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cf01d68fd0
I think this method is probably too complex to be inlined. llvm-svn: 301901
2120 lines
68 KiB
C++
2120 lines
68 KiB
C++
//===-- llvm/ADT/APInt.h - For Arbitrary Precision Integer -----*- C++ -*--===//
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//
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// The LLVM Compiler Infrastructure
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//
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// This file is distributed under the University of Illinois Open Source
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// License. See LICENSE.TXT for details.
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//
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//===----------------------------------------------------------------------===//
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///
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/// \file
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/// \brief This file implements a class to represent arbitrary precision
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/// integral constant values and operations on them.
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///
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//===----------------------------------------------------------------------===//
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#ifndef LLVM_ADT_APINT_H
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#define LLVM_ADT_APINT_H
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#include "llvm/Support/Compiler.h"
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#include "llvm/Support/MathExtras.h"
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#include <cassert>
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#include <climits>
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#include <cstring>
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#include <string>
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namespace llvm {
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class FoldingSetNodeID;
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class StringRef;
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class hash_code;
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class raw_ostream;
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template <typename T> class SmallVectorImpl;
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template <typename T> class ArrayRef;
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class APInt;
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inline APInt operator-(APInt);
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//===----------------------------------------------------------------------===//
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// APInt Class
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//===----------------------------------------------------------------------===//
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/// \brief Class for arbitrary precision integers.
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///
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/// APInt is a functional replacement for common case unsigned integer type like
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/// "unsigned", "unsigned long" or "uint64_t", but also allows non-byte-width
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/// integer sizes and large integer value types such as 3-bits, 15-bits, or more
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/// than 64-bits of precision. APInt provides a variety of arithmetic operators
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/// and methods to manipulate integer values of any bit-width. It supports both
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/// the typical integer arithmetic and comparison operations as well as bitwise
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/// manipulation.
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///
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/// The class has several invariants worth noting:
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/// * All bit, byte, and word positions are zero-based.
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/// * Once the bit width is set, it doesn't change except by the Truncate,
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/// SignExtend, or ZeroExtend operations.
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/// * All binary operators must be on APInt instances of the same bit width.
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/// Attempting to use these operators on instances with different bit
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/// widths will yield an assertion.
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/// * The value is stored canonically as an unsigned value. For operations
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/// where it makes a difference, there are both signed and unsigned variants
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/// of the operation. For example, sdiv and udiv. However, because the bit
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/// widths must be the same, operations such as Mul and Add produce the same
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/// results regardless of whether the values are interpreted as signed or
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/// not.
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/// * In general, the class tries to follow the style of computation that LLVM
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/// uses in its IR. This simplifies its use for LLVM.
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///
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class LLVM_NODISCARD APInt {
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public:
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typedef uint64_t WordType;
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/// This enum is used to hold the constants we needed for APInt.
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enum : unsigned {
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/// Byte size of a word.
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APINT_WORD_SIZE = sizeof(WordType),
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/// Bits in a word.
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APINT_BITS_PER_WORD = APINT_WORD_SIZE * CHAR_BIT
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};
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static const WordType WORD_MAX = ~WordType(0);
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private:
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/// This union is used to store the integer value. When the
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/// integer bit-width <= 64, it uses VAL, otherwise it uses pVal.
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union {
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uint64_t VAL; ///< Used to store the <= 64 bits integer value.
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uint64_t *pVal; ///< Used to store the >64 bits integer value.
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};
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unsigned BitWidth; ///< The number of bits in this APInt.
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friend struct DenseMapAPIntKeyInfo;
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friend class APSInt;
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/// \brief Fast internal constructor
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///
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/// This constructor is used only internally for speed of construction of
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/// temporaries. It is unsafe for general use so it is not public.
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APInt(uint64_t *val, unsigned bits) : pVal(val), BitWidth(bits) {}
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/// \brief Determine if this APInt just has one word to store value.
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///
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/// \returns true if the number of bits <= 64, false otherwise.
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bool isSingleWord() const { return BitWidth <= APINT_BITS_PER_WORD; }
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/// \brief Determine which word a bit is in.
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///
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/// \returns the word position for the specified bit position.
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static unsigned whichWord(unsigned bitPosition) {
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return bitPosition / APINT_BITS_PER_WORD;
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}
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/// \brief Determine which bit in a word a bit is in.
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///
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/// \returns the bit position in a word for the specified bit position
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/// in the APInt.
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static unsigned whichBit(unsigned bitPosition) {
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return bitPosition % APINT_BITS_PER_WORD;
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}
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/// \brief Get a single bit mask.
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///
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/// \returns a uint64_t with only bit at "whichBit(bitPosition)" set
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/// This method generates and returns a uint64_t (word) mask for a single
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/// bit at a specific bit position. This is used to mask the bit in the
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/// corresponding word.
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static uint64_t maskBit(unsigned bitPosition) {
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return 1ULL << whichBit(bitPosition);
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}
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/// \brief Clear unused high order bits
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///
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/// This method is used internally to clear the top "N" bits in the high order
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/// word that are not used by the APInt. This is needed after the most
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/// significant word is assigned a value to ensure that those bits are
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/// zero'd out.
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APInt &clearUnusedBits() {
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// Compute how many bits are used in the final word
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unsigned WordBits = ((BitWidth-1) % APINT_BITS_PER_WORD) + 1;
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// Mask out the high bits.
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uint64_t mask = WORD_MAX >> (APINT_BITS_PER_WORD - WordBits);
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if (isSingleWord())
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VAL &= mask;
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else
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pVal[getNumWords() - 1] &= mask;
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return *this;
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}
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/// \brief Get the word corresponding to a bit position
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/// \returns the corresponding word for the specified bit position.
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uint64_t getWord(unsigned bitPosition) const {
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return isSingleWord() ? VAL : pVal[whichWord(bitPosition)];
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}
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/// \brief Convert a char array into an APInt
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///
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/// \param radix 2, 8, 10, 16, or 36
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/// Converts a string into a number. The string must be non-empty
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/// and well-formed as a number of the given base. The bit-width
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/// must be sufficient to hold the result.
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///
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/// This is used by the constructors that take string arguments.
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///
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/// StringRef::getAsInteger is superficially similar but (1) does
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/// not assume that the string is well-formed and (2) grows the
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/// result to hold the input.
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void fromString(unsigned numBits, StringRef str, uint8_t radix);
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/// \brief An internal division function for dividing APInts.
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///
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/// This is used by the toString method to divide by the radix. It simply
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/// provides a more convenient form of divide for internal use since KnuthDiv
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/// has specific constraints on its inputs. If those constraints are not met
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/// then it provides a simpler form of divide.
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static void divide(const APInt &LHS, unsigned lhsWords, const APInt &RHS,
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unsigned rhsWords, APInt *Quotient, APInt *Remainder);
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/// out-of-line slow case for inline constructor
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void initSlowCase(uint64_t val, bool isSigned);
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/// shared code between two array constructors
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void initFromArray(ArrayRef<uint64_t> array);
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/// out-of-line slow case for inline copy constructor
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void initSlowCase(const APInt &that);
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/// out-of-line slow case for shl
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void shlSlowCase(unsigned ShiftAmt);
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/// out-of-line slow case for lshr.
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void lshrSlowCase(unsigned ShiftAmt);
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/// out-of-line slow case for ashr.
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void ashrSlowCase(unsigned ShiftAmt);
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/// out-of-line slow case for operator=
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void AssignSlowCase(const APInt &RHS);
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/// out-of-line slow case for operator==
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bool EqualSlowCase(const APInt &RHS) const LLVM_READONLY;
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/// out-of-line slow case for countLeadingZeros
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unsigned countLeadingZerosSlowCase() const LLVM_READONLY;
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/// out-of-line slow case for countTrailingOnes
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unsigned countTrailingOnesSlowCase() const LLVM_READONLY;
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/// out-of-line slow case for countPopulation
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unsigned countPopulationSlowCase() const LLVM_READONLY;
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/// out-of-line slow case for intersects.
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bool intersectsSlowCase(const APInt &RHS) const LLVM_READONLY;
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/// out-of-line slow case for isSubsetOf.
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bool isSubsetOfSlowCase(const APInt &RHS) const LLVM_READONLY;
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/// out-of-line slow case for setBits.
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void setBitsSlowCase(unsigned loBit, unsigned hiBit);
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/// out-of-line slow case for flipAllBits.
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void flipAllBitsSlowCase();
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/// out-of-line slow case for operator&=.
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void AndAssignSlowCase(const APInt& RHS);
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/// out-of-line slow case for operator|=.
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void OrAssignSlowCase(const APInt& RHS);
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/// out-of-line slow case for operator^=.
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void XorAssignSlowCase(const APInt& RHS);
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/// Unsigned comparison. Returns -1, 0, or 1 if this APInt is less than, equal
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/// to, or greater than RHS.
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int compare(const APInt &RHS) const LLVM_READONLY;
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/// Signed comparison. Returns -1, 0, or 1 if this APInt is less than, equal
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/// to, or greater than RHS.
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int compareSigned(const APInt &RHS) const LLVM_READONLY;
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public:
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/// \name Constructors
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/// @{
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/// \brief Create a new APInt of numBits width, initialized as val.
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///
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/// If isSigned is true then val is treated as if it were a signed value
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/// (i.e. as an int64_t) and the appropriate sign extension to the bit width
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/// will be done. Otherwise, no sign extension occurs (high order bits beyond
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/// the range of val are zero filled).
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///
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/// \param numBits the bit width of the constructed APInt
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/// \param val the initial value of the APInt
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/// \param isSigned how to treat signedness of val
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APInt(unsigned numBits, uint64_t val, bool isSigned = false)
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: BitWidth(numBits) {
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assert(BitWidth && "bitwidth too small");
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if (isSingleWord()) {
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VAL = val;
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clearUnusedBits();
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} else {
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initSlowCase(val, isSigned);
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}
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}
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/// \brief Construct an APInt of numBits width, initialized as bigVal[].
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///
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/// Note that bigVal.size() can be smaller or larger than the corresponding
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/// bit width but any extraneous bits will be dropped.
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///
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/// \param numBits the bit width of the constructed APInt
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/// \param bigVal a sequence of words to form the initial value of the APInt
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APInt(unsigned numBits, ArrayRef<uint64_t> bigVal);
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/// Equivalent to APInt(numBits, ArrayRef<uint64_t>(bigVal, numWords)), but
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/// deprecated because this constructor is prone to ambiguity with the
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/// APInt(unsigned, uint64_t, bool) constructor.
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///
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/// If this overload is ever deleted, care should be taken to prevent calls
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/// from being incorrectly captured by the APInt(unsigned, uint64_t, bool)
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/// constructor.
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APInt(unsigned numBits, unsigned numWords, const uint64_t bigVal[]);
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/// \brief Construct an APInt from a string representation.
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///
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/// This constructor interprets the string \p str in the given radix. The
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/// interpretation stops when the first character that is not suitable for the
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/// radix is encountered, or the end of the string. Acceptable radix values
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/// are 2, 8, 10, 16, and 36. It is an error for the value implied by the
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/// string to require more bits than numBits.
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///
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/// \param numBits the bit width of the constructed APInt
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/// \param str the string to be interpreted
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/// \param radix the radix to use for the conversion
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APInt(unsigned numBits, StringRef str, uint8_t radix);
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/// Simply makes *this a copy of that.
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/// @brief Copy Constructor.
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APInt(const APInt &that) : BitWidth(that.BitWidth) {
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if (isSingleWord())
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VAL = that.VAL;
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else
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initSlowCase(that);
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}
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/// \brief Move Constructor.
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APInt(APInt &&that) : VAL(that.VAL), BitWidth(that.BitWidth) {
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that.BitWidth = 0;
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}
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/// \brief Destructor.
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~APInt() {
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if (needsCleanup())
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delete[] pVal;
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}
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/// \brief Default constructor that creates an uninteresting APInt
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/// representing a 1-bit zero value.
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///
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/// This is useful for object deserialization (pair this with the static
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/// method Read).
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explicit APInt() : VAL(0), BitWidth(1) {}
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/// \brief Returns whether this instance allocated memory.
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bool needsCleanup() const { return !isSingleWord(); }
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/// Used to insert APInt objects, or objects that contain APInt objects, into
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/// FoldingSets.
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void Profile(FoldingSetNodeID &id) const;
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/// @}
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/// \name Value Tests
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/// @{
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/// \brief Determine sign of this APInt.
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///
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/// This tests the high bit of this APInt to determine if it is set.
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///
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/// \returns true if this APInt is negative, false otherwise
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bool isNegative() const { return (*this)[BitWidth - 1]; }
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/// \brief Determine if this APInt Value is non-negative (>= 0)
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///
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/// This tests the high bit of the APInt to determine if it is unset.
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bool isNonNegative() const { return !isNegative(); }
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/// \brief Determine if sign bit of this APInt is set.
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///
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/// This tests the high bit of this APInt to determine if it is set.
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///
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/// \returns true if this APInt has its sign bit set, false otherwise.
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bool isSignBitSet() const { return (*this)[BitWidth-1]; }
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/// \brief Determine if sign bit of this APInt is clear.
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///
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/// This tests the high bit of this APInt to determine if it is clear.
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///
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/// \returns true if this APInt has its sign bit clear, false otherwise.
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bool isSignBitClear() const { return !isSignBitSet(); }
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/// \brief Determine if this APInt Value is positive.
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///
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/// This tests if the value of this APInt is positive (> 0). Note
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/// that 0 is not a positive value.
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///
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/// \returns true if this APInt is positive.
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bool isStrictlyPositive() const { return isNonNegative() && !isNullValue(); }
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/// \brief Determine if all bits are set
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///
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/// This checks to see if the value has all bits of the APInt are set or not.
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bool isAllOnesValue() const {
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if (isSingleWord())
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return VAL == WORD_MAX >> (APINT_BITS_PER_WORD - BitWidth);
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return countPopulationSlowCase() == BitWidth;
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}
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/// \brief Determine if all bits are clear
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///
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/// This checks to see if the value has all bits of the APInt are clear or
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/// not.
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bool isNullValue() const { return !*this; }
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/// \brief Determine if this is the largest unsigned value.
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///
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/// This checks to see if the value of this APInt is the maximum unsigned
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/// value for the APInt's bit width.
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bool isMaxValue() const { return isAllOnesValue(); }
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/// \brief Determine if this is the largest signed value.
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///
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/// This checks to see if the value of this APInt is the maximum signed
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/// value for the APInt's bit width.
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bool isMaxSignedValue() const {
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return !isNegative() && countPopulation() == BitWidth - 1;
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}
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/// \brief Determine if this is the smallest unsigned value.
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///
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/// This checks to see if the value of this APInt is the minimum unsigned
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/// value for the APInt's bit width.
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bool isMinValue() const { return isNullValue(); }
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/// \brief Determine if this is the smallest signed value.
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///
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/// This checks to see if the value of this APInt is the minimum signed
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/// value for the APInt's bit width.
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bool isMinSignedValue() const {
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return isNegative() && isPowerOf2();
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}
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/// \brief Check if this APInt has an N-bits unsigned integer value.
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bool isIntN(unsigned N) const {
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assert(N && "N == 0 ???");
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return getActiveBits() <= N;
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}
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/// \brief Check if this APInt has an N-bits signed integer value.
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bool isSignedIntN(unsigned N) const {
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assert(N && "N == 0 ???");
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return getMinSignedBits() <= N;
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}
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/// \brief Check if this APInt's value is a power of two greater than zero.
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///
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/// \returns true if the argument APInt value is a power of two > 0.
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bool isPowerOf2() const {
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if (isSingleWord())
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return isPowerOf2_64(VAL);
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return countPopulationSlowCase() == 1;
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}
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/// \brief Check if the APInt's value is returned by getSignMask.
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///
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/// \returns true if this is the value returned by getSignMask.
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bool isSignMask() const { return isMinSignedValue(); }
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/// \brief Convert APInt to a boolean value.
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///
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/// This converts the APInt to a boolean value as a test against zero.
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bool getBoolValue() const { return !!*this; }
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/// If this value is smaller than the specified limit, return it, otherwise
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/// return the limit value. This causes the value to saturate to the limit.
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uint64_t getLimitedValue(uint64_t Limit = UINT64_MAX) const {
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return ugt(Limit) ? Limit : getZExtValue();
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}
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/// \brief Check if the APInt consists of a repeated bit pattern.
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///
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/// e.g. 0x01010101 satisfies isSplat(8).
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/// \param SplatSizeInBits The size of the pattern in bits. Must divide bit
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/// width without remainder.
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bool isSplat(unsigned SplatSizeInBits) const;
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/// \returns true if this APInt value is a sequence of \param numBits ones
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/// starting at the least significant bit with the remainder zero.
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bool isMask(unsigned numBits) const {
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assert(numBits != 0 && "numBits must be non-zero");
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assert(numBits <= BitWidth && "numBits out of range");
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if (isSingleWord())
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return VAL == (WORD_MAX >> (APINT_BITS_PER_WORD - numBits));
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unsigned Ones = countTrailingOnesSlowCase();
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return (numBits == Ones) &&
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((Ones + countLeadingZerosSlowCase()) == BitWidth);
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}
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/// \returns true if this APInt is a non-empty sequence of ones starting at
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/// the least significant bit with the remainder zero.
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/// Ex. isMask(0x0000FFFFU) == true.
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bool isMask() const {
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if (isSingleWord())
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return isMask_64(VAL);
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unsigned Ones = countTrailingOnesSlowCase();
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return (Ones > 0) && ((Ones + countLeadingZerosSlowCase()) == BitWidth);
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}
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/// \brief Return true if this APInt value contains a sequence of ones with
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/// the remainder zero.
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bool isShiftedMask() const {
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if (isSingleWord())
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return isShiftedMask_64(VAL);
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unsigned Ones = countPopulationSlowCase();
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unsigned LeadZ = countLeadingZerosSlowCase();
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return (Ones + LeadZ + countTrailingZeros()) == BitWidth;
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}
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/// @}
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/// \name Value Generators
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/// @{
|
|
|
|
/// \brief Gets maximum unsigned value of APInt for specific bit width.
|
|
static APInt getMaxValue(unsigned numBits) {
|
|
return getAllOnesValue(numBits);
|
|
}
|
|
|
|
/// \brief Gets maximum signed value of APInt for a specific bit width.
|
|
static APInt getSignedMaxValue(unsigned numBits) {
|
|
APInt API = getAllOnesValue(numBits);
|
|
API.clearBit(numBits - 1);
|
|
return API;
|
|
}
|
|
|
|
/// \brief Gets minimum unsigned value of APInt for a specific bit width.
|
|
static APInt getMinValue(unsigned numBits) { return APInt(numBits, 0); }
|
|
|
|
/// \brief Gets minimum signed value of APInt for a specific bit width.
|
|
static APInt getSignedMinValue(unsigned numBits) {
|
|
APInt API(numBits, 0);
|
|
API.setBit(numBits - 1);
|
|
return API;
|
|
}
|
|
|
|
/// \brief Get the SignMask for a specific bit width.
|
|
///
|
|
/// This is just a wrapper function of getSignedMinValue(), and it helps code
|
|
/// readability when we want to get a SignMask.
|
|
static APInt getSignMask(unsigned BitWidth) {
|
|
return getSignedMinValue(BitWidth);
|
|
}
|
|
|
|
/// \brief Get the all-ones value.
|
|
///
|
|
/// \returns the all-ones value for an APInt of the specified bit-width.
|
|
static APInt getAllOnesValue(unsigned numBits) {
|
|
return APInt(numBits, WORD_MAX, true);
|
|
}
|
|
|
|
/// \brief Get the '0' value.
|
|
///
|
|
/// \returns the '0' value for an APInt of the specified bit-width.
|
|
static APInt getNullValue(unsigned numBits) { return APInt(numBits, 0); }
|
|
|
|
/// \brief Compute an APInt containing numBits highbits from this APInt.
|
|
///
|
|
/// Get an APInt with the same BitWidth as this APInt, just zero mask
|
|
/// the low bits and right shift to the least significant bit.
|
|
///
|
|
/// \returns the high "numBits" bits of this APInt.
|
|
APInt getHiBits(unsigned numBits) const;
|
|
|
|
/// \brief Compute an APInt containing numBits lowbits from this APInt.
|
|
///
|
|
/// Get an APInt with the same BitWidth as this APInt, just zero mask
|
|
/// the high bits.
|
|
///
|
|
/// \returns the low "numBits" bits of this APInt.
|
|
APInt getLoBits(unsigned numBits) const;
|
|
|
|
/// \brief Return an APInt with exactly one bit set in the result.
|
|
static APInt getOneBitSet(unsigned numBits, unsigned BitNo) {
|
|
APInt Res(numBits, 0);
|
|
Res.setBit(BitNo);
|
|
return Res;
|
|
}
|
|
|
|
/// \brief Get a value with a block of bits set.
|
|
///
|
|
/// Constructs an APInt value that has a contiguous range of bits set. The
|
|
/// bits from loBit (inclusive) to hiBit (exclusive) will be set. All other
|
|
/// bits will be zero. For example, with parameters(32, 0, 16) you would get
|
|
/// 0x0000FFFF. If hiBit is less than loBit then the set bits "wrap". For
|
|
/// example, with parameters (32, 28, 4), you would get 0xF000000F.
|
|
///
|
|
/// \param numBits the intended bit width of the result
|
|
/// \param loBit the index of the lowest bit set.
|
|
/// \param hiBit the index of the highest bit set.
|
|
///
|
|
/// \returns An APInt value with the requested bits set.
|
|
static APInt getBitsSet(unsigned numBits, unsigned loBit, unsigned hiBit) {
|
|
APInt Res(numBits, 0);
|
|
Res.setBits(loBit, hiBit);
|
|
return Res;
|
|
}
|
|
|
|
/// \brief Get a value with upper bits starting at loBit set.
|
|
///
|
|
/// Constructs an APInt value that has a contiguous range of bits set. The
|
|
/// bits from loBit (inclusive) to numBits (exclusive) will be set. All other
|
|
/// bits will be zero. For example, with parameters(32, 12) you would get
|
|
/// 0xFFFFF000.
|
|
///
|
|
/// \param numBits the intended bit width of the result
|
|
/// \param loBit the index of the lowest bit to set.
|
|
///
|
|
/// \returns An APInt value with the requested bits set.
|
|
static APInt getBitsSetFrom(unsigned numBits, unsigned loBit) {
|
|
APInt Res(numBits, 0);
|
|
Res.setBitsFrom(loBit);
|
|
return Res;
|
|
}
|
|
|
|
/// \brief Get a value with high bits set
|
|
///
|
|
/// Constructs an APInt value that has the top hiBitsSet bits set.
|
|
///
|
|
/// \param numBits the bitwidth of the result
|
|
/// \param hiBitsSet the number of high-order bits set in the result.
|
|
static APInt getHighBitsSet(unsigned numBits, unsigned hiBitsSet) {
|
|
APInt Res(numBits, 0);
|
|
Res.setHighBits(hiBitsSet);
|
|
return Res;
|
|
}
|
|
|
|
/// \brief Get a value with low bits set
|
|
///
|
|
/// Constructs an APInt value that has the bottom loBitsSet bits set.
|
|
///
|
|
/// \param numBits the bitwidth of the result
|
|
/// \param loBitsSet the number of low-order bits set in the result.
|
|
static APInt getLowBitsSet(unsigned numBits, unsigned loBitsSet) {
|
|
APInt Res(numBits, 0);
|
|
Res.setLowBits(loBitsSet);
|
|
return Res;
|
|
}
|
|
|
|
/// \brief Return a value containing V broadcasted over NewLen bits.
|
|
static APInt getSplat(unsigned NewLen, const APInt &V);
|
|
|
|
/// \brief Determine if two APInts have the same value, after zero-extending
|
|
/// one of them (if needed!) to ensure that the bit-widths match.
|
|
static bool isSameValue(const APInt &I1, const APInt &I2) {
|
|
if (I1.getBitWidth() == I2.getBitWidth())
|
|
return I1 == I2;
|
|
|
|
if (I1.getBitWidth() > I2.getBitWidth())
|
|
return I1 == I2.zext(I1.getBitWidth());
|
|
|
|
return I1.zext(I2.getBitWidth()) == I2;
|
|
}
|
|
|
|
/// \brief Overload to compute a hash_code for an APInt value.
|
|
friend hash_code hash_value(const APInt &Arg);
|
|
|
|
/// This function returns a pointer to the internal storage of the APInt.
|
|
/// This is useful for writing out the APInt in binary form without any
|
|
/// conversions.
|
|
const uint64_t *getRawData() const {
|
|
if (isSingleWord())
|
|
return &VAL;
|
|
return &pVal[0];
|
|
}
|
|
|
|
/// @}
|
|
/// \name Unary Operators
|
|
/// @{
|
|
|
|
/// \brief Postfix increment operator.
|
|
///
|
|
/// Increments *this by 1.
|
|
///
|
|
/// \returns a new APInt value representing the original value of *this.
|
|
const APInt operator++(int) {
|
|
APInt API(*this);
|
|
++(*this);
|
|
return API;
|
|
}
|
|
|
|
/// \brief Prefix increment operator.
|
|
///
|
|
/// \returns *this incremented by one
|
|
APInt &operator++();
|
|
|
|
/// \brief Postfix decrement operator.
|
|
///
|
|
/// Decrements *this by 1.
|
|
///
|
|
/// \returns a new APInt value representing the original value of *this.
|
|
const APInt operator--(int) {
|
|
APInt API(*this);
|
|
--(*this);
|
|
return API;
|
|
}
|
|
|
|
/// \brief Prefix decrement operator.
|
|
///
|
|
/// \returns *this decremented by one.
|
|
APInt &operator--();
|
|
|
|
/// \brief Logical negation operator.
|
|
///
|
|
/// Performs logical negation operation on this APInt.
|
|
///
|
|
/// \returns true if *this is zero, false otherwise.
|
|
bool operator!() const {
|
|
if (isSingleWord())
|
|
return VAL == 0;
|
|
return countLeadingZerosSlowCase() == BitWidth;
|
|
}
|
|
|
|
/// @}
|
|
/// \name Assignment Operators
|
|
/// @{
|
|
|
|
/// \brief Copy assignment operator.
|
|
///
|
|
/// \returns *this after assignment of RHS.
|
|
APInt &operator=(const APInt &RHS) {
|
|
// If the bitwidths are the same, we can avoid mucking with memory
|
|
if (isSingleWord() && RHS.isSingleWord()) {
|
|
VAL = RHS.VAL;
|
|
BitWidth = RHS.BitWidth;
|
|
return clearUnusedBits();
|
|
}
|
|
|
|
AssignSlowCase(RHS);
|
|
return *this;
|
|
}
|
|
|
|
/// @brief Move assignment operator.
|
|
APInt &operator=(APInt &&that) {
|
|
assert(this != &that && "Self-move not supported");
|
|
if (!isSingleWord())
|
|
delete[] pVal;
|
|
|
|
// Use memcpy so that type based alias analysis sees both VAL and pVal
|
|
// as modified.
|
|
memcpy(&VAL, &that.VAL, sizeof(uint64_t));
|
|
|
|
BitWidth = that.BitWidth;
|
|
that.BitWidth = 0;
|
|
|
|
return *this;
|
|
}
|
|
|
|
/// \brief Assignment operator.
|
|
///
|
|
/// The RHS value is assigned to *this. If the significant bits in RHS exceed
|
|
/// the bit width, the excess bits are truncated. If the bit width is larger
|
|
/// than 64, the value is zero filled in the unspecified high order bits.
|
|
///
|
|
/// \returns *this after assignment of RHS value.
|
|
APInt &operator=(uint64_t RHS) {
|
|
if (isSingleWord()) {
|
|
VAL = RHS;
|
|
clearUnusedBits();
|
|
} else {
|
|
pVal[0] = RHS;
|
|
memset(pVal+1, 0, (getNumWords() - 1) * APINT_WORD_SIZE);
|
|
}
|
|
return *this;
|
|
}
|
|
|
|
/// \brief Bitwise AND assignment operator.
|
|
///
|
|
/// Performs a bitwise AND operation on this APInt and RHS. The result is
|
|
/// assigned to *this.
|
|
///
|
|
/// \returns *this after ANDing with RHS.
|
|
APInt &operator&=(const APInt &RHS) {
|
|
assert(BitWidth == RHS.BitWidth && "Bit widths must be the same");
|
|
if (isSingleWord())
|
|
VAL &= RHS.VAL;
|
|
else
|
|
AndAssignSlowCase(RHS);
|
|
return *this;
|
|
}
|
|
|
|
/// \brief Bitwise AND assignment operator.
|
|
///
|
|
/// Performs a bitwise AND operation on this APInt and RHS. RHS is
|
|
/// logically zero-extended or truncated to match the bit-width of
|
|
/// the LHS.
|
|
APInt &operator&=(uint64_t RHS) {
|
|
if (isSingleWord()) {
|
|
VAL &= RHS;
|
|
return *this;
|
|
}
|
|
pVal[0] &= RHS;
|
|
memset(pVal+1, 0, (getNumWords() - 1) * APINT_WORD_SIZE);
|
|
return *this;
|
|
}
|
|
|
|
/// \brief Bitwise OR assignment operator.
|
|
///
|
|
/// Performs a bitwise OR operation on this APInt and RHS. The result is
|
|
/// assigned *this;
|
|
///
|
|
/// \returns *this after ORing with RHS.
|
|
APInt &operator|=(const APInt &RHS) {
|
|
assert(BitWidth == RHS.BitWidth && "Bit widths must be the same");
|
|
if (isSingleWord())
|
|
VAL |= RHS.VAL;
|
|
else
|
|
OrAssignSlowCase(RHS);
|
|
return *this;
|
|
}
|
|
|
|
/// \brief Bitwise OR assignment operator.
|
|
///
|
|
/// Performs a bitwise OR operation on this APInt and RHS. RHS is
|
|
/// logically zero-extended or truncated to match the bit-width of
|
|
/// the LHS.
|
|
APInt &operator|=(uint64_t RHS) {
|
|
if (isSingleWord()) {
|
|
VAL |= RHS;
|
|
clearUnusedBits();
|
|
} else {
|
|
pVal[0] |= RHS;
|
|
}
|
|
return *this;
|
|
}
|
|
|
|
/// \brief Bitwise XOR assignment operator.
|
|
///
|
|
/// Performs a bitwise XOR operation on this APInt and RHS. The result is
|
|
/// assigned to *this.
|
|
///
|
|
/// \returns *this after XORing with RHS.
|
|
APInt &operator^=(const APInt &RHS) {
|
|
assert(BitWidth == RHS.BitWidth && "Bit widths must be the same");
|
|
if (isSingleWord())
|
|
VAL ^= RHS.VAL;
|
|
else
|
|
XorAssignSlowCase(RHS);
|
|
return *this;
|
|
}
|
|
|
|
/// \brief Bitwise XOR assignment operator.
|
|
///
|
|
/// Performs a bitwise XOR operation on this APInt and RHS. RHS is
|
|
/// logically zero-extended or truncated to match the bit-width of
|
|
/// the LHS.
|
|
APInt &operator^=(uint64_t RHS) {
|
|
if (isSingleWord()) {
|
|
VAL ^= RHS;
|
|
clearUnusedBits();
|
|
} else {
|
|
pVal[0] ^= RHS;
|
|
}
|
|
return *this;
|
|
}
|
|
|
|
/// \brief Multiplication assignment operator.
|
|
///
|
|
/// Multiplies this APInt by RHS and assigns the result to *this.
|
|
///
|
|
/// \returns *this
|
|
APInt &operator*=(const APInt &RHS);
|
|
|
|
/// \brief Addition assignment operator.
|
|
///
|
|
/// Adds RHS to *this and assigns the result to *this.
|
|
///
|
|
/// \returns *this
|
|
APInt &operator+=(const APInt &RHS);
|
|
APInt &operator+=(uint64_t RHS);
|
|
|
|
/// \brief Subtraction assignment operator.
|
|
///
|
|
/// Subtracts RHS from *this and assigns the result to *this.
|
|
///
|
|
/// \returns *this
|
|
APInt &operator-=(const APInt &RHS);
|
|
APInt &operator-=(uint64_t RHS);
|
|
|
|
/// \brief Left-shift assignment function.
|
|
///
|
|
/// Shifts *this left by shiftAmt and assigns the result to *this.
|
|
///
|
|
/// \returns *this after shifting left by ShiftAmt
|
|
APInt &operator<<=(unsigned ShiftAmt) {
|
|
assert(ShiftAmt <= BitWidth && "Invalid shift amount");
|
|
if (isSingleWord()) {
|
|
if (ShiftAmt == BitWidth)
|
|
VAL = 0;
|
|
else
|
|
VAL <<= ShiftAmt;
|
|
return clearUnusedBits();
|
|
}
|
|
shlSlowCase(ShiftAmt);
|
|
return *this;
|
|
}
|
|
|
|
/// \brief Left-shift assignment function.
|
|
///
|
|
/// Shifts *this left by shiftAmt and assigns the result to *this.
|
|
///
|
|
/// \returns *this after shifting left by ShiftAmt
|
|
APInt &operator<<=(const APInt &ShiftAmt);
|
|
|
|
/// @}
|
|
/// \name Binary Operators
|
|
/// @{
|
|
|
|
/// \brief Multiplication operator.
|
|
///
|
|
/// Multiplies this APInt by RHS and returns the result.
|
|
APInt operator*(const APInt &RHS) const;
|
|
|
|
/// \brief Left logical shift operator.
|
|
///
|
|
/// Shifts this APInt left by \p Bits and returns the result.
|
|
APInt operator<<(unsigned Bits) const { return shl(Bits); }
|
|
|
|
/// \brief Left logical shift operator.
|
|
///
|
|
/// Shifts this APInt left by \p Bits and returns the result.
|
|
APInt operator<<(const APInt &Bits) const { return shl(Bits); }
|
|
|
|
/// \brief Arithmetic right-shift function.
|
|
///
|
|
/// Arithmetic right-shift this APInt by shiftAmt.
|
|
APInt ashr(unsigned ShiftAmt) const {
|
|
APInt R(*this);
|
|
R.ashrInPlace(ShiftAmt);
|
|
return R;
|
|
}
|
|
|
|
/// Arithmetic right-shift this APInt by ShiftAmt in place.
|
|
void ashrInPlace(unsigned ShiftAmt) {
|
|
assert(ShiftAmt <= BitWidth && "Invalid shift amount");
|
|
if (isSingleWord()) {
|
|
int64_t SExtVAL = SignExtend64(VAL, BitWidth);
|
|
if (ShiftAmt == BitWidth)
|
|
VAL = SExtVAL >> (APINT_BITS_PER_WORD - 1); // Fill with sign bit.
|
|
else
|
|
VAL = SExtVAL >> ShiftAmt;
|
|
clearUnusedBits();
|
|
return;
|
|
}
|
|
ashrSlowCase(ShiftAmt);
|
|
}
|
|
|
|
/// \brief Logical right-shift function.
|
|
///
|
|
/// Logical right-shift this APInt by shiftAmt.
|
|
APInt lshr(unsigned shiftAmt) const {
|
|
APInt R(*this);
|
|
R.lshrInPlace(shiftAmt);
|
|
return R;
|
|
}
|
|
|
|
/// Logical right-shift this APInt by ShiftAmt in place.
|
|
void lshrInPlace(unsigned ShiftAmt) {
|
|
assert(ShiftAmt <= BitWidth && "Invalid shift amount");
|
|
if (isSingleWord()) {
|
|
if (ShiftAmt == BitWidth)
|
|
VAL = 0;
|
|
else
|
|
VAL >>= ShiftAmt;
|
|
return;
|
|
}
|
|
lshrSlowCase(ShiftAmt);
|
|
}
|
|
|
|
/// \brief Left-shift function.
|
|
///
|
|
/// Left-shift this APInt by shiftAmt.
|
|
APInt shl(unsigned shiftAmt) const {
|
|
APInt R(*this);
|
|
R <<= shiftAmt;
|
|
return R;
|
|
}
|
|
|
|
/// \brief Rotate left by rotateAmt.
|
|
APInt rotl(unsigned rotateAmt) const;
|
|
|
|
/// \brief Rotate right by rotateAmt.
|
|
APInt rotr(unsigned rotateAmt) const;
|
|
|
|
/// \brief Arithmetic right-shift function.
|
|
///
|
|
/// Arithmetic right-shift this APInt by shiftAmt.
|
|
APInt ashr(const APInt &ShiftAmt) const {
|
|
APInt R(*this);
|
|
R.ashrInPlace(ShiftAmt);
|
|
return R;
|
|
}
|
|
|
|
/// Arithmetic right-shift this APInt by shiftAmt in place.
|
|
void ashrInPlace(const APInt &shiftAmt);
|
|
|
|
/// \brief Logical right-shift function.
|
|
///
|
|
/// Logical right-shift this APInt by shiftAmt.
|
|
APInt lshr(const APInt &ShiftAmt) const {
|
|
APInt R(*this);
|
|
R.lshrInPlace(ShiftAmt);
|
|
return R;
|
|
}
|
|
|
|
/// Logical right-shift this APInt by ShiftAmt in place.
|
|
void lshrInPlace(const APInt &ShiftAmt);
|
|
|
|
/// \brief Left-shift function.
|
|
///
|
|
/// Left-shift this APInt by shiftAmt.
|
|
APInt shl(const APInt &ShiftAmt) const {
|
|
APInt R(*this);
|
|
R <<= ShiftAmt;
|
|
return R;
|
|
}
|
|
|
|
/// \brief Rotate left by rotateAmt.
|
|
APInt rotl(const APInt &rotateAmt) const;
|
|
|
|
/// \brief Rotate right by rotateAmt.
|
|
APInt rotr(const APInt &rotateAmt) const;
|
|
|
|
/// \brief Unsigned division operation.
|
|
///
|
|
/// Perform an unsigned divide operation on this APInt by RHS. Both this and
|
|
/// RHS are treated as unsigned quantities for purposes of this division.
|
|
///
|
|
/// \returns a new APInt value containing the division result
|
|
APInt udiv(const APInt &RHS) const;
|
|
|
|
/// \brief Signed division function for APInt.
|
|
///
|
|
/// Signed divide this APInt by APInt RHS.
|
|
APInt sdiv(const APInt &RHS) const;
|
|
|
|
/// \brief Unsigned remainder operation.
|
|
///
|
|
/// Perform an unsigned remainder operation on this APInt with RHS being the
|
|
/// divisor. Both this and RHS are treated as unsigned quantities for purposes
|
|
/// of this operation. Note that this is a true remainder operation and not a
|
|
/// modulo operation because the sign follows the sign of the dividend which
|
|
/// is *this.
|
|
///
|
|
/// \returns a new APInt value containing the remainder result
|
|
APInt urem(const APInt &RHS) const;
|
|
|
|
/// \brief Function for signed remainder operation.
|
|
///
|
|
/// Signed remainder operation on APInt.
|
|
APInt srem(const APInt &RHS) const;
|
|
|
|
/// \brief Dual division/remainder interface.
|
|
///
|
|
/// Sometimes it is convenient to divide two APInt values and obtain both the
|
|
/// quotient and remainder. This function does both operations in the same
|
|
/// computation making it a little more efficient. The pair of input arguments
|
|
/// may overlap with the pair of output arguments. It is safe to call
|
|
/// udivrem(X, Y, X, Y), for example.
|
|
static void udivrem(const APInt &LHS, const APInt &RHS, APInt &Quotient,
|
|
APInt &Remainder);
|
|
|
|
static void sdivrem(const APInt &LHS, const APInt &RHS, APInt &Quotient,
|
|
APInt &Remainder);
|
|
|
|
// Operations that return overflow indicators.
|
|
APInt sadd_ov(const APInt &RHS, bool &Overflow) const;
|
|
APInt uadd_ov(const APInt &RHS, bool &Overflow) const;
|
|
APInt ssub_ov(const APInt &RHS, bool &Overflow) const;
|
|
APInt usub_ov(const APInt &RHS, bool &Overflow) const;
|
|
APInt sdiv_ov(const APInt &RHS, bool &Overflow) const;
|
|
APInt smul_ov(const APInt &RHS, bool &Overflow) const;
|
|
APInt umul_ov(const APInt &RHS, bool &Overflow) const;
|
|
APInt sshl_ov(const APInt &Amt, bool &Overflow) const;
|
|
APInt ushl_ov(const APInt &Amt, bool &Overflow) const;
|
|
|
|
/// \brief Array-indexing support.
|
|
///
|
|
/// \returns the bit value at bitPosition
|
|
bool operator[](unsigned bitPosition) const {
|
|
assert(bitPosition < getBitWidth() && "Bit position out of bounds!");
|
|
return (maskBit(bitPosition) &
|
|
(isSingleWord() ? VAL : pVal[whichWord(bitPosition)])) !=
|
|
0;
|
|
}
|
|
|
|
/// @}
|
|
/// \name Comparison Operators
|
|
/// @{
|
|
|
|
/// \brief Equality operator.
|
|
///
|
|
/// Compares this APInt with RHS for the validity of the equality
|
|
/// relationship.
|
|
bool operator==(const APInt &RHS) const {
|
|
assert(BitWidth == RHS.BitWidth && "Comparison requires equal bit widths");
|
|
if (isSingleWord())
|
|
return VAL == RHS.VAL;
|
|
return EqualSlowCase(RHS);
|
|
}
|
|
|
|
/// \brief Equality operator.
|
|
///
|
|
/// Compares this APInt with a uint64_t for the validity of the equality
|
|
/// relationship.
|
|
///
|
|
/// \returns true if *this == Val
|
|
bool operator==(uint64_t Val) const {
|
|
return (isSingleWord() || getActiveBits() <= 64) && getZExtValue() == Val;
|
|
}
|
|
|
|
/// \brief Equality comparison.
|
|
///
|
|
/// Compares this APInt with RHS for the validity of the equality
|
|
/// relationship.
|
|
///
|
|
/// \returns true if *this == Val
|
|
bool eq(const APInt &RHS) const { return (*this) == RHS; }
|
|
|
|
/// \brief Inequality operator.
|
|
///
|
|
/// Compares this APInt with RHS for the validity of the inequality
|
|
/// relationship.
|
|
///
|
|
/// \returns true if *this != Val
|
|
bool operator!=(const APInt &RHS) const { return !((*this) == RHS); }
|
|
|
|
/// \brief Inequality operator.
|
|
///
|
|
/// Compares this APInt with a uint64_t for the validity of the inequality
|
|
/// relationship.
|
|
///
|
|
/// \returns true if *this != Val
|
|
bool operator!=(uint64_t Val) const { return !((*this) == Val); }
|
|
|
|
/// \brief Inequality comparison
|
|
///
|
|
/// Compares this APInt with RHS for the validity of the inequality
|
|
/// relationship.
|
|
///
|
|
/// \returns true if *this != Val
|
|
bool ne(const APInt &RHS) const { return !((*this) == RHS); }
|
|
|
|
/// \brief Unsigned less than comparison
|
|
///
|
|
/// Regards both *this and RHS as unsigned quantities and compares them for
|
|
/// the validity of the less-than relationship.
|
|
///
|
|
/// \returns true if *this < RHS when both are considered unsigned.
|
|
bool ult(const APInt &RHS) const { return compare(RHS) < 0; }
|
|
|
|
/// \brief Unsigned less than comparison
|
|
///
|
|
/// Regards both *this as an unsigned quantity and compares it with RHS for
|
|
/// the validity of the less-than relationship.
|
|
///
|
|
/// \returns true if *this < RHS when considered unsigned.
|
|
bool ult(uint64_t RHS) const {
|
|
// Only need to check active bits if not a single word.
|
|
return (isSingleWord() || getActiveBits() <= 64) && getZExtValue() < RHS;
|
|
}
|
|
|
|
/// \brief Signed less than comparison
|
|
///
|
|
/// Regards both *this and RHS as signed quantities and compares them for
|
|
/// validity of the less-than relationship.
|
|
///
|
|
/// \returns true if *this < RHS when both are considered signed.
|
|
bool slt(const APInt &RHS) const { return compareSigned(RHS) < 0; }
|
|
|
|
/// \brief Signed less than comparison
|
|
///
|
|
/// Regards both *this as a signed quantity and compares it with RHS for
|
|
/// the validity of the less-than relationship.
|
|
///
|
|
/// \returns true if *this < RHS when considered signed.
|
|
bool slt(int64_t RHS) const {
|
|
return (!isSingleWord() && getMinSignedBits() > 64) ? isNegative()
|
|
: getSExtValue() < RHS;
|
|
}
|
|
|
|
/// \brief Unsigned less or equal comparison
|
|
///
|
|
/// Regards both *this and RHS as unsigned quantities and compares them for
|
|
/// validity of the less-or-equal relationship.
|
|
///
|
|
/// \returns true if *this <= RHS when both are considered unsigned.
|
|
bool ule(const APInt &RHS) const { return compare(RHS) <= 0; }
|
|
|
|
/// \brief Unsigned less or equal comparison
|
|
///
|
|
/// Regards both *this as an unsigned quantity and compares it with RHS for
|
|
/// the validity of the less-or-equal relationship.
|
|
///
|
|
/// \returns true if *this <= RHS when considered unsigned.
|
|
bool ule(uint64_t RHS) const { return !ugt(RHS); }
|
|
|
|
/// \brief Signed less or equal comparison
|
|
///
|
|
/// Regards both *this and RHS as signed quantities and compares them for
|
|
/// validity of the less-or-equal relationship.
|
|
///
|
|
/// \returns true if *this <= RHS when both are considered signed.
|
|
bool sle(const APInt &RHS) const { return compareSigned(RHS) <= 0; }
|
|
|
|
/// \brief Signed less or equal comparison
|
|
///
|
|
/// Regards both *this as a signed quantity and compares it with RHS for the
|
|
/// validity of the less-or-equal relationship.
|
|
///
|
|
/// \returns true if *this <= RHS when considered signed.
|
|
bool sle(uint64_t RHS) const { return !sgt(RHS); }
|
|
|
|
/// \brief Unsigned greather than comparison
|
|
///
|
|
/// Regards both *this and RHS as unsigned quantities and compares them for
|
|
/// the validity of the greater-than relationship.
|
|
///
|
|
/// \returns true if *this > RHS when both are considered unsigned.
|
|
bool ugt(const APInt &RHS) const { return !ule(RHS); }
|
|
|
|
/// \brief Unsigned greater than comparison
|
|
///
|
|
/// Regards both *this as an unsigned quantity and compares it with RHS for
|
|
/// the validity of the greater-than relationship.
|
|
///
|
|
/// \returns true if *this > RHS when considered unsigned.
|
|
bool ugt(uint64_t RHS) const {
|
|
// Only need to check active bits if not a single word.
|
|
return (!isSingleWord() && getActiveBits() > 64) || getZExtValue() > RHS;
|
|
}
|
|
|
|
/// \brief Signed greather than comparison
|
|
///
|
|
/// Regards both *this and RHS as signed quantities and compares them for the
|
|
/// validity of the greater-than relationship.
|
|
///
|
|
/// \returns true if *this > RHS when both are considered signed.
|
|
bool sgt(const APInt &RHS) const { return !sle(RHS); }
|
|
|
|
/// \brief Signed greater than comparison
|
|
///
|
|
/// Regards both *this as a signed quantity and compares it with RHS for
|
|
/// the validity of the greater-than relationship.
|
|
///
|
|
/// \returns true if *this > RHS when considered signed.
|
|
bool sgt(int64_t RHS) const {
|
|
return (!isSingleWord() && getMinSignedBits() > 64) ? !isNegative()
|
|
: getSExtValue() > RHS;
|
|
}
|
|
|
|
/// \brief Unsigned greater or equal comparison
|
|
///
|
|
/// Regards both *this and RHS as unsigned quantities and compares them for
|
|
/// validity of the greater-or-equal relationship.
|
|
///
|
|
/// \returns true if *this >= RHS when both are considered unsigned.
|
|
bool uge(const APInt &RHS) const { return !ult(RHS); }
|
|
|
|
/// \brief Unsigned greater or equal comparison
|
|
///
|
|
/// Regards both *this as an unsigned quantity and compares it with RHS for
|
|
/// the validity of the greater-or-equal relationship.
|
|
///
|
|
/// \returns true if *this >= RHS when considered unsigned.
|
|
bool uge(uint64_t RHS) const { return !ult(RHS); }
|
|
|
|
/// \brief Signed greather or equal comparison
|
|
///
|
|
/// Regards both *this and RHS as signed quantities and compares them for
|
|
/// validity of the greater-or-equal relationship.
|
|
///
|
|
/// \returns true if *this >= RHS when both are considered signed.
|
|
bool sge(const APInt &RHS) const { return !slt(RHS); }
|
|
|
|
/// \brief Signed greater or equal comparison
|
|
///
|
|
/// Regards both *this as a signed quantity and compares it with RHS for
|
|
/// the validity of the greater-or-equal relationship.
|
|
///
|
|
/// \returns true if *this >= RHS when considered signed.
|
|
bool sge(int64_t RHS) const { return !slt(RHS); }
|
|
|
|
/// This operation tests if there are any pairs of corresponding bits
|
|
/// between this APInt and RHS that are both set.
|
|
bool intersects(const APInt &RHS) const {
|
|
assert(BitWidth == RHS.BitWidth && "Bit widths must be the same");
|
|
if (isSingleWord())
|
|
return (VAL & RHS.VAL) != 0;
|
|
return intersectsSlowCase(RHS);
|
|
}
|
|
|
|
/// This operation checks that all bits set in this APInt are also set in RHS.
|
|
bool isSubsetOf(const APInt &RHS) const {
|
|
assert(BitWidth == RHS.BitWidth && "Bit widths must be the same");
|
|
if (isSingleWord())
|
|
return (VAL & ~RHS.VAL) == 0;
|
|
return isSubsetOfSlowCase(RHS);
|
|
}
|
|
|
|
/// @}
|
|
/// \name Resizing Operators
|
|
/// @{
|
|
|
|
/// \brief Truncate to new width.
|
|
///
|
|
/// Truncate the APInt to a specified width. It is an error to specify a width
|
|
/// that is greater than or equal to the current width.
|
|
APInt trunc(unsigned width) const;
|
|
|
|
/// \brief Sign extend to a new width.
|
|
///
|
|
/// This operation sign extends the APInt to a new width. If the high order
|
|
/// bit is set, the fill on the left will be done with 1 bits, otherwise zero.
|
|
/// It is an error to specify a width that is less than or equal to the
|
|
/// current width.
|
|
APInt sext(unsigned width) const;
|
|
|
|
/// \brief Zero extend to a new width.
|
|
///
|
|
/// This operation zero extends the APInt to a new width. The high order bits
|
|
/// are filled with 0 bits. It is an error to specify a width that is less
|
|
/// than or equal to the current width.
|
|
APInt zext(unsigned width) const;
|
|
|
|
/// \brief Sign extend or truncate to width
|
|
///
|
|
/// Make this APInt have the bit width given by \p width. The value is sign
|
|
/// extended, truncated, or left alone to make it that width.
|
|
APInt sextOrTrunc(unsigned width) const;
|
|
|
|
/// \brief Zero extend or truncate to width
|
|
///
|
|
/// Make this APInt have the bit width given by \p width. The value is zero
|
|
/// extended, truncated, or left alone to make it that width.
|
|
APInt zextOrTrunc(unsigned width) const;
|
|
|
|
/// \brief Sign extend or truncate to width
|
|
///
|
|
/// Make this APInt have the bit width given by \p width. The value is sign
|
|
/// extended, or left alone to make it that width.
|
|
APInt sextOrSelf(unsigned width) const;
|
|
|
|
/// \brief Zero extend or truncate to width
|
|
///
|
|
/// Make this APInt have the bit width given by \p width. The value is zero
|
|
/// extended, or left alone to make it that width.
|
|
APInt zextOrSelf(unsigned width) const;
|
|
|
|
/// @}
|
|
/// \name Bit Manipulation Operators
|
|
/// @{
|
|
|
|
/// \brief Set every bit to 1.
|
|
void setAllBits() {
|
|
if (isSingleWord())
|
|
VAL = WORD_MAX;
|
|
else
|
|
// Set all the bits in all the words.
|
|
memset(pVal, -1, getNumWords() * APINT_WORD_SIZE);
|
|
// Clear the unused ones
|
|
clearUnusedBits();
|
|
}
|
|
|
|
/// \brief Set a given bit to 1.
|
|
///
|
|
/// Set the given bit to 1 whose position is given as "bitPosition".
|
|
void setBit(unsigned BitPosition) {
|
|
assert(BitPosition <= BitWidth && "BitPosition out of range");
|
|
WordType Mask = maskBit(BitPosition);
|
|
if (isSingleWord())
|
|
VAL |= Mask;
|
|
else
|
|
pVal[whichWord(BitPosition)] |= Mask;
|
|
}
|
|
|
|
/// Set the sign bit to 1.
|
|
void setSignBit() {
|
|
setBit(BitWidth - 1);
|
|
}
|
|
|
|
/// Set the bits from loBit (inclusive) to hiBit (exclusive) to 1.
|
|
void setBits(unsigned loBit, unsigned hiBit) {
|
|
assert(hiBit <= BitWidth && "hiBit out of range");
|
|
assert(loBit <= BitWidth && "loBit out of range");
|
|
assert(loBit <= hiBit && "loBit greater than hiBit");
|
|
if (loBit == hiBit)
|
|
return;
|
|
if (loBit < APINT_BITS_PER_WORD && hiBit <= APINT_BITS_PER_WORD) {
|
|
uint64_t mask = WORD_MAX >> (APINT_BITS_PER_WORD - (hiBit - loBit));
|
|
mask <<= loBit;
|
|
if (isSingleWord())
|
|
VAL |= mask;
|
|
else
|
|
pVal[0] |= mask;
|
|
} else {
|
|
setBitsSlowCase(loBit, hiBit);
|
|
}
|
|
}
|
|
|
|
/// Set the top bits starting from loBit.
|
|
void setBitsFrom(unsigned loBit) {
|
|
return setBits(loBit, BitWidth);
|
|
}
|
|
|
|
/// Set the bottom loBits bits.
|
|
void setLowBits(unsigned loBits) {
|
|
return setBits(0, loBits);
|
|
}
|
|
|
|
/// Set the top hiBits bits.
|
|
void setHighBits(unsigned hiBits) {
|
|
return setBits(BitWidth - hiBits, BitWidth);
|
|
}
|
|
|
|
/// \brief Set every bit to 0.
|
|
void clearAllBits() {
|
|
if (isSingleWord())
|
|
VAL = 0;
|
|
else
|
|
memset(pVal, 0, getNumWords() * APINT_WORD_SIZE);
|
|
}
|
|
|
|
/// \brief Set a given bit to 0.
|
|
///
|
|
/// Set the given bit to 0 whose position is given as "bitPosition".
|
|
void clearBit(unsigned BitPosition) {
|
|
assert(BitPosition <= BitWidth && "BitPosition out of range");
|
|
WordType Mask = ~maskBit(BitPosition);
|
|
if (isSingleWord())
|
|
VAL &= Mask;
|
|
else
|
|
pVal[whichWord(BitPosition)] &= Mask;
|
|
}
|
|
|
|
/// Set the sign bit to 0.
|
|
void clearSignBit() {
|
|
clearBit(BitWidth - 1);
|
|
}
|
|
|
|
/// \brief Toggle every bit to its opposite value.
|
|
void flipAllBits() {
|
|
if (isSingleWord()) {
|
|
VAL ^= WORD_MAX;
|
|
clearUnusedBits();
|
|
} else {
|
|
flipAllBitsSlowCase();
|
|
}
|
|
}
|
|
|
|
/// \brief Toggles a given bit to its opposite value.
|
|
///
|
|
/// Toggle a given bit to its opposite value whose position is given
|
|
/// as "bitPosition".
|
|
void flipBit(unsigned bitPosition);
|
|
|
|
/// Insert the bits from a smaller APInt starting at bitPosition.
|
|
void insertBits(const APInt &SubBits, unsigned bitPosition);
|
|
|
|
/// Return an APInt with the extracted bits [bitPosition,bitPosition+numBits).
|
|
APInt extractBits(unsigned numBits, unsigned bitPosition) const;
|
|
|
|
/// @}
|
|
/// \name Value Characterization Functions
|
|
/// @{
|
|
|
|
/// \brief Return the number of bits in the APInt.
|
|
unsigned getBitWidth() const { return BitWidth; }
|
|
|
|
/// \brief Get the number of words.
|
|
///
|
|
/// Here one word's bitwidth equals to that of uint64_t.
|
|
///
|
|
/// \returns the number of words to hold the integer value of this APInt.
|
|
unsigned getNumWords() const { return getNumWords(BitWidth); }
|
|
|
|
/// \brief Get the number of words.
|
|
///
|
|
/// *NOTE* Here one word's bitwidth equals to that of uint64_t.
|
|
///
|
|
/// \returns the number of words to hold the integer value with a given bit
|
|
/// width.
|
|
static unsigned getNumWords(unsigned BitWidth) {
|
|
return ((uint64_t)BitWidth + APINT_BITS_PER_WORD - 1) / APINT_BITS_PER_WORD;
|
|
}
|
|
|
|
/// \brief Compute the number of active bits in the value
|
|
///
|
|
/// This function returns the number of active bits which is defined as the
|
|
/// bit width minus the number of leading zeros. This is used in several
|
|
/// computations to see how "wide" the value is.
|
|
unsigned getActiveBits() const { return BitWidth - countLeadingZeros(); }
|
|
|
|
/// \brief Compute the number of active words in the value of this APInt.
|
|
///
|
|
/// This is used in conjunction with getActiveData to extract the raw value of
|
|
/// the APInt.
|
|
unsigned getActiveWords() const {
|
|
unsigned numActiveBits = getActiveBits();
|
|
return numActiveBits ? whichWord(numActiveBits - 1) + 1 : 1;
|
|
}
|
|
|
|
/// \brief Get the minimum bit size for this signed APInt
|
|
///
|
|
/// Computes the minimum bit width for this APInt while considering it to be a
|
|
/// signed (and probably negative) value. If the value is not negative, this
|
|
/// function returns the same value as getActiveBits()+1. Otherwise, it
|
|
/// returns the smallest bit width that will retain the negative value. For
|
|
/// example, -1 can be written as 0b1 or 0xFFFFFFFFFF. 0b1 is shorter and so
|
|
/// for -1, this function will always return 1.
|
|
unsigned getMinSignedBits() const {
|
|
if (isNegative())
|
|
return BitWidth - countLeadingOnes() + 1;
|
|
return getActiveBits() + 1;
|
|
}
|
|
|
|
/// \brief Get zero extended value
|
|
///
|
|
/// This method attempts to return the value of this APInt as a zero extended
|
|
/// uint64_t. The bitwidth must be <= 64 or the value must fit within a
|
|
/// uint64_t. Otherwise an assertion will result.
|
|
uint64_t getZExtValue() const {
|
|
if (isSingleWord())
|
|
return VAL;
|
|
assert(getActiveBits() <= 64 && "Too many bits for uint64_t");
|
|
return pVal[0];
|
|
}
|
|
|
|
/// \brief Get sign extended value
|
|
///
|
|
/// This method attempts to return the value of this APInt as a sign extended
|
|
/// int64_t. The bit width must be <= 64 or the value must fit within an
|
|
/// int64_t. Otherwise an assertion will result.
|
|
int64_t getSExtValue() const {
|
|
if (isSingleWord())
|
|
return SignExtend64(VAL, BitWidth);
|
|
assert(getMinSignedBits() <= 64 && "Too many bits for int64_t");
|
|
return int64_t(pVal[0]);
|
|
}
|
|
|
|
/// \brief Get bits required for string value.
|
|
///
|
|
/// This method determines how many bits are required to hold the APInt
|
|
/// equivalent of the string given by \p str.
|
|
static unsigned getBitsNeeded(StringRef str, uint8_t radix);
|
|
|
|
/// \brief The APInt version of the countLeadingZeros functions in
|
|
/// MathExtras.h.
|
|
///
|
|
/// It counts the number of zeros from the most significant bit to the first
|
|
/// one bit.
|
|
///
|
|
/// \returns BitWidth if the value is zero, otherwise returns the number of
|
|
/// zeros from the most significant bit to the first one bits.
|
|
unsigned countLeadingZeros() const {
|
|
if (isSingleWord()) {
|
|
unsigned unusedBits = APINT_BITS_PER_WORD - BitWidth;
|
|
return llvm::countLeadingZeros(VAL) - unusedBits;
|
|
}
|
|
return countLeadingZerosSlowCase();
|
|
}
|
|
|
|
/// \brief Count the number of leading one bits.
|
|
///
|
|
/// This function is an APInt version of the countLeadingOnes
|
|
/// functions in MathExtras.h. It counts the number of ones from the most
|
|
/// significant bit to the first zero bit.
|
|
///
|
|
/// \returns 0 if the high order bit is not set, otherwise returns the number
|
|
/// of 1 bits from the most significant to the least
|
|
unsigned countLeadingOnes() const LLVM_READONLY;
|
|
|
|
/// Computes the number of leading bits of this APInt that are equal to its
|
|
/// sign bit.
|
|
unsigned getNumSignBits() const {
|
|
return isNegative() ? countLeadingOnes() : countLeadingZeros();
|
|
}
|
|
|
|
/// \brief Count the number of trailing zero bits.
|
|
///
|
|
/// This function is an APInt version of the countTrailingZeros
|
|
/// functions in MathExtras.h. It counts the number of zeros from the least
|
|
/// significant bit to the first set bit.
|
|
///
|
|
/// \returns BitWidth if the value is zero, otherwise returns the number of
|
|
/// zeros from the least significant bit to the first one bit.
|
|
unsigned countTrailingZeros() const LLVM_READONLY;
|
|
|
|
/// \brief Count the number of trailing one bits.
|
|
///
|
|
/// This function is an APInt version of the countTrailingOnes
|
|
/// functions in MathExtras.h. It counts the number of ones from the least
|
|
/// significant bit to the first zero bit.
|
|
///
|
|
/// \returns BitWidth if the value is all ones, otherwise returns the number
|
|
/// of ones from the least significant bit to the first zero bit.
|
|
unsigned countTrailingOnes() const {
|
|
if (isSingleWord())
|
|
return llvm::countTrailingOnes(VAL);
|
|
return countTrailingOnesSlowCase();
|
|
}
|
|
|
|
/// \brief Count the number of bits set.
|
|
///
|
|
/// This function is an APInt version of the countPopulation functions
|
|
/// in MathExtras.h. It counts the number of 1 bits in the APInt value.
|
|
///
|
|
/// \returns 0 if the value is zero, otherwise returns the number of set bits.
|
|
unsigned countPopulation() const {
|
|
if (isSingleWord())
|
|
return llvm::countPopulation(VAL);
|
|
return countPopulationSlowCase();
|
|
}
|
|
|
|
/// @}
|
|
/// \name Conversion Functions
|
|
/// @{
|
|
void print(raw_ostream &OS, bool isSigned) const;
|
|
|
|
/// Converts an APInt to a string and append it to Str. Str is commonly a
|
|
/// SmallString.
|
|
void toString(SmallVectorImpl<char> &Str, unsigned Radix, bool Signed,
|
|
bool formatAsCLiteral = false) const;
|
|
|
|
/// Considers the APInt to be unsigned and converts it into a string in the
|
|
/// radix given. The radix can be 2, 8, 10 16, or 36.
|
|
void toStringUnsigned(SmallVectorImpl<char> &Str, unsigned Radix = 10) const {
|
|
toString(Str, Radix, false, false);
|
|
}
|
|
|
|
/// Considers the APInt to be signed and converts it into a string in the
|
|
/// radix given. The radix can be 2, 8, 10, 16, or 36.
|
|
void toStringSigned(SmallVectorImpl<char> &Str, unsigned Radix = 10) const {
|
|
toString(Str, Radix, true, false);
|
|
}
|
|
|
|
/// \brief Return the APInt as a std::string.
|
|
///
|
|
/// Note that this is an inefficient method. It is better to pass in a
|
|
/// SmallVector/SmallString to the methods above to avoid thrashing the heap
|
|
/// for the string.
|
|
std::string toString(unsigned Radix, bool Signed) const;
|
|
|
|
/// \returns a byte-swapped representation of this APInt Value.
|
|
APInt byteSwap() const;
|
|
|
|
/// \returns the value with the bit representation reversed of this APInt
|
|
/// Value.
|
|
APInt reverseBits() const;
|
|
|
|
/// \brief Converts this APInt to a double value.
|
|
double roundToDouble(bool isSigned) const;
|
|
|
|
/// \brief Converts this unsigned APInt to a double value.
|
|
double roundToDouble() const { return roundToDouble(false); }
|
|
|
|
/// \brief Converts this signed APInt to a double value.
|
|
double signedRoundToDouble() const { return roundToDouble(true); }
|
|
|
|
/// \brief Converts APInt bits to a double
|
|
///
|
|
/// The conversion does not do a translation from integer to double, it just
|
|
/// re-interprets the bits as a double. Note that it is valid to do this on
|
|
/// any bit width. Exactly 64 bits will be translated.
|
|
double bitsToDouble() const {
|
|
union {
|
|
uint64_t I;
|
|
double D;
|
|
} T;
|
|
T.I = (isSingleWord() ? VAL : pVal[0]);
|
|
return T.D;
|
|
}
|
|
|
|
/// \brief Converts APInt bits to a double
|
|
///
|
|
/// The conversion does not do a translation from integer to float, it just
|
|
/// re-interprets the bits as a float. Note that it is valid to do this on
|
|
/// any bit width. Exactly 32 bits will be translated.
|
|
float bitsToFloat() const {
|
|
union {
|
|
unsigned I;
|
|
float F;
|
|
} T;
|
|
T.I = unsigned((isSingleWord() ? VAL : pVal[0]));
|
|
return T.F;
|
|
}
|
|
|
|
/// \brief Converts a double to APInt bits.
|
|
///
|
|
/// The conversion does not do a translation from double to integer, it just
|
|
/// re-interprets the bits of the double.
|
|
static APInt doubleToBits(double V) {
|
|
union {
|
|
uint64_t I;
|
|
double D;
|
|
} T;
|
|
T.D = V;
|
|
return APInt(sizeof T * CHAR_BIT, T.I);
|
|
}
|
|
|
|
/// \brief Converts a float to APInt bits.
|
|
///
|
|
/// The conversion does not do a translation from float to integer, it just
|
|
/// re-interprets the bits of the float.
|
|
static APInt floatToBits(float V) {
|
|
union {
|
|
unsigned I;
|
|
float F;
|
|
} T;
|
|
T.F = V;
|
|
return APInt(sizeof T * CHAR_BIT, T.I);
|
|
}
|
|
|
|
/// @}
|
|
/// \name Mathematics Operations
|
|
/// @{
|
|
|
|
/// \returns the floor log base 2 of this APInt.
|
|
unsigned logBase2() const { return BitWidth - 1 - countLeadingZeros(); }
|
|
|
|
/// \returns the ceil log base 2 of this APInt.
|
|
unsigned ceilLogBase2() const {
|
|
APInt temp(*this);
|
|
--temp;
|
|
return BitWidth - temp.countLeadingZeros();
|
|
}
|
|
|
|
/// \returns the nearest log base 2 of this APInt. Ties round up.
|
|
///
|
|
/// NOTE: When we have a BitWidth of 1, we define:
|
|
///
|
|
/// log2(0) = UINT32_MAX
|
|
/// log2(1) = 0
|
|
///
|
|
/// to get around any mathematical concerns resulting from
|
|
/// referencing 2 in a space where 2 does no exist.
|
|
unsigned nearestLogBase2() const {
|
|
// Special case when we have a bitwidth of 1. If VAL is 1, then we
|
|
// get 0. If VAL is 0, we get WORD_MAX which gets truncated to
|
|
// UINT32_MAX.
|
|
if (BitWidth == 1)
|
|
return VAL - 1;
|
|
|
|
// Handle the zero case.
|
|
if (isNullValue())
|
|
return UINT32_MAX;
|
|
|
|
// The non-zero case is handled by computing:
|
|
//
|
|
// nearestLogBase2(x) = logBase2(x) + x[logBase2(x)-1].
|
|
//
|
|
// where x[i] is referring to the value of the ith bit of x.
|
|
unsigned lg = logBase2();
|
|
return lg + unsigned((*this)[lg - 1]);
|
|
}
|
|
|
|
/// \returns the log base 2 of this APInt if its an exact power of two, -1
|
|
/// otherwise
|
|
int32_t exactLogBase2() const {
|
|
if (!isPowerOf2())
|
|
return -1;
|
|
return logBase2();
|
|
}
|
|
|
|
/// \brief Compute the square root
|
|
APInt sqrt() const;
|
|
|
|
/// \brief Get the absolute value;
|
|
///
|
|
/// If *this is < 0 then return -(*this), otherwise *this;
|
|
APInt abs() const {
|
|
if (isNegative())
|
|
return -(*this);
|
|
return *this;
|
|
}
|
|
|
|
/// \returns the multiplicative inverse for a given modulo.
|
|
APInt multiplicativeInverse(const APInt &modulo) const;
|
|
|
|
/// @}
|
|
/// \name Support for division by constant
|
|
/// @{
|
|
|
|
/// Calculate the magic number for signed division by a constant.
|
|
struct ms;
|
|
ms magic() const;
|
|
|
|
/// Calculate the magic number for unsigned division by a constant.
|
|
struct mu;
|
|
mu magicu(unsigned LeadingZeros = 0) const;
|
|
|
|
/// @}
|
|
/// \name Building-block Operations for APInt and APFloat
|
|
/// @{
|
|
|
|
// These building block operations operate on a representation of arbitrary
|
|
// precision, two's-complement, bignum integer values. They should be
|
|
// sufficient to implement APInt and APFloat bignum requirements. Inputs are
|
|
// generally a pointer to the base of an array of integer parts, representing
|
|
// an unsigned bignum, and a count of how many parts there are.
|
|
|
|
/// Sets the least significant part of a bignum to the input value, and zeroes
|
|
/// out higher parts.
|
|
static void tcSet(WordType *, WordType, unsigned);
|
|
|
|
/// Assign one bignum to another.
|
|
static void tcAssign(WordType *, const WordType *, unsigned);
|
|
|
|
/// Returns true if a bignum is zero, false otherwise.
|
|
static bool tcIsZero(const WordType *, unsigned);
|
|
|
|
/// Extract the given bit of a bignum; returns 0 or 1. Zero-based.
|
|
static int tcExtractBit(const WordType *, unsigned bit);
|
|
|
|
/// Copy the bit vector of width srcBITS from SRC, starting at bit srcLSB, to
|
|
/// DST, of dstCOUNT parts, such that the bit srcLSB becomes the least
|
|
/// significant bit of DST. All high bits above srcBITS in DST are
|
|
/// zero-filled.
|
|
static void tcExtract(WordType *, unsigned dstCount,
|
|
const WordType *, unsigned srcBits,
|
|
unsigned srcLSB);
|
|
|
|
/// Set the given bit of a bignum. Zero-based.
|
|
static void tcSetBit(WordType *, unsigned bit);
|
|
|
|
/// Clear the given bit of a bignum. Zero-based.
|
|
static void tcClearBit(WordType *, unsigned bit);
|
|
|
|
/// Returns the bit number of the least or most significant set bit of a
|
|
/// number. If the input number has no bits set -1U is returned.
|
|
static unsigned tcLSB(const WordType *, unsigned n);
|
|
static unsigned tcMSB(const WordType *parts, unsigned n);
|
|
|
|
/// Negate a bignum in-place.
|
|
static void tcNegate(WordType *, unsigned);
|
|
|
|
/// DST += RHS + CARRY where CARRY is zero or one. Returns the carry flag.
|
|
static WordType tcAdd(WordType *, const WordType *,
|
|
WordType carry, unsigned);
|
|
/// DST += RHS. Returns the carry flag.
|
|
static WordType tcAddPart(WordType *, WordType, unsigned);
|
|
|
|
/// DST -= RHS + CARRY where CARRY is zero or one. Returns the carry flag.
|
|
static WordType tcSubtract(WordType *, const WordType *,
|
|
WordType carry, unsigned);
|
|
/// DST -= RHS. Returns the carry flag.
|
|
static WordType tcSubtractPart(WordType *, WordType, unsigned);
|
|
|
|
/// DST += SRC * MULTIPLIER + PART if add is true
|
|
/// DST = SRC * MULTIPLIER + PART if add is false
|
|
///
|
|
/// Requires 0 <= DSTPARTS <= SRCPARTS + 1. If DST overlaps SRC they must
|
|
/// start at the same point, i.e. DST == SRC.
|
|
///
|
|
/// If DSTPARTS == SRC_PARTS + 1 no overflow occurs and zero is returned.
|
|
/// Otherwise DST is filled with the least significant DSTPARTS parts of the
|
|
/// result, and if all of the omitted higher parts were zero return zero,
|
|
/// otherwise overflow occurred and return one.
|
|
static int tcMultiplyPart(WordType *dst, const WordType *src,
|
|
WordType multiplier, WordType carry,
|
|
unsigned srcParts, unsigned dstParts,
|
|
bool add);
|
|
|
|
/// DST = LHS * RHS, where DST has the same width as the operands and is
|
|
/// filled with the least significant parts of the result. Returns one if
|
|
/// overflow occurred, otherwise zero. DST must be disjoint from both
|
|
/// operands.
|
|
static int tcMultiply(WordType *, const WordType *, const WordType *,
|
|
unsigned);
|
|
|
|
/// DST = LHS * RHS, where DST has width the sum of the widths of the
|
|
/// operands. No overflow occurs. DST must be disjoint from both
|
|
/// operands. Returns the number of parts required to hold the result.
|
|
static unsigned tcFullMultiply(WordType *, const WordType *,
|
|
const WordType *, unsigned, unsigned);
|
|
|
|
/// If RHS is zero LHS and REMAINDER are left unchanged, return one.
|
|
/// Otherwise set LHS to LHS / RHS with the fractional part discarded, set
|
|
/// REMAINDER to the remainder, return zero. i.e.
|
|
///
|
|
/// OLD_LHS = RHS * LHS + REMAINDER
|
|
///
|
|
/// SCRATCH is a bignum of the same size as the operands and result for use by
|
|
/// the routine; its contents need not be initialized and are destroyed. LHS,
|
|
/// REMAINDER and SCRATCH must be distinct.
|
|
static int tcDivide(WordType *lhs, const WordType *rhs,
|
|
WordType *remainder, WordType *scratch,
|
|
unsigned parts);
|
|
|
|
/// Shift a bignum left Count bits. Shifted in bits are zero. There are no
|
|
/// restrictions on Count.
|
|
static void tcShiftLeft(WordType *, unsigned Words, unsigned Count);
|
|
|
|
/// Shift a bignum right Count bits. Shifted in bits are zero. There are no
|
|
/// restrictions on Count.
|
|
static void tcShiftRight(WordType *, unsigned Words, unsigned Count);
|
|
|
|
/// The obvious AND, OR and XOR and complement operations.
|
|
static void tcAnd(WordType *, const WordType *, unsigned);
|
|
static void tcOr(WordType *, const WordType *, unsigned);
|
|
static void tcXor(WordType *, const WordType *, unsigned);
|
|
static void tcComplement(WordType *, unsigned);
|
|
|
|
/// Comparison (unsigned) of two bignums.
|
|
static int tcCompare(const WordType *, const WordType *, unsigned);
|
|
|
|
/// Increment a bignum in-place. Return the carry flag.
|
|
static WordType tcIncrement(WordType *dst, unsigned parts) {
|
|
return tcAddPart(dst, 1, parts);
|
|
}
|
|
|
|
/// Decrement a bignum in-place. Return the borrow flag.
|
|
static WordType tcDecrement(WordType *dst, unsigned parts) {
|
|
return tcSubtractPart(dst, 1, parts);
|
|
}
|
|
|
|
/// Set the least significant BITS and clear the rest.
|
|
static void tcSetLeastSignificantBits(WordType *, unsigned, unsigned bits);
|
|
|
|
/// \brief debug method
|
|
void dump() const;
|
|
|
|
/// @}
|
|
};
|
|
|
|
/// Magic data for optimising signed division by a constant.
|
|
struct APInt::ms {
|
|
APInt m; ///< magic number
|
|
unsigned s; ///< shift amount
|
|
};
|
|
|
|
/// Magic data for optimising unsigned division by a constant.
|
|
struct APInt::mu {
|
|
APInt m; ///< magic number
|
|
bool a; ///< add indicator
|
|
unsigned s; ///< shift amount
|
|
};
|
|
|
|
inline bool operator==(uint64_t V1, const APInt &V2) { return V2 == V1; }
|
|
|
|
inline bool operator!=(uint64_t V1, const APInt &V2) { return V2 != V1; }
|
|
|
|
/// \brief Unary bitwise complement operator.
|
|
///
|
|
/// \returns an APInt that is the bitwise complement of \p v.
|
|
inline APInt operator~(APInt v) {
|
|
v.flipAllBits();
|
|
return v;
|
|
}
|
|
|
|
inline APInt operator&(APInt a, const APInt &b) {
|
|
a &= b;
|
|
return a;
|
|
}
|
|
|
|
inline APInt operator&(const APInt &a, APInt &&b) {
|
|
b &= a;
|
|
return std::move(b);
|
|
}
|
|
|
|
inline APInt operator&(APInt a, uint64_t RHS) {
|
|
a &= RHS;
|
|
return a;
|
|
}
|
|
|
|
inline APInt operator&(uint64_t LHS, APInt b) {
|
|
b &= LHS;
|
|
return b;
|
|
}
|
|
|
|
inline APInt operator|(APInt a, const APInt &b) {
|
|
a |= b;
|
|
return a;
|
|
}
|
|
|
|
inline APInt operator|(const APInt &a, APInt &&b) {
|
|
b |= a;
|
|
return std::move(b);
|
|
}
|
|
|
|
inline APInt operator|(APInt a, uint64_t RHS) {
|
|
a |= RHS;
|
|
return a;
|
|
}
|
|
|
|
inline APInt operator|(uint64_t LHS, APInt b) {
|
|
b |= LHS;
|
|
return b;
|
|
}
|
|
|
|
inline APInt operator^(APInt a, const APInt &b) {
|
|
a ^= b;
|
|
return a;
|
|
}
|
|
|
|
inline APInt operator^(const APInt &a, APInt &&b) {
|
|
b ^= a;
|
|
return std::move(b);
|
|
}
|
|
|
|
inline APInt operator^(APInt a, uint64_t RHS) {
|
|
a ^= RHS;
|
|
return a;
|
|
}
|
|
|
|
inline APInt operator^(uint64_t LHS, APInt b) {
|
|
b ^= LHS;
|
|
return b;
|
|
}
|
|
|
|
inline raw_ostream &operator<<(raw_ostream &OS, const APInt &I) {
|
|
I.print(OS, true);
|
|
return OS;
|
|
}
|
|
|
|
inline APInt operator-(APInt v) {
|
|
v.flipAllBits();
|
|
++v;
|
|
return v;
|
|
}
|
|
|
|
inline APInt operator+(APInt a, const APInt &b) {
|
|
a += b;
|
|
return a;
|
|
}
|
|
|
|
inline APInt operator+(const APInt &a, APInt &&b) {
|
|
b += a;
|
|
return std::move(b);
|
|
}
|
|
|
|
inline APInt operator+(APInt a, uint64_t RHS) {
|
|
a += RHS;
|
|
return a;
|
|
}
|
|
|
|
inline APInt operator+(uint64_t LHS, APInt b) {
|
|
b += LHS;
|
|
return b;
|
|
}
|
|
|
|
inline APInt operator-(APInt a, const APInt &b) {
|
|
a -= b;
|
|
return a;
|
|
}
|
|
|
|
inline APInt operator-(const APInt &a, APInt &&b) {
|
|
b = -std::move(b);
|
|
b += a;
|
|
return std::move(b);
|
|
}
|
|
|
|
inline APInt operator-(APInt a, uint64_t RHS) {
|
|
a -= RHS;
|
|
return a;
|
|
}
|
|
|
|
inline APInt operator-(uint64_t LHS, APInt b) {
|
|
b = -std::move(b);
|
|
b += LHS;
|
|
return b;
|
|
}
|
|
|
|
|
|
namespace APIntOps {
|
|
|
|
/// \brief Determine the smaller of two APInts considered to be signed.
|
|
inline const APInt &smin(const APInt &A, const APInt &B) {
|
|
return A.slt(B) ? A : B;
|
|
}
|
|
|
|
/// \brief Determine the larger of two APInts considered to be signed.
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inline const APInt &smax(const APInt &A, const APInt &B) {
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return A.sgt(B) ? A : B;
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}
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/// \brief Determine the smaller of two APInts considered to be signed.
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inline const APInt &umin(const APInt &A, const APInt &B) {
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return A.ult(B) ? A : B;
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}
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/// \brief Determine the larger of two APInts considered to be unsigned.
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inline const APInt &umax(const APInt &A, const APInt &B) {
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return A.ugt(B) ? A : B;
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}
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/// \brief Compute GCD of two unsigned APInt values.
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///
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/// This function returns the greatest common divisor of the two APInt values
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/// using Stein's algorithm.
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///
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/// \returns the greatest common divisor of A and B.
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APInt GreatestCommonDivisor(APInt A, APInt B);
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/// \brief Converts the given APInt to a double value.
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///
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/// Treats the APInt as an unsigned value for conversion purposes.
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inline double RoundAPIntToDouble(const APInt &APIVal) {
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return APIVal.roundToDouble();
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}
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/// \brief Converts the given APInt to a double value.
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///
|
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/// Treats the APInt as a signed value for conversion purposes.
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inline double RoundSignedAPIntToDouble(const APInt &APIVal) {
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return APIVal.signedRoundToDouble();
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}
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/// \brief Converts the given APInt to a float vlalue.
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inline float RoundAPIntToFloat(const APInt &APIVal) {
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return float(RoundAPIntToDouble(APIVal));
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}
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/// \brief Converts the given APInt to a float value.
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///
|
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/// Treast the APInt as a signed value for conversion purposes.
|
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inline float RoundSignedAPIntToFloat(const APInt &APIVal) {
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|
return float(APIVal.signedRoundToDouble());
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|
}
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/// \brief Converts the given double value into a APInt.
|
|
///
|
|
/// This function convert a double value to an APInt value.
|
|
APInt RoundDoubleToAPInt(double Double, unsigned width);
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|
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/// \brief Converts a float value into a APInt.
|
|
///
|
|
/// Converts a float value into an APInt value.
|
|
inline APInt RoundFloatToAPInt(float Float, unsigned width) {
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|
return RoundDoubleToAPInt(double(Float), width);
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}
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} // End of APIntOps namespace
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// See friend declaration above. This additional declaration is required in
|
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// order to compile LLVM with IBM xlC compiler.
|
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hash_code hash_value(const APInt &Arg);
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} // End of llvm namespace
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#endif
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