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//! Low level Elliptic Curve Digital Signature Algorithm (ECDSA) functions.
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//!
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use bn::{BigNum, BigNumRef};
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use {cvt, cvt_n, cvt_p};
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use ec::EcKeyRef;
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use error::ErrorStack;
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use ffi;
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use foreign_types::{ForeignType, ForeignTypeRef};
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use pkey::{Private, Public};
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use std::mem;
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foreign_type_and_impl_send_sync! {
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type CType = ffi::ECDSA_SIG;
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fn drop = ffi::ECDSA_SIG_free;
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/// A low level interface to ECDSA
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///
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/// OpenSSL documentation at [`ECDSA_sign`]
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///
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/// [`ECDSA_sign`]: https://www.openssl.org/docs/man1.1.0/crypto/ECDSA_sign.html
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pub struct EcdsaSig;
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/// Reference to [`EcdsaSig`]
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///
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/// [`EcdsaSig`]: struct.EcdsaSig.html
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pub struct EcdsaSigRef;
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}
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impl EcdsaSig {
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/// Computes a digital signature of the hash value `data` using the private EC key eckey.
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///
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/// OpenSSL documentation at [`ECDSA_do_sign`]
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///
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/// [`ECDSA_do_sign`]: https://www.openssl.org/docs/man1.1.0/crypto/ECDSA_do_sign.html
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pub fn sign(data: &[u8], eckey: &EcKeyRef<Private>) -> Result<EcdsaSig, ErrorStack> {
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unsafe {
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let sig = cvt_p(ffi::ECDSA_do_sign(data.as_ptr(), data.len() as i32, eckey.as_ptr()))?;
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Ok(EcdsaSig::from_ptr(sig as *mut _))
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}
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}
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/// Returns a new `EcdsaSig` by setting the `r` and `s` values associated with a
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/// ECDSA signature.
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///
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/// OpenSSL documentation at [`ECDSA_SIG_set0`]
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///
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/// [`ECDSA_SIG_set0`]: https://www.openssl.org/docs/man1.1.0/crypto/ECDSA_SIG_set0.html
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pub fn from_private_components(r: BigNum, s: BigNum) -> Result<EcdsaSig, ErrorStack> {
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unsafe {
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let sig = cvt_p(ffi::ECDSA_SIG_new())?;
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cvt(compat::set_numbers(sig, r.as_ptr(), s.as_ptr()))?;
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mem::forget((r, s));
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Ok(EcdsaSig::from_ptr(sig as *mut _))
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}
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}
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/// Verifies if the signature is a valid ECDSA signature using the given public key
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///
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/// OpenSSL documentation at [`ECDSA_do_verify`]
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///
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/// [`ECDSA_do_verify`]: https://www.openssl.org/docs/man1.1.0/crypto/ECDSA_do_verify.html
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pub fn verify(&self, data: &[u8], eckey: &EcKeyRef<Public>) -> Result<bool, ErrorStack> {
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unsafe {
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let x = cvt_n(ffi::ECDSA_do_verify(data.as_ptr(), data.len() as i32, self.as_ptr(), eckey.as_ptr()))?;
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Ok(x == 1)
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}
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}
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/// Returns internal component: `r` of a `EcdsaSig`. (See X9.62 or FIPS 186-2)
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///
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/// OpenSSL documentation at [`ECDSA_SIG_get0`]
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///
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/// [`ECDSA_SIG_get0`]: https://www.openssl.org/docs/man1.1.0/crypto/ECDSA_SIG_get0.html
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pub fn private_component_r(&self) -> Option<&BigNumRef> {
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unsafe {
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let xs = compat::get_numbers(self.as_ptr());
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let r = if xs[0].is_null() { None } else { Some(BigNumRef::from_ptr(xs[0] as *mut _)) };
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r
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}
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}
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/// Returns internal components: `s` of a `EcdsaSig`. (See X9.62 or FIPS 186-2)
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///
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/// OpenSSL documentation at [`ECDSA_SIG_get0`]
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///
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/// [`ECDSA_SIG_get0`]: https://www.openssl.org/docs/man1.1.0/crypto/ECDSA_SIG_get0.html
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pub fn private_component_s(&self) -> Option<&BigNumRef> {
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unsafe {
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let xs = compat::get_numbers(self.as_ptr());
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let s = if xs[1].is_null() { None } else { Some(BigNumRef::from_ptr(xs[1] as *mut _)) };
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s
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}
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}
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}
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#[cfg(ossl110)]
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mod compat {
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use std::ptr;
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use libc::c_int;
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use ffi::{self, BIGNUM, ECDSA_SIG};
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pub unsafe fn set_numbers(sig: *mut ECDSA_SIG, r: *mut BIGNUM, s: *mut BIGNUM) -> c_int {
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ffi::ECDSA_SIG_set0(sig, r, s)
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}
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pub unsafe fn get_numbers(sig: *mut ECDSA_SIG) -> [*const BIGNUM; 2] {
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let (mut r, mut s) = (ptr::null(), ptr::null());
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ffi::ECDSA_SIG_get0(sig, &mut r, &mut s);
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[r, s]
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}
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}
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#[cfg(ossl10x)]
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mod compat {
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use libc::c_int;
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use ffi::{BIGNUM, ECDSA_SIG};
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pub unsafe fn set_numbers(sig: *mut ECDSA_SIG, r: *mut BIGNUM, s: *mut BIGNUM) -> c_int {
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(*sig).r = r;
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(*sig).s = s;
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1
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}
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pub unsafe fn get_numbers(sig: *mut ECDSA_SIG) -> [*const BIGNUM; 2] {
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[(*sig).r, (*sig).s]
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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 nid::Nid;
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use ec::EcGroup;
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use ec::EcKey;
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use super::*;
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#[cfg(not(osslconf = "OPENSSL_NO_EC2M"))]
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static CURVE_IDENTIFER: Nid = Nid::X9_62_PRIME192V1;
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#[cfg(osslconf = "OPENSSL_NO_EC2M")]
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static CURVE_IDENTIFER: Nid = Nid::X9_62_C2TNB191V1;
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fn get_public_key(group: &EcGroup, x: &EcKey<Private>) -> Result<EcKey<Public>, ErrorStack> {
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let public_key_point = x.public_key();
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Ok(EcKey::from_public_key(group, public_key_point)?)
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}
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#[test]
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fn sign_and_verify() {
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let group = EcGroup::from_curve_name(CURVE_IDENTIFER).unwrap();
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let private_key = EcKey::generate(&group).unwrap();
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let public_key = get_public_key(&group, &private_key).unwrap();
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let private_key2 = EcKey::generate(&group).unwrap();
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let public_key2 = get_public_key(&group, &private_key2).unwrap();
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let data = String::from("hello");
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let res = EcdsaSig::sign(data.as_bytes(), &private_key).unwrap();
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// Signature can be verified using the correct data & correct public key
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let verification = res.verify(data.as_bytes(), &public_key).unwrap();
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assert!(verification);
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// Signature will not be verified using the incorrect data but the correct public key
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let verification2 = res.verify(String::from("hello2").as_bytes(), &public_key).unwrap();
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assert!(verification2 == false);
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// Signature will not be verified using the correct data but the incorrect public key
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let verification3 = res.verify(data.as_bytes(), &public_key2).unwrap();
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assert!(verification3 == false);
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}
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#[test]
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fn check_private_components() {
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let group = EcGroup::from_curve_name(CURVE_IDENTIFER).unwrap();
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let private_key = EcKey::generate(&group).unwrap();
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let public_key = get_public_key(&group, &private_key).unwrap();
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let data = String::from("hello");
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let res = EcdsaSig::sign(data.as_bytes(), &private_key).unwrap();
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let verification = res.verify(data.as_bytes(), &public_key).unwrap();
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assert!(verification);
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let r = res.private_component_r().unwrap().to_owned().unwrap();
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let s = res.private_component_s().unwrap().to_owned().unwrap();
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let res2 = EcdsaSig::from_private_components(r, s).unwrap();
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let verification2 = res2.verify(data.as_bytes(), &public_key).unwrap();
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assert!(verification2);
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}
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}
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