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This patch adds powerpc64le Linux support. While the patch also adds the matching powerpc64 bits, there are endian issues that need to be sorted out. The PowerPC LLVM changes for the swift ABI (eg returning three element non-homogeneous aggregates) are still in the works, but a simple LLVM fix to allow those aggregates results in swift passing all but 8 test cases.
186 lines
6.2 KiB
Swift
186 lines
6.2 KiB
Swift
//===----------------------------------------------------------------------===//
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//
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// This source file is part of the Swift.org open source project
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//
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// Copyright (c) 2014 - 2016 Apple Inc. and the Swift project authors
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// Licensed under Apache License v2.0 with Runtime Library Exception
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//
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// See http://swift.org/LICENSE.txt for license information
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// See http://swift.org/CONTRIBUTORS.txt for the list of Swift project authors
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//
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//===----------------------------------------------------------------------===//
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//
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// This file implements helpers for constructing non-cryptographic hash
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// functions.
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//
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// This code was ported from LLVM's ADT/Hashing.h.
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//
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// Currently the algorithm is based on CityHash, but this is an implementation
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// detail. Even more, there are facilities to mix in a per-execution seed to
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// ensure that hash values differ between executions.
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//
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import SwiftShims
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public // @testable
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struct _HashingDetail {
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public // @testable
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static var fixedSeedOverride: UInt64 {
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get {
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// HACK: the variable itself is defined in C++ code so that it is
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// guaranteed to be statically initialized. This is a temporary
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// workaround until the compiler can do the same for Swift.
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return _swift_stdlib_HashingDetail_fixedSeedOverride
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}
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set {
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_swift_stdlib_HashingDetail_fixedSeedOverride = newValue
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}
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}
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@_transparent
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@warn_unused_result
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static func getExecutionSeed() -> UInt64 {
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// FIXME: This needs to be a per-execution seed. This is just a placeholder
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// implementation.
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let seed: UInt64 = 0xff51afd7ed558ccd
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return _HashingDetail.fixedSeedOverride == 0 ? seed : fixedSeedOverride
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}
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@_transparent
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@warn_unused_result
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static func hash16Bytes(low: UInt64, _ high: UInt64) -> UInt64 {
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// Murmur-inspired hashing.
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let mul: UInt64 = 0x9ddfea08eb382d69
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var a: UInt64 = (low ^ high) &* mul
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a ^= (a >> 47)
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var b: UInt64 = (high ^ a) &* mul
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b ^= (b >> 47)
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b = b &* mul
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return b
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}
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}
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//
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// API functions.
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//
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//
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// _mix*() functions all have type (T) -> T. These functions don't compress
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// their inputs and just exhibit avalanche effect.
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//
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@_transparent
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@warn_unused_result
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public // @testable
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func _mixUInt32(value: UInt32) -> UInt32 {
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// Zero-extend to 64 bits, hash, select 32 bits from the hash.
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//
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// NOTE: this differs from LLVM's implementation, which selects the lower
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// 32 bits. According to the statistical tests, the 3 lowest bits have
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// weaker avalanche properties.
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let extendedValue = UInt64(value)
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let extendedResult = _mixUInt64(extendedValue)
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return UInt32((extendedResult >> 3) & 0xffff_ffff)
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}
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@_transparent
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@warn_unused_result
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public // @testable
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func _mixInt32(value: Int32) -> Int32 {
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return Int32(bitPattern: _mixUInt32(UInt32(bitPattern: value)))
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}
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@_transparent
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@warn_unused_result
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public // @testable
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func _mixUInt64(value: UInt64) -> UInt64 {
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// Similar to hash_4to8_bytes but using a seed instead of length.
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let seed: UInt64 = _HashingDetail.getExecutionSeed()
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let low: UInt64 = value & 0xffff_ffff
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let high: UInt64 = value >> 32
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return _HashingDetail.hash16Bytes(seed &+ (low << 3), high)
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}
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@_transparent
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@warn_unused_result
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public // @testable
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func _mixInt64(value: Int64) -> Int64 {
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return Int64(bitPattern: _mixUInt64(UInt64(bitPattern: value)))
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}
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@_transparent
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@warn_unused_result
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public // @testable
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func _mixUInt(value: UInt) -> UInt {
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#if arch(i386) || arch(arm)
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return UInt(_mixUInt32(UInt32(value)))
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#elseif arch(x86_64) || arch(arm64) || arch(powerpc64) || arch(powerpc64le)
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return UInt(_mixUInt64(UInt64(value)))
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#endif
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}
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@_transparent
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@warn_unused_result
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public // @testable
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func _mixInt(value: Int) -> Int {
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#if arch(i386) || arch(arm)
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return Int(_mixInt32(Int32(value)))
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#elseif arch(x86_64) || arch(arm64) || arch(powerpc64) || arch(powerpc64le)
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return Int(_mixInt64(Int64(value)))
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#endif
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}
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/// Given a hash value, returns an integer value within the given range that
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/// corresponds to a hash value.
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///
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/// This function is superior to computing the remainder of `hashValue` by
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/// the range length. Some types have bad hash functions; sometimes simple
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/// patterns in data sets create patterns in hash values and applying the
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/// remainder operation just throws away even more information and invites
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/// even more hash collisions. This effect is especially bad if the length
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/// of the required range is a power of two -- applying the remainder
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/// operation just throws away high bits of the hash (which would not be
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/// a problem if the hash was known to be good). This function mixes the
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/// bits in the hash value to compensate for such cases.
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///
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/// Of course, this function is a compressing function, and applying it to a
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/// hash value does not change anything fundamentally: collisions are still
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/// possible, and it does not prevent malicious users from constructing data
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/// sets that will exhibit pathological collisions.
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@warn_unused_result
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public // @testable
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func _squeezeHashValue(hashValue: Int, _ resultRange: Range<Int>) -> Int {
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// Length of a Range<Int> does not fit into an Int, but fits into an UInt.
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// An efficient way to compute the length is to rely on two's complement
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// arithmetic.
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let resultCardinality =
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UInt(bitPattern: resultRange.endIndex &- resultRange.startIndex)
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// Calculate the result as `UInt` to handle the case when
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// `resultCardinality >= Int.max`.
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let unsignedResult =
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_squeezeHashValue(hashValue, UInt(0)..<resultCardinality)
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// We perform the unchecked arithmetic on `UInt` (instead of doing
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// straightforward computations on `Int`) in order to handle the following
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// tricky case: `startIndex` is negative, and `resultCardinality >= Int.max`.
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// We cannot convert the latter to `Int`.
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return
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Int(bitPattern:
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UInt(bitPattern: resultRange.startIndex) &+ unsignedResult)
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}
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@warn_unused_result
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public // @testable
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func _squeezeHashValue(hashValue: Int, _ resultRange: Range<UInt>) -> UInt {
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let mixedHashValue = UInt(bitPattern: _mixInt(hashValue))
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let resultCardinality: UInt = resultRange.endIndex - resultRange.startIndex
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if _isPowerOf2(resultCardinality) {
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return mixedHashValue & (resultCardinality - 1)
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}
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return resultRange.startIndex + (mixedHashValue % resultCardinality)
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}
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