0000363
364 // Get some bit facts about LHS and check for zero
Chris Lattner77527f52009-01-21 18:09:24 +0000365 unsigned lhsBits = getActiveBits();
366 unsigned lhsWords = !lhsBits ? 0 : whichWord(lhsBits - 1) + 1;
Eric Christopher820256b2009-08-21 04:06:45 +0000367 if (!lhsWords)
Reid Spencer58a6a432007-02-21 08:21:52 +0000368 // 0 * X ===> 0
369 return *this;
370
371 // Get some bit facts about RHS and check for zero
Chris Lattner77527f52009-01-21 18:09:24 +0000372 unsigned rhsBits = RHS.getActiveBits();
373 unsigned rhsWords = !rhsBits ? 0 : whichWord(rhsBits - 1) + 1;
Reid Spencer58a6a432007-02-21 08:21:52 +0000374 if (!rhsWords) {
375 // X * 0 ===> 0
Jay Foad25a5e4c2010-12-01 08:53:58 +0000376 clearAllBits();
Reid Spencer58a6a432007-02-21 08:21:52 +0000377 return *this;
378 }
379
380 // Allocate space for the result
Chris Lattner77527f52009-01-21 18:09:24 +0000381 unsigned destWords = rhsWords + lhsWords;
Reid Spencer58a6a432007-02-21 08:21:52 +0000382 uint64_t *dest = getMemory(destWords);
383
384 // Perform the long multiply
385 mul(dest, pVal, lhsWords, RHS.pVal, rhsWords);
386
387 // Copy result back into *this
Jay Foad25a5e4c2010-12-01 08:53:58 +0000388 clearAllBits();
Chris Lattner77527f52009-01-21 18:09:24 +0000389 unsigned wordsToCopy = destWords >= getNumWords() ? getNumWords() : destWords;
Reid Spencer58a6a432007-02-21 08:21:52 +0000390 memcpy(pVal, dest, wordsToCopy * APINT_WORD_SIZE);
Eli Friedman19546412011-10-07 23:40:49 +0000391 clearUnusedBits();
Reid Spencer58a6a432007-02-21 08:21:52 +0000392
393 // delete dest array and return
394 delete[] dest;
Zhou Shengdac63782007-02-06 03:00:16 +0000395 return *this;
396}
397
Zhou Shengdac63782007-02-06 03:00:16 +0000398APInt& APInt::operator&=(const APInt& RHS) {
Reid Spencera32372d12007-02-17 00:18:01 +0000399 assert(BitWidth == RHS.BitWidth && "Bit widths must be the same");
Zhou Shengdac63782007-02-06 03:00:16 +0000400 if (isSingleWord()) {
Reid Spencera856b6e2007-02-18 18:38:44 +0000401 VAL &= RHS.VAL;
402 return *this;
Zhou Shengdac63782007-02-06 03:00:16 +0000403 }
Chris Lattner77527f52009-01-21 18:09:24 +0000404 unsigned numWords = getNumWords();
405 for (unsigned i = 0; i < numWords; ++i)
Reid Spencera856b6e2007-02-18 18:38:44 +0000406 pVal[i] &= RHS.pVal[i];
Zhou Shengdac63782007-02-06 03:00:16 +0000407 return *this;
408}
409
Zhou Shengdac63782007-02-06 03:00:16 +0000410APInt& APInt::operator|=(const APInt& RHS) {
Reid Spencera32372d12007-02-17 00:18:01 +0000411 assert(BitWidth == RHS.BitWidth && "Bit widths must be the same");
Zhou Shengdac63782007-02-06 03:00:16 +0000412 if (isSingleWord()) {
Reid Spencera856b6e2007-02-18 18:38:44 +0000413 VAL |= RHS.VAL;
414 return *this;
Zhou Shengdac63782007-02-06 03:00:16 +0000415 }
Chris Lattner77527f52009-01-21 18:09:24 +0000416 unsigned numWords = getNumWords();
417 for (unsigned i = 0; i < numWords; ++i)
Reid Spencera856b6e2007-02-18 18:38:44 +0000418 pVal[i] |= RHS.pVal[i];
Zhou Shengdac63782007-02-06 03:00:16 +0000419 return *this;
420}
421
Zhou Shengdac63782007-02-06 03:00:16 +0000422APInt& APInt::operator^=(const APInt& RHS) {
Reid Spencera32372d12007-02-17 00:18:01 +0000423 assert(BitWidth == RHS.BitWidth && "Bit widths must be the same");
Zhou Shengdac63782007-02-06 03:00:16 +0000424 if (isSingleWord()) {
Reid Spenceree0a6852007-02-18 06:39:42 +0000425 VAL ^= RHS.VAL;
Reid Spencer7a6a8d52007-02-20 23:40:25 +0000426 this->clearUnusedBits();
Reid Spenceree0a6852007-02-18 06:39:42 +0000427 return *this;
Eric Christopher820256b2009-08-21 04:06:45 +0000428 }
Chris Lattner77527f52009-01-21 18:09:24 +0000429 unsigned numWords = getNumWords();
430 for (unsigned i = 0; i < numWords; ++i)
Reid Spencera856b6e2007-02-18 18:38:44 +0000431 pVal[i] ^= RHS.pVal[i];
Reid Spencera41e93b2007-02-25 19:32:03 +0000432 return clearUnusedBits();
Zhou Shengdac63782007-02-06 03:00:16 +0000433}
434
Chris Lattner1ac3e252008-08-20 17:02:31 +0000435APInt APInt::AndSlowCase(const APInt& RHS) const {
Chris Lattner77527f52009-01-21 18:09:24 +0000436 unsigned numWords = getNumWords();
Reid Spencera41e93b2007-02-25 19:32:03 +0000437 uint64_t* val = getMemory(numWords);
Chris Lattner77527f52009-01-21 18:09:24 +0000438 for (unsigned i = 0; i < numWords; ++i)
Reid Spencera41e93b2007-02-25 19:32:03 +0000439 val[i] = pVal[i] & RHS.pVal[i];
440 return APInt(val, getBitWidth());
Zhou Shengdac63782007-02-06 03:00:16 +0000441}
442
Chris Lattner1ac3e252008-08-20 17:02:31 +0000443APInt APInt::OrSlowCase(const APInt& RHS) const {
Chris Lattner77527f52009-01-21 18:09:24 +0000444 unsigned numWords = getNumWords();
Reid Spencera41e93b2007-02-25 19:32:03 +0000445 uint64_t *val = getMemory(numWords);
Chris Lattner77527f52009-01-21 18:09:24 +0000446 for (unsigned i = 0; i < numWords; ++i)
Reid Spencera41e93b2007-02-25 19:32:03 +0000447 val[i] = pVal[i] | RHS.pVal[i];
448 return APInt(val, getBitWidth());
Zhou Shengdac63782007-02-06 03:00:16 +0000449}
450
Chris Lattner1ac3e252008-08-20 17:02:31 +0000451APInt APInt::XorSlowCase(const APInt& RHS) const {
Chris Lattner77527f52009-01-21 18:09:24 +0000452 unsigned numWords = getNumWords();
Reid Spencera41e93b2007-02-25 19:32:03 +0000453 uint64_t *val = getMemory(numWords);
Chris Lattner77527f52009-01-21 18:09:24 +0000454 for (unsigned i = 0; i < numWords; ++i)
Reid Spencera41e93b2007-02-25 19:32:03 +0000455 val[i] = pVal[i] ^ RHS.pVal[i];
456
Benjamin Kramerf9a29752014-10-10 10:18:12 +0000457 APInt Result(val, getBitWidth());
Reid Spencera41e93b2007-02-25 19:32:03 +0000458 // 0^0==1 so clear the high bits in case they got set.
Benjamin Kramerf9a29752014-10-10 10:18:12 +0000459 Result.clearUnusedBits();
460 return Result;
Zhou Shengdac63782007-02-06 03:00:16 +0000461}
462
Zhou Shengdac63782007-02-06 03:00:16 +0000463APInt APInt::operator*(const APInt& RHS) const {
Reid Spencera32372d12007-02-17 00:18:01 +0000464 assert(BitWidth == RHS.BitWidth && "Bit widths must be the same");
Reid Spencera41e93b2007-02-25 19:32:03 +0000465 if (isSingleWord())
Reid Spenceraa8dcfe2007-02-26 07:44:38 +0000466 return APInt(BitWidth, VAL * RHS.VAL);
Reid Spencer4bb430c2007-02-20 20:42:10 +0000467 APInt Result(*this);
468 Result *= RHS;
Eli Friedman19546412011-10-07 23:40:49 +0000469 return Result;
Zhou Shengdac63782007-02-06 03:00:16 +0000470}
471
Zhou Shengdac63782007-02-06 03:00:16 +0000472APInt APInt::operator+(const APInt& RHS) const {
Reid Spencera32372d12007-02-17 00:18:01 +0000473 assert(BitWidth == RHS.BitWidth && "Bit widths must be the same");
Reid Spencera41e93b2007-02-25 19:32:03 +0000474 if (isSingleWord())
Reid Spenceraa8dcfe2007-02-26 07:44:38 +0000475 return APInt(BitWidth, VAL + RHS.VAL);
Reid Spencer7a6a8d52007-02-20 23:40:25 +0000476 APInt Result(BitWidth, 0);
477 add(Result.pVal, this->pVal, RHS.pVal, getNumWords());
Benjamin Kramerf9a29752014-10-10 10:18:12 +0000478 Result.clearUnusedBits();
479 return Result;
Zhou Shengdac63782007-02-06 03:00:16 +0000480}
481
Zhou Shengdac63782007-02-06 03:00:16 +0000482APInt APInt::operator-(const APInt& RHS) const {
Reid Spencera32372d12007-02-17 00:18:01 +0000483 assert(BitWidth == RHS.BitWidth && "Bit widths must be the same");
Reid Spencera41e93b2007-02-25 19:32:03 +0000484 if (isSingleWord())
Reid Spenceraa8dcfe2007-02-26 07:44:38 +0000485 return APInt(BitWidth, VAL - RHS.VAL);
Reid Spencer7a6a8d52007-02-20 23:40:25 +0000486 APInt Result(BitWidth, 0);
487 sub(Result.pVal, this->pVal, RHS.pVal, getNumWords());
Benjamin Kramerf9a29752014-10-10 10:18:12 +0000488 Result.clearUnusedBits();
489 return Result;
Zhou Shengdac63782007-02-06 03:00:16 +0000490}
491
Chris Lattner1ac3e252008-08-20 17:02:31 +0000492bool APInt::EqualSlowCase(const APInt& RHS) const {
Reid Spencera41e93b2007-02-25 19:32:03 +0000493 // Get some facts about the number of bits used in the two operands.
Chris Lattner77527f52009-01-21 18:09:24 +0000494 unsigned n1 = getActiveBits();
495 unsigned n2 = RHS.getActiveBits();
Reid Spencera41e93b2007-02-25 19:32:03 +0000496
497 // If the number of bits isn't the same, they aren't equal
Eric Christopher820256b2009-08-21 04:06:45 +0000498 if (n1 != n2)
Reid Spencer7a6a8d52007-02-20 23:40:25 +0000499 return false;
500
Reid Spencera41e93b2007-02-25 19:32:03 +0000501 // If the number of bits fits in a word, we only need to compare the low word.
Reid Spencer7a6a8d52007-02-20 23:40:25 +0000502 if (n1 <= APINT_BITS_PER_WORD)
503 return pVal[0] == RHS.pVal[0];
504
Reid Spencera41e93b2007-02-25 19:32:03 +0000505 // Otherwise, compare everything
Reid Spencer7a6a8d52007-02-20 23:40:25 +0000506 for (int i = whichWord(n1 - 1); i >= 0; --i)
Eric Christopher820256b2009-08-21 04:06:45 +0000507 if (pVal[i] != RHS.pVal[i])
Reid Spencer7a6a8d52007-02-20 23:40:25 +0000508 return false;
Zhou Shengdac63782007-02-06 03:00:16 +0000509 return true;
510}
511
Chris Lattner1ac3e252008-08-20 17:02:31 +0000512bool APInt::EqualSlowCase(uint64_t Val) const {
Chris Lattner77527f52009-01-21 18:09:24 +0000513 unsigned n = getActiveBits();
Reid Spencer7a6a8d52007-02-20 23:40:25 +0000514 if (n <= APINT_BITS_PER_WORD)
515 return pVal[0] == Val;
516 else
517 return false;
Zhou Shengdac63782007-02-06 03:00:16 +0000518}
519
Reid Spencer1d072122007-02-16 22:36:51 +0000520bool APInt::ult(const APInt& RHS) const {
521 assert(BitWidth == RHS.BitWidth && "Bit widths must be same for comparison");
522 if (isSingleWord())
523 return VAL < RHS.VAL;
Reid Spencera41e93b2007-02-25 19:32:03 +0000524
525 // Get active bit length of both operands
Chris Lattner77527f52009-01-21 18:09:24 +0000526 unsigned n1 = getActiveBits();
527 unsigned n2 = RHS.getActiveBits();
Reid Spencera41e93b2007-02-25 19:32:03 +0000528
529 // If magnitude of LHS is less than RHS, return true.
530 if (n1 < n2)
531 return true;
532
533 // If magnitude of RHS is greather than LHS, return false.
534 if (n2 < n1)
535 return false;
536
537 // If they bot fit in a word, just compare the low order word
538 if (n1 <= APINT_BITS_PER_WORD && n2 <= APINT_BITS_PER_WORD)
539 return pVal[0] < RHS.pVal[0];
540
541 // Otherwise, compare all words
Chris Lattner77527f52009-01-21 18:09:24 +0000542 unsigned topWord = whichWord(std::max(n1,n2)-1);
Reid Spencer54abdcf2007-02-27 18:23:40 +0000543 for (int i = topWord; i >= 0; --i) {
Eric Christopher820256b2009-08-21 04:06:45 +0000544 if (pVal[i] > RHS.pVal[i])
Reid Spencer1d072122007-02-16 22:36:51 +0000545 return false;
Eric Christopher820256b2009-08-21 04:06:45 +0000546 if (pVal[i] < RHS.pVal[i])
Reid Spencera41e93b2007-02-25 19:32:03 +0000547 return true;
Zhou Shengdac63782007-02-06 03:00:16 +0000548 }
549 return false;
550}
551
Reid Spencer1d072122007-02-16 22:36:51 +0000552bool APInt::slt(const APInt& RHS) const {
553 assert(BitWidth == RHS.BitWidth && "Bit widths must be same for comparison");
Reid Spencerbe4ddf62007-02-18 20:09:41 +0000554 if (isSingleWord()) {
555 int64_t lhsSext = (int64_t(VAL) << (64-BitWidth)) >> (64-BitWidth);
556 int64_t rhsSext = (int64_t(RHS.VAL) << (64-BitWidth)) >> (64-BitWidth);
557 return lhsSext < rhsSext;
Reid Spencer1d072122007-02-16 22:36:51 +0000558 }
Reid Spencerbe4ddf62007-02-18 20:09:41 +0000559
560 APInt lhs(*this);
Reid Spencer54abdcf2007-02-27 18:23:40 +0000561 APInt rhs(RHS);
562 bool lhsNeg = isNegative();
563 bool rhsNeg = rhs.isNegative();
564 if (lhsNeg) {
565 // Sign bit is set so perform two's complement to make it positive
Jay Foad25a5e4c2010-12-01 08:53:58 +0000566 lhs.flipAllBits();
Jakub Staszak773be0c2013-03-20 23:56:19 +0000567 ++lhs;
Reid Spencerbe4ddf62007-02-18 20:09:41 +0000568 }
Reid Spencer54abdcf2007-02-27 18:23:40 +0000569 if (rhsNeg) {
570 // Sign bit is set so perform two's complement to make it positive
Jay Foad25a5e4c2010-12-01 08:53:58 +0000571 rhs.flipAllBits();
Jakub Staszak773be0c2013-03-20 23:56:19 +0000572 ++rhs;
Reid Spencerbe4ddf62007-02-18 20:09:41 +0000573 }
Reid Spencera41e93b2007-02-25 19:32:03 +0000574
575 // Now we have unsigned values to compare so do the comparison if necessary
576 // based on the negativeness of the values.
Reid Spencer54abdcf2007-02-27 18:23:40 +0000577 if (lhsNeg)
578 if (rhsNeg)
579 return lhs.ugt(rhs);
Reid Spencerbe4ddf62007-02-18 20:09:41 +0000580 else
581 return true;
Reid Spencer54abdcf2007-02-27 18:23:40 +0000582 else if (rhsNeg)
Reid Spencerbe4ddf62007-02-18 20:09:41 +0000583 return false;
Eric Christopher820256b2009-08-21 04:06:45 +0000584 else
Reid Spencerbe4ddf62007-02-18 20:09:41 +0000585 return lhs.ult(rhs);
Zhou Shengdac63782007-02-06 03:00:16 +0000586}
587
Jay Foad25a5e4c2010-12-01 08:53:58 +0000588void APInt::setBit(unsigned bitPosition) {
Eric Christopher820256b2009-08-21 04:06:45 +0000589 if (isSingleWord())
Reid Spencera41e93b2007-02-25 19:32:03 +0000590 VAL |= maskBit(bitPosition);
Eric Christopher820256b2009-08-21 04:06:45 +0000591 else
Reid Spencera41e93b2007-02-25 19:32:03 +0000592 pVal[whichWord(bitPosition)] |= maskBit(bitPosition);
Zhou Shengdac63782007-02-06 03:00:16 +0000593}
594
Zhou Shengdac63782007-02-06 03:00:16 +0000595/// Set the given bit to 0 whose position is given as "bitPosition".
596/// @brief Set a given bit to 0.
Jay Foad25a5e4c2010-12-01 08:53:58 +0000597void APInt::clearBit(unsigned bitPosition) {
Eric Christopher820256b2009-08-21 04:06:45 +0000598 if (isSingleWord())
Reid Spencera856b6e2007-02-18 18:38:44 +0000599 VAL &= ~maskBit(bitPosition);
Eric Christopher820256b2009-08-21 04:06:45 +0000600 else
Reid Spencera856b6e2007-02-18 18:38:44 +0000601 pVal[whichWord(bitPosition)] &= ~maskBit(bitPosition);
Zhou Shengdac63782007-02-06 03:00:16 +0000602}
603
Zhou Shengdac63782007-02-06 03:00:16 +0000604/// @brief Toggle every bit to its opposite value.
Zhou Shengdac63782007-02-06 03:00:16 +0000605
Eric Christopher820256b2009-08-21 04:06:45 +0000606/// Toggle a given bit to its opposite value whose position is given
Zhou Shengdac63782007-02-06 03:00:16 +0000607/// as "bitPosition".
608/// @brief Toggles a given bit to its opposite value.
Jay Foad25a5e4c2010-12-01 08:53:58 +0000609void APInt::flipBit(unsigned bitPosition) {
Reid Spencer1d072122007-02-16 22:36:51 +0000610 assert(bitPosition < BitWidth && "Out of the bit-width range!");
Jay Foad25a5e4c2010-12-01 08:53:58 +0000611 if ((*this)[bitPosition]) clearBit(bitPosition);
612 else setBit(bitPosition);
Zhou Shengdac63782007-02-06 03:00:16 +0000613}
614
Benjamin Kramer92d89982010-07-14 22:38:02 +0000615unsigned APInt::getBitsNeeded(StringRef str, uint8_t radix) {
Daniel Dunbar3a1efd112009-08-13 02:33:34 +0000616 assert(!str.empty() && "Invalid string length");
Douglas Gregor663c0682011-09-14 15:54:46 +0000617 assert((radix == 10 || radix == 8 || radix == 16 || radix == 2 ||
618 radix == 36) &&
619 "Radix should be 2, 8, 10, 16, or 36!");
Daniel Dunbar3a1efd112009-08-13 02:33:34 +0000620
621 size_t slen = str.size();
Reid Spencer9329e7b2007-04-13 19:19:07 +0000622
Eric Christopher43a1dec2009-08-21 04:10:31 +0000623 // Each computation below needs to know if it's negative.
Erick Tryzelaar1264bcb2009-08-21 03:15:14 +0000624 StringRef::iterator p = str.begin();
Eric Christopher43a1dec2009-08-21 04:10:31 +0000625 unsigned isNegative = *p == '-';
Erick Tryzelaar1264bcb2009-08-21 03:15:14 +0000626 if (*p == '-' || *p == '+') {
627 p++;
Reid Spencer9329e7b2007-04-13 19:19:07 +0000628 slen--;
Eric Christopher43a1dec2009-08-21 04:10:31 +0000629 assert(slen && "String is only a sign, needs a value.");
Reid Spencer9329e7b2007-04-13 19:19:07 +0000630 }
Eric Christopher43a1dec2009-08-21 04:10:31 +0000631
Reid Spencer9329e7b2007-04-13 19:19:07 +0000632 // For radixes of power-of-two values, the bits required is accurately and
633 // easily computed
634 if (radix == 2)
635 return slen + isNegative;
636 if (radix == 8)
637 return slen * 3 + isNegative;
638 if (radix == 16)
639 return slen * 4 + isNegative;
640
Douglas Gregor663c0682011-09-14 15:54:46 +0000641 // FIXME: base 36
642
Reid Spencer9329e7b2007-04-13 19:19:07 +0000643 // This is grossly inefficient but accurate. We could probably do something
644 // with a computation of roughly slen*64/20 and then adjust by the value of
645 // the first few digits. But, I'm not sure how accurate that could be.
646
647 // Compute a sufficient number of bits that is always large enough but might
Erick Tryzelaardadb15712009-08-21 03:15:28 +0000648 // be too large. This avoids the assertion in the constructor. This
649 // calculation doesn't work appropriately for the numbers 0-9, so just use 4
650 // bits in that case.
Douglas Gregor663c0682011-09-14 15:54:46 +0000651 unsigned sufficient
652 = radix == 10? (slen == 1 ? 4 : slen * 64/18)
653 : (slen == 1 ? 7 : slen * 16/3);
Reid Spencer9329e7b2007-04-13 19:19:07 +0000654
655 // Convert to the actual binary value.
Erick Tryzelaar1264bcb2009-08-21 03:15:14 +0000656 APInt tmp(sufficient, StringRef(p, slen), radix);
Reid Spencer9329e7b2007-04-13 19:19:07 +0000657
Erick Tryzelaardadb15712009-08-21 03:15:28 +0000658 // Compute how many bits are required. If the log is infinite, assume we need
659 // just bit.
660 unsigned log = tmp.logBase2();
661 if (log == (unsigned)-1) {
662 return isNegative + 1;
663 } else {
664 return isNegative + log + 1;
665 }
Reid Spencer9329e7b2007-04-13 19:19:07 +0000666}
667
Chandler Carruth71bd7d12012-03-04 12:02:57 +0000668hash_code llvm::hash_value(const APInt &Arg) {
669 if (Arg.isSingleWord())
670 return hash_combine(Arg.VAL);
Reid Spencerb2bc9852007-02-26 21:02:27 +0000671
Chandler Carruth71bd7d12012-03-04 12:02:57 +0000672 return hash_combine_range(Arg.pVal, Arg.pVal + Arg.getNumWords());
Reid Spencerb2bc9852007-02-26 21:02:27 +0000673}
674
Zhou Shengdac63782007-02-06 03:00:16 +0000675/// HiBits - This function returns the high "numBits" bits of this APInt.
Chris Lattner77527f52009-01-21 18:09:24 +0000676APInt APInt::getHiBits(unsigned numBits) const {
Reid Spencer1d072122007-02-16 22:36:51 +0000677 return APIntOps::lshr(*this, BitWidth - numBits);
Zhou Shengdac63782007-02-06 03:00:16 +0000678}
679
680/// LoBits - This function returns the low "numBits" bits of this APInt.
Chris Lattner77527f52009-01-21 18:09:24 +0000681APInt APInt::getLoBits(unsigned numBits) const {
Eric Christopher820256b2009-08-21 04:06:45 +0000682 return APIntOps::lshr(APIntOps::shl(*this, BitWidth - numBits),
Reid Spencer1d072122007-02-16 22:36:51 +0000683 BitWidth - numBits);
Zhou Shengdac63782007-02-06 03:00:16 +0000684}
685
Chris Lattner77527f52009-01-21 18:09:24 +0000686unsigned APInt::countLeadingZerosSlowCase() const {
John McCalldf951bd2010-02-03 03:42:44 +0000687 // Treat the most significand word differently because it might have
688 // meaningless bits set beyond the precision.
689 unsigned BitsInMSW = BitWidth % APINT_BITS_PER_WORD;
690 integerPart MSWMask;
691 if (BitsInMSW) MSWMask = (integerPart(1) << BitsInMSW) - 1;
692 else {
693 MSWMask = ~integerPart(0);
694 BitsInMSW = APINT_BITS_PER_WORD;
695 }
696
697 unsigned i = getNumWords();
698 integerPart MSW = pVal[i-1] & MSWMask;
699 if (MSW)
Michael J. Spencerdf1ecbd72013-05-24 22:23:49 +0000700 return llvm::countLeadingZeros(MSW) - (APINT_BITS_PER_WORD - BitsInMSW);
John McCalldf951bd2010-02-03 03:42:44 +0000701
702 unsigned Count = BitsInMSW;
703 for (--i; i > 0u; --i) {
Chris Lattner1ac3e252008-08-20 17:02:31 +0000704 if (pVal[i-1] == 0)
705 Count += APINT_BITS_PER_WORD;
706 else {
Michael J. Spencerdf1ecbd72013-05-24 22:23:49 +0000707 Count += llvm::countLeadingZeros(pVal[i-1]);
Chris Lattner1ac3e252008-08-20 17:02:31 +0000708 break;
Reid Spencer74cf82e2007-02-21 00:29:48 +0000709 }
Zhou Shengdac63782007-02-06 03:00:16 +0000710 }
John McCalldf951bd2010-02-03 03:42:44 +0000711 return Count;
Zhou Shengdac63782007-02-06 03:00:16 +0000712}
713
Chris Lattner77527f52009-01-21 18:09:24 +0000714unsigned APInt::countLeadingOnes() const {
Reid Spencer31acef52007-02-27 21:59:26 +0000715 if (isSingleWord())
Benjamin Kramer3870bc42012-03-12 21:18:53 +0000716 return CountLeadingOnes_64(VAL << (APINT_BITS_PER_WORD - BitWidth));
Reid Spencer31acef52007-02-27 21:59:26 +0000717
Chris Lattner77527f52009-01-21 18:09:24 +0000718 unsigned highWordBits = BitWidth % APINT_BITS_PER_WORD;
Torok Edwinec39eb82009-01-27 18:06:03 +0000719 unsigned shift;
720 if (!highWordBits) {
721 highWordBits = APINT_BITS_PER_WORD;
722 shift = 0;
723 } else {
724 shift = APINT_BITS_PER_WORD - highWordBits;
725 }
Reid Spencer31acef52007-02-27 21:59:26 +0000726 int i = getNumWords() - 1;
Benjamin Kramer3870bc42012-03-12 21:18:53 +0000727 unsigned Count = CountLeadingOnes_64(pVal[i] << shift);
Reid Spencer31acef52007-02-27 21:59:26 +0000728 if (Count == highWordBits) {
729 for (i--; i >= 0; --i) {
730 if (pVal[i] == -1ULL)
731 Count += APINT_BITS_PER_WORD;
732 else {
Benjamin Kramer3870bc42012-03-12 21:18:53 +0000733 Count += CountLeadingOnes_64(pVal[i]);
Reid Spencer31acef52007-02-27 21:59:26 +0000734 break;
735 }
736 }
737 }
738 return Count;
739}
740
Chris Lattner77527f52009-01-21 18:09:24 +0000741unsigned APInt::countTrailingZeros() const {
Zhou Shengdac63782007-02-06 03:00:16 +0000742 if (isSingleWord())
Michael J. Spencerdf1ecbd72013-05-24 22:23:49 +0000743 return std::min(unsigned(llvm::countTrailingZeros(VAL)), BitWidth);
Chris Lattner77527f52009-01-21 18:09:24 +0000744 unsigned Count = 0;
745 unsigned i = 0;
Reid Spenceraa8dcfe2007-02-26 07:44:38 +0000746 for (; i < getNumWords() && pVal[i] == 0; ++i)
747 Count += APINT_BITS_PER_WORD;
748 if (i < getNumWords())
Michael J. Spencerdf1ecbd72013-05-24 22:23:49 +0000749 Count += llvm::countTrailingZeros(pVal[i]);
Chris Lattnerc2c4c742007-11-23 22:36:25 +0000750 return std::min(Count, BitWidth);
Zhou Shengdac63782007-02-06 03:00:16 +0000751}
752
Chris Lattner77527f52009-01-21 18:09:24 +0000753unsigned APInt::countTrailingOnesSlowCase() const {
754 unsigned Count = 0;
755 unsigned i = 0;
Dan Gohmanc354ebd2008-02-14 22:38:45 +0000756 for (; i < getNumWords() && pVal[i] == -1ULL; ++i)
Dan Gohman8b4fa9d2008-02-13 21:11:05 +0000757 Count += APINT_BITS_PER_WORD;
758 if (i < getNumWords())
759 Count += CountTrailingOnes_64(pVal[i]);
760 return std::min(Count, BitWidth);
761}
762
Chris Lattner77527f52009-01-21 18:09:24 +0000763unsigned APInt::countPopulationSlowCase() const {
764 unsigned Count = 0;
765 for (unsigned i = 0; i < getNumWords(); ++i)
Zhou Shengdac63782007-02-06 03:00:16 +0000766 Count += CountPopulation_64(pVal[i]);
767 return Count;
768}
769
Richard Smith4f9a8082011-11-23 21:33:37 +0000770/// Perform a logical right-shift from Src to Dst, which must be equal or
771/// non-overlapping, of Words words, by Shift, which must be less than 64.
772static void lshrNear(uint64_t *Dst, uint64_t *Src, unsigned Words,
773 unsigned Shift) {
774 uint64_t Carry = 0;
775 for (int I = Words - 1; I >= 0; --I) {
776 uint64_t Tmp = Src[I];
777 Dst[I] = (Tmp >> Shift) | Carry;
778 Carry = Tmp << (64 - Shift);
779 }
780}
781
Reid Spencer1d072122007-02-16 22:36:51 +0000782APInt APInt::byteSwap() const {
783 assert(BitWidth >= 16 && BitWidth % 16 == 0 && "Cannot byteswap!");
784 if (BitWidth == 16)
Jeff Cohene06855e2007-03-20 20:42:36 +0000785 return APInt(BitWidth, ByteSwap_16(uint16_t(VAL)));
Richard Smith4f9a8082011-11-23 21:33:37 +0000786 if (BitWidth == 32)
Chris Lattner77527f52009-01-21 18:09:24 +0000787 return APInt(BitWidth, ByteSwap_32(unsigned(VAL)));
Richard Smith4f9a8082011-11-23 21:33:37 +0000788 if (BitWidth == 48) {
Chris Lattner77527f52009-01-21 18:09:24 +0000789 unsigned Tmp1 = unsigned(VAL >> 16);
Zhou Shengcfa2ac02007-02-15 06:36:31 +0000790 Tmp1 = ByteSwap_32(Tmp1);
Jeff Cohene06855e2007-03-20 20:42:36 +0000791 uint16_t Tmp2 = uint16_t(VAL);
Zhou Shengcfa2ac02007-02-15 06:36:31 +0000792 Tmp2 = ByteSwap_16(Tmp2);
Jeff Cohene06855e2007-03-20 20:42:36 +0000793 return APInt(BitWidth, (uint64_t(Tmp2) << 32) | Tmp1);
Zhou Shengcfa2ac02007-02-15 06:36:31 +0000794 }
Richard Smith4f9a8082011-11-23 21:33:37 +0000795 if (BitWidth == 64)
796 return APInt(BitWidth, ByteSwap_64(VAL));
797
798 APInt Result(getNumWords() * APINT_BITS_PER_WORD, 0);
799 for (unsigned I = 0, N = getNumWords(); I != N; ++I)
800 Result.pVal[I] = ByteSwap_64(pVal[N - I - 1]);
801 if (Result.BitWidth != BitWidth) {
802 lshrNear(Result.pVal, Result.pVal, getNumWords(),
803 Result.BitWidth - BitWidth);
804 Result.BitWidth = BitWidth;
805 }
806 return Result;
Zhou Shengdac63782007-02-06 03:00:16 +0000807}
808
Eric Christopher820256b2009-08-21 04:06:45 +0000809APInt llvm::APIntOps::GreatestCommonDivisor(const APInt& API1,
Zhou Shengfbf61ea2007-02-08 14:35:19 +0000810 const APInt& API2) {
Zhou Shengdac63782007-02-06 03:00:16 +0000811 APInt A = API1, B = API2;
812 while (!!B) {
813 APInt T = B;
Reid Spencer1d072122007-02-16 22:36:51 +0000814 B = APIntOps::urem(A, B);
Zhou Shengdac63782007-02-06 03:00:16 +0000815 A = T;
816 }
817 return A;
818}
Chris Lattner28cbd1d2007-02-06 05:38:37 +0000819
Chris Lattner77527f52009-01-21 18:09:24 +0000820APInt llvm::APIntOps::RoundDoubleToAPInt(double Double, unsigned width) {
Zhou Shengd707d632007-02-12 20:02:55 +0000821 union {
822 double D;
823 uint64_t I;
824 } T;
825 T.D = Double;
Reid Spencer974551a2007-02-27 01:28:10 +0000826
827 // Get the sign bit from the highest order bit
Zhou Shengd707d632007-02-12 20:02:55 +0000828 bool isNeg = T.I >> 63;
Reid Spencer974551a2007-02-27 01:28:10 +0000829
830 // Get the 11-bit exponent and adjust for the 1023 bit bias
Zhou Shengd707d632007-02-12 20:02:55 +0000831 int64_t exp = ((T.I >> 52) & 0x7ff) - 1023;
Reid Spencer974551a2007-02-27 01:28:10 +0000832
833 // If the exponent is negative, the value is < 0 so just return 0.
Zhou Shengd707d632007-02-12 20:02:55 +0000834 if (exp < 0)
Reid Spencer66d0d572007-02-28 01:30:08 +0000835 return APInt(width, 0u);
Reid Spencer974551a2007-02-27 01:28:10 +0000836
837 // Extract the mantissa by clearing the top 12 bits (sign + exponent).
838 uint64_t mantissa = (T.I & (~0ULL >> 12)) | 1ULL << 52;
839
840 // If the exponent doesn't shift all bits out of the mantissa
Zhou Shengd707d632007-02-12 20:02:55 +0000841 if (exp < 52)
Eric Christopher820256b2009-08-21 04:06:45 +0000842 return isNeg ? -APInt(width, mantissa >> (52 - exp)) :
Reid Spencer54abdcf2007-02-27 18:23:40 +0000843 APInt(width, mantissa >> (52 - exp));
844
845 // If the client didn't provide enough bits for us to shift the mantissa into
846 // then the result is undefined, just return 0
847 if (width <= exp - 52)
848 return APInt(width, 0);
Reid Spencer974551a2007-02-27 01:28:10 +0000849
850 // Otherwise, we have to shift the mantissa bits up to the right location
Reid Spencer54abdcf2007-02-27 18:23:40 +0000851 APInt Tmp(width, mantissa);
Chris Lattner77527f52009-01-21 18:09:24 +0000852 Tmp = Tmp.shl((unsigned)exp - 52);
Zhou Shengd707d632007-02-12 20:02:55 +0000853 return isNeg ? -Tmp : Tmp;
854}
855
Dale Johannesen54be7852009-08-12 18:04:11 +0000856/// RoundToDouble - This function converts this APInt to a double.
Zhou Shengd707d632007-02-12 20:02:55 +0000857/// The layout for double is as following (IEEE Standard 754):
858/// --------------------------------------
859/// | Sign Exponent Fraction Bias |
860/// |-------------------------------------- |
861/// | 1[63] 11[62-52] 52[51-00] 1023 |
Eric Christopher820256b2009-08-21 04:06:45 +0000862/// --------------------------------------
Reid Spencer1d072122007-02-16 22:36:51 +0000863double APInt::roundToDouble(bool isSigned) const {
Reid Spencerfb77b2b2007-02-20 08:51:03 +0000864
865 // Handle the simple case where the value is contained in one uint64_t.
Dale Johannesen54be7852009-08-12 18:04:11 +0000866 // It is wrong to optimize getWord(0) to VAL; there might be more than one word.
Reid Spencerbe4ddf62007-02-18 20:09:41 +0000867 if (isSingleWord() || getActiveBits() <= APINT_BITS_PER_WORD) {
868 if (isSigned) {
Dale Johannesen34c08bb2009-08-12 17:42:34 +0000869 int64_t sext = (int64_t(getWord(0)) << (64-BitWidth)) >> (64-BitWidth);
Reid Spencerbe4ddf62007-02-18 20:09:41 +0000870 return double(sext);
871 } else
Dale Johannesen34c08bb2009-08-12 17:42:34 +0000872 return double(getWord(0));
Reid Spencerbe4ddf62007-02-18 20:09:41 +0000873 }
874
Reid Spencerfb77b2b2007-02-20 08:51:03 +0000875 // Determine if the value is negative.
Reid Spencer1d072122007-02-16 22:36:51 +0000876 bool isNeg = isSigned ? (*this)[BitWidth-1] : false;
Reid Spencerfb77b2b2007-02-20 08:51:03 +0000877
878 // Construct the absolute value if we're negative.
Zhou Shengd707d632007-02-12 20:02:55 +0000879 APInt Tmp(isNeg ? -(*this) : (*this));
Reid Spencerfb77b2b2007-02-20 08:51:03 +0000880
881 // Figure out how many bits we're using.
Chris Lattner77527f52009-01-21 18:09:24 +0000882 unsigned n = Tmp.getActiveBits();
Zhou Shengd707d632007-02-12 20:02:55 +0000883
Reid Spencerfb77b2b2007-02-20 08:51:03 +0000884 // The exponent (without bias normalization) is just the number of bits
885 // we are using. Note that the sign bit is gone since we constructed the
886 // absolute value.
887 uint64_t exp = n;
Zhou Shengd707d632007-02-12 20:02:55 +0000888
Reid Spencerfb77b2b2007-02-20 08:51:03 +0000889 // Return infinity for exponent overflow
890 if (exp > 1023) {
891 if (!isSigned || !isNeg)
Jeff Cohene06855e2007-03-20 20:42:36 +0000892 return std::numeric_limits<double>::infinity();
Eric Christopher820256b2009-08-21 04:06:45 +0000893 else
Jeff Cohene06855e2007-03-20 20:42:36 +0000894 return -std::numeric_limits<double>::infinity();
Reid Spencerfb77b2b2007-02-20 08:51:03 +0000895 }
896 exp += 1023; // Increment for 1023 bias
897
898 // Number of bits in mantissa is 52. To obtain the mantissa value, we must
899 // extract the high 52 bits from the correct words in pVal.
Zhou Shengd707d632007-02-12 20:02:55 +0000900 uint64_t mantissa;
Reid Spencerfb77b2b2007-02-20 08:51:03 +0000901 unsigned hiWord = whichWord(n-1);
902 if (hiWord == 0) {
903 mantissa = Tmp.pVal[0];
904 if (n > 52)
905 mantissa >>= n - 52; // shift down, we want the top 52 bits.
906 } else {
907 assert(hiWord > 0 && "huh?");
908 uint64_t hibits = Tmp.pVal[hiWord] << (52 - n % APINT_BITS_PER_WORD);
909 uint64_t lobits = Tmp.pVal[hiWord-1] >> (11 + n % APINT_BITS_PER_WORD);
910 mantissa = hibits | lobits;
911 }
912
Zhou Shengd707d632007-02-12 20:02:55 +0000913 // The leading bit of mantissa is implicit, so get rid of it.
Reid Spencerfbd48a52007-02-18 00:44:22 +0000914 uint64_t sign = isNeg ? (1ULL << (APINT_BITS_PER_WORD - 1)) : 0;
Zhou Shengd707d632007-02-12 20:02:55 +0000915 union {
916 double D;
917 uint64_t I;
918 } T;
919 T.I = sign | (exp << 52) | mantissa;
920 return T.D;
921}
922
Reid Spencer1d072122007-02-16 22:36:51 +0000923// Truncate to new width.
Jay Foad583abbc2010-12-07 08:25:19 +0000924APInt APInt::trunc(unsigned width) const {
Reid Spencer1d072122007-02-16 22:36:51 +0000925 assert(width < BitWidth && "Invalid APInt Truncate request");
Chris Lattner1ac3e252008-08-20 17:02:31 +0000926 assert(width && "Can't truncate to 0 bits");
Jay Foad583abbc2010-12-07 08:25:19 +0000927
928 if (width <= APINT_BITS_PER_WORD)
929 return APInt(width, getRawData()[0]);
930
931 APInt Result(getMemory(getNumWords(width)), width);
932
933 // Copy full words.
934 unsigned i;
935 for (i = 0; i != width / APINT_BITS_PER_WORD; i++)
936 Result.pVal[i] = pVal[i];
937
938 // Truncate and copy any partial word.
939 unsigned bits = (0 - width) % APINT_BITS_PER_WORD;
940 if (bits != 0)
941 Result.pVal[i] = pVal[i] << bits >> bits;
942
943 return Result;
Reid Spencer1d072122007-02-16 22:36:51 +0000944}
945
946// Sign extend to a new width.
Jay Foad583abbc2010-12-07 08:25:19 +0000947APInt APInt::sext(unsigned width) const {
Reid Spencer1d072122007-02-16 22:36:51 +0000948 assert(width > BitWidth && "Invalid APInt SignExtend request");
Jay Foad583abbc2010-12-07 08:25:19 +0000949
950 if (width <= APINT_BITS_PER_WORD) {
951 uint64_t val = VAL << (APINT_BITS_PER_WORD - BitWidth);
952 val = (int64_t)val >> (width - BitWidth);
953 return APInt(width, val >> (APINT_BITS_PER_WORD - width));
Reid Spencerb6b5cc32007-02-25 23:44:53 +0000954 }
955
Jay Foad583abbc2010-12-07 08:25:19 +0000956 APInt Result(getMemory(getNumWords(width)), width);
Reid Spencerb6b5cc32007-02-25 23:44:53 +0000957
Jay Foad583abbc2010-12-07 08:25:19 +0000958 // Copy full words.
959 unsigned i;
960 uint64_t word = 0;
961 for (i = 0; i != BitWidth / APINT_BITS_PER_WORD; i++) {
962 word = getRawData()[i];
963 Result.pVal[i] = word;
Reid Spencerb6b5cc32007-02-25 23:44:53 +0000964 }
965
Jay Foad583abbc2010-12-07 08:25:19 +0000966 // Read and sign-extend any partial word.
967 unsigned bits = (0 - BitWidth) % APINT_BITS_PER_WORD;
968 if (bits != 0)
969 word = (int64_t)getRawData()[i] << bits >> bits;
970 else
971 word = (int64_t)word >> (APINT_BITS_PER_WORD - 1);
972
973 // Write remaining full words.
974 for (; i != width / APINT_BITS_PER_WORD; i++) {
975 Result.pVal[i] = word;
976 word = (int64_t)word >> (APINT_BITS_PER_WORD - 1);
Reid Spencerb6b5cc32007-02-25 23:44:53 +0000977 }
Jay Foad583abbc2010-12-07 08:25:19 +0000978
979 // Write any partial word.
980 bits = (0 - width) % APINT_BITS_PER_WORD;
981 if (bits != 0)
982 Result.pVal[i] = word << bits >> bits;
983
984 return Result;
Reid Spencer1d072122007-02-16 22:36:51 +0000985}
986
987// Zero extend to a new width.
Jay Foad583abbc2010-12-07 08:25:19 +0000988APInt APInt::zext(unsigned width) const {
Reid Spencer1d072122007-02-16 22:36:51 +0000989 assert(width > BitWidth && "Invalid APInt ZeroExtend request");
Jay Foad583abbc2010-12-07 08:25:19 +0000990
991 if (width <= APINT_BITS_PER_WORD)
992 return APInt(width, VAL);
993
994 APInt Result(getMemory(getNumWords(width)), width);
995
996 // Copy words.
997 unsigned i;
998 for (i = 0; i != getNumWords(); i++)
999 Result.pVal[i] = getRawData()[i];
1000
1001 // Zero remaining words.
1002 memset(&Result.pVal[i], 0, (Result.getNumWords() - i) * APINT_WORD_SIZE);
1003
1004 return Result;
Reid Spencer1d072122007-02-16 22:36:51 +00001005}
1006
Jay Foad583abbc2010-12-07 08:25:19 +00001007APInt APInt::zextOrTrunc(unsigned width) const {
Reid Spencer742d1702007-03-01 17:15:32 +00001008 if (BitWidth < width)
1009 return zext(width);
1010 if (BitWidth > width)
1011 return trunc(width);
1012 return *this;
1013}
1014
Jay Foad583abbc2010-12-07 08:25:19 +00001015APInt APInt::sextOrTrunc(unsigned width) const {
Reid Spencer742d1702007-03-01 17:15:32 +00001016 if (BitWidth < width)
1017 return sext(width);
1018 if (BitWidth > width)
1019 return trunc(width);
1020 return *this;
1021}
1022
Rafael Espindolabb893fe2012-01-27 23:33:07 +00001023APInt APInt::zextOrSelf(unsigned width) const {
1024 if (BitWidth < width)
1025 return zext(width);
1026 return *this;
1027}
1028
1029APInt APInt::sextOrSelf(unsigned width) const {
1030 if (BitWidth < width)
1031 return sext(width);
1032 return *this;
1033}
1034
Zhou Shenge93db8f2007-02-09 07:48:24 +00001035/// Arithmetic right-shift this APInt by shiftAmt.
Zhou Shengfbf61ea2007-02-08 14:35:19 +00001036/// @brief Arithmetic right-shift function.
Dan Gohman105c1d42008-02-29 01:40:47 +00001037APInt APInt::ashr(const APInt &shiftAmt) const {
Chris Lattner77527f52009-01-21 18:09:24 +00001038 return ashr((unsigned)shiftAmt.getLimitedValue(BitWidth));
Dan Gohman105c1d42008-02-29 01:40:47 +00001039}
1040
1041/// Arithmetic right-shift this APInt by shiftAmt.
1042/// @brief Arithmetic right-shift function.
Chris Lattner77527f52009-01-21 18:09:24 +00001043APInt APInt::ashr(unsigned shiftAmt) const {
Reid Spenceraa8dcfe2007-02-26 07:44:38 +00001044 assert(shiftAmt <= BitWidth && "Invalid shift amount");
Reid Spencer1825dd02007-03-02 22:39:11 +00001045 // Handle a degenerate case
1046 if (shiftAmt == 0)
1047 return *this;
1048
1049 // Handle single word shifts with built-in ashr
Reid Spencer522ca7c2007-02-25 01:56:07 +00001050 if (isSingleWord()) {
1051 if (shiftAmt == BitWidth)
Reid Spenceraa8dcfe2007-02-26 07:44:38 +00001052 return APInt(BitWidth, 0); // undefined
1053 else {
Chris Lattner77527f52009-01-21 18:09:24 +00001054 unsigned SignBit = APINT_BITS_PER_WORD - BitWidth;
Eric Christopher820256b2009-08-21 04:06:45 +00001055 return APInt(BitWidth,
Reid Spenceraa8dcfe2007-02-26 07:44:38 +00001056 (((int64_t(VAL) << SignBit) >> SignBit) >> shiftAmt));
1057 }
Zhou Shengfbf61ea2007-02-08 14:35:19 +00001058 }
Reid Spencer522ca7c2007-02-25 01:56:07 +00001059
Reid Spencer1825dd02007-03-02 22:39:11 +00001060 // If all the bits were shifted out, the result is, technically, undefined.
1061 // We return -1 if it was negative, 0 otherwise. We check this early to avoid
1062 // issues in the algorithm below.
Chris Lattnerdad2d092007-05-03 18:15:36 +00001063 if (shiftAmt == BitWidth) {
Reid Spenceraa8dcfe2007-02-26 07:44:38 +00001064 if (isNegative())
Zhou Sheng1247c072008-06-05 13:27:38 +00001065 return APInt(BitWidth, -1ULL, true);
Reid Spencera41e93b2007-02-25 19:32:03 +00001066 else
Reid Spenceraa8dcfe2007-02-26 07:44:38 +00001067 return APInt(BitWidth, 0);
Chris Lattnerdad2d092007-05-03 18:15:36 +00001068 }
Reid Spenceraa8dcfe2007-02-26 07:44:38 +00001069
1070 // Create some space for the result.
1071 uint64_t * val = new uint64_t[getNumWords()];
1072
Reid Spencer1825dd02007-03-02 22:39:11 +00001073 // Compute some values needed by the following shift algorithms
Chris Lattner77527f52009-01-21 18:09:24 +00001074 unsigned wordShift = shiftAmt % APINT_BITS_PER_WORD; // bits to shift per word
1075 unsigned offset = shiftAmt / APINT_BITS_PER_WORD; // word offset for shift
1076 unsigned breakWord = getNumWords() - 1 - offset; // last word affected
1077 unsigned bitsInWord = whichBit(BitWidth); // how many bits in last word?
Reid Spencer1825dd02007-03-02 22:39:11 +00001078 if (bitsInWord == 0)
1079 bitsInWord = APINT_BITS_PER_WORD;
Reid Spenceraa8dcfe2007-02-26 07:44:38 +00001080
1081 // If we are shifting whole words, just move whole words
1082 if (wordShift == 0) {
Reid Spencer1825dd02007-03-02 22:39:11 +00001083 // Move the words containing significant bits
Chris Lattner77527f52009-01-21 18:09:24 +00001084 for (unsigned i = 0; i <= breakWord; ++i)
Reid Spencer1825dd02007-03-02 22:39:11 +00001085 val[i] = pVal[i+offset]; // move whole word
1086
1087 // Adjust the top significant word for sign bit fill, if negative
1088 if (isNegative())
1089 if (bitsInWord < APINT_BITS_PER_WORD)
1090 val[breakWord] |= ~0ULL << bitsInWord; // set high bits
1091 } else {
Eric Christopher820256b2009-08-21 04:06:45 +00001092 // Shift the low order words
Chris Lattner77527f52009-01-21 18:09:24 +00001093 for (unsigned i = 0; i < breakWord; ++i) {
Reid Spencer1825dd02007-03-02 22:39:11 +00001094 // This combines the shifted corresponding word with the low bits from
1095 // the next word (shifted into this word's high bits).
Eric Christopher820256b2009-08-21 04:06:45 +00001096 val[i] = (pVal[i+offset] >> wordShift) |
Reid Spencer1825dd02007-03-02 22:39:11 +00001097 (pVal[i+offset+1] << (APINT_BITS_PER_WORD - wordShift));
1098 }
1099
1100 // Shift the break word. In this case there are no bits from the next word
1101 // to include in this word.
1102 val[breakWord] = pVal[breakWord+offset] >> wordShift;
1103
Alp Tokercb402912014-01-24 17:20:08 +00001104 // Deal with sign extension in the break word, and possibly the word before
Reid Spencer1825dd02007-03-02 22:39:11 +00001105 // it.
Chris Lattnerdad2d092007-05-03 18:15:36 +00001106 if (isNegative()) {
Reid Spencer1825dd02007-03-02 22:39:11 +00001107 if (wordShift > bitsInWord) {
1108 if (breakWord > 0)
Eric Christopher820256b2009-08-21 04:06:45 +00001109 val[breakWord-1] |=
Reid Spencer1825dd02007-03-02 22:39:11 +00001110 ~0ULL << (APINT_BITS_PER_WORD - (wordShift - bitsInWord));
1111 val[breakWord] |= ~0ULL;
Eric Christopher820256b2009-08-21 04:06:45 +00001112 } else
Reid Spencer1825dd02007-03-02 22:39:11 +00001113 val[breakWord] |= (~0ULL << (bitsInWord - wordShift));
Chris Lattnerdad2d092007-05-03 18:15:36 +00001114 }
Reid Spenceraa8dcfe2007-02-26 07:44:38 +00001115 }
1116
Reid Spencer1825dd02007-03-02 22:39:11 +00001117 // Remaining words are 0 or -1, just assign them.
1118 uint64_t fillValue = (isNegative() ? -1ULL : 0);
Chris Lattner77527f52009-01-21 18:09:24 +00001119 for (unsigned i = breakWord+1; i < getNumWords(); ++i)
Reid Spencer1825dd02007-03-02 22:39:11 +00001120 val[i] = fillValue;
Benjamin Kramerf9a29752014-10-10 10:18:12 +00001121 APInt Result(val, BitWidth);
1122 Result.clearUnusedBits();
1123 return Result;
Zhou Shengfbf61ea2007-02-08 14:35:19 +00001124}
1125
Zhou Shenge93db8f2007-02-09 07:48:24 +00001126/// Logical right-shift this APInt by shiftAmt.
Zhou Shengfbf61ea2007-02-08 14:35:19 +00001127/// @brief Logical right-shift function.
Dan Gohman105c1d42008-02-29 01:40:47 +00001128APInt APInt::lshr(const APInt &shiftAmt) const {
Chris Lattner77527f52009-01-21 18:09:24 +00001129 return lshr((unsigned)shiftAmt.getLimitedValue(BitWidth));
Dan Gohman105c1d42008-02-29 01:40:47 +00001130}
1131
1132/// Logical right-shift this APInt by shiftAmt.
1133/// @brief Logical right-shift function.
Chris Lattner77527f52009-01-21 18:09:24 +00001134APInt APInt::lshr(unsigned shiftAmt) const {
Chris Lattnerdad2d092007-05-03 18:15:36 +00001135 if (isSingleWord()) {
Ahmed Charles0dca5d82012-02-24 19:06:15 +00001136 if (shiftAmt >= BitWidth)
Reid Spencer522ca7c2007-02-25 01:56:07 +00001137 return APInt(BitWidth, 0);
Eric Christopher820256b2009-08-21 04:06:45 +00001138 else
Reid Spencer522ca7c2007-02-25 01:56:07 +00001139 return APInt(BitWidth, this->VAL >> shiftAmt);
Chris Lattnerdad2d092007-05-03 18:15:36 +00001140 }
Reid Spencer522ca7c2007-02-25 01:56:07 +00001141
Reid Spencer44eef162007-02-26 01:19:48 +00001142 // If all the bits were shifted out, the result is 0. This avoids issues
1143 // with shifting by the size of the integer type, which produces undefined
1144 // results. We define these "undefined results" to always be 0.
Chad Rosier3d464d82012-06-08 18:04:52 +00001145 if (shiftAmt >= BitWidth)
Reid Spencer44eef162007-02-26 01:19:48 +00001146 return APInt(BitWidth, 0);
1147
Reid Spencerfffdf102007-05-17 06:26:29 +00001148 // If none of the bits are shifted out, the result is *this. This avoids
Eric Christopher820256b2009-08-21 04:06:45 +00001149 // issues with shifting by the size of the integer type, which produces
Reid Spencerfffdf102007-05-17 06:26:29 +00001150 // undefined results in the code below. This is also an optimization.
1151 if (shiftAmt == 0)
1152 return *this;
1153
Reid Spencer44eef162007-02-26 01:19:48 +00001154 // Create some space for the result.
1155 uint64_t * val = new uint64_t[getNumWords()];
1156
1157 // If we are shifting less than a word, compute the shift with a simple carry
1158 if (shiftAmt < APINT_BITS_PER_WORD) {
Richard Smith4f9a8082011-11-23 21:33:37 +00001159 lshrNear(val, pVal, getNumWords(), shiftAmt);
Benjamin Kramerf9a29752014-10-10 10:18:12 +00001160 APInt Result(val, BitWidth);
1161 Result.clearUnusedBits();
1162 return Result;
Reid Spencera41e93b2007-02-25 19:32:03 +00001163 }
1164
Reid Spencer44eef162007-02-26 01:19:48 +00001165 // Compute some values needed by the remaining shift algorithms
Chris Lattner77527f52009-01-21 18:09:24 +00001166 unsigned wordShift = shiftAmt % APINT_BITS_PER_WORD;
1167 unsigned offset = shiftAmt / APINT_BITS_PER_WORD;
Reid Spencer44eef162007-02-26 01:19:48 +00001168
1169 // If we are shifting whole words, just move whole words
1170 if (wordShift == 0) {
Chris Lattner77527f52009-01-21 18:09:24 +00001171 for (unsigned i = 0; i < getNumWords() - offset; ++i)
Reid Spencer44eef162007-02-26 01:19:48 +00001172 val[i] = pVal[i+offset];
Chris Lattner77527f52009-01-21 18:09:24 +00001173 for (unsigned i = getNumWords()-offset; i < getNumWords(); i++)
Reid Spencer44eef162007-02-26 01:19:48 +00001174 val[i] = 0;
Benjamin Kramerf9a29752014-10-10 10:18:12 +00001175 APInt Result(val, BitWidth);
1176 Result.clearUnusedBits();
1177 return Result;
Reid Spencer44eef162007-02-26 01:19:48 +00001178 }
1179
Eric Christopher820256b2009-08-21 04:06:45 +00001180 // Shift the low order words
Chris Lattner77527f52009-01-21 18:09:24 +00001181 unsigned breakWord = getNumWords() - offset -1;
1182 for (unsigned i = 0; i < breakWord; ++i)
Reid Spencerd99feaf2007-03-01 05:39:56 +00001183 val[i] = (pVal[i+offset] >> wordShift) |
1184 (pVal[i+offset+1] << (APINT_BITS_PER_WORD - wordShift));
Reid Spencer44eef162007-02-26 01:19:48 +00001185 // Shift the break word.
1186 val[breakWord] = pVal[breakWord+offset] >> wordShift;
1187
1188 // Remaining words are 0
Chris Lattner77527f52009-01-21 18:09:24 +00001189 for (unsigned i = breakWord+1; i < getNumWords(); ++i)
Reid Spencer44eef162007-02-26 01:19:48 +00001190 val[i] = 0;
Benjamin Kramerf9a29752014-10-10 10:18:12 +00001191 APInt Result(val, BitWidth);
1192 Result.clearUnusedBits();
1193 return Result;
Zhou Shengfbf61ea2007-02-08 14:35:19 +00001194}
1195
Zhou Shenge93db8f2007-02-09 07:48:24 +00001196/// Left-shift this APInt by shiftAmt.
Zhou Shengfbf61ea2007-02-08 14:35:19 +00001197/// @brief Left-shift function.
Dan Gohman105c1d42008-02-29 01:40:47 +00001198APInt APInt::shl(const APInt &shiftAmt) const {
Nick Lewycky030c4502009-01-19 17:42:33 +00001199 // It's undefined behavior in C to shift by BitWidth or greater.
Chris Lattner77527f52009-01-21 18:09:24 +00001200 return shl((unsigned)shiftAmt.getLimitedValue(BitWidth));
Dan Gohman105c1d42008-02-29 01:40:47 +00001201}
1202
Chris Lattner77527f52009-01-21 18:09:24 +00001203APInt APInt::shlSlowCase(unsigned shiftAmt) const {
Reid Spencera5c84d92007-02-25 00:56:44 +00001204 // If all the bits were shifted out, the result is 0. This avoids issues
1205 // with shifting by the size of the integer type, which produces undefined
1206 // results. We define these "undefined results" to always be 0.
1207 if (shiftAmt == BitWidth)
1208 return APInt(BitWidth, 0);
1209
Reid Spencer81ee0202007-05-12 18:01:57 +00001210 // If none of the bits are shifted out, the result is *this. This avoids a
1211 // lshr by the words size in the loop below which can produce incorrect
1212 // results. It also avoids the expensive computation below for a common case.
1213 if (shiftAmt == 0)
1214 return *this;
1215
Reid Spencera5c84d92007-02-25 00:56:44 +00001216 // Create some space for the result.
1217 uint64_t * val = new uint64_t[getNumWords()];
1218
1219 // If we are shifting less than a word, do it the easy way
1220 if (shiftAmt < APINT_BITS_PER_WORD) {
1221 uint64_t carry = 0;
Chris Lattner77527f52009-01-21 18:09:24 +00001222 for (unsigned i = 0; i < getNumWords(); i++) {
Reid Spencera5c84d92007-02-25 00:56:44 +00001223 val[i] = pVal[i] << shiftAmt | carry;
1224 carry = pVal[i] >> (APINT_BITS_PER_WORD - shiftAmt);
1225 }
Benjamin Kramerf9a29752014-10-10 10:18:12 +00001226 APInt Result(val, BitWidth);
1227 Result.clearUnusedBits();
1228 return Result;
Reid Spencer632ebdf2007-02-24 20:19:37 +00001229 }
1230
Reid Spencera5c84d92007-02-25 00:56:44 +00001231 // Compute some values needed by the remaining shift algorithms
Chris Lattner77527f52009-01-21 18:09:24 +00001232 unsigned wordShift = shiftAmt % APINT_BITS_PER_WORD;
1233 unsigned offset = shiftAmt / APINT_BITS_PER_WORD;
Reid Spencera5c84d92007-02-25 00:56:44 +00001234
1235 // If we are shifting whole words, just move whole words
1236 if (wordShift == 0) {
Chris Lattner77527f52009-01-21 18:09:24 +00001237 for (unsigned i = 0; i < offset; i++)
Reid Spencera5c84d92007-02-25 00:56:44 +00001238 val[i] = 0;
Chris Lattner77527f52009-01-21 18:09:24 +00001239 for (unsigned i = offset; i < getNumWords(); i++)
Reid Spencera5c84d92007-02-25 00:56:44 +00001240 val[i] = pVal[i-offset];
Benjamin Kramerf9a29752014-10-10 10:18:12 +00001241 APInt Result(val, BitWidth);
1242 Result.clearUnusedBits();
1243 return Result;
Reid Spencer632ebdf2007-02-24 20:19:37 +00001244 }
Reid Spencera5c84d92007-02-25 00:56:44 +00001245
1246 // Copy whole words from this to Result.
Chris Lattner77527f52009-01-21 18:09:24 +00001247 unsigned i = getNumWords() - 1;
Reid Spencera5c84d92007-02-25 00:56:44 +00001248 for (; i > offset; --i)
1249 val[i] = pVal[i-offset] << wordShift |
1250 pVal[i-offset-1] >> (APINT_BITS_PER_WORD - wordShift);
Reid Spencerab0e08a2007-02-25 01:08:58 +00001251 val[offset] = pVal[0] << wordShift;
Reid Spencera5c84d92007-02-25 00:56:44 +00001252 for (i = 0; i < offset; ++i)
1253 val[i] = 0;
Benjamin Kramerf9a29752014-10-10 10:18:12 +00001254 APInt Result(val, BitWidth);
1255 Result.clearUnusedBits();
1256 return Result;
Zhou Shengfbf61ea2007-02-08 14:35:19 +00001257}
1258
Dan Gohman105c1d42008-02-29 01:40:47 +00001259APInt APInt::rotl(const APInt &rotateAmt) const {
Chris Lattner77527f52009-01-21 18:09:24 +00001260 return rotl((unsigned)rotateAmt.getLimitedValue(BitWidth));
Dan Gohman105c1d42008-02-29 01:40:47 +00001261}
1262
Chris Lattner77527f52009-01-21 18:09:24 +00001263APInt APInt::rotl(unsigned rotateAmt) const {
Eli Friedman2aae94f2011-12-22 03:15:35 +00001264 rotateAmt %= BitWidth;
Reid Spencer98ed7db2007-05-14 00:15:28 +00001265 if (rotateAmt == 0)
1266 return *this;
Eli Friedman2aae94f2011-12-22 03:15:35 +00001267 return shl(rotateAmt) | lshr(BitWidth - rotateAmt);
Reid Spencer4c50b522007-05-13 23:44:59 +00001268}
1269
Dan Gohman105c1d42008-02-29 01:40:47 +00001270APInt APInt::rotr(const APInt &rotateAmt) const {
Chris Lattner77527f52009-01-21 18:09:24 +00001271 return rotr((unsigned)rotateAmt.getLimitedValue(BitWidth));
Dan Gohman105c1d42008-02-29 01:40:47 +00001272}
1273
Chris Lattner77527f52009-01-21 18:09:24 +00001274APInt APInt::rotr(unsigned rotateAmt) const {
Eli Friedman2aae94f2011-12-22 03:15:35 +00001275 rotateAmt %= BitWidth;
Reid Spencer98ed7db2007-05-14 00:15:28 +00001276 if (rotateAmt == 0)
1277 return *this;
Eli Friedman2aae94f2011-12-22 03:15:35 +00001278 return lshr(rotateAmt) | shl(BitWidth - rotateAmt);
Reid Spencer4c50b522007-05-13 23:44:59 +00001279}
Reid Spencerd99feaf2007-03-01 05:39:56 +00001280
1281// Square Root - this method computes and returns the square root of "this".
1282// Three mechanisms are used for computation. For small values (<= 5 bits),
1283// a table lookup is done. This gets some performance for common cases. For
1284// values using less than 52 bits, the value is converted to double and then
1285// the libc sqrt function is called. The result is rounded and then converted
1286// back to a uint64_t which is then used to construct the result. Finally,
Eric Christopher820256b2009-08-21 04:06:45 +00001287// the Babylonian method for computing square roots is used.
Reid Spencerd99feaf2007-03-01 05:39:56 +00001288APInt APInt::sqrt() const {
1289
1290 // Determine the magnitude of the value.
Chris Lattner77527f52009-01-21 18:09:24 +00001291 unsigned magnitude = getActiveBits();
Reid Spencerd99feaf2007-03-01 05:39:56 +00001292
1293 // Use a fast table for some small values. This also gets rid of some
1294 // rounding errors in libc sqrt for small values.
1295 if (magnitude <= 5) {
Reid Spencer2f6ad4d2007-03-01 17:47:31 +00001296 static const uint8_t results[32] = {
Reid Spencerc8841d22007-03-01 06:23:32 +00001297 /* 0 */ 0,
1298 /* 1- 2 */ 1, 1,
Eric Christopher820256b2009-08-21 04:06:45 +00001299 /* 3- 6 */ 2, 2, 2, 2,
Reid Spencerc8841d22007-03-01 06:23:32 +00001300 /* 7-12 */ 3, 3, 3, 3, 3, 3,
1301 /* 13-20 */ 4, 4, 4, 4, 4, 4, 4, 4,
1302 /* 21-30 */ 5, 5, 5, 5, 5, 5, 5, 5, 5, 5,
1303 /* 31 */ 6
1304 };
1305 return APInt(BitWidth, results[ (isSingleWord() ? VAL : pVal[0]) ]);
Reid Spencerd99feaf2007-03-01 05:39:56 +00001306 }
1307
1308 // If the magnitude of the value fits in less than 52 bits (the precision of
1309 // an IEEE double precision floating point value), then we can use the
1310 // libc sqrt function which will probably use a hardware sqrt computation.
1311 // This should be faster than the algorithm below.
Jeff Cohenb622c112007-03-05 00:00:42 +00001312 if (magnitude < 52) {
Chris Lattner9e01b612010-05-15 17:11:55 +00001313#if HAVE_ROUND
Eric Christopher820256b2009-08-21 04:06:45 +00001314 return APInt(BitWidth,
Reid Spencerd99feaf2007-03-01 05:39:56 +00001315 uint64_t(::round(::sqrt(double(isSingleWord()?VAL:pVal[0])))));
Chris Lattner9e01b612010-05-15 17:11:55 +00001316#else
1317 return APInt(BitWidth,
Chris Lattner9f1d2de2011-05-22 06:03:53 +00001318 uint64_t(::sqrt(double(isSingleWord()?VAL:pVal[0])) + 0.5));
Jeff Cohenb622c112007-03-05 00:00:42 +00001319#endif
1320 }
Reid Spencerd99feaf2007-03-01 05:39:56 +00001321
1322 // Okay, all the short cuts are exhausted. We must compute it. The following
1323 // is a classical Babylonian method for computing the square root. This code
Sanjay Patel4cb54e02014-09-11 15:41:01 +00001324 // was adapted to APInt from a wikipedia article on such computations.
Reid Spencerd99feaf2007-03-01 05:39:56 +00001325 // See http://www.wikipedia.org/ and go to the page named
Eric Christopher820256b2009-08-21 04:06:45 +00001326 // Calculate_an_integer_square_root.
Chris Lattner77527f52009-01-21 18:09:24 +00001327 unsigned nbits = BitWidth, i = 4;
Reid Spencerd99feaf2007-03-01 05:39:56 +00001328 APInt testy(BitWidth, 16);
1329 APInt x_old(BitWidth, 1);
1330 APInt x_new(BitWidth, 0);
1331 APInt two(BitWidth, 2);
1332
1333 // Select a good starting value using binary logarithms.
Eric Christopher820256b2009-08-21 04:06:45 +00001334 for (;; i += 2, testy = testy.shl(2))
Reid Spencerd99feaf2007-03-01 05:39:56 +00001335 if (i >= nbits || this->ule(testy)) {
1336 x_old = x_old.shl(i / 2);
1337 break;
1338 }
1339
Eric Christopher820256b2009-08-21 04:06:45 +00001340 // Use the Babylonian method to arrive at the integer square root:
Reid Spencerd99feaf2007-03-01 05:39:56 +00001341 for (;;) {
1342 x_new = (this->udiv(x_old) + x_old).udiv(two);
1343 if (x_old.ule(x_new))
1344 break;
1345 x_old = x_new;
1346 }
1347
1348 // Make sure we return the closest approximation
Eric Christopher820256b2009-08-21 04:06:45 +00001349 // NOTE: The rounding calculation below is correct. It will produce an
Reid Spencercf817562007-03-02 04:21:55 +00001350 // off-by-one discrepancy with results from pari/gp. That discrepancy has been
Eric Christopher820256b2009-08-21 04:06:45 +00001351 // determined to be a rounding issue with pari/gp as it begins to use a
Reid Spencercf817562007-03-02 04:21:55 +00001352 // floating point representation after 192 bits. There are no discrepancies
1353 // between this algorithm and pari/gp for bit widths < 192 bits.
Reid Spencerd99feaf2007-03-01 05:39:56 +00001354 APInt square(x_old * x_old);
1355 APInt nextSquare((x_old + 1) * (x_old +1));
1356 if (this->ult(square))
1357 return x_old;
David Blaikie54c94622011-12-01 20:58:30 +00001358 assert(this->ule(nextSquare) && "Error in APInt::sqrt computation");
1359 APInt midpoint((nextSquare - square).udiv(two));
1360 APInt offset(*this - square);
1361 if (offset.ult(midpoint))
1362 return x_old;
Reid Spencerd99feaf2007-03-01 05:39:56 +00001363 return x_old + 1;
1364}
1365
Wojciech Matyjewicz41b744d2008-06-23 19:39:50 +00001366/// Computes the multiplicative inverse of this APInt for a given modulo. The
1367/// iterative extended Euclidean algorithm is used to solve for this value,
1368/// however we simplify it to speed up calculating only the inverse, and take
1369/// advantage of div+rem calculations. We also use some tricks to avoid copying
1370/// (potentially large) APInts around.
1371APInt APInt::multiplicativeInverse(const APInt& modulo) const {
1372 assert(ult(modulo) && "This APInt must be smaller than the modulo");
1373
1374 // Using the properties listed at the following web page (accessed 06/21/08):
1375 // http://www.numbertheory.org/php/euclid.html
1376 // (especially the properties numbered 3, 4 and 9) it can be proved that
1377 // BitWidth bits suffice for all the computations in the algorithm implemented
1378 // below. More precisely, this number of bits suffice if the multiplicative
1379 // inverse exists, but may not suffice for the general extended Euclidean
1380 // algorithm.
1381
1382 APInt r[2] = { modulo, *this };
1383 APInt t[2] = { APInt(BitWidth, 0), APInt(BitWidth, 1) };
1384 APInt q(BitWidth, 0);
Eric Christopher820256b2009-08-21 04:06:45 +00001385
Wojciech Matyjewicz41b744d2008-06-23 19:39:50 +00001386 unsigned i;
1387 for (i = 0; r[i^1] != 0; i ^= 1) {
1388 // An overview of the math without the confusing bit-flipping:
1389 // q = r[i-2] / r[i-1]
1390 // r[i] = r[i-2] % r[i-1]
1391 // t[i] = t[i-2] - t[i-1] * q
1392 udivrem(r[i], r[i^1], q, r[i]);
1393 t[i] -= t[i^1] * q;
1394 }
1395
1396 // If this APInt and the modulo are not coprime, there is no multiplicative
1397 // inverse, so return 0. We check this by looking at the next-to-last
1398 // remainder, which is the gcd(*this,modulo) as calculated by the Euclidean
1399 // algorithm.
1400 if (r[i] != 1)
1401 return APInt(BitWidth, 0);
1402
1403 // The next-to-last t is the multiplicative inverse. However, we are
1404 // interested in a positive inverse. Calcuate a positive one from a negative
1405 // one if necessary. A simple addition of the modulo suffices because
Wojciech Matyjewiczf0d21cd2008-07-20 15:55:14 +00001406 // abs(t[i]) is known to be less than *this/2 (see the link above).
Wojciech Matyjewicz41b744d2008-06-23 19:39:50 +00001407 return t[i].isNegative() ? t[i] + modulo : t[i];
1408}
1409
Jay Foadfe0c6482009-04-30 10:15:35 +00001410/// Calculate the magic numbers required to implement a signed integer division
1411/// by a constant as a sequence of multiplies, adds and shifts. Requires that
1412/// the divisor not be 0, 1, or -1. Taken from "Hacker's Delight", Henry S.
1413/// Warren, Jr., chapter 10.
1414APInt::ms APInt::magic() const {
1415 const APInt& d = *this;
1416 unsigned p;
1417 APInt ad, anc, delta, q1, r1, q2, r2, t;
Jay Foadfe0c6482009-04-30 10:15:35 +00001418 APInt signedMin = APInt::getSignedMinValue(d.getBitWidth());
Jay Foadfe0c6482009-04-30 10:15:35 +00001419 struct ms mag;
Eric Christopher820256b2009-08-21 04:06:45 +00001420
Jay Foadfe0c6482009-04-30 10:15:35 +00001421 ad = d.abs();
1422 t = signedMin + (d.lshr(d.getBitWidth() - 1));
1423 anc = t - 1 - t.urem(ad); // absolute value of nc
1424 p = d.getBitWidth() - 1; // initialize p
1425 q1 = signedMin.udiv(anc); // initialize q1 = 2p/abs(nc)
1426 r1 = signedMin - q1*anc; // initialize r1 = rem(2p,abs(nc))
1427 q2 = signedMin.udiv(ad); // initialize q2 = 2p/abs(d)
1428 r2 = signedMin - q2*ad; // initialize r2 = rem(2p,abs(d))
1429 do {
1430 p = p + 1;
1431 q1 = q1<<1; // update q1 = 2p/abs(nc)
1432 r1 = r1<<1; // update r1 = rem(2p/abs(nc))
1433 if (r1.uge(anc)) { // must be unsigned comparison
1434 q1 = q1 + 1;
1435 r1 = r1 - anc;
1436 }
1437 q2 = q2<<1; // update q2 = 2p/abs(d)
1438 r2 = r2<<1; // update r2 = rem(2p/abs(d))
1439 if (r2.uge(ad)) { // must be unsigned comparison
1440 q2 = q2 + 1;
1441 r2 = r2 - ad;
1442 }
1443 delta = ad - r2;
Cameron Zwarich8731d0c2011-02-21 00:22:02 +00001444 } while (q1.ult(delta) || (q1 == delta && r1 == 0));
Eric Christopher820256b2009-08-21 04:06:45 +00001445
Jay Foadfe0c6482009-04-30 10:15:35 +00001446 mag.m = q2 + 1;
1447 if (d.isNegative()) mag.m = -mag.m; // resulting magic number
1448 mag.s = p - d.getBitWidth(); // resulting shift
1449 return mag;
1450}
1451
1452/// Calculate the magic numbers required to implement an unsigned integer
1453/// division by a constant as a sequence of multiplies, adds and shifts.
1454/// Requires that the divisor not be 0. Taken from "Hacker's Delight", Henry
1455/// S. Warren, Jr., chapter 10.
Benjamin Kramer09a51ba2011-03-17 20:39:06 +00001456/// LeadingZeros can be used to simplify the calculation if the upper bits
Chris Lattner0ab5e2c2011-04-15 05:18:47 +00001457/// of the divided value are known zero.
Benjamin Kramer09a51ba2011-03-17 20:39:06 +00001458APInt::mu APInt::magicu(unsigned LeadingZeros) const {
Jay Foadfe0c6482009-04-30 10:15:35 +00001459 const APInt& d = *this;
1460 unsigned p;
1461 APInt nc, delta, q1, r1, q2, r2;
1462 struct mu magu;
1463 magu.a = 0; // initialize "add" indicator
Benjamin Kramer09a51ba2011-03-17 20:39:06 +00001464 APInt allOnes = APInt::getAllOnesValue(d.getBitWidth()).lshr(LeadingZeros);
Jay Foadfe0c6482009-04-30 10:15:35 +00001465 APInt signedMin = APInt::getSignedMinValue(d.getBitWidth());
1466 APInt signedMax = APInt::getSignedMaxValue(d.getBitWidth());
1467
Benjamin Kramer3aab6a82012-07-11 18:31:59 +00001468 nc = allOnes - (allOnes - d).urem(d);
Jay Foadfe0c6482009-04-30 10:15:35 +00001469 p = d.getBitWidth() - 1; // initialize p
1470 q1 = signedMin.udiv(nc); // initialize q1 = 2p/nc
1471 r1 = signedMin - q1*nc; // initialize r1 = rem(2p,nc)
1472 q2 = signedMax.udiv(d); // initialize q2 = (2p-1)/d
1473 r2 = signedMax - q2*d; // initialize r2 = rem((2p-1),d)
1474 do {
1475 p = p + 1;
1476 if (r1.uge(nc - r1)) {
1477 q1 = q1 + q1 + 1; // update q1
1478 r1 = r1 + r1 - nc; // update r1
1479 }
1480 else {
1481 q1 = q1+q1; // update q1
1482 r1 = r1+r1; // update r1
1483 }
1484 if ((r2 + 1).uge(d - r2)) {
1485 if (q2.uge(signedMax)) magu.a = 1;
1486 q2 = q2+q2 + 1; // update q2
1487 r2 = r2+r2 + 1 - d; // update r2
1488 }
1489 else {
1490 if (q2.uge(signedMin)) magu.a = 1;
1491 q2 = q2+q2; // update q2
1492 r2 = r2+r2 + 1; // update r2
1493 }
1494 delta = d - 1 - r2;
1495 } while (p < d.getBitWidth()*2 &&
1496 (q1.ult(delta) || (q1 == delta && r1 == 0)));
1497 magu.m = q2 + 1; // resulting magic number
1498 magu.s = p - d.getBitWidth(); // resulting shift
1499 return magu;
1500}
1501
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001502/// Implementation of Knuth's Algorithm D (Division of nonnegative integers)
1503/// from "Art of Computer Programming, Volume 2", section 4.3.1, p. 272. The
1504/// variables here have the same names as in the algorithm. Comments explain
1505/// the algorithm and any deviation from it.
Chris Lattner77527f52009-01-21 18:09:24 +00001506static void KnuthDiv(unsigned *u, unsigned *v, unsigned *q, unsigned* r,
1507 unsigned m, unsigned n) {
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001508 assert(u && "Must provide dividend");
1509 assert(v && "Must provide divisor");
1510 assert(q && "Must provide quotient");
Reid Spencera5e0d202007-02-24 03:58:46 +00001511 assert(u != v && u != q && v != q && "Must us different memory");
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001512 assert(n>1 && "n must be > 1");
1513
1514 // Knuth uses the value b as the base of the number system. In our case b
1515 // is 2^31 so we just set it to -1u.
1516 uint64_t b = uint64_t(1) << 32;
1517
Chris Lattner17f71652008-08-17 07:19:36 +00001518#if 0
David Greenef32fcb42010-01-05 01:28:52 +00001519 DEBUG(dbgs() << "KnuthDiv: m=" << m << " n=" << n << '\n');
1520 DEBUG(dbgs() << "KnuthDiv: original:");
1521 DEBUG(for (int i = m+n; i >=0; i--) dbgs() << " " << u[i]);
1522 DEBUG(dbgs() << " by");
1523 DEBUG(for (int i = n; i >0; i--) dbgs() << " " << v[i-1]);
1524 DEBUG(dbgs() << '\n');
Chris Lattner17f71652008-08-17 07:19:36 +00001525#endif
Eric Christopher820256b2009-08-21 04:06:45 +00001526 // D1. [Normalize.] Set d = b / (v[n-1] + 1) and multiply all the digits of
1527 // u and v by d. Note that we have taken Knuth's advice here to use a power
1528 // of 2 value for d such that d * v[n-1] >= b/2 (b is the base). A power of
1529 // 2 allows us to shift instead of multiply and it is easy to determine the
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001530 // shift amount from the leading zeros. We are basically normalizing the u
1531 // and v so that its high bits are shifted to the top of v's range without
1532 // overflow. Note that this can require an extra word in u so that u must
1533 // be of length m+n+1.
Michael J. Spencerdf1ecbd72013-05-24 22:23:49 +00001534 unsigned shift = countLeadingZeros(v[n-1]);
Chris Lattner77527f52009-01-21 18:09:24 +00001535 unsigned v_carry = 0;
1536 unsigned u_carry = 0;
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001537 if (shift) {
Chris Lattner77527f52009-01-21 18:09:24 +00001538 for (unsigned i = 0; i < m+n; ++i) {
1539 unsigned u_tmp = u[i] >> (32 - shift);
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001540 u[i] = (u[i] << shift) | u_carry;
1541 u_carry = u_tmp;
Reid Spencer100502d2007-02-17 03:16:00 +00001542 }
Chris Lattner77527f52009-01-21 18:09:24 +00001543 for (unsigned i = 0; i < n; ++i) {
1544 unsigned v_tmp = v[i] >> (32 - shift);
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001545 v[i] = (v[i] << shift) | v_carry;
1546 v_carry = v_tmp;
1547 }
1548 }
1549 u[m+n] = u_carry;
Chris Lattner17f71652008-08-17 07:19:36 +00001550#if 0
David Greenef32fcb42010-01-05 01:28:52 +00001551 DEBUG(dbgs() << "KnuthDiv: normal:");
1552 DEBUG(for (int i = m+n; i >=0; i--) dbgs() << " " << u[i]);
1553 DEBUG(dbgs() << " by");
1554 DEBUG(for (int i = n; i >0; i--) dbgs() << " " << v[i-1]);
1555 DEBUG(dbgs() << '\n');
Chris Lattner17f71652008-08-17 07:19:36 +00001556#endif
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001557
1558 // D2. [Initialize j.] Set j to m. This is the loop counter over the places.
1559 int j = m;
1560 do {
David Greenef32fcb42010-01-05 01:28:52 +00001561 DEBUG(dbgs() << "KnuthDiv: quotient digit #" << j << '\n');
Eric Christopher820256b2009-08-21 04:06:45 +00001562 // D3. [Calculate q'.].
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001563 // Set qp = (u[j+n]*b + u[j+n-1]) / v[n-1]. (qp=qprime=q')
1564 // Set rp = (u[j+n]*b + u[j+n-1]) % v[n-1]. (rp=rprime=r')
1565 // Now test if qp == b or qp*v[n-2] > b*rp + u[j+n-2]; if so, decrease
1566 // qp by 1, inrease rp by v[n-1], and repeat this test if rp < b. The test
1567 // on v[n-2] determines at high speed most of the cases in which the trial
Eric Christopher820256b2009-08-21 04:06:45 +00001568 // value qp is one too large, and it eliminates all cases where qp is two
1569 // too large.
Reid Spencercb292e42007-02-23 01:57:13 +00001570 uint64_t dividend = ((uint64_t(u[j+n]) << 32) + u[j+n-1]);
David Greenef32fcb42010-01-05 01:28:52 +00001571 DEBUG(dbgs() << "KnuthDiv: dividend == " << dividend << '\n');
Reid Spencercb292e42007-02-23 01:57:13 +00001572 uint64_t qp = dividend / v[n-1];
1573 uint64_t rp = dividend % v[n-1];
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001574 if (qp == b || qp*v[n-2] > b*rp + u[j+n-2]) {
1575 qp--;
1576 rp += v[n-1];
Reid Spencerdf6cf5a2007-02-24 10:01:42 +00001577 if (rp < b && (qp == b || qp*v[n-2] > b*rp + u[j+n-2]))
Reid Spencera5e0d202007-02-24 03:58:46 +00001578 qp--;
Reid Spencercb292e42007-02-23 01:57:13 +00001579 }
David Greenef32fcb42010-01-05 01:28:52 +00001580 DEBUG(dbgs() << "KnuthDiv: qp == " << qp << ", rp == " << rp << '\n');
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001581
Reid Spencercb292e42007-02-23 01:57:13 +00001582 // D4. [Multiply and subtract.] Replace (u[j+n]u[j+n-1]...u[j]) with
1583 // (u[j+n]u[j+n-1]..u[j]) - qp * (v[n-1]...v[1]v[0]). This computation
1584 // consists of a simple multiplication by a one-place number, combined with
Eric Christopher820256b2009-08-21 04:06:45 +00001585 // a subtraction.
Reid Spenceraa8dcfe2007-02-26 07:44:38 +00001586 bool isNeg = false;
Chris Lattner77527f52009-01-21 18:09:24 +00001587 for (unsigned i = 0; i < n; ++i) {
Reid Spencerdf6cf5a2007-02-24 10:01:42 +00001588 uint64_t u_tmp = uint64_t(u[j+i]) | (uint64_t(u[j+i+1]) << 32);
Reid Spencera5e0d202007-02-24 03:58:46 +00001589 uint64_t subtrahend = uint64_t(qp) * uint64_t(v[i]);
Reid Spencerdf6cf5a2007-02-24 10:01:42 +00001590 bool borrow = subtrahend > u_tmp;
David Greenef32fcb42010-01-05 01:28:52 +00001591 DEBUG(dbgs() << "KnuthDiv: u_tmp == " << u_tmp
Daniel Dunbar763ace92009-07-13 05:27:30 +00001592 << ", subtrahend == " << subtrahend
1593 << ", borrow = " << borrow << '\n');
Reid Spencera5e0d202007-02-24 03:58:46 +00001594
Reid Spencerdf6cf5a2007-02-24 10:01:42 +00001595 uint64_t result = u_tmp - subtrahend;
Chris Lattner77527f52009-01-21 18:09:24 +00001596 unsigned k = j + i;
1597 u[k++] = (unsigned)(result & (b-1)); // subtract low word
1598 u[k++] = (unsigned)(result >> 32); // subtract high word
Reid Spencerdf6cf5a2007-02-24 10:01:42 +00001599 while (borrow && k <= m+n) { // deal with borrow to the left
1600 borrow = u[k] == 0;
1601 u[k]--;
1602 k++;
1603 }
Reid Spenceraa8dcfe2007-02-26 07:44:38 +00001604 isNeg |= borrow;
David Greenef32fcb42010-01-05 01:28:52 +00001605 DEBUG(dbgs() << "KnuthDiv: u[j+i] == " << u[j+i] << ", u[j+i+1] == " <<
Eric Christopher820256b2009-08-21 04:06:45 +00001606 u[j+i+1] << '\n');
Reid Spencera5e0d202007-02-24 03:58:46 +00001607 }
David Greenef32fcb42010-01-05 01:28:52 +00001608 DEBUG(dbgs() << "KnuthDiv: after subtraction:");
1609 DEBUG(for (int i = m+n; i >=0; i--) dbgs() << " " << u[i]);
1610 DEBUG(dbgs() << '\n');
Eric Christopher820256b2009-08-21 04:06:45 +00001611 // The digits (u[j+n]...u[j]) should be kept positive; if the result of
1612 // this step is actually negative, (u[j+n]...u[j]) should be left as the
Reid Spencerdf6cf5a2007-02-24 10:01:42 +00001613 // true value plus b**(n+1), namely as the b's complement of
Reid Spencercb292e42007-02-23 01:57:13 +00001614 // the true value, and a "borrow" to the left should be remembered.
1615 //
Reid Spenceraa8dcfe2007-02-26 07:44:38 +00001616 if (isNeg) {
Reid Spencerdf6cf5a2007-02-24 10:01:42 +00001617 bool carry = true; // true because b's complement is "complement + 1"
Chris Lattner77527f52009-01-21 18:09:24 +00001618 for (unsigned i = 0; i <= m+n; ++i) {
Reid Spencerdf6cf5a2007-02-24 10:01:42 +00001619 u[i] = ~u[i] + carry; // b's complement
1620 carry = carry && u[i] == 0;
Reid Spencera5e0d202007-02-24 03:58:46 +00001621 }
Reid Spencercb292e42007-02-23 01:57:13 +00001622 }
David Greenef32fcb42010-01-05 01:28:52 +00001623 DEBUG(dbgs() << "KnuthDiv: after complement:");
1624 DEBUG(for (int i = m+n; i >=0; i--) dbgs() << " " << u[i]);
1625 DEBUG(dbgs() << '\n');
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001626
Eric Christopher820256b2009-08-21 04:06:45 +00001627 // D5. [Test remainder.] Set q[j] = qp. If the result of step D4 was
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001628 // negative, go to step D6; otherwise go on to step D7.
Chris Lattner77527f52009-01-21 18:09:24 +00001629 q[j] = (unsigned)qp;
Reid Spenceraa8dcfe2007-02-26 07:44:38 +00001630 if (isNeg) {
Eric Christopher820256b2009-08-21 04:06:45 +00001631 // D6. [Add back]. The probability that this step is necessary is very
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001632 // small, on the order of only 2/b. Make sure that test data accounts for
Eric Christopher820256b2009-08-21 04:06:45 +00001633 // this possibility. Decrease q[j] by 1
Reid Spencercb292e42007-02-23 01:57:13 +00001634 q[j]--;
Eric Christopher820256b2009-08-21 04:06:45 +00001635 // and add (0v[n-1]...v[1]v[0]) to (u[j+n]u[j+n-1]...u[j+1]u[j]).
1636 // A carry will occur to the left of u[j+n], and it should be ignored
Reid Spencercb292e42007-02-23 01:57:13 +00001637 // since it cancels with the borrow that occurred in D4.
1638 bool carry = false;
Chris Lattner77527f52009-01-21 18:09:24 +00001639 for (unsigned i = 0; i < n; i++) {
1640 unsigned limit = std::min(u[j+i],v[i]);
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001641 u[j+i] += v[i] + carry;
Reid Spencera5e0d202007-02-24 03:58:46 +00001642 carry = u[j+i] < limit || (carry && u[j+i] == limit);
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001643 }
Reid Spencera5e0d202007-02-24 03:58:46 +00001644 u[j+n] += carry;
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001645 }
David Greenef32fcb42010-01-05 01:28:52 +00001646 DEBUG(dbgs() << "KnuthDiv: after correction:");
1647 DEBUG(for (int i = m+n; i >=0; i--) dbgs() <<" " << u[i]);
1648 DEBUG(dbgs() << "\nKnuthDiv: digit result = " << q[j] << '\n');
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001649
Reid Spencercb292e42007-02-23 01:57:13 +00001650 // D7. [Loop on j.] Decrease j by one. Now if j >= 0, go back to D3.
1651 } while (--j >= 0);
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001652
David Greenef32fcb42010-01-05 01:28:52 +00001653 DEBUG(dbgs() << "KnuthDiv: quotient:");
1654 DEBUG(for (int i = m; i >=0; i--) dbgs() <<" " << q[i]);
1655 DEBUG(dbgs() << '\n');
Reid Spencera5e0d202007-02-24 03:58:46 +00001656
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001657 // D8. [Unnormalize]. Now q[...] is the desired quotient, and the desired
1658 // remainder may be obtained by dividing u[...] by d. If r is non-null we
1659 // compute the remainder (urem uses this).
1660 if (r) {
1661 // The value d is expressed by the "shift" value above since we avoided
1662 // multiplication by d by using a shift left. So, all we have to do is
1663 // shift right here. In order to mak
Reid Spencer468ad9112007-02-24 20:38:01 +00001664 if (shift) {
Chris Lattner77527f52009-01-21 18:09:24 +00001665 unsigned carry = 0;
David Greenef32fcb42010-01-05 01:28:52 +00001666 DEBUG(dbgs() << "KnuthDiv: remainder:");
Reid Spencer468ad9112007-02-24 20:38:01 +00001667 for (int i = n-1; i >= 0; i--) {
1668 r[i] = (u[i] >> shift) | carry;
1669 carry = u[i] << (32 - shift);
David Greenef32fcb42010-01-05 01:28:52 +00001670 DEBUG(dbgs() << " " << r[i]);
Reid Spencer468ad9112007-02-24 20:38:01 +00001671 }
1672 } else {
1673 for (int i = n-1; i >= 0; i--) {
1674 r[i] = u[i];
David Greenef32fcb42010-01-05 01:28:52 +00001675 DEBUG(dbgs() << " " << r[i]);
Reid Spencer468ad9112007-02-24 20:38:01 +00001676 }
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001677 }
David Greenef32fcb42010-01-05 01:28:52 +00001678 DEBUG(dbgs() << '\n');
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001679 }
Chris Lattner17f71652008-08-17 07:19:36 +00001680#if 0
David Greenef32fcb42010-01-05 01:28:52 +00001681 DEBUG(dbgs() << '\n');
Chris Lattner17f71652008-08-17 07:19:36 +00001682#endif
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001683}
1684
Chris Lattner77527f52009-01-21 18:09:24 +00001685void APInt::divide(const APInt LHS, unsigned lhsWords,
1686 const APInt &RHS, unsigned rhsWords,
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001687 APInt *Quotient, APInt *Remainder)
1688{
1689 assert(lhsWords >= rhsWords && "Fractional result");
1690
Eric Christopher820256b2009-08-21 04:06:45 +00001691 // First, compose the values into an array of 32-bit words instead of
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001692 // 64-bit words. This is a necessity of both the "short division" algorithm
Dan Gohman4a618822010-02-10 16:03:48 +00001693 // and the Knuth "classical algorithm" which requires there to be native
Eric Christopher820256b2009-08-21 04:06:45 +00001694 // operations for +, -, and * on an m bit value with an m*2 bit result. We
1695 // can't use 64-bit operands here because we don't have native results of
1696 // 128-bits. Furthermore, casting the 64-bit values to 32-bit values won't
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001697 // work on large-endian machines.
Dan Gohmancff69532009-04-01 18:45:54 +00001698 uint64_t mask = ~0ull >> (sizeof(unsigned)*CHAR_BIT);
Chris Lattner77527f52009-01-21 18:09:24 +00001699 unsigned n = rhsWords * 2;
1700 unsigned m = (lhsWords * 2) - n;
Reid Spencer522ca7c2007-02-25 01:56:07 +00001701
1702 // Allocate space for the temporary values we need either on the stack, if
1703 // it will fit, or on the heap if it won't.
Chris Lattner77527f52009-01-21 18:09:24 +00001704 unsigned SPACE[128];
Craig Topperc10719f2014-04-07 04:17:22 +00001705 unsigned *U = nullptr;
1706 unsigned *V = nullptr;
1707 unsigned *Q = nullptr;
1708 unsigned *R = nullptr;
Reid Spencer522ca7c2007-02-25 01:56:07 +00001709 if ((Remainder?4:3)*n+2*m+1 <= 128) {
1710 U = &SPACE[0];
1711 V = &SPACE[m+n+1];
1712 Q = &SPACE[(m+n+1) + n];
1713 if (Remainder)
1714 R = &SPACE[(m+n+1) + n + (m+n)];
1715 } else {
Chris Lattner77527f52009-01-21 18:09:24 +00001716 U = new unsigned[m + n + 1];
1717 V = new unsigned[n];
1718 Q = new unsigned[m+n];
Reid Spencer522ca7c2007-02-25 01:56:07 +00001719 if (Remainder)
Chris Lattner77527f52009-01-21 18:09:24 +00001720 R = new unsigned[n];
Reid Spencer522ca7c2007-02-25 01:56:07 +00001721 }
1722
1723 // Initialize the dividend
Chris Lattner77527f52009-01-21 18:09:24 +00001724 memset(U, 0, (m+n+1)*sizeof(unsigned));
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001725 for (unsigned i = 0; i < lhsWords; ++i) {
Reid Spencer867b4062007-02-22 00:58:45 +00001726 uint64_t tmp = (LHS.getNumWords() == 1 ? LHS.VAL : LHS.pVal[i]);
Chris Lattner77527f52009-01-21 18:09:24 +00001727 U[i * 2] = (unsigned)(tmp & mask);
Dan Gohmancff69532009-04-01 18:45:54 +00001728 U[i * 2 + 1] = (unsigned)(tmp >> (sizeof(unsigned)*CHAR_BIT));
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001729 }
1730 U[m+n] = 0; // this extra word is for "spill" in the Knuth algorithm.
1731
Reid Spencer522ca7c2007-02-25 01:56:07 +00001732 // Initialize the divisor
Chris Lattner77527f52009-01-21 18:09:24 +00001733 memset(V, 0, (n)*sizeof(unsigned));
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001734 for (unsigned i = 0; i < rhsWords; ++i) {
Reid Spencer867b4062007-02-22 00:58:45 +00001735 uint64_t tmp = (RHS.getNumWords() == 1 ? RHS.VAL : RHS.pVal[i]);
Chris Lattner77527f52009-01-21 18:09:24 +00001736 V[i * 2] = (unsigned)(tmp & mask);
Dan Gohmancff69532009-04-01 18:45:54 +00001737 V[i * 2 + 1] = (unsigned)(tmp >> (sizeof(unsigned)*CHAR_BIT));
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001738 }
1739
Reid Spencer522ca7c2007-02-25 01:56:07 +00001740 // initialize the quotient and remainder
Chris Lattner77527f52009-01-21 18:09:24 +00001741 memset(Q, 0, (m+n) * sizeof(unsigned));
Reid Spencer522ca7c2007-02-25 01:56:07 +00001742 if (Remainder)
Chris Lattner77527f52009-01-21 18:09:24 +00001743 memset(R, 0, n * sizeof(unsigned));
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001744
Eric Christopher820256b2009-08-21 04:06:45 +00001745 // Now, adjust m and n for the Knuth division. n is the number of words in
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001746 // the divisor. m is the number of words by which the dividend exceeds the
Eric Christopher820256b2009-08-21 04:06:45 +00001747 // divisor (i.e. m+n is the length of the dividend). These sizes must not
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001748 // contain any zero words or the Knuth algorithm fails.
1749 for (unsigned i = n; i > 0 && V[i-1] == 0; i--) {
1750 n--;
1751 m++;
1752 }
1753 for (unsigned i = m+n; i > 0 && U[i-1] == 0; i--)
1754 m--;
1755
1756 // If we're left with only a single word for the divisor, Knuth doesn't work
1757 // so we implement the short division algorithm here. This is much simpler
1758 // and faster because we are certain that we can divide a 64-bit quantity
1759 // by a 32-bit quantity at hardware speed and short division is simply a
1760 // series of such operations. This is just like doing short division but we
1761 // are using base 2^32 instead of base 10.
1762 assert(n != 0 && "Divide by zero?");
1763 if (n == 1) {
Chris Lattner77527f52009-01-21 18:09:24 +00001764 unsigned divisor = V[0];
1765 unsigned remainder = 0;
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001766 for (int i = m+n-1; i >= 0; i--) {
1767 uint64_t partial_dividend = uint64_t(remainder) << 32 | U[i];
1768 if (partial_dividend == 0) {
1769 Q[i] = 0;
1770 remainder = 0;
1771 } else if (partial_dividend < divisor) {
1772 Q[i] = 0;
Chris Lattner77527f52009-01-21 18:09:24 +00001773 remainder = (unsigned)partial_dividend;
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001774 } else if (partial_dividend == divisor) {
1775 Q[i] = 1;
1776 remainder = 0;
1777 } else {
Chris Lattner77527f52009-01-21 18:09:24 +00001778 Q[i] = (unsigned)(partial_dividend / divisor);
1779 remainder = (unsigned)(partial_dividend - (Q[i] * divisor));
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001780 }
1781 }
1782 if (R)
1783 R[0] = remainder;
1784 } else {
1785 // Now we're ready to invoke the Knuth classical divide algorithm. In this
1786 // case n > 1.
1787 KnuthDiv(U, V, Q, R, m, n);
1788 }
1789
1790 // If the caller wants the quotient
1791 if (Quotient) {
1792 // Set up the Quotient value's memory.
1793 if (Quotient->BitWidth != LHS.BitWidth) {
1794 if (Quotient->isSingleWord())
1795 Quotient->VAL = 0;
1796 else
Reid Spencer7c16cd22007-02-26 23:38:21 +00001797 delete [] Quotient->pVal;
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001798 Quotient->BitWidth = LHS.BitWidth;
1799 if (!Quotient->isSingleWord())
Reid Spencer58a6a432007-02-21 08:21:52 +00001800 Quotient->pVal = getClearedMemory(Quotient->getNumWords());
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001801 } else
Jay Foad25a5e4c2010-12-01 08:53:58 +00001802 Quotient->clearAllBits();
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001803
Eric Christopher820256b2009-08-21 04:06:45 +00001804 // The quotient is in Q. Reconstitute the quotient into Quotient's low
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001805 // order words.
1806 if (lhsWords == 1) {
Eric Christopher820256b2009-08-21 04:06:45 +00001807 uint64_t tmp =
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001808 uint64_t(Q[0]) | (uint64_t(Q[1]) << (APINT_BITS_PER_WORD / 2));
1809 if (Quotient->isSingleWord())
1810 Quotient->VAL = tmp;
1811 else
1812 Quotient->pVal[0] = tmp;
1813 } else {
1814 assert(!Quotient->isSingleWord() && "Quotient APInt not large enough");
1815 for (unsigned i = 0; i < lhsWords; ++i)
Eric Christopher820256b2009-08-21 04:06:45 +00001816 Quotient->pVal[i] =
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001817 uint64_t(Q[i*2]) | (uint64_t(Q[i*2+1]) << (APINT_BITS_PER_WORD / 2));
1818 }
1819 }
1820
1821 // If the caller wants the remainder
1822 if (Remainder) {
1823 // Set up the Remainder value's memory.
1824 if (Remainder->BitWidth != RHS.BitWidth) {
1825 if (Remainder->isSingleWord())
1826 Remainder->VAL = 0;
1827 else
Reid Spencer7c16cd22007-02-26 23:38:21 +00001828 delete [] Remainder->pVal;
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001829 Remainder->BitWidth = RHS.BitWidth;
1830 if (!Remainder->isSingleWord())
Reid Spencer58a6a432007-02-21 08:21:52 +00001831 Remainder->pVal = getClearedMemory(Remainder->getNumWords());
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001832 } else
Jay Foad25a5e4c2010-12-01 08:53:58 +00001833 Remainder->clearAllBits();
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001834
1835 // The remainder is in R. Reconstitute the remainder into Remainder's low
1836 // order words.
1837 if (rhsWords == 1) {
Eric Christopher820256b2009-08-21 04:06:45 +00001838 uint64_t tmp =
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001839 uint64_t(R[0]) | (uint64_t(R[1]) << (APINT_BITS_PER_WORD / 2));
1840 if (Remainder->isSingleWord())
1841 Remainder->VAL = tmp;
1842 else
1843 Remainder->pVal[0] = tmp;
1844 } else {
1845 assert(!Remainder->isSingleWord() && "Remainder APInt not large enough");
1846 for (unsigned i = 0; i < rhsWords; ++i)
Eric Christopher820256b2009-08-21 04:06:45 +00001847 Remainder->pVal[i] =
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001848 uint64_t(R[i*2]) | (uint64_t(R[i*2+1]) << (APINT_BITS_PER_WORD / 2));
1849 }
1850 }
1851
1852 // Clean up the memory we allocated.
Reid Spencer522ca7c2007-02-25 01:56:07 +00001853 if (U != &SPACE[0]) {
1854 delete [] U;
1855 delete [] V;
1856 delete [] Q;
1857 delete [] R;
1858 }
Reid Spencer100502d2007-02-17 03:16:00 +00001859}
1860
Reid Spencer1d072122007-02-16 22:36:51 +00001861APInt APInt::udiv(const APInt& RHS) const {
Reid Spencera32372d12007-02-17 00:18:01 +00001862 assert(BitWidth == RHS.BitWidth && "Bit widths must be the same");
Reid Spencer39867762007-02-17 02:07:07 +00001863
1864 // First, deal with the easy case
1865 if (isSingleWord()) {
1866 assert(RHS.VAL != 0 && "Divide by zero?");
1867 return APInt(BitWidth, VAL / RHS.VAL);
Zhou Shengfbf61ea2007-02-08 14:35:19 +00001868 }
Reid Spencer39867762007-02-17 02:07:07 +00001869
Reid Spencer39867762007-02-17 02:07:07 +00001870 // Get some facts about the LHS and RHS number of bits and words
Chris Lattner77527f52009-01-21 18:09:24 +00001871 unsigned rhsBits = RHS.getActiveBits();
1872 unsigned rhsWords = !rhsBits ? 0 : (APInt::whichWord(rhsBits - 1) + 1);
Reid Spencer39867762007-02-17 02:07:07 +00001873 assert(rhsWords && "Divided by zero???");
Chris Lattner77527f52009-01-21 18:09:24 +00001874 unsigned lhsBits = this->getActiveBits();
1875 unsigned lhsWords = !lhsBits ? 0 : (APInt::whichWord(lhsBits - 1) + 1);
Reid Spencer39867762007-02-17 02:07:07 +00001876
1877 // Deal with some degenerate cases
Eric Christopher820256b2009-08-21 04:06:45 +00001878 if (!lhsWords)
Reid Spencer58a6a432007-02-21 08:21:52 +00001879 // 0 / X ===> 0
Eric Christopher820256b2009-08-21 04:06:45 +00001880 return APInt(BitWidth, 0);
Reid Spencer58a6a432007-02-21 08:21:52 +00001881 else if (lhsWords < rhsWords || this->ult(RHS)) {
Sylvestre Ledru91ce36c2012-09-27 10:14:43 +00001882 // X / Y ===> 0, iff X < Y
Reid Spencer58a6a432007-02-21 08:21:52 +00001883 return APInt(BitWidth, 0);
1884 } else if (*this == RHS) {
1885 // X / X ===> 1
1886 return APInt(BitWidth, 1);
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001887 } else if (lhsWords == 1 && rhsWords == 1) {
Reid Spencer39867762007-02-17 02:07:07 +00001888 // All high words are zero, just use native divide
Reid Spencer58a6a432007-02-21 08:21:52 +00001889 return APInt(BitWidth, this->pVal[0] / RHS.pVal[0]);
Reid Spencer39867762007-02-17 02:07:07 +00001890 }
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001891
1892 // We have to compute it the hard way. Invoke the Knuth divide algorithm.
1893 APInt Quotient(1,0); // to hold result.
Craig Topperc10719f2014-04-07 04:17:22 +00001894 divide(*this, lhsWords, RHS, rhsWords, &Quotient, nullptr);
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001895 return Quotient;
Zhou Shengfbf61ea2007-02-08 14:35:19 +00001896}
1897
Jakub Staszak6605c602013-02-20 00:17:42 +00001898APInt APInt::sdiv(const APInt &RHS) const {
1899 if (isNegative()) {
1900 if (RHS.isNegative())
1901 return (-(*this)).udiv(-RHS);
1902 return -((-(*this)).udiv(RHS));
1903 }
1904 if (RHS.isNegative())
1905 return -(this->udiv(-RHS));
1906 return this->udiv(RHS);
1907}
1908
Reid Spencer1d072122007-02-16 22:36:51 +00001909APInt APInt::urem(const APInt& RHS) const {
Reid Spencera32372d12007-02-17 00:18:01 +00001910 assert(BitWidth == RHS.BitWidth && "Bit widths must be the same");
Reid Spencer39867762007-02-17 02:07:07 +00001911 if (isSingleWord()) {
1912 assert(RHS.VAL != 0 && "Remainder by zero?");
1913 return APInt(BitWidth, VAL % RHS.VAL);
Zhou Shengfbf61ea2007-02-08 14:35:19 +00001914 }
Reid Spencer39867762007-02-17 02:07:07 +00001915
Reid Spencer58a6a432007-02-21 08:21:52 +00001916 // Get some facts about the LHS
Chris Lattner77527f52009-01-21 18:09:24 +00001917 unsigned lhsBits = getActiveBits();
1918 unsigned lhsWords = !lhsBits ? 0 : (whichWord(lhsBits - 1) + 1);
Reid Spencer39867762007-02-17 02:07:07 +00001919
1920 // Get some facts about the RHS
Chris Lattner77527f52009-01-21 18:09:24 +00001921 unsigned rhsBits = RHS.getActiveBits();
1922 unsigned rhsWords = !rhsBits ? 0 : (APInt::whichWord(rhsBits - 1) + 1);
Reid Spencer39867762007-02-17 02:07:07 +00001923 assert(rhsWords && "Performing remainder operation by zero ???");
1924
Reid Spencer39867762007-02-17 02:07:07 +00001925 // Check the degenerate cases
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001926 if (lhsWords == 0) {
Reid Spencer58a6a432007-02-21 08:21:52 +00001927 // 0 % Y ===> 0
1928 return APInt(BitWidth, 0);
1929 } else if (lhsWords < rhsWords || this->ult(RHS)) {
Sylvestre Ledru91ce36c2012-09-27 10:14:43 +00001930 // X % Y ===> X, iff X < Y
Reid Spencer58a6a432007-02-21 08:21:52 +00001931 return *this;
1932 } else if (*this == RHS) {
Reid Spencer39867762007-02-17 02:07:07 +00001933 // X % X == 0;
Reid Spencer58a6a432007-02-21 08:21:52 +00001934 return APInt(BitWidth, 0);
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001935 } else if (lhsWords == 1) {
Reid Spencer39867762007-02-17 02:07:07 +00001936 // All high words are zero, just use native remainder
Reid Spencer58a6a432007-02-21 08:21:52 +00001937 return APInt(BitWidth, pVal[0] % RHS.pVal[0]);
Reid Spencer39867762007-02-17 02:07:07 +00001938 }
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001939
Reid Spencer4c50b522007-05-13 23:44:59 +00001940 // We have to compute it the hard way. Invoke the Knuth divide algorithm.
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001941 APInt Remainder(1,0);
Craig Topperc10719f2014-04-07 04:17:22 +00001942 divide(*this, lhsWords, RHS, rhsWords, nullptr, &Remainder);
Reid Spencerfb77b2b2007-02-20 08:51:03 +00001943 return Remainder;
Zhou Shengfbf61ea2007-02-08 14:35:19 +00001944}
Reid Spencer100502d2007-02-17 03:16:00 +00001945
Jakub Staszak6605c602013-02-20 00:17:42 +00001946APInt APInt::srem(const APInt &RHS) const {
1947 if (isNegative()) {
1948 if (RHS.isNegative())
1949 return -((-(*this)).urem(-RHS));
1950 return -((-(*this)).urem(RHS));
1951 }
1952 if (RHS.isNegative())
1953 return this->urem(-RHS);
1954 return this->urem(RHS);
1955}
1956
Eric Christopher820256b2009-08-21 04:06:45 +00001957void APInt::udivrem(const APInt &LHS, const APInt &RHS,
Reid Spencer4c50b522007-05-13 23:44:59 +00001958 APInt &Quotient, APInt &Remainder) {
1959 // Get some size facts about the dividend and divisor
Chris Lattner77527f52009-01-21 18:09:24 +00001960 unsigned lhsBits = LHS.getActiveBits();
1961 unsigned lhsWords = !lhsBits ? 0 : (APInt::whichWord(lhsBits - 1) + 1);
1962 unsigned rhsBits = RHS.getActiveBits();
1963 unsigned rhsWords = !rhsBits ? 0 : (APInt::whichWord(rhsBits - 1) + 1);
Reid Spencer4c50b522007-05-13 23:44:59 +00001964
1965 // Check the degenerate cases
Eric Christopher820256b2009-08-21 04:06:45 +00001966 if (lhsWords == 0) {
Reid Spencer4c50b522007-05-13 23:44:59 +00001967 Quotient = 0; // 0 / Y ===> 0
1968 Remainder = 0; // 0 % Y ===> 0
1969 return;
Eric Christopher820256b2009-08-21 04:06:45 +00001970 }
1971
1972 if (lhsWords < rhsWords || LHS.ult(RHS)) {
Sylvestre Ledru91ce36c2012-09-27 10:14:43 +00001973 Remainder = LHS; // X % Y ===> X, iff X < Y
1974 Quotient = 0; // X / Y ===> 0, iff X < Y
Reid Spencer4c50b522007-05-13 23:44:59 +00001975 return;
Eric Christopher820256b2009-08-21 04:06:45 +00001976 }
1977
Reid Spencer4c50b522007-05-13 23:44:59 +00001978 if (LHS == RHS) {
1979 Quotient = 1; // X / X ===> 1
1980 Remainder = 0; // X % X ===> 0;
1981 return;
Eric Christopher820256b2009-08-21 04:06:45 +00001982 }
1983
Reid Spencer4c50b522007-05-13 23:44:59 +00001984 if (lhsWords == 1 && rhsWords == 1) {
1985 // There is only one word to consider so use the native versions.
Wojciech Matyjewicz41b744d2008-06-23 19:39:50 +00001986 uint64_t lhsValue = LHS.isSingleWord() ? LHS.VAL : LHS.pVal[0];
1987 uint64_t rhsValue = RHS.isSingleWord() ? RHS.VAL : RHS.pVal[0];
1988 Quotient = APInt(LHS.getBitWidth(), lhsValue / rhsValue);
1989 Remainder = APInt(LHS.getBitWidth(), lhsValue % rhsValue);
Reid Spencer4c50b522007-05-13 23:44:59 +00001990 return;
1991 }
1992
1993 // Okay, lets do it the long way
1994 divide(LHS, lhsWords, RHS, rhsWords, &Quotient, &Remainder);
1995}
1996
Jakub Staszak6605c602013-02-20 00:17:42 +00001997void APInt::sdivrem(const APInt &LHS, const APInt &RHS,
1998 APInt &Quotient, APInt &Remainder) {
1999 if (LHS.isNegative()) {
2000 if (RHS.isNegative())
2001 APInt::udivrem(-LHS, -RHS, Quotient, Remainder);
2002 else {
2003 APInt::udivrem(-LHS, RHS, Quotient, Remainder);
2004 Quotient = -Quotient;
2005 }
2006 Remainder = -Remainder;
2007 } else if (RHS.isNegative()) {
2008 APInt::udivrem(LHS, -RHS, Quotient, Remainder);
2009 Quotient = -Quotient;
2010 } else {
2011 APInt::udivrem(LHS, RHS, Quotient, Remainder);
2012 }
2013}
2014
Chris Lattner2c819b02010-10-13 23:54:10 +00002015APInt APInt::sadd_ov(const APInt &RHS, bool &Overflow) const {
Chris Lattner79bdd882010-10-13 23:46:33 +00002016 APInt Res = *this+RHS;
2017 Overflow = isNonNegative() == RHS.isNonNegative() &&
2018 Res.isNonNegative() != isNonNegative();
2019 return Res;
2020}
2021
Chris Lattner698661c2010-10-14 00:05:07 +00002022APInt APInt::uadd_ov(const APInt &RHS, bool &Overflow) const {
2023 APInt Res = *this+RHS;
2024 Overflow = Res.ult(RHS);
2025 return Res;
2026}
2027
Chris Lattner2c819b02010-10-13 23:54:10 +00002028APInt APInt::ssub_ov(const APInt &RHS, bool &Overflow) const {
Chris Lattner79bdd882010-10-13 23:46:33 +00002029 APInt Res = *this - RHS;
2030 Overflow = isNonNegative() != RHS.isNonNegative() &&
2031 Res.isNonNegative() != isNonNegative();
2032 return Res;
2033}
2034
Chris Lattner698661c2010-10-14 00:05:07 +00002035APInt APInt::usub_ov(const APInt &RHS, bool &Overflow) const {
Chris Lattnerb9681ad2010-10-14 00:30:00 +00002036 APInt Res = *this-RHS;
2037 Overflow = Res.ugt(*this);
Chris Lattner698661c2010-10-14 00:05:07 +00002038 return Res;
2039}
2040
Chris Lattner2c819b02010-10-13 23:54:10 +00002041APInt APInt::sdiv_ov(const APInt &RHS, bool &Overflow) const {
Chris Lattner79bdd882010-10-13 23:46:33 +00002042 // MININT/-1 --> overflow.
2043 Overflow = isMinSignedValue() && RHS.isAllOnesValue();
2044 return sdiv(RHS);
2045}
2046
Chris Lattner2c819b02010-10-13 23:54:10 +00002047APInt APInt::smul_ov(const APInt &RHS, bool &Overflow) const {
Chris Lattner79bdd882010-10-13 23:46:33 +00002048 APInt Res = *this * RHS;
2049
2050 if (*this != 0 && RHS != 0)
2051 Overflow = Res.sdiv(RHS) != *this || Res.sdiv(*this) != RHS;
2052 else
2053 Overflow = false;
2054 return Res;
2055}
2056
Frits van Bommel0bb2ad22011-03-27 14:26:13 +00002057APInt APInt::umul_ov(const APInt &RHS, bool &Overflow) const {
2058 APInt Res = *this * RHS;
2059
2060 if (*this != 0 && RHS != 0)
2061 Overflow = Res.udiv(RHS) != *this || Res.udiv(*this) != RHS;
2062 else
2063 Overflow = false;
2064 return Res;
2065}
2066
Chris Lattner2c819b02010-10-13 23:54:10 +00002067APInt APInt::sshl_ov(unsigned ShAmt, bool &Overflow) const {
Chris Lattner79bdd882010-10-13 23:46:33 +00002068 Overflow = ShAmt >= getBitWidth();
2069 if (Overflow)
2070 ShAmt = getBitWidth()-1;
2071
2072 if (isNonNegative()) // Don't allow sign change.
2073 Overflow = ShAmt >= countLeadingZeros();
2074 else
2075 Overflow = ShAmt >= countLeadingOnes();
2076
2077 return *this << ShAmt;
2078}
2079
2080
2081
2082
Benjamin Kramer92d89982010-07-14 22:38:02 +00002083void APInt::fromString(unsigned numbits, StringRef str, uint8_t radix) {
Reid Spencer1ba83352007-02-21 03:55:44 +00002084 // Check our assumptions here
Erick Tryzelaar1264bcb2009-08-21 03:15:14 +00002085 assert(!str.empty() && "Invalid string length");
Douglas Gregor663c0682011-09-14 15:54:46 +00002086 assert((radix == 10 || radix == 8 || radix == 16 || radix == 2 ||
2087 radix == 36) &&
2088 "Radix should be 2, 8, 10, 16, or 36!");
Erick Tryzelaar1264bcb2009-08-21 03:15:14 +00002089
Daniel Dunbar3a1efd112009-08-13 02:33:34 +00002090 StringRef::iterator p = str.begin();
2091 size_t slen = str.size();
2092 bool isNeg = *p == '-';
Erick Tryzelaar1264bcb2009-08-21 03:15:14 +00002093 if (*p == '-' || *p == '+') {
Daniel Dunbar3a1efd112009-08-13 02:33:34 +00002094 p++;
2095 slen--;
Eric Christopher43a1dec2009-08-21 04:10:31 +00002096 assert(slen && "String is only a sign, needs a value.");
Daniel Dunbar3a1efd112009-08-13 02:33:34 +00002097 }
Chris Lattnerdad2d092007-05-03 18:15:36 +00002098 assert((slen <= numbits || radix != 2) && "Insufficient bit width");
Chris Lattnerb869a0a2009-04-25 18:34:04 +00002099 assert(((slen-1)*3 <= numbits || radix != 8) && "Insufficient bit width");
2100 assert(((slen-1)*4 <= numbits || radix != 16) && "Insufficient bit width");
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002101 assert((((slen-1)*64)/22 <= numbits || radix != 10) &&
2102 "Insufficient bit width");
Reid Spencer1ba83352007-02-21 03:55:44 +00002103
2104 // Allocate memory
2105 if (!isSingleWord())
2106 pVal = getClearedMemory(getNumWords());
2107
2108 // Figure out if we can shift instead of multiply
Chris Lattner77527f52009-01-21 18:09:24 +00002109 unsigned shift = (radix == 16 ? 4 : radix == 8 ? 3 : radix == 2 ? 1 : 0);
Reid Spencer1ba83352007-02-21 03:55:44 +00002110
2111 // Set up an APInt for the digit to add outside the loop so we don't
2112 // constantly construct/destruct it.
2113 APInt apdigit(getBitWidth(), 0);
2114 APInt apradix(getBitWidth(), radix);
2115
2116 // Enter digit traversal loop
Daniel Dunbar3a1efd112009-08-13 02:33:34 +00002117 for (StringRef::iterator e = str.end(); p != e; ++p) {
Erick Tryzelaardadb15712009-08-21 03:15:28 +00002118 unsigned digit = getDigit(*p, radix);
Erick Tryzelaar60964092009-08-21 06:48:37 +00002119 assert(digit < radix && "Invalid character in digit string");
Reid Spencer1ba83352007-02-21 03:55:44 +00002120
Reid Spencera93c9812007-05-16 19:18:22 +00002121 // Shift or multiply the value by the radix
Chris Lattnerb869a0a2009-04-25 18:34:04 +00002122 if (slen > 1) {
2123 if (shift)
2124 *this <<= shift;
2125 else
2126 *this *= apradix;
2127 }
Reid Spencer1ba83352007-02-21 03:55:44 +00002128
2129 // Add in the digit we just interpreted
Reid Spencer632ebdf2007-02-24 20:19:37 +00002130 if (apdigit.isSingleWord())
2131 apdigit.VAL = digit;
2132 else
2133 apdigit.pVal[0] = digit;
Reid Spencer1ba83352007-02-21 03:55:44 +00002134 *this += apdigit;
Reid Spencer100502d2007-02-17 03:16:00 +00002135 }
Reid Spencerb6b5cc32007-02-25 23:44:53 +00002136 // If its negative, put it in two's complement form
Reid Spenceraa8dcfe2007-02-26 07:44:38 +00002137 if (isNeg) {
Jakub Staszak773be0c2013-03-20 23:56:19 +00002138 --(*this);
Jay Foad25a5e4c2010-12-01 08:53:58 +00002139 this->flipAllBits();
Reid Spencerb6b5cc32007-02-25 23:44:53 +00002140 }
Reid Spencer100502d2007-02-17 03:16:00 +00002141}
Reid Spencerfb77b2b2007-02-20 08:51:03 +00002142
Chris Lattner17f71652008-08-17 07:19:36 +00002143void APInt::toString(SmallVectorImpl<char> &Str, unsigned Radix,
Ted Kremenekb05f02e2011-06-15 00:51:55 +00002144 bool Signed, bool formatAsCLiteral) const {
Douglas Gregor663c0682011-09-14 15:54:46 +00002145 assert((Radix == 10 || Radix == 8 || Radix == 16 || Radix == 2 ||
2146 Radix == 36) &&
Dylan Noblesmith1c419ff2011-12-16 20:36:31 +00002147 "Radix should be 2, 8, 10, 16, or 36!");
Eric Christopher820256b2009-08-21 04:06:45 +00002148
Ted Kremenekb05f02e2011-06-15 00:51:55 +00002149 const char *Prefix = "";
2150 if (formatAsCLiteral) {
2151 switch (Radix) {
2152 case 2:
2153 // Binary literals are a non-standard extension added in gcc 4.3:
2154 // http://gcc.gnu.org/onlinedocs/gcc-4.3.0/gcc/Binary-constants.html
2155 Prefix = "0b";
2156 break;
2157 case 8:
2158 Prefix = "0";
2159 break;
Dylan Noblesmith1c419ff2011-12-16 20:36:31 +00002160 case 10:
2161 break; // No prefix
Ted Kremenekb05f02e2011-06-15 00:51:55 +00002162 case 16:
2163 Prefix = "0x";
2164 break;
Dylan Noblesmith1c419ff2011-12-16 20:36:31 +00002165 default:
2166 llvm_unreachable("Invalid radix!");
Ted Kremenekb05f02e2011-06-15 00:51:55 +00002167 }
2168 }
2169
Chris Lattner17f71652008-08-17 07:19:36 +00002170 // First, check for a zero value and just short circuit the logic below.
2171 if (*this == 0) {
Ted Kremenekb05f02e2011-06-15 00:51:55 +00002172 while (*Prefix) {
2173 Str.push_back(*Prefix);
2174 ++Prefix;
2175 };
Chris Lattner17f71652008-08-17 07:19:36 +00002176 Str.push_back('0');
2177 return;
2178 }
Eric Christopher820256b2009-08-21 04:06:45 +00002179
Douglas Gregor663c0682011-09-14 15:54:46 +00002180 static const char Digits[] = "0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZ";
Eric Christopher820256b2009-08-21 04:06:45 +00002181
Reid Spencerfb77b2b2007-02-20 08:51:03 +00002182 if (isSingleWord()) {
Chris Lattner17f71652008-08-17 07:19:36 +00002183 char Buffer[65];
2184 char *BufPtr = Buffer+65;
Eric Christopher820256b2009-08-21 04:06:45 +00002185
Chris Lattner17f71652008-08-17 07:19:36 +00002186 uint64_t N;
Chris Lattnerb91c9032010-08-18 00:33:47 +00002187 if (!Signed) {
Chris Lattner17f71652008-08-17 07:19:36 +00002188 N = getZExtValue();
Chris Lattnerb91c9032010-08-18 00:33:47 +00002189 } else {
2190 int64_t I = getSExtValue();
2191 if (I >= 0) {
2192 N = I;
2193 } else {
2194 Str.push_back('-');
2195 N = -(uint64_t)I;
2196 }
Reid Spencerfb77b2b2007-02-20 08:51:03 +00002197 }
Eric Christopher820256b2009-08-21 04:06:45 +00002198
Ted Kremenekb05f02e2011-06-15 00:51:55 +00002199 while (*Prefix) {
2200 Str.push_back(*Prefix);
2201 ++Prefix;
2202 };
2203
Chris Lattner17f71652008-08-17 07:19:36 +00002204 while (N) {
2205 *--BufPtr = Digits[N % Radix];
2206 N /= Radix;
2207 }
2208 Str.append(BufPtr, Buffer+65);
2209 return;
Reid Spencerfb77b2b2007-02-20 08:51:03 +00002210 }
2211
Chris Lattner17f71652008-08-17 07:19:36 +00002212 APInt Tmp(*this);
Eric Christopher820256b2009-08-21 04:06:45 +00002213
Chris Lattner17f71652008-08-17 07:19:36 +00002214 if (Signed && isNegative()) {
Reid Spencerfb77b2b2007-02-20 08:51:03 +00002215 // They want to print the signed version and it is a negative value
2216 // Flip the bits and add one to turn it into the equivalent positive
2217 // value and put a '-' in the result.
Jay Foad25a5e4c2010-12-01 08:53:58 +00002218 Tmp.flipAllBits();
Jakub Staszak773be0c2013-03-20 23:56:19 +00002219 ++Tmp;
Chris Lattner17f71652008-08-17 07:19:36 +00002220 Str.push_back('-');
Reid Spencerfb77b2b2007-02-20 08:51:03 +00002221 }
Eric Christopher820256b2009-08-21 04:06:45 +00002222
Ted Kremenekb05f02e2011-06-15 00:51:55 +00002223 while (*Prefix) {
2224 Str.push_back(*Prefix);
2225 ++Prefix;
2226 };
2227
Chris Lattner17f71652008-08-17 07:19:36 +00002228 // We insert the digits backward, then reverse them to get the right order.
2229 unsigned StartDig = Str.size();
Eric Christopher820256b2009-08-21 04:06:45 +00002230
2231 // For the 2, 8 and 16 bit cases, we can just shift instead of divide
2232 // because the number of bits per digit (1, 3 and 4 respectively) divides
Chris Lattner17f71652008-08-17 07:19:36 +00002233 // equaly. We just shift until the value is zero.
Douglas Gregor663c0682011-09-14 15:54:46 +00002234 if (Radix == 2 || Radix == 8 || Radix == 16) {
Chris Lattner17f71652008-08-17 07:19:36 +00002235 // Just shift tmp right for each digit width until it becomes zero
2236 unsigned ShiftAmt = (Radix == 16 ? 4 : (Radix == 8 ? 3 : 1));
2237 unsigned MaskAmt = Radix - 1;
Eric Christopher820256b2009-08-21 04:06:45 +00002238
Chris Lattner17f71652008-08-17 07:19:36 +00002239 while (Tmp != 0) {
2240 unsigned Digit = unsigned(Tmp.getRawData()[0]) & MaskAmt;
2241 Str.push_back(Digits[Digit]);
2242 Tmp = Tmp.lshr(ShiftAmt);
2243 }
2244 } else {
Douglas Gregor663c0682011-09-14 15:54:46 +00002245 APInt divisor(Radix == 10? 4 : 8, Radix);
Chris Lattner17f71652008-08-17 07:19:36 +00002246 while (Tmp != 0) {
2247 APInt APdigit(1, 0);
2248 APInt tmp2(Tmp.getBitWidth(), 0);
Eric Christopher820256b2009-08-21 04:06:45 +00002249 divide(Tmp, Tmp.getNumWords(), divisor, divisor.getNumWords(), &tmp2,
Chris Lattner17f71652008-08-17 07:19:36 +00002250 &APdigit);
Chris Lattner77527f52009-01-21 18:09:24 +00002251 unsigned Digit = (unsigned)APdigit.getZExtValue();
Chris Lattner17f71652008-08-17 07:19:36 +00002252 assert(Digit < Radix && "divide failed");
2253 Str.push_back(Digits[Digit]);
2254 Tmp = tmp2;
2255 }
Reid Spencerfb77b2b2007-02-20 08:51:03 +00002256 }
Eric Christopher820256b2009-08-21 04:06:45 +00002257
Chris Lattner17f71652008-08-17 07:19:36 +00002258 // Reverse the digits before returning.
2259 std::reverse(Str.begin()+StartDig, Str.end());
Reid Spencerfb77b2b2007-02-20 08:51:03 +00002260}
2261
Chris Lattner17f71652008-08-17 07:19:36 +00002262/// toString - This returns the APInt as a std::string. Note that this is an
2263/// inefficient method. It is better to pass in a SmallVector/SmallString
2264/// to the methods above.
2265std::string APInt::toString(unsigned Radix = 10, bool Signed = true) const {
2266 SmallString<40> S;
Ted Kremenekb05f02e2011-06-15 00:51:55 +00002267 toString(S, Radix, Signed, /* formatAsCLiteral = */false);
Daniel Dunbar8b0b1152009-08-19 20:07:03 +00002268 return S.str();
Reid Spencer1ba83352007-02-21 03:55:44 +00002269}
Chris Lattner6b695682007-08-16 15:56:55 +00002270
Chris Lattner17f71652008-08-17 07:19:36 +00002271
2272void APInt::dump() const {
2273 SmallString<40> S, U;
2274 this->toStringUnsigned(U);
2275 this->toStringSigned(S);
David Greenef32fcb42010-01-05 01:28:52 +00002276 dbgs() << "APInt(" << BitWidth << "b, "
Daniel Dunbar8b0b1152009-08-19 20:07:03 +00002277 << U.str() << "u " << S.str() << "s)";
Chris Lattner17f71652008-08-17 07:19:36 +00002278}
2279
Chris Lattner0c19df42008-08-23 22:23:09 +00002280void APInt::print(raw_ostream &OS, bool isSigned) const {
Chris Lattner17f71652008-08-17 07:19:36 +00002281 SmallString<40> S;
Ted Kremenekb05f02e2011-06-15 00:51:55 +00002282 this->toString(S, 10, isSigned, /* formatAsCLiteral = */false);
Daniel Dunbar8b0b1152009-08-19 20:07:03 +00002283 OS << S.str();
Chris Lattner17f71652008-08-17 07:19:36 +00002284}
2285
Chris Lattner6b695682007-08-16 15:56:55 +00002286// This implements a variety of operations on a representation of
2287// arbitrary precision, two's-complement, bignum integer values.
2288
Chris Lattner96cffa62009-08-23 23:11:28 +00002289// Assumed by lowHalf, highHalf, partMSB and partLSB. A fairly safe
2290// and unrestricting assumption.
Benjamin Kramer7000ca32014-10-12 17:56:40 +00002291static_assert(integerPartWidth % 2 == 0, "Part width must be divisible by 2!");
Chris Lattner6b695682007-08-16 15:56:55 +00002292
2293/* Some handy functions local to this file. */
2294namespace {
2295
Chris Lattnerfe02c1f2007-08-20 22:49:32 +00002296 /* Returns the integer part with the least significant BITS set.
2297 BITS cannot be zero. */
Dan Gohmanf4bc7822008-04-10 21:11:47 +00002298 static inline integerPart
Chris Lattnerfe02c1f2007-08-20 22:49:32 +00002299 lowBitMask(unsigned int bits)
2300 {
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002301 assert(bits != 0 && bits <= integerPartWidth);
Chris Lattnerfe02c1f2007-08-20 22:49:32 +00002302
2303 return ~(integerPart) 0 >> (integerPartWidth - bits);
2304 }
2305
Neil Boothc8b650a2007-10-06 00:43:45 +00002306 /* Returns the value of the lower half of PART. */
Dan Gohmanf4bc7822008-04-10 21:11:47 +00002307 static inline integerPart
Chris Lattnerfe02c1f2007-08-20 22:49:32 +00002308 lowHalf(integerPart part)
2309 {
2310 return part & lowBitMask(integerPartWidth / 2);
2311 }
2312
Neil Boothc8b650a2007-10-06 00:43:45 +00002313 /* Returns the value of the upper half of PART. */
Dan Gohmanf4bc7822008-04-10 21:11:47 +00002314 static inline integerPart
Chris Lattnerfe02c1f2007-08-20 22:49:32 +00002315 highHalf(integerPart part)
2316 {
2317 return part >> (integerPartWidth / 2);
2318 }
2319
Neil Boothc8b650a2007-10-06 00:43:45 +00002320 /* Returns the bit number of the most significant set bit of a part.
2321 If the input number has no bits set -1U is returned. */
Dan Gohmanf4bc7822008-04-10 21:11:47 +00002322 static unsigned int
Chris Lattnerfe02c1f2007-08-20 22:49:32 +00002323 partMSB(integerPart value)
Chris Lattner6b695682007-08-16 15:56:55 +00002324 {
Benjamin Kramerb565f892013-06-01 11:26:39 +00002325 return findLastSet(value, ZB_Max);
Chris Lattner6b695682007-08-16 15:56:55 +00002326 }
2327
Neil Boothc8b650a2007-10-06 00:43:45 +00002328 /* Returns the bit number of the least significant set bit of a
2329 part. If the input number has no bits set -1U is returned. */
Dan Gohmanf4bc7822008-04-10 21:11:47 +00002330 static unsigned int
Chris Lattner6b695682007-08-16 15:56:55 +00002331 partLSB(integerPart value)
2332 {
Benjamin Kramerb565f892013-06-01 11:26:39 +00002333 return findFirstSet(value, ZB_Max);
Chris Lattner6b695682007-08-16 15:56:55 +00002334 }
2335}
2336
2337/* Sets the least significant part of a bignum to the input value, and
2338 zeroes out higher parts. */
2339void
2340APInt::tcSet(integerPart *dst, integerPart part, unsigned int parts)
2341{
2342 unsigned int i;
2343
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002344 assert(parts > 0);
Neil Boothb6182162007-10-08 13:47:12 +00002345
Chris Lattner6b695682007-08-16 15:56:55 +00002346 dst[0] = part;
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002347 for (i = 1; i < parts; i++)
Chris Lattner6b695682007-08-16 15:56:55 +00002348 dst[i] = 0;
2349}
2350
2351/* Assign one bignum to another. */
2352void
2353APInt::tcAssign(integerPart *dst, const integerPart *src, unsigned int parts)
2354{
2355 unsigned int i;
2356
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002357 for (i = 0; i < parts; i++)
Chris Lattner6b695682007-08-16 15:56:55 +00002358 dst[i] = src[i];
2359}
2360
2361/* Returns true if a bignum is zero, false otherwise. */
2362bool
2363APInt::tcIsZero(const integerPart *src, unsigned int parts)
2364{
2365 unsigned int i;
2366
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002367 for (i = 0; i < parts; i++)
Chris Lattner6b695682007-08-16 15:56:55 +00002368 if (src[i])
2369 return false;
2370
2371 return true;
2372}
2373
2374/* Extract the given bit of a bignum; returns 0 or 1. */
2375int
2376APInt::tcExtractBit(const integerPart *parts, unsigned int bit)
2377{
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002378 return (parts[bit / integerPartWidth] &
2379 ((integerPart) 1 << bit % integerPartWidth)) != 0;
Chris Lattner6b695682007-08-16 15:56:55 +00002380}
2381
John McCalldcb9a7a2010-02-28 02:51:25 +00002382/* Set the given bit of a bignum. */
Chris Lattner6b695682007-08-16 15:56:55 +00002383void
2384APInt::tcSetBit(integerPart *parts, unsigned int bit)
2385{
2386 parts[bit / integerPartWidth] |= (integerPart) 1 << (bit % integerPartWidth);
2387}
2388
John McCalldcb9a7a2010-02-28 02:51:25 +00002389/* Clears the given bit of a bignum. */
2390void
2391APInt::tcClearBit(integerPart *parts, unsigned int bit)
2392{
2393 parts[bit / integerPartWidth] &=
2394 ~((integerPart) 1 << (bit % integerPartWidth));
2395}
2396
Neil Boothc8b650a2007-10-06 00:43:45 +00002397/* Returns the bit number of the least significant set bit of a
2398 number. If the input number has no bits set -1U is returned. */
Chris Lattner6b695682007-08-16 15:56:55 +00002399unsigned int
2400APInt::tcLSB(const integerPart *parts, unsigned int n)
2401{
2402 unsigned int i, lsb;
2403
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002404 for (i = 0; i < n; i++) {
Chris Lattner6b695682007-08-16 15:56:55 +00002405 if (parts[i] != 0) {
2406 lsb = partLSB(parts[i]);
2407
2408 return lsb + i * integerPartWidth;
2409 }
2410 }
2411
2412 return -1U;
2413}
2414
Neil Boothc8b650a2007-10-06 00:43:45 +00002415/* Returns the bit number of the most significant set bit of a number.
2416 If the input number has no bits set -1U is returned. */
Chris Lattner6b695682007-08-16 15:56:55 +00002417unsigned int
2418APInt::tcMSB(const integerPart *parts, unsigned int n)
2419{
2420 unsigned int msb;
2421
2422 do {
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002423 --n;
Chris Lattner6b695682007-08-16 15:56:55 +00002424
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002425 if (parts[n] != 0) {
2426 msb = partMSB(parts[n]);
Chris Lattner6b695682007-08-16 15:56:55 +00002427
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002428 return msb + n * integerPartWidth;
2429 }
Chris Lattner6b695682007-08-16 15:56:55 +00002430 } while (n);
2431
2432 return -1U;
2433}
2434
Neil Boothb6182162007-10-08 13:47:12 +00002435/* Copy the bit vector of width srcBITS from SRC, starting at bit
2436 srcLSB, to DST, of dstCOUNT parts, such that the bit srcLSB becomes
2437 the least significant bit of DST. All high bits above srcBITS in
2438 DST are zero-filled. */
2439void
Evan Chengdb338f32009-05-21 23:47:47 +00002440APInt::tcExtract(integerPart *dst, unsigned int dstCount,const integerPart *src,
Neil Boothb6182162007-10-08 13:47:12 +00002441 unsigned int srcBits, unsigned int srcLSB)
2442{
2443 unsigned int firstSrcPart, dstParts, shift, n;
2444
2445 dstParts = (srcBits + integerPartWidth - 1) / integerPartWidth;
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002446 assert(dstParts <= dstCount);
Neil Boothb6182162007-10-08 13:47:12 +00002447
2448 firstSrcPart = srcLSB / integerPartWidth;
2449 tcAssign (dst, src + firstSrcPart, dstParts);
2450
2451 shift = srcLSB % integerPartWidth;
2452 tcShiftRight (dst, dstParts, shift);
2453
2454 /* We now have (dstParts * integerPartWidth - shift) bits from SRC
2455 in DST. If this is less that srcBits, append the rest, else
2456 clear the high bits. */
2457 n = dstParts * integerPartWidth - shift;
2458 if (n < srcBits) {
2459 integerPart mask = lowBitMask (srcBits - n);
2460 dst[dstParts - 1] |= ((src[firstSrcPart + dstParts] & mask)
2461 << n % integerPartWidth);
2462 } else if (n > srcBits) {
Neil Booth7e74b172007-10-12 15:31:31 +00002463 if (srcBits % integerPartWidth)
2464 dst[dstParts - 1] &= lowBitMask (srcBits % integerPartWidth);
Neil Boothb6182162007-10-08 13:47:12 +00002465 }
2466
2467 /* Clear high parts. */
2468 while (dstParts < dstCount)
2469 dst[dstParts++] = 0;
2470}
2471
Chris Lattner6b695682007-08-16 15:56:55 +00002472/* DST += RHS + C where C is zero or one. Returns the carry flag. */
2473integerPart
2474APInt::tcAdd(integerPart *dst, const integerPart *rhs,
2475 integerPart c, unsigned int parts)
2476{
2477 unsigned int i;
2478
2479 assert(c <= 1);
2480
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002481 for (i = 0; i < parts; i++) {
Chris Lattner6b695682007-08-16 15:56:55 +00002482 integerPart l;
2483
2484 l = dst[i];
2485 if (c) {
2486 dst[i] += rhs[i] + 1;
2487 c = (dst[i] <= l);
2488 } else {
2489 dst[i] += rhs[i];
2490 c = (dst[i] < l);
2491 }
2492 }
2493
2494 return c;
2495}
2496
2497/* DST -= RHS + C where C is zero or one. Returns the carry flag. */
2498integerPart
2499APInt::tcSubtract(integerPart *dst, const integerPart *rhs,
2500 integerPart c, unsigned int parts)
2501{
2502 unsigned int i;
2503
2504 assert(c <= 1);
2505
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002506 for (i = 0; i < parts; i++) {
Chris Lattner6b695682007-08-16 15:56:55 +00002507 integerPart l;
2508
2509 l = dst[i];
2510 if (c) {
2511 dst[i] -= rhs[i] + 1;
2512 c = (dst[i] >= l);
2513 } else {
2514 dst[i] -= rhs[i];
2515 c = (dst[i] > l);
2516 }
2517 }
2518
2519 return c;
2520}
2521
2522/* Negate a bignum in-place. */
2523void
2524APInt::tcNegate(integerPart *dst, unsigned int parts)
2525{
2526 tcComplement(dst, parts);
2527 tcIncrement(dst, parts);
2528}
2529
Neil Boothc8b650a2007-10-06 00:43:45 +00002530/* DST += SRC * MULTIPLIER + CARRY if add is true
2531 DST = SRC * MULTIPLIER + CARRY if add is false
Chris Lattner6b695682007-08-16 15:56:55 +00002532
2533 Requires 0 <= DSTPARTS <= SRCPARTS + 1. If DST overlaps SRC
2534 they must start at the same point, i.e. DST == SRC.
2535
2536 If DSTPARTS == SRCPARTS + 1 no overflow occurs and zero is
2537 returned. Otherwise DST is filled with the least significant
2538 DSTPARTS parts of the result, and if all of the omitted higher
2539 parts were zero return zero, otherwise overflow occurred and
2540 return one. */
2541int
2542APInt::tcMultiplyPart(integerPart *dst, const integerPart *src,
2543 integerPart multiplier, integerPart carry,
2544 unsigned int srcParts, unsigned int dstParts,
2545 bool add)
2546{
2547 unsigned int i, n;
2548
2549 /* Otherwise our writes of DST kill our later reads of SRC. */
2550 assert(dst <= src || dst >= src + srcParts);
2551 assert(dstParts <= srcParts + 1);
2552
2553 /* N loops; minimum of dstParts and srcParts. */
2554 n = dstParts < srcParts ? dstParts: srcParts;
2555
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002556 for (i = 0; i < n; i++) {
Chris Lattner6b695682007-08-16 15:56:55 +00002557 integerPart low, mid, high, srcPart;
2558
2559 /* [ LOW, HIGH ] = MULTIPLIER * SRC[i] + DST[i] + CARRY.
2560
2561 This cannot overflow, because
2562
2563 (n - 1) * (n - 1) + 2 (n - 1) = (n - 1) * (n + 1)
2564
2565 which is less than n^2. */
2566
2567 srcPart = src[i];
2568
2569 if (multiplier == 0 || srcPart == 0) {
2570 low = carry;
2571 high = 0;
2572 } else {
2573 low = lowHalf(srcPart) * lowHalf(multiplier);
2574 high = highHalf(srcPart) * highHalf(multiplier);
2575
2576 mid = lowHalf(srcPart) * highHalf(multiplier);
2577 high += highHalf(mid);
2578 mid <<= integerPartWidth / 2;
2579 if (low + mid < low)
2580 high++;
2581 low += mid;
2582
2583 mid = highHalf(srcPart) * lowHalf(multiplier);
2584 high += highHalf(mid);
2585 mid <<= integerPartWidth / 2;
2586 if (low + mid < low)
2587 high++;
2588 low += mid;
2589
2590 /* Now add carry. */
2591 if (low + carry < low)
2592 high++;
2593 low += carry;
2594 }
2595
2596 if (add) {
2597 /* And now DST[i], and store the new low part there. */
2598 if (low + dst[i] < low)
2599 high++;
2600 dst[i] += low;
2601 } else
2602 dst[i] = low;
2603
2604 carry = high;
2605 }
2606
2607 if (i < dstParts) {
2608 /* Full multiplication, there is no overflow. */
2609 assert(i + 1 == dstParts);
2610 dst[i] = carry;
2611 return 0;
2612 } else {
2613 /* We overflowed if there is carry. */
2614 if (carry)
2615 return 1;
2616
2617 /* We would overflow if any significant unwritten parts would be
2618 non-zero. This is true if any remaining src parts are non-zero
2619 and the multiplier is non-zero. */
2620 if (multiplier)
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002621 for (; i < srcParts; i++)
Chris Lattner6b695682007-08-16 15:56:55 +00002622 if (src[i])
2623 return 1;
2624
2625 /* We fitted in the narrow destination. */
2626 return 0;
2627 }
2628}
2629
2630/* DST = LHS * RHS, where DST has the same width as the operands and
2631 is filled with the least significant parts of the result. Returns
2632 one if overflow occurred, otherwise zero. DST must be disjoint
2633 from both operands. */
2634int
2635APInt::tcMultiply(integerPart *dst, const integerPart *lhs,
2636 const integerPart *rhs, unsigned int parts)
2637{
2638 unsigned int i;
2639 int overflow;
2640
2641 assert(dst != lhs && dst != rhs);
2642
2643 overflow = 0;
2644 tcSet(dst, 0, parts);
2645
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002646 for (i = 0; i < parts; i++)
Chris Lattner6b695682007-08-16 15:56:55 +00002647 overflow |= tcMultiplyPart(&dst[i], lhs, rhs[i], 0, parts,
2648 parts - i, true);
2649
2650 return overflow;
2651}
2652
Neil Booth0ea72a92007-10-06 00:24:48 +00002653/* DST = LHS * RHS, where DST has width the sum of the widths of the
2654 operands. No overflow occurs. DST must be disjoint from both
2655 operands. Returns the number of parts required to hold the
2656 result. */
2657unsigned int
Chris Lattner6b695682007-08-16 15:56:55 +00002658APInt::tcFullMultiply(integerPart *dst, const integerPart *lhs,
Neil Booth0ea72a92007-10-06 00:24:48 +00002659 const integerPart *rhs, unsigned int lhsParts,
2660 unsigned int rhsParts)
Chris Lattner6b695682007-08-16 15:56:55 +00002661{
Neil Booth0ea72a92007-10-06 00:24:48 +00002662 /* Put the narrower number on the LHS for less loops below. */
2663 if (lhsParts > rhsParts) {
2664 return tcFullMultiply (dst, rhs, lhs, rhsParts, lhsParts);
2665 } else {
2666 unsigned int n;
Chris Lattner6b695682007-08-16 15:56:55 +00002667
Neil Booth0ea72a92007-10-06 00:24:48 +00002668 assert(dst != lhs && dst != rhs);
Chris Lattner6b695682007-08-16 15:56:55 +00002669
Neil Booth0ea72a92007-10-06 00:24:48 +00002670 tcSet(dst, 0, rhsParts);
Chris Lattner6b695682007-08-16 15:56:55 +00002671
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002672 for (n = 0; n < lhsParts; n++)
Neil Booth0ea72a92007-10-06 00:24:48 +00002673 tcMultiplyPart(&dst[n], rhs, lhs[n], 0, rhsParts, rhsParts + 1, true);
Chris Lattner6b695682007-08-16 15:56:55 +00002674
Neil Booth0ea72a92007-10-06 00:24:48 +00002675 n = lhsParts + rhsParts;
2676
2677 return n - (dst[n - 1] == 0);
2678 }
Chris Lattner6b695682007-08-16 15:56:55 +00002679}
2680
2681/* If RHS is zero LHS and REMAINDER are left unchanged, return one.
2682 Otherwise set LHS to LHS / RHS with the fractional part discarded,
2683 set REMAINDER to the remainder, return zero. i.e.
2684
2685 OLD_LHS = RHS * LHS + REMAINDER
2686
2687 SCRATCH is a bignum of the same size as the operands and result for
2688 use by the routine; its contents need not be initialized and are
2689 destroyed. LHS, REMAINDER and SCRATCH must be distinct.
2690*/
2691int
2692APInt::tcDivide(integerPart *lhs, const integerPart *rhs,
2693 integerPart *remainder, integerPart *srhs,
2694 unsigned int parts)
2695{
2696 unsigned int n, shiftCount;
2697 integerPart mask;
2698
2699 assert(lhs != remainder && lhs != srhs && remainder != srhs);
2700
Chris Lattnerfe02c1f2007-08-20 22:49:32 +00002701 shiftCount = tcMSB(rhs, parts) + 1;
2702 if (shiftCount == 0)
Chris Lattner6b695682007-08-16 15:56:55 +00002703 return true;
2704
Chris Lattnerfe02c1f2007-08-20 22:49:32 +00002705 shiftCount = parts * integerPartWidth - shiftCount;
Chris Lattner6b695682007-08-16 15:56:55 +00002706 n = shiftCount / integerPartWidth;
2707 mask = (integerPart) 1 << (shiftCount % integerPartWidth);
2708
2709 tcAssign(srhs, rhs, parts);
2710 tcShiftLeft(srhs, parts, shiftCount);
2711 tcAssign(remainder, lhs, parts);
2712 tcSet(lhs, 0, parts);
2713
2714 /* Loop, subtracting SRHS if REMAINDER is greater and adding that to
2715 the total. */
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002716 for (;;) {
Chris Lattner6b695682007-08-16 15:56:55 +00002717 int compare;
2718
2719 compare = tcCompare(remainder, srhs, parts);
2720 if (compare >= 0) {
2721 tcSubtract(remainder, srhs, 0, parts);
2722 lhs[n] |= mask;
2723 }
2724
2725 if (shiftCount == 0)
2726 break;
2727 shiftCount--;
2728 tcShiftRight(srhs, parts, 1);
2729 if ((mask >>= 1) == 0)
2730 mask = (integerPart) 1 << (integerPartWidth - 1), n--;
2731 }
2732
2733 return false;
2734}
2735
2736/* Shift a bignum left COUNT bits in-place. Shifted in bits are zero.
2737 There are no restrictions on COUNT. */
2738void
2739APInt::tcShiftLeft(integerPart *dst, unsigned int parts, unsigned int count)
2740{
Neil Boothb6182162007-10-08 13:47:12 +00002741 if (count) {
2742 unsigned int jump, shift;
Chris Lattner6b695682007-08-16 15:56:55 +00002743
Neil Boothb6182162007-10-08 13:47:12 +00002744 /* Jump is the inter-part jump; shift is is intra-part shift. */
2745 jump = count / integerPartWidth;
2746 shift = count % integerPartWidth;
Chris Lattner6b695682007-08-16 15:56:55 +00002747
Neil Boothb6182162007-10-08 13:47:12 +00002748 while (parts > jump) {
2749 integerPart part;
Chris Lattner6b695682007-08-16 15:56:55 +00002750
Neil Boothb6182162007-10-08 13:47:12 +00002751 parts--;
Chris Lattner6b695682007-08-16 15:56:55 +00002752
Neil Boothb6182162007-10-08 13:47:12 +00002753 /* dst[i] comes from the two parts src[i - jump] and, if we have
2754 an intra-part shift, src[i - jump - 1]. */
2755 part = dst[parts - jump];
2756 if (shift) {
2757 part <<= shift;
Chris Lattner6b695682007-08-16 15:56:55 +00002758 if (parts >= jump + 1)
2759 part |= dst[parts - jump - 1] >> (integerPartWidth - shift);
2760 }
2761
Neil Boothb6182162007-10-08 13:47:12 +00002762 dst[parts] = part;
2763 }
Chris Lattner6b695682007-08-16 15:56:55 +00002764
Neil Boothb6182162007-10-08 13:47:12 +00002765 while (parts > 0)
2766 dst[--parts] = 0;
2767 }
Chris Lattner6b695682007-08-16 15:56:55 +00002768}
2769
2770/* Shift a bignum right COUNT bits in-place. Shifted in bits are
2771 zero. There are no restrictions on COUNT. */
2772void
2773APInt::tcShiftRight(integerPart *dst, unsigned int parts, unsigned int count)
2774{
Neil Boothb6182162007-10-08 13:47:12 +00002775 if (count) {
2776 unsigned int i, jump, shift;
Chris Lattner6b695682007-08-16 15:56:55 +00002777
Neil Boothb6182162007-10-08 13:47:12 +00002778 /* Jump is the inter-part jump; shift is is intra-part shift. */
2779 jump = count / integerPartWidth;
2780 shift = count % integerPartWidth;
Chris Lattner6b695682007-08-16 15:56:55 +00002781
Neil Boothb6182162007-10-08 13:47:12 +00002782 /* Perform the shift. This leaves the most significant COUNT bits
2783 of the result at zero. */
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002784 for (i = 0; i < parts; i++) {
Neil Boothb6182162007-10-08 13:47:12 +00002785 integerPart part;
Chris Lattner6b695682007-08-16 15:56:55 +00002786
Neil Boothb6182162007-10-08 13:47:12 +00002787 if (i + jump >= parts) {
2788 part = 0;
2789 } else {
2790 part = dst[i + jump];
2791 if (shift) {
2792 part >>= shift;
2793 if (i + jump + 1 < parts)
2794 part |= dst[i + jump + 1] << (integerPartWidth - shift);
2795 }
Chris Lattner6b695682007-08-16 15:56:55 +00002796 }
Chris Lattner6b695682007-08-16 15:56:55 +00002797
Neil Boothb6182162007-10-08 13:47:12 +00002798 dst[i] = part;
2799 }
Chris Lattner6b695682007-08-16 15:56:55 +00002800 }
2801}
2802
2803/* Bitwise and of two bignums. */
2804void
2805APInt::tcAnd(integerPart *dst, const integerPart *rhs, unsigned int parts)
2806{
2807 unsigned int i;
2808
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002809 for (i = 0; i < parts; i++)
Chris Lattner6b695682007-08-16 15:56:55 +00002810 dst[i] &= rhs[i];
2811}
2812
2813/* Bitwise inclusive or of two bignums. */
2814void
2815APInt::tcOr(integerPart *dst, const integerPart *rhs, unsigned int parts)
2816{
2817 unsigned int i;
2818
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002819 for (i = 0; i < parts; i++)
Chris Lattner6b695682007-08-16 15:56:55 +00002820 dst[i] |= rhs[i];
2821}
2822
2823/* Bitwise exclusive or of two bignums. */
2824void
2825APInt::tcXor(integerPart *dst, const integerPart *rhs, unsigned int parts)
2826{
2827 unsigned int i;
2828
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002829 for (i = 0; i < parts; i++)
Chris Lattner6b695682007-08-16 15:56:55 +00002830 dst[i] ^= rhs[i];
2831}
2832
2833/* Complement a bignum in-place. */
2834void
2835APInt::tcComplement(integerPart *dst, unsigned int parts)
2836{
2837 unsigned int i;
2838
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002839 for (i = 0; i < parts; i++)
Chris Lattner6b695682007-08-16 15:56:55 +00002840 dst[i] = ~dst[i];
2841}
2842
2843/* Comparison (unsigned) of two bignums. */
2844int
2845APInt::tcCompare(const integerPart *lhs, const integerPart *rhs,
2846 unsigned int parts)
2847{
2848 while (parts) {
2849 parts--;
2850 if (lhs[parts] == rhs[parts])
2851 continue;
2852
2853 if (lhs[parts] > rhs[parts])
2854 return 1;
2855 else
2856 return -1;
2857 }
2858
2859 return 0;
2860}
2861
2862/* Increment a bignum in-place, return the carry flag. */
2863integerPart
2864APInt::tcIncrement(integerPart *dst, unsigned int parts)
2865{
2866 unsigned int i;
2867
Dan Gohmanb452d4e2010-03-24 19:38:02 +00002868 for (i = 0; i < parts; i++)
Chris Lattner6b695682007-08-16 15:56:55 +00002869 if (++dst[i] != 0)
2870 break;
2871
2872 return i == parts;
2873}
2874
Michael Gottesman9d406f42013-05-28 19:50:20 +00002875/* Decrement a bignum in-place, return the borrow flag. */
2876integerPart
2877APInt::tcDecrement(integerPart *dst, unsigned int parts) {
2878 for (unsigned int i = 0; i < parts; i++) {
2879 // If the current word is non-zero, then the decrement has no effect on the
2880 // higher-order words of the integer and no borrow can occur. Exit early.
2881 if (dst[i]--)
2882 return 0;
2883 }
2884 // If every word was zero, then there is a borrow.
2885 return 1;
2886}
2887
2888
Chris Lattner6b695682007-08-16 15:56:55 +00002889/* Set the least significant BITS bits of a bignum, clear the
2890 rest. */
2891void
2892APInt::tcSetLeastSignificantBits(integerPart *dst, unsigned int parts,
2893 unsigned int bits)
2894{
2895 unsigned int i;
2896
2897 i = 0;
2898 while (bits > integerPartWidth) {
2899 dst[i++] = ~(integerPart) 0;
2900 bits -= integerPartWidth;
2901 }
2902
2903 if (bits)
2904 dst[i++] = ~(integerPart) 0 >> (integerPartWidth - bits);
2905
2906 while (i < parts)
2907 dst[i++] = 0;
2908}