mirror of
https://github.com/octoleo/syncthing.git
synced 2025-03-30 22:42:21 +00:00
293 lines
5.4 KiB
Go
293 lines
5.4 KiB
Go
/*
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* Minio Cloud Storage, (C) 2016 Minio, Inc.
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*
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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*/
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package sha256
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import (
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"crypto/sha256"
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"encoding/binary"
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"hash"
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"runtime"
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)
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// Size - The size of a SHA256 checksum in bytes.
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const Size = 32
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// BlockSize - The blocksize of SHA256 in bytes.
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const BlockSize = 64
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const (
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chunk = BlockSize
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init0 = 0x6A09E667
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init1 = 0xBB67AE85
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init2 = 0x3C6EF372
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init3 = 0xA54FF53A
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init4 = 0x510E527F
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init5 = 0x9B05688C
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init6 = 0x1F83D9AB
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init7 = 0x5BE0CD19
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)
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// digest represents the partial evaluation of a checksum.
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type digest struct {
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h [8]uint32
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x [chunk]byte
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nx int
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len uint64
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}
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// Reset digest back to default
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func (d *digest) Reset() {
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d.h[0] = init0
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d.h[1] = init1
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d.h[2] = init2
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d.h[3] = init3
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d.h[4] = init4
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d.h[5] = init5
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d.h[6] = init6
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d.h[7] = init7
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d.nx = 0
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d.len = 0
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}
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type blockfuncType int
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const (
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blockfuncGeneric blockfuncType = iota
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blockfuncAvx512 blockfuncType = iota
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blockfuncAvx2 blockfuncType = iota
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blockfuncAvx blockfuncType = iota
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blockfuncSsse blockfuncType = iota
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blockfuncSha blockfuncType = iota
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blockfuncArm blockfuncType = iota
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)
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var blockfunc blockfuncType
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func block(dig *digest, p []byte) {
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if blockfunc == blockfuncSha {
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blockShaGo(dig, p)
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} else if blockfunc == blockfuncAvx2 {
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blockAvx2Go(dig, p)
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} else if blockfunc == blockfuncAvx {
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blockAvxGo(dig, p)
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} else if blockfunc == blockfuncSsse {
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blockSsseGo(dig, p)
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} else if blockfunc == blockfuncArm {
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blockArmGo(dig, p)
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} else if blockfunc == blockfuncGeneric {
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blockGeneric(dig, p)
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}
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}
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func init() {
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is386bit := runtime.GOARCH == "386"
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isARM := runtime.GOARCH == "arm"
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switch {
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case is386bit || isARM:
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blockfunc = blockfuncGeneric
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case sha && ssse3 && sse41:
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blockfunc = blockfuncSha
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case avx2:
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blockfunc = blockfuncAvx2
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case avx:
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blockfunc = blockfuncAvx
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case ssse3:
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blockfunc = blockfuncSsse
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case armSha:
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blockfunc = blockfuncArm
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default:
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blockfunc = blockfuncGeneric
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}
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}
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// New returns a new hash.Hash computing the SHA256 checksum.
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func New() hash.Hash {
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if blockfunc != blockfuncGeneric {
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d := new(digest)
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d.Reset()
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return d
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}
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// Fallback to the standard golang implementation
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// if no features were found.
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return sha256.New()
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}
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// Sum256 - single caller sha256 helper
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func Sum256(data []byte) (result [Size]byte) {
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var d digest
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d.Reset()
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d.Write(data)
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result = d.checkSum()
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return
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}
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// Return size of checksum
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func (d *digest) Size() int { return Size }
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// Return blocksize of checksum
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func (d *digest) BlockSize() int { return BlockSize }
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// Write to digest
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func (d *digest) Write(p []byte) (nn int, err error) {
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nn = len(p)
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d.len += uint64(nn)
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if d.nx > 0 {
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n := copy(d.x[d.nx:], p)
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d.nx += n
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if d.nx == chunk {
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block(d, d.x[:])
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d.nx = 0
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}
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p = p[n:]
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}
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if len(p) >= chunk {
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n := len(p) &^ (chunk - 1)
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block(d, p[:n])
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p = p[n:]
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}
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if len(p) > 0 {
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d.nx = copy(d.x[:], p)
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}
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return
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}
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// Return sha256 sum in bytes
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func (d *digest) Sum(in []byte) []byte {
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// Make a copy of d0 so that caller can keep writing and summing.
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d0 := *d
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hash := d0.checkSum()
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return append(in, hash[:]...)
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}
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// Intermediate checksum function
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func (d *digest) checkSum() (digest [Size]byte) {
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n := d.nx
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var k [64]byte
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copy(k[:], d.x[:n])
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k[n] = 0x80
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if n >= 56 {
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block(d, k[:])
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// clear block buffer - go compiles this to optimal 1x xorps + 4x movups
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// unfortunately expressing this more succinctly results in much worse code
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k[0] = 0
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k[1] = 0
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k[2] = 0
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k[3] = 0
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k[4] = 0
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k[5] = 0
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k[6] = 0
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k[7] = 0
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k[8] = 0
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k[9] = 0
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k[10] = 0
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k[11] = 0
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k[12] = 0
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k[13] = 0
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k[14] = 0
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k[15] = 0
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k[16] = 0
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k[17] = 0
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k[18] = 0
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k[19] = 0
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k[20] = 0
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k[21] = 0
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k[22] = 0
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k[23] = 0
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k[24] = 0
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k[25] = 0
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k[26] = 0
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k[27] = 0
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k[28] = 0
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k[29] = 0
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k[30] = 0
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k[31] = 0
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k[32] = 0
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k[33] = 0
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k[34] = 0
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k[35] = 0
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k[36] = 0
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k[37] = 0
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k[38] = 0
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k[39] = 0
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k[40] = 0
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k[41] = 0
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k[42] = 0
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k[43] = 0
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k[44] = 0
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k[45] = 0
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k[46] = 0
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k[47] = 0
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k[48] = 0
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k[49] = 0
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k[50] = 0
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k[51] = 0
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k[52] = 0
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k[53] = 0
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k[54] = 0
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k[55] = 0
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k[56] = 0
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k[57] = 0
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k[58] = 0
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k[59] = 0
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k[60] = 0
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k[61] = 0
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k[62] = 0
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k[63] = 0
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}
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binary.BigEndian.PutUint64(k[56:64], uint64(d.len)<<3)
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block(d, k[:])
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{
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const i = 0
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binary.BigEndian.PutUint32(digest[i*4:i*4+4], d.h[i])
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}
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{
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const i = 1
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binary.BigEndian.PutUint32(digest[i*4:i*4+4], d.h[i])
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}
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{
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const i = 2
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binary.BigEndian.PutUint32(digest[i*4:i*4+4], d.h[i])
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}
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{
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const i = 3
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binary.BigEndian.PutUint32(digest[i*4:i*4+4], d.h[i])
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}
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{
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const i = 4
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binary.BigEndian.PutUint32(digest[i*4:i*4+4], d.h[i])
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}
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{
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const i = 5
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binary.BigEndian.PutUint32(digest[i*4:i*4+4], d.h[i])
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}
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{
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const i = 6
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binary.BigEndian.PutUint32(digest[i*4:i*4+4], d.h[i])
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}
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{
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const i = 7
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binary.BigEndian.PutUint32(digest[i*4:i*4+4], d.h[i])
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}
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return
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}
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