221 lines
5.9 KiB
Go
221 lines
5.9 KiB
Go
// Copyright (c) 2021 The Go Authors. All rights reserved.
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// Use of this source code is governed by a BSD-style
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// license that can be found in the LICENSE file.
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package edwards25519
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import (
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"crypto/rand"
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"encoding/hex"
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"testing"
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"testing/quick"
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)
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// TestBytesMontgomery tests the SetBytesWithClamping+BytesMontgomery path
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// equivalence to curve25519.X25519 for basepoint scalar multiplications.
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//
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// Note that you can't actually implement X25519 with this package because
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// there is no SetBytesMontgomery, and it would not be possible to implement
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// it properly: points on the twist would get rejected, and the Scalar returned
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// by SetBytesWithClamping does not preserve its cofactor-clearing properties.
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//
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// Disabled to avoid the golang.org/x/crypto module dependency.
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/* func TestBytesMontgomery(t *testing.T) {
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f := func(scalar [32]byte) bool {
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s := NewScalar().SetBytesWithClamping(scalar[:])
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p := (&Point{}).ScalarBaseMult(s)
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got := p.BytesMontgomery()
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want, _ := curve25519.X25519(scalar[:], curve25519.Basepoint)
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return bytes.Equal(got, want)
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}
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if err := quick.Check(f, nil); err != nil {
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t.Error(err)
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}
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} */
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func TestBytesMontgomerySodium(t *testing.T) {
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// Generated with libsodium.js 1.0.18
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// crypto_sign_keypair().publicKey
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publicKey := "3bf918ffc2c955dc895bf145f566fb96623c1cadbe040091175764b5fde322c0"
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p, err := (&Point{}).SetBytes(decodeHex(publicKey))
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if err != nil {
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t.Fatal(err)
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}
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// crypto_sign_ed25519_pk_to_curve25519(publicKey)
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want := "efc6c9d0738e9ea18d738ad4a2653631558931b0f1fde4dd58c436d19686dc28"
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if got := hex.EncodeToString(p.BytesMontgomery()); got != want {
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t.Errorf("got %q, want %q", got, want)
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}
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}
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func TestBytesMontgomeryInfinity(t *testing.T) {
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p := NewIdentityPoint()
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want := "0000000000000000000000000000000000000000000000000000000000000000"
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if got := hex.EncodeToString(p.BytesMontgomery()); got != want {
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t.Errorf("got %q, want %q", got, want)
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}
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}
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func TestMultByCofactor(t *testing.T) {
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lowOrderBytes := "26e8958fc2b227b045c3f489f2ef98f0d5dfac05d3c63339b13802886d53fc85"
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lowOrder, err := (&Point{}).SetBytes(decodeHex(lowOrderBytes))
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if err != nil {
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t.Fatal(err)
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}
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if p := (&Point{}).MultByCofactor(lowOrder); p.Equal(NewIdentityPoint()) != 1 {
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t.Errorf("expected low order point * cofactor to be the identity")
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}
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f := func(scalar [64]byte) bool {
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s, _ := NewScalar().SetUniformBytes(scalar[:])
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p := (&Point{}).ScalarBaseMult(s)
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p8 := (&Point{}).MultByCofactor(p)
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checkOnCurve(t, p8)
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// 8 * p == (8 * s) * B
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reprEight := [32]byte{8, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0}
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scEight, _ := (&Scalar{}).SetCanonicalBytes(reprEight[:])
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s.Multiply(s, scEight)
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pp := (&Point{}).ScalarBaseMult(s)
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if p8.Equal(pp) != 1 {
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return false
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}
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// 8 * p == 8 * (lowOrder + p)
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pp.Add(p, lowOrder)
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pp.MultByCofactor(pp)
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if p8.Equal(pp) != 1 {
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return false
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}
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// 8 * p == p + p + p + p + p + p + p + p
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pp.Set(NewIdentityPoint())
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for i := 0; i < 8; i++ {
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pp.Add(pp, p)
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}
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return p8.Equal(pp) == 1
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}
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if err := quick.Check(f, nil); err != nil {
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t.Error(err)
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}
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}
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func TestScalarInvert(t *testing.T) {
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invertWorks := func(xInv Scalar, x notZeroScalar) bool {
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xInv.Invert((*Scalar)(&x))
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var check Scalar
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check.Multiply((*Scalar)(&x), &xInv)
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return check.Equal(scOne) == 1 && isReduced(xInv.Bytes())
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}
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if err := quick.Check(invertWorks, quickCheckConfig(32)); err != nil {
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t.Error(err)
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}
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randomScalar := *dalekScalar
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randomInverse := NewScalar().Invert(&randomScalar)
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var check Scalar
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check.Multiply(&randomScalar, randomInverse)
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if check.Equal(scOne) == 0 || !isReduced(randomInverse.Bytes()) {
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t.Error("inversion did not work")
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}
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zero := NewScalar()
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if xx := NewScalar().Invert(zero); xx.Equal(zero) != 1 {
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t.Errorf("inverting zero did not return zero")
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}
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}
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func TestMultiScalarMultMatchesBaseMult(t *testing.T) {
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multiScalarMultMatchesBaseMult := func(x, y, z Scalar) bool {
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var p, q1, q2, q3, check Point
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p.MultiScalarMult([]*Scalar{&x, &y, &z}, []*Point{B, B, B})
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q1.ScalarBaseMult(&x)
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q2.ScalarBaseMult(&y)
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q3.ScalarBaseMult(&z)
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check.Add(&q1, &q2).Add(&check, &q3)
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checkOnCurve(t, &p, &check, &q1, &q2, &q3)
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return p.Equal(&check) == 1
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}
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if err := quick.Check(multiScalarMultMatchesBaseMult, quickCheckConfig(32)); err != nil {
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t.Error(err)
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}
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}
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func TestVarTimeMultiScalarMultMatchesBaseMult(t *testing.T) {
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varTimeMultiScalarMultMatchesBaseMult := func(x, y, z Scalar) bool {
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var p, q1, q2, q3, check Point
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p.VarTimeMultiScalarMult([]*Scalar{&x, &y, &z}, []*Point{B, B, B})
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q1.ScalarBaseMult(&x)
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q2.ScalarBaseMult(&y)
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q3.ScalarBaseMult(&z)
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check.Add(&q1, &q2).Add(&check, &q3)
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checkOnCurve(t, &p, &check, &q1, &q2, &q3)
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return p.Equal(&check) == 1
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}
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if err := quick.Check(varTimeMultiScalarMultMatchesBaseMult, quickCheckConfig(32)); err != nil {
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t.Error(err)
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}
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}
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func BenchmarkMultiScalarMultSize8(t *testing.B) {
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var p Point
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x := dalekScalar
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for i := 0; i < t.N; i++ {
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p.MultiScalarMult([]*Scalar{x, x, x, x, x, x, x, x},
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[]*Point{B, B, B, B, B, B, B, B})
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}
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}
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func BenchmarkScalarAddition(b *testing.B) {
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var rnd [128]byte
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rand.Read(rnd[:])
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s1, _ := (&Scalar{}).SetUniformBytes(rnd[0:64])
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s2, _ := (&Scalar{}).SetUniformBytes(rnd[64:128])
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t := &Scalar{}
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b.ResetTimer()
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for i := 0; i < b.N; i++ {
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t.Add(s1, s2)
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}
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}
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func BenchmarkScalarMultiplication(b *testing.B) {
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var rnd [128]byte
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rand.Read(rnd[:])
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s1, _ := (&Scalar{}).SetUniformBytes(rnd[0:64])
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s2, _ := (&Scalar{}).SetUniformBytes(rnd[64:128])
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t := &Scalar{}
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b.ResetTimer()
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for i := 0; i < b.N; i++ {
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t.Multiply(s1, s2)
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}
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}
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func BenchmarkScalarInversion(b *testing.B) {
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var rnd [64]byte
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rand.Read(rnd[:])
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s1, _ := (&Scalar{}).SetUniformBytes(rnd[0:64])
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b.ResetTimer()
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for i := 0; i < b.N; i++ {
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s1.Invert(s1)
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}
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}
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