Merge branch 'master' of https://github.com/mthom/scryer-prolog
This commit is contained in:
@@ -710,13 +710,13 @@ impl SystemClauseType {
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("$crypto_data_hash", 4) => Some(SystemClauseType::CryptoDataHash),
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("$crypto_data_hkdf", 7) => Some(SystemClauseType::CryptoDataHKDF),
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("$crypto_password_hash", 4) => Some(SystemClauseType::CryptoPasswordHash),
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("$crypto_data_encrypt", 6) => Some(SystemClauseType::CryptoDataEncrypt),
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("$crypto_data_encrypt", 7) => Some(SystemClauseType::CryptoDataEncrypt),
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("$crypto_data_decrypt", 6) => Some(SystemClauseType::CryptoDataDecrypt),
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("$crypto_curve_scalar_mult", 5) => Some(SystemClauseType::CryptoCurveScalarMult),
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("$ed25519_sign", 5) => Some(SystemClauseType::Ed25519Sign),
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("$ed25519_verify", 5) => Some(SystemClauseType::Ed25519Verify),
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("$ed25519_sign", 4) => Some(SystemClauseType::Ed25519Sign),
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("$ed25519_verify", 4) => Some(SystemClauseType::Ed25519Verify),
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("$ed25519_new_keypair", 1) => Some(SystemClauseType::Ed25519NewKeyPair),
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("$ed25519_keypair_public_key", 3) => Some(SystemClauseType::Ed25519KeyPairPublicKey),
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("$ed25519_keypair_public_key", 2) => Some(SystemClauseType::Ed25519KeyPairPublicKey),
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("$curve25519_scalar_mult", 3) => Some(SystemClauseType::Curve25519ScalarMult),
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("$load_html", 3) => Some(SystemClauseType::LoadHTML),
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("$load_xml", 3) => Some(SystemClauseType::LoadXML),
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@@ -918,6 +918,7 @@ op(Priority, OpSpec, Op) :-
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halt :- halt(0).
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halt(N) :-
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must_be_number(N, halt/1),
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( -2^31 =< N, N =< 2^31 - 1 ->
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'$halt'(N)
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; throw(error(domain_error(exit_code, N), halt/1))
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@@ -282,7 +282,7 @@ crypto_data_hkdf(Data0, L, Bytes, Options0) :-
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; domain_error(hkdf_algorithm, Algorithm, crypto_data_hkdf/4)
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),
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must_be(integer, L),
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L >= 0,
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L #>= 0,
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options_data_chars(Options, Data0, Data, Encoding),
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option(salt(SaltBytes), Options, []),
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must_be_bytes(SaltBytes, crypto_data_hkdf/4),
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@@ -415,7 +415,7 @@ crypto_password_hash(Password0, Hash, Options) :-
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chars_bytes_(Password0, Password, crypto_password_hash/3),
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must_be(list, Options),
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option(cost(C), Options, 17),
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Iterations is 2^C,
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Iterations #= 2^C,
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Algorithm = 'pbkdf2-sha512', % current default and only option
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option(algorithm(Algorithm), Options, Algorithm),
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( member(salt(SaltBytes), Options) ->
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@@ -492,6 +492,12 @@ bytes_base64(Bytes, Base64) :-
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list of _bytes_ holding the tag. This tag must be provided for
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decryption.
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- aad(+Data)
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Data is additional authenticated data (AAD), a list of
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characters. It is authenticated in that it influences the tag,
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but it is not encrypted. The encoding/1 option also specifies
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the encoding of Data.
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Here is an example encryption and decryption, using the ChaCha20
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stream cipher with the Poly1305 authenticator. This cipher uses a
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256-bit key and a 96-bit nonce, i.e., 32 and 12 _bytes_,
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@@ -533,13 +539,20 @@ crypto_data_encrypt(PlainText0, Algorithm, Key, IV, CipherText, Options) :-
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must_be_bytes(Tag, crypto_data_encrypt/6)
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; true
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),
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option(aad(AAD0), Options, []),
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encoding_chars(Encoding, AAD0, AAD),
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must_be_bytes(Key, crypto_data_encrypt/6),
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must_be_bytes(IV, crypto_data_encrypt/6),
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must_be(atom, Algorithm),
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( Algorithm = 'chacha20-poly1305' -> true
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; domain_error('chacha20-poly1305', Algorithm, crypto_data_encrypt/6)
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),
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'$crypto_data_encrypt'(PlainText, Encoding, Key, IV, Tag, CipherText).
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algorithm_key_iv(Algorithm, Key, IV),
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'$crypto_data_encrypt'(PlainText, AAD, Encoding, Key, IV, Tag, CipherText).
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algorithm_key_iv('chacha20-poly1305', Key, IV) :-
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length(Key, 32),
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length(IV, 12).
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/* - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - -
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crypto_data_decrypt(+CipherText,
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@@ -567,6 +580,10 @@ crypto_data_encrypt(PlainText0, Algorithm, Key, IV, CipherText, Options) :-
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- tag(+Tag)
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For authenticated encryption schemes, the tag must be specified as
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a list of bytes exactly as they were generated upon encryption.
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- aad(+Data)
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Any additional authenticated data (AAD) must be specified. The
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encoding/1 option also specifies the encoding of Data.
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- - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - */
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crypto_data_decrypt(CipherText0, Algorithm, Key, IV, PlainText, Options) :-
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@@ -576,16 +593,18 @@ crypto_data_decrypt(CipherText0, Algorithm, Key, IV, PlainText, Options) :-
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must_be_bytes(IV, crypto_data_decrypt/6),
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must_be(atom, Algorithm),
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option(encoding(Encoding), Options, utf8),
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option(aad(AAD0), Options, []),
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encoding_chars(Encoding, AAD0, AAD),
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must_be(atom, Encoding),
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member(Encoding, [utf8,octet]),
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must_be(list, CipherText0),
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encoding_chars(octet, CipherText0, CipherText1),
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maplist(char_code, TagChars, Tag),
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append(CipherText1, TagChars, CipherText),
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( Algorithm = 'chacha20-poly1305' -> true
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; domain_error('chacha20-poly1305', Algorithm, crypto_data_decrypt/6)
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),
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'$crypto_data_decrypt'(CipherText, octet, Key, IV, Encoding, PlainText).
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algorithm_key_iv(Algorithm, Key, IV),
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'$crypto_data_decrypt'(CipherText, AAD, Key, IV, Encoding, PlainText).
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encoding_chars(octet, Bs, Cs) :-
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@@ -637,19 +656,19 @@ ed25519_new_keypair(Pair) :-
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ed25519_keypair_public_key(Pair, PublicKey) :-
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must_be_byte_chars(Pair, ed25519_keypair_public_key),
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'$ed25519_keypair_public_key'(Pair, octet, PublicKey).
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'$ed25519_keypair_public_key'(Pair, PublicKey).
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ed25519_sign(Key, Data0, Signature, Options) :-
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must_be_byte_chars(Key, ed25519_sign),
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options_data_chars(Options, Data0, Data, Encoding),
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'$ed25519_sign'(Key, octet, Data, Encoding, Signature0),
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'$ed25519_sign'(Key, Data, Encoding, Signature0),
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hex_bytes(Signature, Signature0).
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ed25519_verify(Key, Data0, Signature0, Options) :-
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must_be_byte_chars(Key, ed25519_verify),
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options_data_chars(Options, Data0, Data, Encoding),
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hex_bytes(Signature0, Signature),
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'$ed25519_verify'(Key, octet, Data, Encoding, Signature).
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'$ed25519_verify'(Key, Data, Encoding, Signature).
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/* - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - -
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X25519: ECDH key exchange over Curve25519
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@@ -688,8 +707,6 @@ curve25519_generator(Gs) :-
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curve25519_scalar_mult(Scalar, Point, Result) :-
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( integer_si(Scalar) ->
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Scalar #>= 0,
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Scalar #< 2^256,
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length(ScalarBytes, 32),
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bytes_integer(ScalarBytes, Scalar)
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; ScalarBytes = Scalar,
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@@ -1706,6 +1706,12 @@ impl MachineState {
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Ok(Number::Integer(n)) => {
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n.to_string()
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}
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Ok(Number::Rational(r)) => {
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// n has already been confirmed as an integer, and
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// internally, Rational is assumed reduced, so its
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// denominator must be 1.
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r.numer().to_string()
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}
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_ => {
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unreachable!()
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}
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@@ -3766,6 +3772,12 @@ impl MachineState {
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let code = match Number::try_from((code, &self.heap)) {
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Ok(Number::Fixnum(n)) => n as i32,
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Ok(Number::Integer(n)) => n.to_i32().unwrap(),
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Ok(Number::Rational(r)) => {
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// n has already been confirmed as an integer, and
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// internally, Rational is assumed reduced, so its
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// denominator must be 1.
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r.numer().to_i32().unwrap()
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}
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_ => { unreachable!() }
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};
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@@ -5394,23 +5406,13 @@ impl MachineState {
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self.unify(arg, byte);
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}
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&SystemClauseType::CryptoDataHash => {
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let bytes = self.string_encoding_bytes(1, 2);
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let encoding = self.atom_argument_to_string(2);
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let bytes = self.string_encoding_bytes(1, &encoding);
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let algorithm_str = match self.store(self.deref(self[temp_v!(4)])) {
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Addr::Con(h) if self.heap.atom_at(h) => {
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if let HeapCellValue::Atom(ref atom, _) = &self.heap[h] {
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atom.as_str()
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} else {
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unreachable!()
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}
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}
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_ => {
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unreachable!()
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}
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};
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let algorithm = self.atom_argument_to_string(4);
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let ints_list =
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match algorithm_str {
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match algorithm.as_str() {
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"sha3_224" => { let mut context = Sha3_224::new();
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context.input(&bytes);
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Addr::HeapCell(self.heap.to_list(context.result().as_ref().iter().map(|b| HeapCellValue::from(Addr::Fixnum(*b as isize))))) }
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@@ -5433,7 +5435,7 @@ impl MachineState {
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context.input(&bytes);
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Addr::HeapCell(self.heap.to_list(context.result().as_ref().iter().map(|b| HeapCellValue::from(Addr::Fixnum(*b as isize))))) }
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_ => { let ints = digest::digest(
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match algorithm_str {
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match algorithm.as_str() {
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"sha256" => { &digest::SHA256 }
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"sha384" => { &digest::SHA384 }
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"sha512" => { &digest::SHA512 }
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@@ -5448,27 +5450,19 @@ impl MachineState {
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self.unify(self[temp_v!(3)], ints_list);
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}
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&SystemClauseType::CryptoDataHKDF => {
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let data = self.string_encoding_bytes(1, 2);
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let encoding = self.atom_argument_to_string(2);
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let data = self.string_encoding_bytes(1, &encoding);
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let stub1 = MachineError::functor_stub(clause_name!("crypto_data_hkdf"), 4);
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let salt = self.integers_to_bytevec(temp_v!(3), stub1);
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let stub2 = MachineError::functor_stub(clause_name!("crypto_data_hkdf"), 4);
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let info = self.integers_to_bytevec(temp_v!(4), stub2);
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let algorithm = match self.store(self.deref(self[temp_v!(5)])) {
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Addr::Con(h) if self.heap.atom_at(h) => {
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if let HeapCellValue::Atom(ref atom, _) = &self.heap[h] {
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atom.as_str()
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} else {
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unreachable!()
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}
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}
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_ => {
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unreachable!()
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}
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};
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let algorithm = self.atom_argument_to_string(5);
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let length = self.store(self.deref(self[temp_v!(6)]));
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let length =
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match Number::try_from((self[temp_v!(6)], &self.heap)) {
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match Number::try_from((length, &self.heap)) {
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Ok(Number::Fixnum(n)) => {
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usize::try_from(n).unwrap()
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}
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@@ -5483,7 +5477,7 @@ impl MachineState {
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let ints_list =
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{ let digest_alg =
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match algorithm {
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match algorithm.as_str() {
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"sha256" => { hkdf::HKDF_SHA256 }
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"sha384" => { hkdf::HKDF_SHA384 }
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"sha512" => { hkdf::HKDF_SHA512 }
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@@ -5541,11 +5535,13 @@ impl MachineState {
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self.unify(self[temp_v!(4)], ints_list);
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}
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&SystemClauseType::CryptoDataEncrypt => {
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let data = self.string_encoding_bytes(1, 2);
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let stub2 = MachineError::functor_stub(clause_name!("crypto_data_encrypt"), 6);
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let key = self.integers_to_bytevec(temp_v!(3), stub2);
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let stub3 = MachineError::functor_stub(clause_name!("crypto_data_encrypt"), 6);
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let iv = self.integers_to_bytevec(temp_v!(4), stub3);
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let encoding = self.atom_argument_to_string(3);
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let data = self.string_encoding_bytes(1, &encoding);
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let aad = self.string_encoding_bytes(2, &encoding);
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let stub2 = MachineError::functor_stub(clause_name!("crypto_data_encrypt"), 7);
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let key = self.integers_to_bytevec(temp_v!(4), stub2);
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let stub3 = MachineError::functor_stub(clause_name!("crypto_data_encrypt"), 7);
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let iv = self.integers_to_bytevec(temp_v!(5), stub3);
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let unbound_key = aead::UnboundKey::new(&aead::CHACHA20_POLY1305, &key).unwrap();
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let nonce = aead::Nonce::try_assume_unique_for_key(&iv).unwrap();
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@@ -5553,7 +5549,7 @@ impl MachineState {
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let mut in_out = data.clone();
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let tag =
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match key.seal_in_place_separate_tag(nonce, aead::Aad::empty(), &mut in_out) {
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match key.seal_in_place_separate_tag(nonce, aead::Aad::from(aad), &mut in_out) {
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Ok(d) => { d }
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_ => { self.fail = true; return Ok(()); }
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};
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@@ -5566,29 +5562,18 @@ impl MachineState {
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self.heap.put_complete_string(&buffer)
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};
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self.unify(self[temp_v!(5)], tag_list);
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self.unify(self[temp_v!(6)], complete_string);
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self.unify(self[temp_v!(6)], tag_list);
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self.unify(self[temp_v!(7)], complete_string);
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}
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&SystemClauseType::CryptoDataDecrypt => {
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let data = self.string_encoding_bytes(1, 2);
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let stub1 = MachineError::functor_stub(clause_name!("crypto_data_decrypt"), 6);
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let data = self.string_encoding_bytes(1, "octet");
|
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let encoding = self.atom_argument_to_string(5);
|
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let aad = self.string_encoding_bytes(2, &encoding);
|
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let stub1 = MachineError::functor_stub(clause_name!("crypto_data_decrypt"), 7);
|
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let key = self.integers_to_bytevec(temp_v!(3), stub1);
|
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let stub2 = MachineError::functor_stub(clause_name!("crypto_data_decrypt"), 6);
|
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let stub2 = MachineError::functor_stub(clause_name!("crypto_data_decrypt"), 7);
|
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let iv = self.integers_to_bytevec(temp_v!(4), stub2);
|
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|
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let encoding = match self.store(self.deref(self[temp_v!(5)])) {
|
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Addr::Con(h) if self.heap.atom_at(h) => {
|
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if let HeapCellValue::Atom(ref atom, _) = &self.heap[h] {
|
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atom.as_str()
|
||||
} else {
|
||||
unreachable!()
|
||||
}
|
||||
}
|
||||
_ => {
|
||||
unreachable!()
|
||||
}
|
||||
};
|
||||
|
||||
let unbound_key = aead::UnboundKey::new(&aead::CHACHA20_POLY1305, &key).unwrap();
|
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let nonce = aead::Nonce::try_assume_unique_for_key(&iv).unwrap();
|
||||
let key = aead::LessSafeKey::new(unbound_key);
|
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@@ -5597,12 +5582,12 @@ impl MachineState {
|
||||
|
||||
let complete_string = {
|
||||
let decrypted_data =
|
||||
match key.open_in_place(nonce, aead::Aad::empty(), &mut in_out) {
|
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match key.open_in_place(nonce, aead::Aad::from(aad), &mut in_out) {
|
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Ok(d) => { d }
|
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_ => { self.fail = true; return Ok(()); }
|
||||
};
|
||||
|
||||
let buffer = match encoding {
|
||||
let buffer = match encoding.as_str() {
|
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"octet" => { String::from_iter(decrypted_data.iter().map(|b| *b as char)) }
|
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"utf8" => { match String::from_utf8(decrypted_data.to_vec()) {
|
||||
Ok(str) => { str }
|
||||
@@ -5618,26 +5603,17 @@ impl MachineState {
|
||||
self.unify(self[temp_v!(6)], complete_string);
|
||||
}
|
||||
&SystemClauseType::CryptoCurveScalarMult => {
|
||||
let curve = match self.store(self.deref(self[temp_v!(1)])) {
|
||||
Addr::Con(h) if self.heap.atom_at(h) => {
|
||||
if let HeapCellValue::Atom(ref atom, _) = &self.heap[h] {
|
||||
atom.as_str()
|
||||
} else {
|
||||
unreachable!()
|
||||
}
|
||||
}
|
||||
_ => {
|
||||
unreachable!()
|
||||
}
|
||||
};
|
||||
let curve_id = match curve {
|
||||
let curve = self.atom_argument_to_string(1);
|
||||
let curve_id = match curve.as_str() {
|
||||
"secp112r1" => { Nid::SECP112R1 }
|
||||
"secp256k1" => { Nid::SECP256K1 }
|
||||
_ => { unreachable!() }
|
||||
};
|
||||
|
||||
let scalar = self.store(self.deref(self[temp_v!(2)]));
|
||||
|
||||
let scalar =
|
||||
match Number::try_from((self[temp_v!(2)], &self.heap)) {
|
||||
match Number::try_from((scalar, &self.heap)) {
|
||||
Ok(Number::Fixnum(n)) => {
|
||||
Integer::from(n)
|
||||
}
|
||||
@@ -5676,7 +5652,7 @@ impl MachineState {
|
||||
self.unify(self[temp_v!(1)], complete_string);
|
||||
}
|
||||
&SystemClauseType::Ed25519KeyPairPublicKey => {
|
||||
let bytes = self.string_encoding_bytes(1, 2);
|
||||
let bytes = self.string_encoding_bytes(1, "octet");
|
||||
|
||||
let key_pair = match signature::Ed25519KeyPair::from_pkcs8(&bytes) {
|
||||
Ok(kp) => { kp }
|
||||
@@ -5688,11 +5664,12 @@ impl MachineState {
|
||||
self.heap.put_complete_string(&buffer)
|
||||
};
|
||||
|
||||
self.unify(self[temp_v!(3)], complete_string);
|
||||
self.unify(self[temp_v!(2)], complete_string);
|
||||
}
|
||||
&SystemClauseType::Ed25519Sign => {
|
||||
let key = self.string_encoding_bytes(1, 2);
|
||||
let data = self.string_encoding_bytes(3, 4);
|
||||
let key = self.string_encoding_bytes(1, "octet");
|
||||
let encoding = self.atom_argument_to_string(3);
|
||||
let data = self.string_encoding_bytes(2, &encoding);
|
||||
|
||||
let key_pair = match signature::Ed25519KeyPair::from_pkcs8(&key) {
|
||||
Ok(kp) => { kp }
|
||||
@@ -5704,13 +5681,14 @@ impl MachineState {
|
||||
let sig_list =
|
||||
Addr::HeapCell(self.heap.to_list(sig.as_ref().iter().map(|b| HeapCellValue::from(Addr::Fixnum(*b as isize)))));
|
||||
|
||||
self.unify(self[temp_v!(5)], sig_list);
|
||||
self.unify(self[temp_v!(4)], sig_list);
|
||||
}
|
||||
&SystemClauseType::Ed25519Verify => {
|
||||
let key = self.string_encoding_bytes(1, 2);
|
||||
let data = self.string_encoding_bytes(3, 4);
|
||||
let key = self.string_encoding_bytes(1, "octet");
|
||||
let encoding = self.atom_argument_to_string(3);
|
||||
let data = self.string_encoding_bytes(2, &encoding);
|
||||
let stub = MachineError::functor_stub(clause_name!("ed25519_verify"), 5);
|
||||
let signature = self.integers_to_bytevec(temp_v!(5), stub);
|
||||
let signature = self.integers_to_bytevec(temp_v!(4), stub);
|
||||
|
||||
let peer_public_key = signature::UnparsedPublicKey::new(&signature::ED25519, &key);
|
||||
match peer_public_key.verify(&data, &signature) {
|
||||
@@ -5729,10 +5707,7 @@ impl MachineState {
|
||||
|
||||
let result = scalarmult(&scalar, &point).unwrap();
|
||||
|
||||
let mut string = String::new();
|
||||
for c in result[..].iter() {
|
||||
string.push(*c as char);
|
||||
}
|
||||
let string = String::from_iter(result[..].iter().map(|b| *b as char));
|
||||
let cstr = self.heap.put_complete_string(&string);
|
||||
self.unify(self[temp_v!(3)], cstr);
|
||||
}
|
||||
@@ -5777,32 +5752,18 @@ impl MachineState {
|
||||
env::remove_var(key);
|
||||
}
|
||||
&SystemClauseType::CharsBase64 => {
|
||||
let mut options = vec![];
|
||||
|
||||
for i in 3..5 {
|
||||
match self.store(self.deref(self[temp_v!(i)])) {
|
||||
Addr::Con(h) if self.heap.atom_at(h) => {
|
||||
if let HeapCellValue::Atom(ref atom, _) = &self.heap[h] {
|
||||
options.push(atom.as_str());
|
||||
} else {
|
||||
unreachable!()
|
||||
}
|
||||
}
|
||||
_ => {
|
||||
unreachable!()
|
||||
}
|
||||
};
|
||||
}
|
||||
let padding = self.atom_argument_to_string(3);
|
||||
let charset = self.atom_argument_to_string(4);
|
||||
|
||||
let config =
|
||||
if options[0] == "true" {
|
||||
if options[1] == "standard" {
|
||||
if padding == "true" {
|
||||
if charset == "standard" {
|
||||
base64::STANDARD
|
||||
} else {
|
||||
base64::URL_SAFE
|
||||
}
|
||||
} else {
|
||||
if options[1] == "standard" {
|
||||
if charset == "standard" {
|
||||
base64::STANDARD_NO_PAD
|
||||
} else {
|
||||
base64::URL_SAFE_NO_PAD
|
||||
@@ -5815,10 +5776,7 @@ impl MachineState {
|
||||
|
||||
match bytes {
|
||||
Ok(bs) => {
|
||||
let mut string = String::new();
|
||||
for c in bs {
|
||||
string.push(c as char);
|
||||
}
|
||||
let string = String::from_iter(bs.iter().map(|b| *b as char));
|
||||
let cstr = self.heap.put_complete_string(&string);
|
||||
self.unify(self[temp_v!(1)], cstr);
|
||||
}
|
||||
@@ -5874,17 +5832,14 @@ impl MachineState {
|
||||
}
|
||||
|
||||
pub(super)
|
||||
fn string_encoding_bytes(
|
||||
fn atom_argument_to_string(
|
||||
&mut self,
|
||||
data_arg: usize,
|
||||
encoding_arg: usize,
|
||||
) -> Vec<u8> {
|
||||
let data = self.heap_pstr_iter(self[temp_v!(data_arg)]).to_string();
|
||||
|
||||
let encoding_str = match self.store(self.deref(self[temp_v!(encoding_arg)])) {
|
||||
atom_arg: usize,
|
||||
) -> String {
|
||||
match self.store(self.deref(self[temp_v!(atom_arg)])) {
|
||||
Addr::Con(h) if self.heap.atom_at(h) => {
|
||||
if let HeapCellValue::Atom(ref atom, _) = &self.heap[h] {
|
||||
atom.as_str()
|
||||
atom.as_str().to_string()
|
||||
} else {
|
||||
unreachable!()
|
||||
}
|
||||
@@ -5892,9 +5847,18 @@ impl MachineState {
|
||||
_ => {
|
||||
unreachable!()
|
||||
}
|
||||
};
|
||||
}
|
||||
}
|
||||
|
||||
match encoding_str {
|
||||
pub(super)
|
||||
fn string_encoding_bytes(
|
||||
&mut self,
|
||||
data_arg: usize,
|
||||
encoding: &str,
|
||||
) -> Vec<u8> {
|
||||
let data = self.heap_pstr_iter(self[temp_v!(data_arg)]).to_string();
|
||||
|
||||
match encoding {
|
||||
"utf8" => { data.into_bytes() }
|
||||
"octet" => {
|
||||
let mut buf = vec![];
|
||||
|
||||
Reference in New Issue
Block a user