Merge pull request #2245 from triska/crrl_ed25519
ENHANCED: Use crrl for Ed25519 signing and signature verification.
This commit is contained in:
@@ -511,18 +511,12 @@ enum SystemClauseType {
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#[cfg(feature = "crypto-full")]
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#[strum_discriminants(strum(props(Arity = "6", Name = "$crypto_data_decrypt")))]
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CryptoDataDecrypt,
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#[cfg(feature = "crypto-full")]
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#[strum_discriminants(strum(props(Arity = "4", Name = "$ed25519_sign")))]
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Ed25519Sign,
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#[cfg(feature = "crypto-full")]
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#[strum_discriminants(strum(props(Arity = "4", Name = "$ed25519_verify")))]
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Ed25519Verify,
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#[cfg(feature = "crypto-full")]
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#[strum_discriminants(strum(props(Arity = "1", Name = "$ed25519_new_keypair")))]
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Ed25519NewKeyPair,
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#[cfg(feature = "crypto-full")]
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#[strum_discriminants(strum(props(Arity = "2", Name = "$ed25519_keypair_public_key")))]
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Ed25519KeyPairPublicKey,
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#[strum_discriminants(strum(props(Arity = "4", Name = "$ed25519_sign_raw")))]
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Ed25519SignRaw,
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#[strum_discriminants(strum(props(Arity = "4", Name = "$ed25519_verify_raw")))]
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Ed25519VerifyRaw,
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#[strum_discriminants(strum(props(Arity = "2", Name = "$ed25519_seed_to_public_key")))]
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Ed25519SeedToPublicKey,
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#[strum_discriminants(strum(props(Arity = "2", Name = "$first_non_octet")))]
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FirstNonOctet,
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#[strum_discriminants(strum(props(Arity = "3", Name = "$load_html")))]
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@@ -1874,18 +1868,17 @@ fn generate_instruction_preface() -> TokenStream {
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&Instruction::CallFlushTermQueue |
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&Instruction::CallRemoveModuleExports |
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&Instruction::CallAddNonCountedBacktracking |
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&Instruction::CallPopCount => {
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&Instruction::CallPopCount |
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&Instruction::CallEd25519SignRaw |
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&Instruction::CallEd25519VerifyRaw |
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&Instruction::CallEd25519SeedToPublicKey => {
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let (name, arity) = self.to_name_and_arity();
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functor!(atom!("call"), [atom(name), fixnum(arity)])
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}
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//
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#[cfg(feature = "crypto-full")]
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&Instruction::CallCryptoDataEncrypt |
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&Instruction::CallCryptoDataDecrypt |
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&Instruction::CallEd25519Sign |
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&Instruction::CallEd25519Verify |
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&Instruction::CallEd25519NewKeyPair |
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&Instruction::CallEd25519KeyPairPublicKey => {
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&Instruction::CallCryptoDataDecrypt => {
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let (name, arity) = self.to_name_and_arity();
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functor!(atom!("call"), [atom(name), fixnum(arity)])
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}
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@@ -2110,18 +2103,17 @@ fn generate_instruction_preface() -> TokenStream {
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&Instruction::ExecuteFlushTermQueue |
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&Instruction::ExecuteRemoveModuleExports |
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&Instruction::ExecuteAddNonCountedBacktracking |
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&Instruction::ExecutePopCount => {
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&Instruction::ExecutePopCount |
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&Instruction::ExecuteEd25519SignRaw |
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&Instruction::ExecuteEd25519VerifyRaw |
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&Instruction::ExecuteEd25519SeedToPublicKey => {
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let (name, arity) = self.to_name_and_arity();
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functor!(atom!("execute"), [atom(name), fixnum(arity)])
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}
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//
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#[cfg(feature = "crypto-full")]
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&Instruction::ExecuteCryptoDataEncrypt |
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&Instruction::ExecuteCryptoDataDecrypt |
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&Instruction::ExecuteEd25519Sign |
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&Instruction::ExecuteEd25519Verify |
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&Instruction::ExecuteEd25519NewKeyPair |
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&Instruction::ExecuteEd25519KeyPairPublicKey => {
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&Instruction::ExecuteCryptoDataDecrypt => {
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let (name, arity) = self.to_name_and_arity();
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functor!(atom!("execute"), [atom(name), fixnum(arity)])
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}
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@@ -25,6 +25,7 @@
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crypto_password_hash/3, % +Password, -Hash, +Options
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crypto_data_encrypt/6, % +PlainText, +Algorithm, +Key, +IV, -CipherText, +Options
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crypto_data_decrypt/6, % +CipherText, +Algorithm, +Key, +IV, -PlainText, +Options
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ed25519_seed_keypair/2, % +Seed, -KeyPair
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ed25519_new_keypair/1, % -KeyPair
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ed25519_keypair_public_key/2, % +KeyPair, +PublicKey
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ed25519_sign/4, % +KeyPair, +Data, -Signature, +Options
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@@ -612,6 +613,34 @@ encoding_chars(utf8, Cs, Cs) :-
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===============================
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- - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - */
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%% ed25519_seed_keypair(+Seed, -Pair)
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%
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% Use Seed to deterministically generate an Ed25519 key pair Pair, a
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% list of characters. Seed must be a list of 32 bytes. It can be
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% chosen at random (using for example `crypto_n_random_bytes/2`) or
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% derived from input keying material (IKM) using for example
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% `crypto_data_hkdf/4`. The pair contains the private key and must be
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% kept absolutely secret. Pair can be used for signing. Its public
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% key can be obtained with `ed25519_keypair_public_key/2`.
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ed25519_seed_keypair(Seed, Pair) :-
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must_be_bytes(Seed, ed25519_keypair_from_seed/2),
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length(Seed, 32),
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'$ed25519_seed_to_public_key'(Seed, Public),
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maplist(char_code, Public, PublicBytes),
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phrase(([0x30,81], % a sequence of 81 bytes follows
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[2,1], % the integer 1 denoting version 2 (awesome design!)
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[1], % the public key is also present
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[48,5], % an element of 5 bytes follows
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[6,3,43,101,112], % OID of Ed25519
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[4,34], % an octet string of 34 bytes follows
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[4,32], % an octet string of 32 bytes follows
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seq(Seed), % the seed is the private key
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[129,33],
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[0], % 32 bytes is divisible by 8
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seq(PublicBytes)), ASN1),
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maplist(char_code, Pair, ASN1).
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%% ed25519_new_keypair(-Pair)
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%
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% Yields a new Ed25519 key pair Pair, a list of characters. The
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@@ -620,7 +649,8 @@ encoding_chars(utf8, Cs, Cs) :-
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% with `ed25519_keypair_public_key/2`.
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ed25519_new_keypair(Pair) :-
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'$ed25519_new_keypair'(Pair).
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crypto_n_random_bytes(32, Bytes),
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ed25519_seed_keypair(Bytes, Pair).
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%% ed25519_keypair_public_key(+Pair, -PublicKey)
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%
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@@ -629,8 +659,11 @@ ed25519_new_keypair(Pair) :-
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% The public key is represented as a list of characters.
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ed25519_keypair_public_key(Pair, PublicKey) :-
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must_be_octet_chars(Pair, ed25519_keypair_public_key),
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'$ed25519_keypair_public_key'(Pair, PublicKey).
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must_be_octet_chars(Pair, ed25519_keypair_public_key/2),
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reverse(Pair, RPs),
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length(RPublicKey, 32),
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phrase((seq(RPublicKey),...), RPs),
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reverse(RPublicKey, PublicKey).
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%% ed25519_sign(+Key, +Data, -Signature, +Options)
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%
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@@ -638,10 +671,14 @@ ed25519_keypair_public_key(Pair, PublicKey) :-
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% PKCS#8 v2 format as generated by `ed25519_new_keypair/1`. Sign Data
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% with Key, yielding Signature as a list of hexadecimal characters.
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ed25519_sign(Key, Data0, Signature, Options) :-
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must_be_octet_chars(Key, ed25519_sign),
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ed25519_sign(KeyPair, Data0, Signature, Options) :-
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must_be_octet_chars(KeyPair, ed25519_sign/4),
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length(Prefix, 16),
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length(PrivateKeyChars, 32),
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phrase((seq(Prefix),seq(PrivateKeyChars),...), KeyPair),
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maplist(char_code, PrivateKeyChars, PrivateKey),
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options_data_chars(Options, Data0, Data, Encoding),
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'$ed25519_sign'(Key, Data, Encoding, Signature0),
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'$ed25519_sign_raw'(PrivateKey, Data, Encoding, Signature0),
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hex_bytes(Signature, Signature0).
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%% ed25519_verify(+Key, +Data, +Signature, +Options)
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@@ -658,10 +695,10 @@ ed25519_sign(Key, Data0, Signature, Options) :-
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% which treats Data as a list of raw bytes.
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ed25519_verify(Key, Data0, Signature0, Options) :-
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must_be_octet_chars(Key, ed25519_verify),
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must_be_octet_chars(Key, ed25519_verify/4),
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options_data_chars(Options, Data0, Data, Encoding),
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hex_bytes(Signature0, Signature),
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'$ed25519_verify'(Key, Data, Encoding, Signature).
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'$ed25519_verify_raw'(Key, Data, Encoding, Signature).
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/* - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - -
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X25519: ECDH key exchange over Curve25519
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@@ -4491,44 +4491,28 @@ impl Machine {
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self.crypto_curve_scalar_mult();
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step_or_fail!(self, self.machine_st.p = self.machine_st.cp);
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}
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#[cfg(feature = "crypto-full")]
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&Instruction::CallEd25519Sign => {
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self.ed25519_sign();
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&Instruction::CallEd25519SignRaw => {
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self.ed25519_sign_raw();
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step_or_fail!(self, self.machine_st.p += 1);
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}
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#[cfg(feature = "crypto-full")]
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&Instruction::ExecuteEd25519Sign => {
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self.ed25519_sign();
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&Instruction::ExecuteEd25519SignRaw => {
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self.ed25519_sign_raw();
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step_or_fail!(self, self.machine_st.p = self.machine_st.cp);
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}
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#[cfg(feature = "crypto-full")]
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&Instruction::CallEd25519Verify => {
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self.ed25519_verify();
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&Instruction::CallEd25519VerifyRaw => {
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self.ed25519_verify_raw();
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step_or_fail!(self, self.machine_st.p += 1);
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}
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#[cfg(feature = "crypto-full")]
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&Instruction::ExecuteEd25519Verify => {
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self.ed25519_verify();
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&Instruction::ExecuteEd25519VerifyRaw => {
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self.ed25519_verify_raw();
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step_or_fail!(self, self.machine_st.p = self.machine_st.cp);
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}
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#[cfg(feature = "crypto-full")]
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&Instruction::CallEd25519NewKeyPair => {
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self.ed25519_new_key_pair();
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&Instruction::CallEd25519SeedToPublicKey => {
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self.ed25519_seed_to_public_key();
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step_or_fail!(self, self.machine_st.p += 1);
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}
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#[cfg(feature = "crypto-full")]
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&Instruction::ExecuteEd25519NewKeyPair => {
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self.ed25519_new_key_pair();
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step_or_fail!(self, self.machine_st.p = self.machine_st.cp);
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}
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#[cfg(feature = "crypto-full")]
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&Instruction::CallEd25519KeyPairPublicKey => {
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self.ed25519_key_pair_public_key();
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step_or_fail!(self, self.machine_st.p += 1);
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}
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#[cfg(feature = "crypto-full")]
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&Instruction::ExecuteEd25519KeyPairPublicKey => {
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self.ed25519_key_pair_public_key();
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&Instruction::ExecuteEd25519SeedToPublicKey => {
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self.ed25519_seed_to_public_key();
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step_or_fail!(self, self.machine_st.p = self.machine_st.cp);
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}
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&Instruction::CallCurve25519ScalarMult => {
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@@ -81,14 +81,11 @@ use ring::rand::{SecureRandom, SystemRandom};
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use ring::{digest, hkdf, pbkdf2};
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#[cfg(feature = "crypto-full")]
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use ring::{
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aead,
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signature::{self, KeyPair},
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};
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use ring::aead;
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use ripemd160::{Digest, Ripemd160};
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use sha3::{Sha3_224, Sha3_256, Sha3_384, Sha3_512};
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use crrl::{secp256k1, x25519};
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use crrl::{ed25519, secp256k1, x25519};
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#[cfg(feature = "tls")]
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use native_tls::{Identity, TlsAcceptor, TlsConnector};
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@@ -7617,33 +7614,16 @@ impl Machine {
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unify!(self.machine_st, self.machine_st.registers[4], uncompressed);
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}
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#[cfg(feature = "crypto-full")]
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#[inline(always)]
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pub(crate) fn ed25519_new_key_pair(&mut self) {
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let pkcs8_bytes = signature::Ed25519KeyPair::generate_pkcs8(rng()).unwrap();
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let complete_string = self.u8s_to_string(pkcs8_bytes.as_ref());
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pub(crate) fn ed25519_seed_to_public_key(&mut self) {
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let stub_gen = || functor_stub(atom!("ed25519_seed_keypair"), 2);
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let seed_bytes = self
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.machine_st
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.integers_to_bytevec(self.machine_st.registers[1], stub_gen);
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unify!(
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self.machine_st,
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self.machine_st.registers[1],
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complete_string
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)
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}
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let skey = ed25519::PrivateKey::from_seed(&seed_bytes);
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#[cfg(feature = "crypto-full")]
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#[inline(always)]
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pub(crate) fn ed25519_key_pair_public_key(&mut self) {
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let bytes = self.string_encoding_bytes(self.machine_st.registers[1], atom!("octet"));
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let key_pair = match signature::Ed25519KeyPair::from_pkcs8(&bytes) {
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Ok(kp) => kp,
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_ => {
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self.machine_st.fail = true;
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return;
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}
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};
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let complete_string = self.u8s_to_string(key_pair.public_key().as_ref());
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let complete_string = self.u8s_to_string(skey.public_key.encoded.as_ref());
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unify!(
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self.machine_st,
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@@ -7652,22 +7632,19 @@ impl Machine {
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);
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}
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#[cfg(feature = "crypto-full")]
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#[inline(always)]
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pub(crate) fn ed25519_sign(&mut self) {
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let key = self.string_encoding_bytes(self.machine_st.registers[1], atom!("octet"));
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pub(crate) fn ed25519_sign_raw(&mut self) {
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let stub_gen = || functor_stub(atom!("ed25519_sign"), 4);
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let seed_bytes = self
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.machine_st
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.integers_to_bytevec(self.machine_st.registers[1], stub_gen);
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let skey = ed25519::PrivateKey::from_seed(&seed_bytes);
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let encoding = cell_as_atom!(self.deref_register(3));
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let data = self.string_encoding_bytes(self.machine_st.registers[2], encoding);
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let key_pair = match signature::Ed25519KeyPair::from_pkcs8(&key) {
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Ok(kp) => kp,
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_ => {
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self.machine_st.fail = true;
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return;
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}
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};
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let sig = key_pair.sign(&data);
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let sig = skey.sign_raw(&data);
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let sig_list = heap_loc_as_cell!(iter_to_heap_list(
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&mut self.machine_st.heap,
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@@ -7679,25 +7656,21 @@ impl Machine {
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unify!(self.machine_st, self.machine_st.registers[4], sig_list);
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}
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#[cfg(feature = "crypto-full")]
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#[inline(always)]
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pub(crate) fn ed25519_verify(&mut self) {
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let key = self.string_encoding_bytes(self.machine_st.registers[1], atom!("octet"));
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pub(crate) fn ed25519_verify_raw(&mut self) {
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let key_bytes = self.string_encoding_bytes(self.machine_st.registers[1], atom!("octet"));
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let pkey = ed25519::PublicKey::decode(&key_bytes).unwrap();
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let encoding = cell_as_atom!(self.deref_register(3));
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let data = self.string_encoding_bytes(self.machine_st.registers[2], encoding);
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let stub_gen = || functor_stub(atom!("ed25519_verify"), 5);
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let stub_gen = || functor_stub(atom!("ed25519_verify"), 4);
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let signature = self
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.machine_st
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.integers_to_bytevec(self.machine_st.registers[4], stub_gen);
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let peer_public_key = signature::UnparsedPublicKey::new(&signature::ED25519, &key);
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match peer_public_key.verify(&data, &signature) {
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Ok(_) => {}
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_ => {
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self.machine_st.fail = true;
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}
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}
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self.machine_st.fail = !pkey.verify_raw(&signature, &data);
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}
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#[inline(always)]
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