Formatting
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@ -1,41 +1,44 @@
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package main
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import (
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"bytes"
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"encoding/hex"
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"encoding/json"
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"io/ioutil"
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"bytes"
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"encoding/hex"
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"encoding/json"
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"io/ioutil"
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"github.com/henrydcase/nobs/dh/csidh"
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"github.com/henrydcase/sidh_torture/csidh/ref/go-wrapper"
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"github.com/henrydcase/nobs/dh/csidh"
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"github.com/henrydcase/sidh_torture/csidh/ref/go-wrapper"
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)
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// Possible values for "Status"
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const (
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Valid = iota // Indicates that shared secret must be agreed correctly
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InvalidSharedSecret // Calculated shared secret must be different than test vector
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InvalidPublicKey1 // Public key 1 generated from private key must be different than test vector
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InvalidPublicKey2 // Public key 2 must fail validation
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Valid = iota // Indicates that shared secret must be agreed correctly
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ValidPublicKey2 // Public key 2 must succeed validation
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InvalidSharedSecret // Calculated shared secret must be different than test vector
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InvalidPublicKey1 // Public key 1 generated from private key must be different than test vector
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InvalidPublicKey2 // Public key 2 must fail validation
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)
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var StatusValues = map[int]string{
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Valid: "valid",
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InvalidSharedSecret: "invalid_shared_secret",
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InvalidPublicKey1: "invalid_public_key1",
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InvalidPublicKey2: "invalid_public_key2",
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Valid: "valid",
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ValidPublicKey2: "valid_public_key2",
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InvalidSharedSecret: "invalid_shared_secret",
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InvalidPublicKey1: "invalid_public_key1",
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InvalidPublicKey2: "invalid_public_key2",
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}
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type TestVector struct {
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Id int `json:"Id"`
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Pk1 string `json:"Pk1"`
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Pr1 string `json:"Pr1"`
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Pk2 string `json:"Pk2"`
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Ss string `json:"Ss"`
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Status string `json:"status"`
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Id int `json:"Id"`
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Pk1 string `json:"Pk1"`
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Pr1 string `json:"Pr1"`
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Pk2 string `json:"Pk2"`
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Ss string `json:"Ss"`
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Status string `json:"status"`
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Comment string `json:"comment"`
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}
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type TestVectors struct {
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Vectors []TestVector `json:"Vectors"`
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Vectors []TestVector `json:"Vectors"`
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}
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// R is a reference to C implementation.
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@ -44,139 +47,142 @@ var R wrapper.Ref
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// createValid creates 'num' of TestVector's. Each vector contains
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// valid data.
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func createValid(num int) TestVector {
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var tv TestVector
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var ss [csidh.SharedSecretSize]byte
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var pk [csidh.PublicKeySize]byte
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var pr [csidh.PrivateKeySize]byte
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var tv TestVector
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var ss [csidh.SharedSecretSize]byte
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var pk [csidh.PublicKeySize]byte
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var pr [csidh.PrivateKeySize]byte
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prA := R.KeygenPrv()
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pkA := R.KeygenPub(&prA)
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prB := R.KeygenPrv()
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pkB := R.KeygenPub(&prB)
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prA := R.KeygenPrv()
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pkA := R.KeygenPub(&prA)
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prB := R.KeygenPrv()
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pkB := R.KeygenPub(&prB)
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R.Derive(ss[:], &pkB, &prA)
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R.Derive(ss[:], &pkB, &prA)
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tv.Id = num
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tv.Status = StatusValues[Valid]
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tv.Id = num
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tv.Status = StatusValues[Valid]
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tv.Ss = hex.EncodeToString(ss[:])
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tv.Ss = hex.EncodeToString(ss[:])
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prA.Export(pr[:])
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tv.Pr1 = hex.EncodeToString(pr[:])
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prA.Export(pr[:])
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tv.Pr1 = hex.EncodeToString(pr[:])
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pkA.Export(pk[:])
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tv.Pk1 = hex.EncodeToString(pk[:])
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pkA.Export(pk[:])
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tv.Pk1 = hex.EncodeToString(pk[:])
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for i, _ := range pk {
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pk[i] = 0
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}
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for i, _ := range pk {
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pk[i] = 0
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}
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pkB.Export(pk[:])
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tv.Pk2 = hex.EncodeToString(pk[:])
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pkB.Export(pk[:])
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tv.Pk2 = hex.EncodeToString(pk[:])
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return tv
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return tv
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}
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func createNegativeSharedSecret(vectors *TestVectors) {
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n := len(vectors.Vectors)
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tv := createValid(n)
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ss, err := hex.DecodeString(tv.Ss)
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if err != nil {
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panic("Can't decode shared secret")
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}
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n := len(vectors.Vectors)
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tv := createValid(n)
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ss, err := hex.DecodeString(tv.Ss)
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if err != nil {
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panic("Can't decode shared secret")
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}
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for i:=0; i<csidh.SharedSecretSize; i++ {
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var newSs [csidh.SharedSecretSize]byte
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copy(newSs[:], ss[:])
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newSs[i] = ss[i]^ss[(i+1)%csidh.SharedSecretSize]
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for i := 0; i < csidh.SharedSecretSize; i++ {
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var newSs [csidh.SharedSecretSize]byte
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copy(newSs[:], ss[:])
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newSs[i] = ss[i] ^ ss[(i+1)%csidh.SharedSecretSize]
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if bytes.Equal(newSs[:], ss) {
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tv.Status = StatusValues[Valid]
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} else {
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tv.Status = StatusValues[InvalidSharedSecret]
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}
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tv.Ss = hex.EncodeToString(newSs[:])
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tv.Id = n + i
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vectors.Vectors = append(vectors.Vectors, tv)
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}
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if bytes.Equal(newSs[:], ss) {
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tv.Status = StatusValues[Valid]
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} else {
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tv.Status = StatusValues[InvalidSharedSecret]
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}
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tv.Ss = hex.EncodeToString(newSs[:])
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tv.Id = n + i
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vectors.Vectors = append(vectors.Vectors, tv)
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}
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}
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// Public key validation fails
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func createNegativePk2(vectors *TestVectors) {
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n := len(vectors.Vectors)
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tv := createValid(n)
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pk, err := hex.DecodeString(tv.Pk2)
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if err != nil {
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panic("Can't decode public key 2")
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}
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n := len(vectors.Vectors)
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tv := createValid(n)
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pk, err := hex.DecodeString(tv.Pk2)
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if err != nil {
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panic("Can't decode public key 2")
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}
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for i:=0; i<csidh.PublicKeySize; i++ {
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var newPk [csidh.PublicKeySize]byte
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for i := 0; i < csidh.PublicKeySize; i++ {
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var newPk [csidh.PublicKeySize]byte
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// Modify good public key so it's probably no longer valid
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copy(newPk[:], pk[:])
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newPk[i] = pk[i]^pk[(i+1)%csidh.PublicKeySize]
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// Modify good public key so it's probably no longer valid
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copy(newPk[:], pk[:])
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newPk[i] = pk[i] ^ pk[(i+1)%csidh.PublicKeySize]
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// Try to validate and set the status
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if R.Validate(newPk[:]) {
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tv.Status = StatusValues[Valid]
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} else {
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tv.Status = StatusValues[InvalidPublicKey2]
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}
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tv.Pk2 = hex.EncodeToString(newPk[:])
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tv.Id = n + i
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vectors.Vectors = append(vectors.Vectors, tv)
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}
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// Try to validate and set the status
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if R.Validate(newPk[:]) {
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tv.Status = StatusValues[Valid]
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} else {
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tv.Status = StatusValues[InvalidPublicKey2]
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}
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tv.Pk2 = hex.EncodeToString(newPk[:])
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tv.Id = n + i
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vectors.Vectors = append(vectors.Vectors, tv)
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}
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}
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// Private key doesn't correspond to public key
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func createNegativePrivateKey(vectors *TestVectors, num int) {
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n := len(vectors.Vectors)
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for i:=0; i<num; i++ {
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var tv TestVector
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var pkBytes1 [csidh.PublicKeySize]byte
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var pkBytes2 [csidh.PublicKeySize]byte
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var prBytes [csidh.PrivateKeySize]byte
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n := len(vectors.Vectors)
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for i := 0; i < num; i++ {
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var tv TestVector
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var pkBytes1 [csidh.PublicKeySize]byte
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var pkBytes2 [csidh.PublicKeySize]byte
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var prBytes [csidh.PrivateKeySize]byte
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pr1 := R.KeygenPrv()
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pk1 := R.KeygenPub(&pr1)
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pr1 := R.KeygenPrv()
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pk1 := R.KeygenPub(&pr1)
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// Store private key 1
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pr1.Export(prBytes[:])
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tv.Pr1 = hex.EncodeToString(prBytes[:])
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// Store private key 1
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pr1.Export(prBytes[:])
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tv.Pr1 = hex.EncodeToString(prBytes[:])
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// Generate public key which doesn't correspond to pr1
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pr2 := R.KeygenPrv()
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pk2 := R.KeygenPub(&pr2)
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// Generate public key which doesn't correspond to pr1
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pr2 := R.KeygenPrv()
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pk2 := R.KeygenPub(&pr2)
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pk1.Export(pkBytes1[:])
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pk2.Export(pkBytes2[:])
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if bytes.Equal(pkBytes1[:], pkBytes2[:]) {
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tv.Status = StatusValues[Valid]
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} else {
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tv.Status = StatusValues[InvalidPublicKey1]
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}
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pk1.Export(pkBytes1[:])
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pk2.Export(pkBytes2[:])
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if bytes.Equal(pkBytes1[:], pkBytes2[:]) {
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tv.Status = StatusValues[Valid]
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} else {
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tv.Status = StatusValues[InvalidPublicKey1]
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}
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tv.Id = n + i
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tv.Pk1 = hex.EncodeToString(pkBytes2[:])
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tv.Id = n + i
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tv.Pk1 = hex.EncodeToString(pkBytes2[:])
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vectors.Vectors = append(vectors.Vectors, tv)
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}
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vectors.Vectors = append(vectors.Vectors, tv)
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}
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}
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// TODO: Produce test case for a Pk2 with all zeros and status valid_public_key2.
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// comment should be "Zero key should validate correctly"
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func main() {
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var vectors TestVectors
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var vectors TestVectors
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for i:=0; i<10; i++ {
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vectors.Vectors = append(vectors.Vectors, createValid(i))
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}
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createNegativeSharedSecret(&vectors)
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createNegativePrivateKey(&vectors, 10)
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createNegativePk2(&vectors)
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for i := 0; i < 10; i++ {
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vectors.Vectors = append(vectors.Vectors, createValid(i))
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}
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createNegativeSharedSecret(&vectors)
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createNegativePrivateKey(&vectors, 10)
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createNegativePk2(&vectors)
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marshalled, err := json.MarshalIndent(vectors, "", " ")
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if err != nil {
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panic("Error occured while Marshalling")
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}
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ioutil.WriteFile("testvectors.dat", marshalled, 0644)
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marshalled, err := json.MarshalIndent(vectors, "", " ")
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if err != nil {
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panic("Error occured while Marshalling")
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}
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ioutil.WriteFile("testvectors.dat", marshalled, 0644)
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}
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