197 lines
5.7 KiB
Rust
197 lines
5.7 KiB
Rust
import core::ptr;
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import core::str;
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import core::vec;
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export crypter;
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export cryptermode;
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export encryptmode, decryptmode;
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export cryptertype;
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export aes_256_ecb, aes_256_cbc;
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export mk_crypter;
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export encrypt, decrypt;
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export _native;
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#[link_name = "crypto"]
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#[abi = "cdecl"]
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native mod _native {
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type EVP_CIPHER_CTX;
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type EVP_CIPHER;
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fn EVP_CIPHER_CTX_new() -> EVP_CIPHER_CTX;
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fn EVP_CIPHER_CTX_set_padding(ctx: EVP_CIPHER_CTX, padding: int);
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fn EVP_aes_128_ecb() -> EVP_CIPHER;
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fn EVP_aes_128_cbc() -> EVP_CIPHER;
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fn EVP_aes_192_ecb() -> EVP_CIPHER;
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fn EVP_aes_192_cbc() -> EVP_CIPHER;
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fn EVP_aes_256_ecb() -> EVP_CIPHER;
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fn EVP_aes_256_cbc() -> EVP_CIPHER;
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fn EVP_CipherInit(ctx: EVP_CIPHER_CTX, evp: EVP_CIPHER,
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key: *u8, iv: *u8, mode: int);
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fn EVP_CipherUpdate(ctx: EVP_CIPHER_CTX, outbuf: *u8, outlen: *u32,
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inbuf: *u8, inlen: u32);
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fn EVP_CipherFinal(ctx: EVP_CIPHER_CTX, res: *u8, len: *u32);
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}
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/*
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Object: crypter
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Represents a symmetric cipher context.
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*/
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type crypter = obj {
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/*
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Method: pad
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Enables or disables padding. If padding is disabled, total amount of data
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encrypted must be a multiple of block size.
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*/
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fn pad(padding: bool);
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/*
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Method: init
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Initializes this crypter.
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*/
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fn init(mode: cryptermode, key: [u8], iv: [u8]);
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/*
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Method: update
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Update this crypter with more data to encrypt or decrypt. Returns encrypted
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or decrypted bytes.
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*/
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fn update(data: [u8]) -> [u8];
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/*
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Method: final
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Finish crypting. Returns the remaining partial block of output, if any.
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*/
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fn final() -> [u8];
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};
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tag cryptermode {
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encryptmode;
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decryptmode;
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}
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tag cryptertype {
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aes_256_ecb;
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aes_256_cbc;
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}
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fn evpc(t: cryptertype) -> (_native::EVP_CIPHER, uint, uint) {
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alt t {
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aes_256_ecb. { (_native::EVP_aes_256_ecb(), 32u, 16u) }
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aes_256_cbc. { (_native::EVP_aes_256_cbc(), 32u, 16u) }
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}
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}
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fn mk_crypter(t: cryptertype) -> crypter {
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type crypterstate = {
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evp: _native::EVP_CIPHER,
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ctx: _native::EVP_CIPHER_CTX,
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keylen: uint,
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blocksize: uint
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};
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obj crypter(st: crypterstate) {
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fn pad(padding: bool) {
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let v = padding ? 1 : 0;
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_native::EVP_CIPHER_CTX_set_padding(st.ctx, v);
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}
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fn init (mode: cryptermode, key: [u8], iv: [u8]) unsafe {
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let m = alt mode { encryptmode. { 1 } decryptmode. { 0 } };
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assert(vec::len(key) == st.keylen);
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let pkey: *u8 = vec::unsafe::to_ptr::<u8>(key);
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let piv: *u8 = vec::unsafe::to_ptr::<u8>(iv);
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_native::EVP_CipherInit(st.ctx, st.evp, pkey, piv, m);
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}
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fn update(data: [u8]) -> [u8] unsafe {
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let pdata: *u8 = vec::unsafe::to_ptr::<u8>(data);
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let datalen: u32 = vec::len(data) as u32;
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let reslen: u32 = datalen + (st.blocksize as u32);
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let preslen: *u32 = ptr::addr_of(reslen);
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let res: [mutable u8] = vec::init_elt_mut::<u8>(0u8, reslen as uint);
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let pres: *u8 = vec::unsafe::to_ptr::<u8>(res);
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_native::EVP_CipherUpdate(st.ctx, pres, preslen, pdata, datalen);
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ret vec::slice::<u8>(res, 0u, *preslen as uint);
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}
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fn final() -> [u8] unsafe {
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let reslen: u32 = st.blocksize as u32;
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let preslen: *u32 = ptr::addr_of(reslen);
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let res: [mutable u8] = vec::init_elt_mut::<u8>(0u8, reslen as uint);
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let pres: *u8 = vec::unsafe::to_ptr::<u8>(res);
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_native::EVP_CipherFinal(st.ctx, pres, preslen);
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ret vec::slice::<u8>(res, 0u, *preslen as uint);
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}
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}
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let ctx = _native::EVP_CIPHER_CTX_new();
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let (evp, keylen, blocksz) = evpc(t);
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let st = { evp: evp, ctx: ctx, keylen: keylen, blocksize: blocksz };
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let h = crypter(st);
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ret h;
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}
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/*
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Function: encrypt
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Encrypts data, using the specified crypter type in encrypt mode with the
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specified key and iv; returns the resulting (encrypted) data.
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*/
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fn encrypt(t: cryptertype, key: [u8], iv: [u8], data: [u8]) -> [u8] {
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let c = mk_crypter(t);
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c.init(encryptmode, key, iv);
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let r = c.update(data);
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let rest = c.final();
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ret r + rest;
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}
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/*
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Function: decrypt
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Decrypts data, using the specified crypter type in decrypt mode with the
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specified key and iv; returns the resulting (decrypted) data.
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*/
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fn decrypt(t: cryptertype, key: [u8], iv: [u8], data: [u8]) -> [u8] {
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let c = mk_crypter(t);
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c.init(decryptmode, key, iv);
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let r = c.update(data);
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let rest = c.final();
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ret r + rest;
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}
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#[cfg(test)]
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mod tests {
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// Test vectors from FIPS-197:
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// http://csrc.nist.gov/publications/fips/fips197/fips-197.pdf
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#[test]
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fn test_aes_256_ecb() {
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let k0 =
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[ 0x00u8, 0x01u8, 0x02u8, 0x03u8, 0x04u8, 0x05u8, 0x06u8, 0x07u8,
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0x08u8, 0x09u8, 0x0au8, 0x0bu8, 0x0cu8, 0x0du8, 0x0eu8, 0x0fu8,
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0x10u8, 0x11u8, 0x12u8, 0x13u8, 0x14u8, 0x15u8, 0x16u8, 0x17u8,
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0x18u8, 0x19u8, 0x1au8, 0x1bu8, 0x1cu8, 0x1du8, 0x1eu8, 0x1fu8 ];
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let p0 =
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[ 0x00u8, 0x11u8, 0x22u8, 0x33u8, 0x44u8, 0x55u8, 0x66u8, 0x77u8,
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0x88u8, 0x99u8, 0xaau8, 0xbbu8, 0xccu8, 0xddu8, 0xeeu8, 0xffu8 ];
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let c0 =
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[ 0x8eu8, 0xa2u8, 0xb7u8, 0xcau8, 0x51u8, 0x67u8, 0x45u8, 0xbfu8,
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0xeau8, 0xfcu8, 0x49u8, 0x90u8, 0x4bu8, 0x49u8, 0x60u8, 0x89u8 ];
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let c = mk_crypter(aes_256_ecb);
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c.init(encryptmode, k0, []);
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c.pad(false);
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let r0 = c.update(p0) + c.final();
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assert(r0 == c0);
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c.init(decryptmode, k0, []);
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c.pad(false);
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let p1 = c.update(r0) + c.final();
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assert(p1 == p0);
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}
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}
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