mirror of
https://github.com/saymrwulf/curve25519-dalek-source.git
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279 lines
9.6 KiB
Rust
279 lines
9.6 KiB
Rust
// -*- mode: rust; -*-
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//
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// This file is part of ed25519-dalek.
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// Copyright (c) 2017-2019 isis lovecruft
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// See LICENSE for licensing information.
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//
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// Authors:
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// - isis agora lovecruft <isis@patternsinthevoid.net>
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//! A Rust implementation of ed25519 key generation, signing, and verification.
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//!
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//! # Example
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//!
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//! Creating an ed25519 signature on a message is simple.
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//!
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//! First, we need to generate a `Keypair`, which includes both public and
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//! secret halves of an asymmetric key. To do so, we need a cryptographically
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//! secure pseudorandom number generator (CSPRNG). For this example, we'll use
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//! the operating system's builtin PRNG:
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//!
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//! ```
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//! extern crate rand;
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//! extern crate ed25519_dalek;
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//!
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//! # #[cfg(feature = "std")]
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//! # fn main() {
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//! use rand::rngs::OsRng;
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//! use ed25519_dalek::Keypair;
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//! use ed25519_dalek::Signature;
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//!
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//! let mut csprng = OsRng{};
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//! let keypair: Keypair = Keypair::generate(&mut csprng);
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//! # }
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//! #
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//! # #[cfg(not(feature = "std"))]
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//! # fn main() { }
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//! ```
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//!
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//! We can now use this `keypair` to sign a message:
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//!
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//! ```
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//! # extern crate rand;
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//! # extern crate ed25519_dalek;
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//! # fn main() {
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//! # use rand::rngs::OsRng;
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//! # use ed25519_dalek::Keypair;
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//! # let mut csprng = OsRng{};
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//! # let keypair: Keypair = Keypair::generate(&mut csprng);
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//! use ed25519_dalek::{Signature, Signer};
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//! let message: &[u8] = b"This is a test of the tsunami alert system.";
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//! let signature: Signature = keypair.sign(message);
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//! # }
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//! ```
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//!
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//! As well as to verify that this is, indeed, a valid signature on
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//! that `message`:
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//!
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//! ```
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//! # extern crate rand;
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//! # extern crate ed25519_dalek;
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//! # fn main() {
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//! # use rand::rngs::OsRng;
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//! # use ed25519_dalek::{Keypair, Signature, Signer};
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//! # let mut csprng = OsRng{};
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//! # let keypair: Keypair = Keypair::generate(&mut csprng);
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//! # let message: &[u8] = b"This is a test of the tsunami alert system.";
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//! # let signature: Signature = keypair.sign(message);
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//! use ed25519_dalek::Verifier;
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//! assert!(keypair.verify(message, &signature).is_ok());
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//! # }
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//! ```
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//!
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//! Anyone else, given the `public` half of the `keypair` can also easily
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//! verify this signature:
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//!
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//! ```
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//! # extern crate rand;
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//! # extern crate ed25519_dalek;
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//! # fn main() {
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//! # use rand::rngs::OsRng;
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//! # use ed25519_dalek::Keypair;
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//! # use ed25519_dalek::Signature;
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//! # use ed25519_dalek::Signer;
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//! use ed25519_dalek::{PublicKey, Verifier};
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//! # let mut csprng = OsRng{};
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//! # let keypair: Keypair = Keypair::generate(&mut csprng);
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//! # let message: &[u8] = b"This is a test of the tsunami alert system.";
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//! # let signature: Signature = keypair.sign(message);
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//!
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//! let public_key: PublicKey = keypair.public;
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//! assert!(public_key.verify(message, &signature).is_ok());
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//! # }
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//! ```
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//!
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//! ## Serialisation
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//!
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//! `PublicKey`s, `SecretKey`s, `Keypair`s, and `Signature`s can be serialised
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//! into byte-arrays by calling `.to_bytes()`. It's perfectly acceptible and
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//! safe to transfer and/or store those bytes. (Of course, never transfer your
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//! secret key to anyone else, since they will only need the public key to
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//! verify your signatures!)
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//!
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//! ```
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//! # extern crate rand;
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//! # extern crate ed25519_dalek;
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//! # fn main() {
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//! # use rand::rngs::OsRng;
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//! # use ed25519_dalek::{Keypair, Signature, Signer, PublicKey};
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//! use ed25519_dalek::{PUBLIC_KEY_LENGTH, SECRET_KEY_LENGTH, KEYPAIR_LENGTH, SIGNATURE_LENGTH};
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//! # let mut csprng = OsRng{};
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//! # let keypair: Keypair = Keypair::generate(&mut csprng);
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//! # let message: &[u8] = b"This is a test of the tsunami alert system.";
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//! # let signature: Signature = keypair.sign(message);
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//! # let public_key: PublicKey = keypair.public;
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//!
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//! let public_key_bytes: [u8; PUBLIC_KEY_LENGTH] = public_key.to_bytes();
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//! let secret_key_bytes: [u8; SECRET_KEY_LENGTH] = keypair.secret.to_bytes();
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//! let keypair_bytes: [u8; KEYPAIR_LENGTH] = keypair.to_bytes();
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//! let signature_bytes: [u8; SIGNATURE_LENGTH] = signature.to_bytes();
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//! # }
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//! ```
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//!
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//! And similarly, decoded from bytes with `::from_bytes()`:
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//!
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//! ```
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//! # extern crate rand;
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//! # extern crate ed25519_dalek;
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//! # use std::convert::TryFrom;
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//! # use rand::rngs::OsRng;
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//! # use ed25519_dalek::{Keypair, Signature, Signer, PublicKey, SecretKey, SignatureError};
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//! # use ed25519_dalek::{PUBLIC_KEY_LENGTH, SECRET_KEY_LENGTH, KEYPAIR_LENGTH, SIGNATURE_LENGTH};
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//! # fn do_test() -> Result<(SecretKey, PublicKey, Keypair, Signature), SignatureError> {
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//! # let mut csprng = OsRng{};
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//! # let keypair_orig: Keypair = Keypair::generate(&mut csprng);
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//! # let message: &[u8] = b"This is a test of the tsunami alert system.";
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//! # let signature_orig: Signature = keypair_orig.sign(message);
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//! # let public_key_bytes: [u8; PUBLIC_KEY_LENGTH] = keypair_orig.public.to_bytes();
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//! # let secret_key_bytes: [u8; SECRET_KEY_LENGTH] = keypair_orig.secret.to_bytes();
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//! # let keypair_bytes: [u8; KEYPAIR_LENGTH] = keypair_orig.to_bytes();
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//! # let signature_bytes: [u8; SIGNATURE_LENGTH] = signature_orig.to_bytes();
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//! #
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//! let public_key: PublicKey = PublicKey::from_bytes(&public_key_bytes)?;
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//! let secret_key: SecretKey = SecretKey::from_bytes(&secret_key_bytes)?;
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//! let keypair: Keypair = Keypair::from_bytes(&keypair_bytes)?;
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//! let signature: Signature = Signature::try_from(&signature_bytes[..])?;
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//! #
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//! # Ok((secret_key, public_key, keypair, signature))
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//! # }
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//! # fn main() {
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//! # do_test();
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//! # }
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//! ```
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//!
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//! ### Using Serde
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//!
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//! If you prefer the bytes to be wrapped in another serialisation format, all
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//! types additionally come with built-in [serde](https://serde.rs) support by
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//! building `ed25519-dalek` via:
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//!
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//! ```bash
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//! $ cargo build --features="serde"
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//! ```
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//!
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//! They can be then serialised into any of the wire formats which serde supports.
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//! For example, using [bincode](https://github.com/TyOverby/bincode):
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//!
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//! ```
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//! # extern crate rand;
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//! # extern crate ed25519_dalek;
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//! # #[cfg(feature = "serde")]
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//! # extern crate serde_crate as serde;
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//! # #[cfg(feature = "serde")]
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//! # extern crate bincode;
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//!
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//! # #[cfg(feature = "serde")]
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//! # fn main() {
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//! # use rand::rngs::OsRng;
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//! # use ed25519_dalek::{Keypair, Signature, Signer, Verifier, PublicKey};
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//! use bincode::serialize;
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//! # let mut csprng = OsRng{};
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//! # let keypair: Keypair = Keypair::generate(&mut csprng);
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//! # let message: &[u8] = b"This is a test of the tsunami alert system.";
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//! # let signature: Signature = keypair.sign(message);
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//! # let public_key: PublicKey = keypair.public;
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//! # let verified: bool = public_key.verify(message, &signature).is_ok();
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//!
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//! let encoded_public_key: Vec<u8> = serialize(&public_key).unwrap();
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//! let encoded_signature: Vec<u8> = serialize(&signature).unwrap();
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//! # }
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//! # #[cfg(not(feature = "serde"))]
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//! # fn main() {}
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//! ```
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//!
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//! After sending the `encoded_public_key` and `encoded_signature`, the
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//! recipient may deserialise them and verify:
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//!
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//! ```
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//! # extern crate rand;
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//! # extern crate ed25519_dalek;
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//! # #[cfg(feature = "serde")]
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//! # extern crate serde_crate as serde;
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//! # #[cfg(feature = "serde")]
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//! # extern crate bincode;
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//! #
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//! # #[cfg(feature = "serde")]
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//! # fn main() {
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//! # use rand::rngs::OsRng;
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//! # use ed25519_dalek::{Keypair, Signature, Signer, Verifier, PublicKey};
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//! # use bincode::serialize;
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//! use bincode::deserialize;
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//!
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//! # let mut csprng = OsRng{};
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//! # let keypair: Keypair = Keypair::generate(&mut csprng);
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//! let message: &[u8] = b"This is a test of the tsunami alert system.";
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//! # let signature: Signature = keypair.sign(message);
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//! # let public_key: PublicKey = keypair.public;
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//! # let verified: bool = public_key.verify(message, &signature).is_ok();
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//! # let encoded_public_key: Vec<u8> = serialize(&public_key).unwrap();
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//! # let encoded_signature: Vec<u8> = serialize(&signature).unwrap();
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//! let decoded_public_key: PublicKey = deserialize(&encoded_public_key).unwrap();
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//! let decoded_signature: Signature = deserialize(&encoded_signature).unwrap();
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//!
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//! # assert_eq!(public_key, decoded_public_key);
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//! # assert_eq!(signature, decoded_signature);
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//! #
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//! let verified: bool = decoded_public_key.verify(&message, &decoded_signature).is_ok();
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//!
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//! assert!(verified);
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//! # }
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//! # #[cfg(not(feature = "serde"))]
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//! # fn main() {}
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//! ```
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#![no_std]
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#![warn(future_incompatible)]
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#![deny(missing_docs)] // refuse to compile if documentation is missing
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#![cfg_attr(not(test), forbid(unsafe_code))]
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#[cfg(any(feature = "std", test))]
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#[macro_use]
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extern crate std;
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pub extern crate ed25519;
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#[cfg(all(feature = "alloc", not(feature = "std")))]
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extern crate alloc;
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extern crate curve25519_dalek;
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#[cfg(all(any(feature = "batch", feature = "batch_deterministic"), any(feature = "std", feature = "alloc")))]
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extern crate merlin;
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#[cfg(any(feature = "batch", feature = "std", feature = "alloc", test))]
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extern crate rand;
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#[cfg(feature = "serde")]
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extern crate serde_crate as serde;
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extern crate sha2;
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extern crate zeroize;
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#[cfg(all(any(feature = "batch", feature = "batch_deterministic"), any(feature = "std", feature = "alloc")))]
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mod batch;
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mod constants;
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mod keypair;
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mod errors;
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mod public;
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mod secret;
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mod signature;
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pub use curve25519_dalek::digest::Digest;
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#[cfg(all(any(feature = "batch", feature = "batch_deterministic"), any(feature = "std", feature = "alloc")))]
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pub use crate::batch::*;
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pub use crate::constants::*;
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pub use crate::errors::*;
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pub use crate::keypair::*;
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pub use crate::public::*;
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pub use crate::secret::*;
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// Re-export the `Signer` and `Verifier` traits from the `signature` crate
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pub use ed25519::signature::{Signer, Verifier};
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pub use ed25519::Signature;
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