mirror of https://github.com/dswd/vpncloud.git
This commit is contained in:
parent
a86aecfa7e
commit
48927b2f48
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@ -53,7 +53,9 @@
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use super::{
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core::{CryptoCore, EXTRA_LEN},
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Algorithms, EcdhPrivateKey, EcdhPublicKey, Ed25519PublicKey, Error, MsgBuffer, Payload
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rotate::RotationState,
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Algorithms, EcdhPrivateKey, EcdhPublicKey, Ed25519PublicKey, Error, MsgBuffer, Payload, PeerCrypto,
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MESSAGE_TYPE_ROTATION
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};
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use crate::types::NodeId;
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use byteorder::{NetworkEndian, ReadBytesExt, WriteBytesExt};
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@ -72,6 +74,7 @@ use std::{
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sync::Arc
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};
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pub const INIT_MESSAGE_FIRST_BYTE: u8 = 0xff;
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pub const STAGE_PING: u8 = 1;
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pub const STAGE_PONG: u8 = 2;
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@ -85,6 +88,11 @@ pub const SALTED_NODE_ID_HASH_LEN: usize = 20;
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pub type SaltedNodeIdHash = [u8; SALTED_NODE_ID_HASH_LEN];
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pub fn is_init_message(msg: &[u8]) -> bool {
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!msg.is_empty() && msg[0] == INIT_MESSAGE_FIRST_BYTE
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}
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#[allow(clippy::large_enum_variant)]
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pub enum InitMsg {
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Ping {
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@ -141,6 +149,9 @@ impl InitMsg {
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fn read_from(buffer: &[u8], trusted_keys: &[Ed25519PublicKey]) -> Result<(Self, Ed25519PublicKey), Error> {
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let mut r = Cursor::new(buffer);
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if r.read_u8().map_err(|_| Error::Parse("Init message too short"))? != INIT_MESSAGE_FIRST_BYTE {
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return Err(Error::Parse("Init message has invalid first byte"))
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}
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let mut public_key_salt = [0; 4];
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r.read_exact(&mut public_key_salt).map_err(|_| Error::Parse("Init message too short"))?;
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let mut public_key_hash = [0; 4];
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@ -290,6 +301,7 @@ impl InitMsg {
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fn write_to(&self, buffer: &mut [u8], key: &Ed25519KeyPair) -> Result<usize, io::Error> {
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let mut w = Cursor::new(buffer);
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w.write_u8(INIT_MESSAGE_FIRST_BYTE)?;
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let rand = SystemRandom::new();
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let mut salt = [0; 4];
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rand.fill(&mut salt).unwrap();
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@ -378,9 +390,9 @@ pub enum InitResult<P: Payload> {
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Success { peer_payload: P, is_initiator: bool }
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}
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pub struct InitState<P: Payload> {
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node_id: NodeId,
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is_initiator: bool,
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salted_node_id_hash: SaltedNodeIdHash,
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payload: P,
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key_pair: Arc<Ed25519KeyPair>,
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@ -389,7 +401,7 @@ pub struct InitState<P: Payload> {
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next_stage: u8,
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close_time: usize,
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last_message: Option<Vec<u8>>,
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crypto: Option<CryptoCore>,
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crypto: Option<Arc<CryptoCore>>,
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algorithms: Algorithms,
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selected_algorithm: Option<&'static Algorithm>,
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failed_retries: usize
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@ -409,6 +421,7 @@ impl<P: Payload> InitState<P> {
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hash[4..].clone_from_slice(&d.as_ref()[..16]);
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Self {
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node_id,
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is_initiator: false,
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salted_node_id_hash: hash,
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payload,
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key_pair,
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@ -431,7 +444,7 @@ impl<P: Payload> InitState<P> {
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// create stage 1 msg
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self.send_message(STAGE_PING, Some(ecdh_public_key), out);
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self.is_initiator = true;
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self.next_stage = STAGE_PONG;
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}
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@ -588,6 +601,7 @@ impl<P: Payload> InitState<P> {
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// the node with the higher node_id "wins" and gets to initialize the connection
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if salted_node_id_hash > self.salted_node_id_hash {
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// reset to initial state
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self.is_initiator = false;
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self.next_stage = STAGE_PING;
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self.last_message = None;
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self.ecdh_private_key = None;
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@ -614,7 +628,8 @@ impl<P: Payload> InitState<P> {
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self.selected_algorithm = algorithm.map(|a| a.0);
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if let Some((algorithm, _speed)) = algorithm {
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let master_key = self.derive_master_key(algorithm, my_ecdh_private_key, &ecdh_public_key);
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self.crypto = Some(CryptoCore::new(master_key, self.salted_node_id_hash > salted_node_id_hash));
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self.crypto =
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Some(Arc::new(CryptoCore::new(master_key, self.salted_node_id_hash > salted_node_id_hash)));
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}
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// create and send stage 2 reply
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@ -630,7 +645,8 @@ impl<P: Payload> InitState<P> {
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self.selected_algorithm = algorithm.map(|a| a.0);
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if let Some((algorithm, _speed)) = algorithm {
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let master_key = self.derive_master_key(algorithm, ecdh_private_key, &ecdh_public_key);
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self.crypto = Some(CryptoCore::new(master_key, self.salted_node_id_hash > salted_node_id_hash));
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self.crypto =
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Some(Arc::new(CryptoCore::new(master_key, self.salted_node_id_hash > salted_node_id_hash)));
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}
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// decrypt the payload
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@ -657,8 +673,19 @@ impl<P: Payload> InitState<P> {
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}
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}
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pub fn take_core(&mut self) -> Option<CryptoCore> {
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self.crypto.take()
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pub fn finish(self, buffer: &mut MsgBuffer) -> PeerCrypto {
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assert!(buffer.is_empty());
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let rotation = if self.crypto.is_some() { Some(RotationState::new(!self.is_initiator, buffer)) } else { None };
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if !buffer.is_empty() {
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buffer.prepend_byte(MESSAGE_TYPE_ROTATION);
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}
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PeerCrypto {
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algorithm: self.crypto.map(|c| c.algorithm()),
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core: self.crypto,
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rotation,
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rotate_counter: 0,
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last_init_message: self.last_message
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}
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}
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}
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@ -2,11 +2,10 @@ mod core;
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mod init;
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mod rotate;
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pub use self::core::{EXTRA_LEN, TAG_LEN, CryptoCore};
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use self::{
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core::{test_speed, CryptoCore},
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init::{InitResult, InitState, CLOSING},
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rotate::RotationState
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use self::{core::test_speed, init::InitState, rotate::RotationState};
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pub use self::{
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core::{CryptoCore, EXTRA_LEN, TAG_LEN},
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init::{is_init_message, INIT_MESSAGE_FIRST_BYTE}
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};
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use crate::{
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error::Error,
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@ -26,7 +25,7 @@ use thiserror::Error;
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const SALT: &[u8; 32] = b"vpncloudVPNCLOUDvpncl0udVpnCloud";
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const INIT_MESSAGE_FIRST_BYTE: u8 = 0xff;
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const MESSAGE_TYPE_ROTATION: u8 = 0x10;
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pub type Ed25519PublicKey = [u8; ED25519_PUBLIC_KEY_LEN];
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@ -186,100 +185,35 @@ impl Crypto {
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Ok(result)
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}
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pub fn peer_instance<P: Payload>(&self, payload: P) -> PeerCrypto<P> {
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PeerCrypto::new(
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self.node_id,
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payload,
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self.key_pair.clone(),
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self.trusted_keys.clone(),
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self.algorithms.clone()
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)
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pub fn peer_instance<P: Payload>(&self, payload: P) -> InitState<P> {
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InitState::new(self.node_id, payload, self.key_pair.clone(), self.trusted_keys.clone(), self.algorithms.clone())
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}
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}
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#[derive(Debug, PartialEq)]
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pub enum MessageResult<P: Payload> {
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pub enum MessageResult {
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Message(u8),
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Initialized(P),
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InitializedWithReply(P),
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Reply,
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None
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}
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pub struct PeerCrypto<P: Payload> {
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// TODO: completely rewrite
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// PeerCrypto is only for initialized crypto
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// Init is consumed and generates PeerCrypto
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pub struct PeerCrypto {
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#[allow(dead_code)]
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node_id: NodeId,
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init: Option<InitState<P>>,
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last_init_message: Option<Vec<u8>>,
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algorithm: Option<&'static Algorithm>,
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rotation: Option<RotationState>,
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unencrypted: bool,
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core: Option<CryptoCore>,
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core: Option<Arc<CryptoCore>>,
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rotate_counter: usize
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}
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impl<P: Payload> PeerCrypto<P> {
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pub fn new(
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node_id: NodeId, init_payload: P, key_pair: Arc<Ed25519KeyPair>, trusted_keys: Arc<[Ed25519PublicKey]>,
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algorithms: Algorithms
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) -> Self
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{
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Self {
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node_id,
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init: Some(InitState::new(node_id, init_payload, key_pair, trusted_keys, algorithms)),
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rotation: None,
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unencrypted: false,
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core: None,
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rotate_counter: 0
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}
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}
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fn get_init(&mut self) -> Result<&mut InitState<P>, Error> {
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if let Some(init) = &mut self.init {
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Ok(init)
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} else {
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Err(Error::InvalidCryptoState("Initialization already finished"))
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}
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}
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fn get_core(&mut self) -> Result<&mut CryptoCore, Error> {
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if let Some(core) = &mut self.core {
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Ok(core)
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} else {
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Err(Error::InvalidCryptoState("Crypto core not ready yet"))
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}
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}
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fn get_rotation(&mut self) -> Result<&mut RotationState, Error> {
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if let Some(rotation) = &mut self.rotation {
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Ok(rotation)
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} else {
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Err(Error::InvalidCryptoState("Key rotation not initialized"))
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}
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}
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pub fn initialize(&mut self, out: &mut MsgBuffer) -> Result<(), Error> {
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let init = self.get_init()?;
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if init.stage() != init::STAGE_PING {
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Err(Error::InvalidCryptoState("Initialization already ongoing"))
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} else {
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init.send_ping(out);
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out.prepend_byte(INIT_MESSAGE_FIRST_BYTE);
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Ok(())
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}
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}
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pub fn has_init(&self) -> bool {
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self.init.is_some()
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}
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pub fn is_ready(&self) -> bool {
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self.core.is_some()
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}
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impl PeerCrypto {
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pub fn algorithm_name(&self) -> &'static str {
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if let Some(ref core) = self.core {
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let algo = core.algorithm();
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if let Some(algo) = self.algorithm {
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if algo == &aead::CHACHA20_POLY1305 {
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"CHACHA20"
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} else if algo == &aead::AES_128_GCM {
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@ -294,72 +228,43 @@ impl<P: Payload> PeerCrypto<P> {
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}
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}
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fn handle_init_message(&mut self, buffer: &mut MsgBuffer) -> Result<MessageResult<P>, Error> {
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let result = self.get_init()?.handle_init(buffer)?;
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if !buffer.is_empty() {
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buffer.prepend_byte(INIT_MESSAGE_FIRST_BYTE);
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}
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match result {
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InitResult::Continue => Ok(MessageResult::Reply),
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InitResult::Success { peer_payload, is_initiator } => {
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self.core = self.get_init()?.take_core();
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if self.core.is_none() {
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self.unencrypted = true;
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}
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if self.get_init()?.stage() == init::CLOSING {
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self.init = None
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}
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if self.core.is_some() {
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self.rotation = Some(RotationState::new(!is_initiator, buffer));
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}
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if !is_initiator {
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if self.unencrypted {
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return Ok(MessageResult::Initialized(peer_payload))
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}
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assert!(!buffer.is_empty());
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buffer.prepend_byte(MESSAGE_TYPE_ROTATION);
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self.encrypt_message(buffer)?;
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}
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Ok(MessageResult::InitializedWithReply(peer_payload))
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}
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}
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fn handle_init_message(&mut self, buffer: &mut MsgBuffer) -> Result<MessageResult, Error> {
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// TODO: parse message stage
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// TODO: depending on stage resend last message
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Ok(MessageResult::None)
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}
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fn handle_rotate_message(&mut self, data: &[u8]) -> Result<(), Error> {
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if self.unencrypted {
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return Ok(())
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}
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if let Some(rot) = self.get_rotation()?.handle_message(data)? {
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let core = self.get_core()?;
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let algo = core.algorithm();
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if let Some(rotation) = &mut self.rotation {
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if let Some(rot) = rotation.handle_message(data)? {
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let algo = self.algorithm.unwrap();
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let key = LessSafeKey::new(UnboundKey::new(algo, &rot.key[..algo.key_len()]).unwrap());
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core.rotate_key(key, rot.id, rot.use_for_sending);
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self.core.unwrap().rotate_key(key, rot.id, rot.use_for_sending);
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}
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}
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Ok(())
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}
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fn encrypt_message(&mut self, buffer: &mut MsgBuffer) -> Result<(), Error> {
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if self.unencrypted {
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return Ok(())
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fn encrypt_message(&mut self, buffer: &mut MsgBuffer) {
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if let Some(core) = &mut self.core {
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core.encrypt(buffer)
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}
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self.get_core()?.encrypt(buffer);
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Ok(())
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}
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fn decrypt_message(&mut self, buffer: &mut MsgBuffer) -> Result<(), Error> {
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if self.unencrypted {
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return Ok(())
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if let Some(core) = &mut self.core {
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core.decrypt(buffer)
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} else {
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Ok(())
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}
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self.get_core()?.decrypt(buffer)
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}
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pub fn handle_message(&mut self, buffer: &mut MsgBuffer) -> Result<MessageResult<P>, Error> {
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pub fn handle_message(&mut self, buffer: &mut MsgBuffer) -> Result<MessageResult, Error> {
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if buffer.is_empty() {
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return Err(Error::InvalidCryptoState("No message in buffer"))
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}
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if is_init_message(buffer.buffer()) {
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debug!("Received init message");
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buffer.take_prefix();
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self.handle_init_message(buffer)
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} else {
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debug!("Received encrypted message");
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|
@ -376,52 +281,37 @@ impl<P: Payload> PeerCrypto<P> {
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}
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}
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pub fn send_message(&mut self, type_: u8, buffer: &mut MsgBuffer) -> Result<(), Error> {
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pub fn send_message(&mut self, type_: u8, buffer: &mut MsgBuffer) {
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assert_ne!(type_, MESSAGE_TYPE_ROTATION);
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buffer.prepend_byte(type_);
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self.encrypt_message(buffer)
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self.encrypt_message(buffer);
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}
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pub fn every_second(&mut self, out: &mut MsgBuffer) -> Result<MessageResult<P>, Error> {
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pub fn every_second(&mut self, out: &mut MsgBuffer) -> MessageResult {
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out.clear();
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if let Some(ref mut core) = self.core {
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core.every_second()
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}
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if let Some(ref mut init) = self.init {
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init.every_second(out)?;
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}
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if self.init.as_ref().map(|i| i.stage()).unwrap_or(CLOSING) == CLOSING {
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self.init = None
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}
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if !out.is_empty() {
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out.prepend_byte(INIT_MESSAGE_FIRST_BYTE);
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return Ok(MessageResult::Reply)
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}
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if let Some(ref mut rotate) = self.rotation {
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self.rotate_counter += 1;
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if self.rotate_counter >= ROTATE_INTERVAL {
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self.rotate_counter = 0;
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if let Some(rot) = rotate.cycle(out) {
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let core = self.get_core()?;
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let algo = core.algorithm();
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let algo = self.algorithm.unwrap();
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let key = LessSafeKey::new(UnboundKey::new(algo, &rot.key[..algo.key_len()]).unwrap());
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core.rotate_key(key, rot.id, rot.use_for_sending);
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self.core.unwrap().rotate_key(key, rot.id, rot.use_for_sending);
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}
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if !out.is_empty() {
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out.prepend_byte(MESSAGE_TYPE_ROTATION);
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self.encrypt_message(out)?;
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return Ok(MessageResult::Reply)
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self.encrypt_message(out);
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return MessageResult::Reply
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}
|
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}
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}
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Ok(MessageResult::None)
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MessageResult::None
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}
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}
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|
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pub fn is_init_message(msg: &[u8]) -> bool {
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!msg.is_empty() && msg[0] == INIT_MESSAGE_FIRST_BYTE
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}
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|
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#[cfg(test)]
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mod tests {
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|
|
|
@ -12,7 +12,7 @@ use parking_lot::Mutex;
|
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use std::{collections::HashMap, net::SocketAddr, sync::Arc};
|
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|
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pub struct SharedPeerCrypto {
|
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peers: Arc<Mutex<HashMap<SocketAddr, CryptoCore, Hash>>>
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peers: Arc<Mutex<HashMap<SocketAddr, Arc<CryptoCore>, Hash>>>
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}
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|
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impl SharedPeerCrypto {
|
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