EC math functions (#4696)
* EC math functions * moved math funs -> Secret methods
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Cargo.lock
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2
Cargo.lock
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@ -344,7 +344,7 @@ dependencies = [
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[[package]]
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name = "eth-secp256k1"
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version = "0.5.6"
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source = "git+https://github.com/ethcore/rust-secp256k1#edab95f5569e4fb97579dc8947be96e7ac789c16"
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source = "git+https://github.com/ethcore/rust-secp256k1#98ad9b9ecae44a563efdd64273bcebc6b4ed81c6"
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dependencies = [
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"arrayvec 0.3.16 (registry+https://github.com/rust-lang/crates.io-index)",
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"gcc 0.3.35 (registry+https://github.com/rust-lang/crates.io-index)",
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@ -44,6 +44,8 @@ pub trait Generator {
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fn generate(self) -> Result<KeyPair, Error>;
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}
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pub mod math;
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pub use self::brain::Brain;
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pub use self::error::Error;
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pub use self::keypair::{KeyPair, public_to_address};
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66
ethkey/src/math.rs
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66
ethkey/src/math.rs
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@ -0,0 +1,66 @@
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// Copyright 2015-2017 Parity Technologies (UK) Ltd.
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// This file is part of Parity.
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// Parity is free software: you can redistribute it and/or modify
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// it under the terms of the GNU General Public License as published by
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// the Free Software Foundation, either version 3 of the License, or
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// (at your option) any later version.
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// Parity is distributed in the hope that it will be useful,
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// but WITHOUT ANY WARRANTY; without even the implied warranty of
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// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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// GNU General Public License for more details.
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// You should have received a copy of the GNU General Public License
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// along with Parity. If not, see <http://www.gnu.org/licenses/>.
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use super::{SECP256K1, Public, Secret, Error};
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use secp256k1::key;
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use secp256k1::constants::{GENERATOR_X, GENERATOR_Y};
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/// Inplace multiply public key by secret key (EC point * scalar)
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pub fn public_mul_secret(public: &mut Public, secret: &Secret) -> Result<(), Error> {
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let key_secret = secret.to_secp256k1_secret()?;
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let mut key_public = to_secp256k1_public(public)?;
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key_public.mul_assign(&SECP256K1, &key_secret)?;
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set_public(public, &key_public);
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Ok(())
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}
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/// Inplace add one public key to another (EC point + EC point)
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pub fn public_add(public: &mut Public, other: &Public) -> Result<(), Error> {
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let mut key_public = to_secp256k1_public(public)?;
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let other_public = to_secp256k1_public(other)?;
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key_public.add_assign(&SECP256K1, &other_public)?;
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set_public(public, &key_public);
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Ok(())
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}
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/// Return base point of secp256k1
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pub fn generation_point() -> Public {
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let mut public_sec_raw = [0u8; 65];
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public_sec_raw[0] = 4;
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public_sec_raw[1..33].copy_from_slice(&GENERATOR_X);
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public_sec_raw[33..65].copy_from_slice(&GENERATOR_Y);
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let public_key = key::PublicKey::from_slice(&SECP256K1, &public_sec_raw)
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.expect("constructing using predefined constants; qed");
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let mut public = Public::default();
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set_public(&mut public, &public_key);
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public
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}
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fn to_secp256k1_public(public: &Public) -> Result<key::PublicKey, Error> {
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let public_data = {
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let mut temp = [4u8; 65];
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(&mut temp[1..65]).copy_from_slice(&public[0..64]);
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temp
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};
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Ok(key::PublicKey::from_slice(&SECP256K1, &public_data)?)
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}
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fn set_public(public: &mut Public, key_public: &key::PublicKey) {
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let key_public_serialized = key_public.serialize_vec(&SECP256K1, false);
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public.copy_from_slice(&key_public_serialized[1..65]);
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}
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@ -19,7 +19,7 @@ use std::ops::Deref;
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use std::str::FromStr;
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use secp256k1::key;
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use bigint::hash::H256;
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use {Error};
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use {Error, SECP256K1};
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#[derive(Clone, PartialEq, Eq)]
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pub struct Secret {
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@ -45,6 +45,68 @@ impl Secret {
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let secret = key::SecretKey::from_slice(&super::SECP256K1, key)?;
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Ok(secret.into())
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}
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/// Inplace add one secret key to another (scalar + scalar)
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pub fn add(&mut self, other: &Secret) -> Result<(), Error> {
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let mut key_secret = self.to_secp256k1_secret()?;
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let other_secret = other.to_secp256k1_secret()?;
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key_secret.add_assign(&SECP256K1, &other_secret)?;
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*self = key_secret.into();
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Ok(())
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}
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/// Inplace subtract one secret key from another (scalar - scalar)
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pub fn sub(&mut self, other: &Secret) -> Result<(), Error> {
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let mut key_secret = self.to_secp256k1_secret()?;
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let mut other_secret = other.to_secp256k1_secret()?;
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other_secret.mul_assign(&SECP256K1, &key::MINUS_ONE_KEY)?;
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key_secret.add_assign(&SECP256K1, &other_secret)?;
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*self = key_secret.into();
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Ok(())
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}
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/// Inplace multiply one secret key to another (scalar * scalar)
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pub fn mul(&mut self, other: &Secret) -> Result<(), Error> {
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let mut key_secret = self.to_secp256k1_secret()?;
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let other_secret = other.to_secp256k1_secret()?;
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key_secret.mul_assign(&SECP256K1, &other_secret)?;
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*self = key_secret.into();
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Ok(())
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}
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/// Inplace inverse secret key (1 / scalar)
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pub fn inv(&mut self) -> Result<(), Error> {
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let mut key_secret = self.to_secp256k1_secret()?;
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key_secret.inv_assign(&SECP256K1)?;
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*self = key_secret.into();
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Ok(())
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}
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/// Compute power of secret key inplace (secret ^ pow).
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/// This function is not intended to be used with large powers.
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pub fn pow(&mut self, pow: usize) -> Result<(), Error> {
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match pow {
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0 => *self = key::ONE_KEY.into(),
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1 => (),
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_ => {
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let c = self.clone();
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for _ in 1..pow {
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self.mul(&c)?;
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}
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},
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}
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Ok(())
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}
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/// Create `secp256k1::key::SecretKey` based on this secret
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pub fn to_secp256k1_secret(&self) -> Result<key::SecretKey, Error> {
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Ok(key::SecretKey::from_slice(&SECP256K1, &self[..])?)
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}
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}
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impl FromStr for Secret {
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