Add keypair slice methods and unit tests
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99
src/key.rs
99
src/key.rs
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@ -1,11 +1,12 @@
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//! Public/Private keys
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//! Public/Private keys
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use std::intrinsics::copy_nonoverlapping_memory;
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use std::fmt;
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use std::fmt;
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use std::rand::Rng;
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use std::rand::Rng;
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use constants;
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use constants;
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use ffi;
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use ffi;
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use super::Result;
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use super::{Result, InvalidPublicKey, InvalidSecretKey};
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/// Secret 256-bit nonce used as `k` in an ECDSA signature
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/// Secret 256-bit nonce used as `k` in an ECDSA signature
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pub struct Nonce([u8, ..constants::NONCE_SIZE]);
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pub struct Nonce([u8, ..constants::NONCE_SIZE]);
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@ -56,6 +57,29 @@ impl SecretKey {
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SecretKey(random_32_bytes(rng))
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SecretKey(random_32_bytes(rng))
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}
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}
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#[inline]
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pub fn from_slice(data: &[u8]) -> Result<SecretKey> {
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match data.len() {
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constants::SECRET_KEY_SIZE => {
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let mut ret = [0, ..constants::SECRET_KEY_SIZE];
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unsafe {
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copy_nonoverlapping_memory(ret.as_mut_ptr(),
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data.as_ptr(),
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data.len());
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}
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Ok(SecretKey(ret))
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}
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_ => Err(InvalidSecretKey)
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}
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}
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/// Converts the secret key into a byte slice
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#[inline]
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pub fn as_slice<'a>(&'a self) -> &'a [u8] {
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let &SecretKey(ref data) = self;
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data.as_slice()
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}
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/// Converts the secret key to a raw pointer suitable for use with
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/// Converts the secret key to a raw pointer suitable for use with
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/// the FFI functions
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/// the FFI functions
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#[inline]
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#[inline]
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@ -92,6 +116,32 @@ impl PublicKey {
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pk
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pk
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}
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}
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/// Creates a public key directly from a slice
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#[inline]
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pub fn from_slice(data: &[u8]) -> Result<PublicKey> {
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match data.len() {
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constants::COMPRESSED_PUBLIC_KEY_SIZE => {
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let mut ret = [0, ..constants::COMPRESSED_PUBLIC_KEY_SIZE];
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unsafe {
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copy_nonoverlapping_memory(ret.as_mut_ptr(),
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data.as_ptr(),
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data.len());
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}
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Ok(PublicKey(Compressed(ret)))
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}
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constants::UNCOMPRESSED_PUBLIC_KEY_SIZE => {
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let mut ret = [0, ..constants::UNCOMPRESSED_PUBLIC_KEY_SIZE];
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unsafe {
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copy_nonoverlapping_memory(ret.as_mut_ptr(),
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data.as_ptr(),
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data.len());
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}
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Ok(PublicKey(Uncompressed(ret)))
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}
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_ => Err(InvalidPublicKey)
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}
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}
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/// Returns whether the public key is compressed or uncompressed
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/// Returns whether the public key is compressed or uncompressed
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#[inline]
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#[inline]
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pub fn is_compressed(&self) -> bool {
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pub fn is_compressed(&self) -> bool {
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@ -168,4 +218,51 @@ impl fmt::Show for PublicKeyData {
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}
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}
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}
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}
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impl PartialEq for SecretKey {
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fn eq(&self, other: &SecretKey) -> bool {
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self.as_slice() == other.as_slice()
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}
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}
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impl Eq for SecretKey {}
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impl fmt::Show for SecretKey {
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fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
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self.as_slice().fmt(f)
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}
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}
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#[cfg(test)]
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mod test {
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use super::super::{Secp256k1, InvalidPublicKey};
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use super::*;
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#[test]
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fn from_slice() {
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assert_eq!(PublicKey::from_slice([]), Err(InvalidPublicKey));
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assert_eq!(PublicKey::from_slice([1, 2, 3]), Err(InvalidPublicKey));
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let uncompressed = PublicKey::from_slice([1, ..65]);
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assert!(uncompressed.is_ok());
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assert!(!uncompressed.unwrap().is_compressed());
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let compressed = PublicKey::from_slice([1, ..33]);
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assert!(compressed.is_ok());
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assert!(compressed.unwrap().is_compressed());
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}
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#[test]
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fn keypair_slice_round_trip() {
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let mut s = Secp256k1::new().unwrap();
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let (sk1, pk1) = s.generate_keypair(true);
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assert_eq!(SecretKey::from_slice(sk1.as_slice()), Ok(sk1));
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assert_eq!(PublicKey::from_slice(pk1.as_slice()), Ok(pk1));
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let (sk2, pk2) = s.generate_keypair(false);
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assert_eq!(SecretKey::from_slice(sk2.as_slice()), Ok(sk2));
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assert_eq!(PublicKey::from_slice(pk2.as_slice()), Ok(pk2));
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}
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}
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