Merge rust-bitcoin/rust-secp256k1#396: Obfuscate shared secret when printing
cf6badf96a
Obfuscate SharedSecret when printing (Tobin Harding)e4be664d97
Improve rustdocs for displaying secrets (Tobin Harding)5c7c76eb74
Rename serialize_secret -> secret_bytes (Tobin Harding)4ded2c0478
Use byte instead of i (Tobin Harding)91106f5685
Remove magic number (Tobin Harding)6dca99631f
Mention bitcoin_hashes in obfuscated secret msg (Tobin Harding) Pull request description: Currently printing the `SharedSecret` using `Display` or `Debug` prints the real secret, this is sub-optimal. We have a solution for other secrets in the project where printing is obfuscated and we provide a `display_secret` method for explicitly printing. Mirror the logic for other secrets and obfuscate the `SharedSecret` when printing. - Patches 1 - 5: Clean up. - Patch 6: The meat and potatoes. This is the final change needed to: Resolve: #226 ACKs for top commit: apoelstra: ACKcf6badf96a
Tree-SHA512: df14e8c5f5815bd76c585a1cd1db42fab6858004ca2cafa9a158b8b04a44c4a11b1260374a6ff82fee540ca955f262b28efae023012de5ac3832e4f5d1d1815e
This commit is contained in:
commit
ab6df6fb74
17
src/ecdh.rs
17
src/ecdh.rs
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@ -21,6 +21,10 @@ use core::borrow::Borrow;
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use key::{SecretKey, PublicKey};
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use ffi::{self, CPtr};
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use secp256k1_sys::types::{c_int, c_uchar, c_void};
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use constants;
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// The logic for displaying shared secrets relies on this (see `secret.rs`).
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const SHARED_SECRET_SIZE: usize = constants::SECRET_KEY_SIZE;
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/// Enables two parties to create a shared secret without revealing their own secrets.
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///
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@ -39,14 +43,15 @@ use secp256k1_sys::types::{c_int, c_uchar, c_void};
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/// assert_eq!(sec1, sec2);
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/// # }
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// ```
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#[derive(Copy, Clone, Debug, PartialEq, Eq, PartialOrd, Ord, Hash)]
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pub struct SharedSecret([u8; 32]);
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#[derive(Copy, Clone, PartialEq, Eq, PartialOrd, Ord, Hash)]
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pub struct SharedSecret([u8; SHARED_SECRET_SIZE]);
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impl_display_secret!(SharedSecret);
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impl SharedSecret {
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/// Creates a new shared secret from a pubkey and secret key.
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#[inline]
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pub fn new(point: &PublicKey, scalar: &SecretKey) -> SharedSecret {
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let mut buf = [0u8; 32];
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let mut buf = [0u8; SHARED_SECRET_SIZE];
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let res = unsafe {
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ffi::secp256k1_ecdh(
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ffi::secp256k1_context_no_precomp,
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@ -60,6 +65,12 @@ impl SharedSecret {
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debug_assert_eq!(res, 1);
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SharedSecret(buf)
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}
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/// Returns the shared secret as a byte value.
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#[inline]
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pub fn secret_bytes(&self) -> [u8; SHARED_SECRET_SIZE] {
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self.0
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}
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}
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impl Borrow<[u8]> for SharedSecret {
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14
src/key.rs
14
src/key.rs
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@ -212,9 +212,9 @@ impl SecretKey {
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SecretKey(sk)
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}
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/// Serializes the secret key as byte value.
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/// Returns the secret key as a byte value.
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#[inline]
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pub fn serialize_secret(&self) -> [u8; constants::SECRET_KEY_SIZE] {
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pub fn secret_bytes(&self) -> [u8; constants::SECRET_KEY_SIZE] {
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self.0
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}
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@ -299,7 +299,7 @@ impl SecretKey {
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impl ::serde::Serialize for SecretKey {
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fn serialize<S: ::serde::Serializer>(&self, s: S) -> Result<S::Ok, S::Error> {
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if s.is_human_readable() {
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let mut buf = [0u8; 64];
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let mut buf = [0u8; constants::SECRET_KEY_SIZE * 2];
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s.serialize_str(::to_hex(&self.0, &mut buf).expect("fixed-size hex serialization"))
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} else {
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s.serialize_bytes(&self[..])
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@ -809,9 +809,9 @@ impl KeyPair {
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KeyPair::new(SECP256K1, rng)
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}
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/// Serializes the key pair as a secret key byte value.
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/// Returns the secret bytes for this key pair.
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#[inline]
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pub fn serialize_secret(&self) -> [u8; constants::SECRET_KEY_SIZE] {
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pub fn secret_bytes(&self) -> [u8; constants::SECRET_KEY_SIZE] {
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*SecretKey::from_keypair(self).as_ref()
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}
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@ -925,8 +925,8 @@ impl str::FromStr for KeyPair {
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impl ::serde::Serialize for KeyPair {
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fn serialize<S: ::serde::Serializer>(&self, s: S) -> Result<S::Ok, S::Error> {
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if s.is_human_readable() {
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let mut buf = [0u8; 64];
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s.serialize_str(::to_hex(&self.serialize_secret(), &mut buf)
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let mut buf = [0u8; constants::SECRET_KEY_SIZE * 2];
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s.serialize_str(::to_hex(&self.secret_bytes(), &mut buf)
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.expect("fixed-size hex serialization"))
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} else {
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s.serialize_bytes(&self.0[..])
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@ -16,6 +16,7 @@
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use ::core::fmt;
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use ::{SecretKey, KeyPair, to_hex};
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use ecdh::SharedSecret;
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use constants::SECRET_KEY_SIZE;
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macro_rules! impl_display_secret {
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@ -35,7 +36,7 @@ macro_rules! impl_display_secret {
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hasher.write(DEBUG_HASH_TAG);
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hasher.write(DEBUG_HASH_TAG);
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hasher.write(&self.serialize_secret());
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hasher.write(&self.secret_bytes());
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let hash = hasher.finish();
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f.debug_tuple(stringify!($thing))
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@ -55,7 +56,7 @@ macro_rules! impl_display_secret {
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let tag_hash = sha256::Hash::hash(tag.as_bytes());
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engine.input(&tag_hash[..]);
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engine.input(&tag_hash[..]);
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engine.input(&self.serialize_secret());
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engine.input(&self.secret_bytes());
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let hash = sha256::Hash::from_engine(engine);
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f.debug_tuple(stringify!($thing))
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@ -67,7 +68,7 @@ macro_rules! impl_display_secret {
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#[cfg(all(not(feature = "std"), not(feature = "bitcoin_hashes")))]
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impl ::core::fmt::Debug for $thing {
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fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
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write!(f, "<secret requires std feature to display>")
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write!(f, "<secret requires std or bitcoin_hashes feature to display>")
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}
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}
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}
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@ -91,7 +92,7 @@ pub struct DisplaySecret {
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impl fmt::Debug for DisplaySecret {
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#[inline]
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fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
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let mut slice = [0u8; 64];
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let mut slice = [0u8; SECRET_KEY_SIZE * 2];
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let hex = to_hex(&self.secret, &mut slice).expect("fixed-size hex serializer failed");
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f.debug_tuple("DisplaySecret")
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.field(&hex)
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@ -101,8 +102,8 @@ impl fmt::Debug for DisplaySecret {
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impl fmt::Display for DisplaySecret {
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fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
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for i in &self.secret {
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write!(f, "{:02x}", i)?;
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for byte in &self.secret {
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write!(f, "{:02x}", byte)?;
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}
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Ok(())
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}
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@ -113,33 +114,32 @@ impl SecretKey {
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/// little-endian hexadecimal string using the provided formatter.
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///
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/// This is the only method that outputs the actual secret key value, and, thus,
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/// should be used with extreme precaution.
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/// should be used with extreme caution.
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///
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/// # Example
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/// # Examples
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///
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/// ```
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/// # #[cfg(all(feature = "std", not(feature = "bitcoin_hashes")))] {
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/// use secp256k1::ONE_KEY;
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/// let key = ONE_KEY;
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/// // Normal display hides value
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/// assert_eq!(
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/// "SecretKey(#2518682f7819fb2d)",
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/// format!("{:?}", key)
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/// );
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/// # #[cfg(feature = "std")] {
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/// let key = secp256k1::ONE_KEY;
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///
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/// // Normal debug hides value (`Display` is not implemented for `SecretKey`).
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/// // E.g., `format!("{:?}", key)` prints "SecretKey(#2518682f7819fb2d)".
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///
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/// // Here we explicitly display the secret value:
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/// assert_eq!(
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/// "0000000000000000000000000000000000000000000000000000000000000001",
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/// format!("{}", key.display_secret())
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/// );
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/// // Also, we can explicitly display with `Debug`:
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/// assert_eq!(
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/// "DisplaySecret(\"0000000000000000000000000000000000000000000000000000000000000001\")",
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/// format!("{:?}", key.display_secret())
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/// format!("{:?}", key.display_secret()),
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/// format!("DisplaySecret(\"{}\")", key.display_secret())
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/// );
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/// # }
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/// ```
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#[inline]
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pub fn display_secret(&self) -> DisplaySecret {
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DisplaySecret { secret: self.serialize_secret() }
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DisplaySecret { secret: self.secret_bytes() }
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}
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}
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@ -153,7 +153,7 @@ impl KeyPair {
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/// # Example
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///
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/// ```
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/// # #[cfg(all(feature = "std", not(feature = "bitcoin_hashes")))] {
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/// # #[cfg(feature = "std")] {
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/// use secp256k1::ONE_KEY;
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/// use secp256k1::KeyPair;
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/// use secp256k1::Secp256k1;
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/// let secp = Secp256k1::new();
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/// let key = ONE_KEY;
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/// let key = KeyPair::from_secret_key(&secp, key);
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///
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/// // Normal display hides value
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/// assert_eq!(
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/// "KeyPair(#2518682f7819fb2d)",
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/// format!("{:?}", key)
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/// );
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/// // Here we explicitly display the secret value:
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/// assert_eq!(
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/// "0000000000000000000000000000000000000000000000000000000000000001",
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/// format!("{}", key.display_secret())
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/// );
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/// // Also, we can explicitly display with `Debug`:
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/// assert_eq!(
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/// "DisplaySecret(\"0000000000000000000000000000000000000000000000000000000000000001\")",
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/// format!("{:?}", key.display_secret())
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/// format!("{:?}", key.display_secret()),
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/// format!("DisplaySecret(\"{}\")", key.display_secret())
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/// );
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/// # }
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/// ```
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#[inline]
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pub fn display_secret(&self) -> DisplaySecret {
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DisplaySecret { secret: self.serialize_secret() }
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DisplaySecret { secret: self.secret_bytes() }
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}
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}
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impl SharedSecret {
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/// Formats the explicit byte value of the shared secret kept inside the type as a
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/// little-endian hexadecimal string using the provided formatter.
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///
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/// This is the only method that outputs the actual shared secret value, and, thus,
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/// should be used with extreme caution.
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///
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/// # Examples
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///
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/// ```
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/// # #[cfg(not(fuzzing))]
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/// # #[cfg(feature = "std")] {
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/// # use std::str::FromStr;
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/// # use secp256k1::{SecretKey, PublicKey};
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/// use secp256k1::ecdh::SharedSecret;
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///
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/// # let pk = PublicKey::from_slice(&[3, 23, 183, 225, 206, 31, 159, 148, 195, 42, 67, 115, 146, 41, 248, 140, 11, 3, 51, 41, 111, 180, 110, 143, 114, 134, 88, 73, 198, 174, 52, 184, 78]).expect("hard coded slice should parse correctly");
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/// # let sk = SecretKey::from_str("57f0148f94d13095cfda539d0da0d1541304b678d8b36e243980aab4e1b7cead").unwrap();
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///
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/// let secret = SharedSecret::new(&pk, &sk);
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/// // Here we explicitly display the secret value:
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/// assert_eq!(
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/// format!("{}", secret.display_secret()),
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/// "cf05ae7da039ddce6d56dd57d3000c6dd91c6f1695eae47e05389f11e2467043"
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/// );
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/// // Also, we can explicitly display with `Debug`:
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/// assert_eq!(
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/// format!("{:?}", secret.display_secret()),
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/// format!("DisplaySecret(\"{}\")", secret.display_secret())
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/// );
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/// # }
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/// ```
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#[inline]
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pub fn display_secret(&self) -> DisplaySecret {
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DisplaySecret { secret: self.secret_bytes() }
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}
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}
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