mtp/docs/NATIVE-CLIENT.md
Alex Emmet 089def45d1
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MTP Native Client

The native client is a Rust library (mtp-client) for connecting to an MTP host over QUIC. It uses wtransport under the hood and provides both unauthenticated and authenticated (crypto handshake) connection modes.

Cargo Dependency

Add the mtp umbrella crate with the client feature (and optionally crypto for authentication):

[dependencies]
mtp = { path = "/path/to/mtp", features = ["client"] }

# Add crypto for auth_connect / auth_register:
mtp = { path = "/path/to/mtp", features = ["client", "crypto"] }

# Add pipes for raw binary streams:
mtp = { path = "/path/to/mtp", features = ["client", "pipes"] }

ClientConfig

use mtp::client::{ClientConfig, ClientTlsConfig};
use std::time::Duration;

let config = ClientConfig::new("https://host.example.com:4433")
    .with_tls(ClientTlsConfig::SystemRoots)
    .with_client_id(0)
    .with_ping_interval(Duration::from_secs(5))
    .with_max_missed_pings(3)
    .with_ping_timestamp(true);
Field Type Default Description
url String required Host URL (https://host:port)
tls ClientTlsConfig SystemRoots SystemRoots or PinnedPem(Vec<u8>)
client_id u64 0 Client identifier (for login)
description Option<String> None Optional label sent to host
policy Policy default Transport policy (timeouts, send mode)
ping_interval Duration Duration::ZERO Interval between protocol Ping frames
ping_jitter Option<Duration> None Random jitter added to each interval
max_missed_pings usize 3 Disconnect after this many unanswered Pings
ping_timestamp bool true Include a Timestamp data entry in Ping
auth_timeout (crypto) Duration 30s Max time for auth handshake

TLS Certificate Handling

When tls is ClientTlsConfig::SystemRoots (the default), the client loads the system's native root certificate store via rustls_native_certs. This works with publicly-trusted CAs out of the box on Linux (using openssl-probe), macOS (Keychain), and Windows (Root Store).

For development or self-signed certificates, provide one or more PEM-encoded certificates:

let pem = std::fs::read("my-server-cert.pem")?;
let config = ClientConfig::new("https://host.example.com:4433").with_pinned_pem(pem);

When pinned, only the given certificate(s) are trusted for the TLS handshake.

Connection Methods

All methods return a Result<MTPConnection, CommunicationError>.

MTPConnection

pub struct MTPConnection {
    pub version: Version,
    pub sender: Sender,
    pub receiver: Receiver,
    pub description: Option<String>,
    #[cfg(feature = "crypto")]
    pub auth_state: AuthState,
    #[cfg(feature = "crypto")]
    pub client_id: u64,
}
  • version -- the negotiated protocol version
  • sender / receiver -- for message I/O
  • description -- the label sent during handshake (set via ClientConfig::with_description)
  • client_id -- the confirmed/assigned client identifier (crypto only)

When ping_interval is non-zero, MTP sends Ping frames in the background and consumes their Pong responses before application message handling. get_ping() returns the round-trip duration of the latest matched Pong, or None until a Pong arrives. A connection closes when the configured unanswered Ping limit is reached.

Ping-Pong

Ping/Pong is part of the protocol, not just a transport keepalive. Each Ping frame is matched against a Pong with the same frame id, and the client uses the response to update get_ping(). If the host does not answer within the configured limit, the connection closes.

Enable it in ClientConfig, then inspect the latest round-trip time on the connection. Pings start after the connection has been established; None is normal until the first matching Pong arrives.

use mtp::client::{ClientConfig, MTPClient};
use std::time::Duration;

let config = ClientConfig::new("https://host.example.com:4433")
    .with_client_id(42)
    .with_ping_interval(Duration::from_secs(5))
    .with_max_missed_pings(3)
    .with_ping_timestamp(true);

let conn = MTPClient::connect(config).await?;

if let Some(round_trip) = conn.get_ping() {
    println!("latest MTP round trip: {round_trip:?}");
}

The client consumes the Pong frames used by this loop, so they are not returned by conn.receiver.receive(). Set ping_interval to Duration::ZERO (the default) to disable protocol pings. max_missed_pings is the number of outstanding Ping frames allowed before the client closes the connection; use a host with automatic Pong responses, or provide an equivalent responder.

Unauthenticated Connect

use mtp::client::{ClientConfig, MTPClient};

let config = ClientConfig::new("https://host.example.com:4433").with_client_id(42);

let conn = MTPClient::connect(config).await?;

Sends an Identification frame with the compiled-in protocol version and client ID. No cryptographic handshake is performed.

Authenticated Login

use mtp::client::MTPClient;
use mtp::crypto::{Keyring, PublicKeyBundle};

let keys = Keyring::from_bytes(&saved_keyring_bytes)?;
let host_pk = PublicKeyBundle::from_bytes(&saved_host_pk_bytes)?;

let config = ClientConfig::new("https://host.example.com:4433")
    .with_client_id(42); // must match the keyring's identity

let conn = MTPClient::auth_connect(config, &keys, &host_pk).await?;

Protocol (challenge-response, the host issues the freshness):

  1. Client sends an unsigned Identification hello (version, client ID)
  2. Host replies with a Challenge carrying a fresh random server_challenge and the host's signature over it; the client verifies that signature
  3. Client generates a random client_nonce and signs version || client_id || server_challenge || client_nonce with Ed25519 (and optionally ML-DSA-65)
  4. Client sends a ChallengeResponse frame (nonce + signature(s))
  5. Host verifies the proof against server_challenge and responds with IdentificationResponse (echoed nonce + host signature)
  6. Client verifies the host signature and nonce echo

Because the client's signature covers the host-issued server_challenge, a captured proof cannot be replayed on another connection (each connection gets a different challenge).

Registration

let (ed_signer, sig_sk, sig_pk) = mtp::crypto::Ed25519Signer::generate();
let (pq_signer, sig_pq_sk, sig_pq_pk) = mtp::crypto::MlDsaSigner::generate();
let (kem_sk, kem_pk) = mtp::crypto::HybridKem::generate_keypair();

let keyring = Keyring::new(kem_pk, kem_sk, sig_pq_pk, sig_pq_sk, sig_pk, sig_sk);

let conn = MTPClient::auth_register(config, &keyring, &host_pk).await?;

// Save for next session
let id = conn.client_id;
let keyring_bytes = keyring.to_bytes();

When callers already know whether a saved client id exists, the convenience helper chooses login or registration:

let conn = MTPClient::auth_connect_or_register(
    config,
    saved_client_id, // Option<u64>
    &keyring,
    &host_pk,
).await?;

Protocol (challenge-response):

  1. Client sends an unsigned Register hello (version, public key bundle)
  2. Host replies with a Challenge carrying a fresh random server_challenge (signed by the host); the client verifies that signature
  3. Client generates a random client_nonce and signs version || server_challenge || client_nonce || public_key_bytes with Ed25519 (and optionally ML-DSA-65)
  4. Client sends a ChallengeResponse frame (nonce + signature(s))
  5. Host verifies the proof against server_challenge, assigns a new client ID, and responds with RegisterResponse (the ID, echoed nonce, host signature)
  6. Client verifies the host signature and nonce echo

Key Material

Keyring

A Keyring bundles all secret and public key material for one identity:

pub struct Keyring {
    pub kem_public_key: KemPublicKey,
    pub kem_secret_key: KemPrivateKey,
    pub sig_pq_public_key: SignaturePqPublicKey,  // ML-DSA-65
    pub sig_pq_secret_key: SignaturePqPrivateKey,
    pub sig_cl_public_key: SignaturePublicKey,    // Ed25519
    pub sig_cl_secret_key: SignaturePrivateKey,
}
  • Serialise: keyring.to_bytes() -> Vec<u8>
  • Deserialise: Keyring::from_bytes(&bytes) -> Result<Keyring, CryptoError>
  • Get public half: keyring.public_key_bundle() -> PublicKeyBundle

PublicKeyBundle

The public half of a keyring, used by the host for signature verification and by the client for host signature verification:

pub struct PublicKeyBundle {
    pub kem_public_key: KemPublicKey,
    pub sig_cl_public_key: SignaturePublicKey,
    pub sig_pq_public_key: SignaturePqPublicKey,
}

Obtain the host's PublicKeyBundle out of band (e.g. from files exported by the host, or from a trusted directory).

Sending and Receiving Messages

CommunicationValue

Messages are CommunicationValue frames. Construct them with the builder API:

use mtp::codec::{CommunicationValue, CommunicationType, DataType, DataValue};
use mtp::type_map::TypeMap;

let msg = CommunicationValue::new(CommunicationType::Ping)
    .with_sender(conn.client_id)
    .add_typed_default(DataType::Description, DataValue::Str("hello".into()))
    .add_typed_default(DataType::Timestamp, DataValue::UnsignedNumber(now))
    .to_bytes();

When the registry feature is enabled (via the host feature), you can also use add_typed with a TypeMap to resolve data type names from your project's type-map configuration.

Send

conn.sender.send(&msg).await?;

For request/response flows, MTPConnection::request sends one frame and waits for a response with the same non-zero frame id. An expected response type can be provided for validation:

let response = conn
    .request(&msg, Some(mtp::codec::CommunicationType::Pong))
    .await?;

Frames with other ids are consumed by this helper. Applications that need subscriptions or broad routing should use one receive task and correlate there.

Two send modes (configured via mtp::transport::Policy):

  • PersistentStream (default) -- reuses one QUIC uni-directional stream
  • SingleStreamPerMessage -- opens a new stream per message

Receive

match conn.receiver.receive().await {
    Ok(msg) => { /* handle CommunicationValue */ }
    Err(e) => { /* connection closed or error */ }
}

Inbound frames are queued internally. The receive() method returns the next available message.

Close

conn.sender.close();
// or
conn.receiver.close();

Sends a close frame and signals the peer. The Sender::close() spawns an async task that sends the frame, waits for force_close_delay (default 300ms), then force-closes the QUIC connection if the peer has not already done so.

Pipes

With the pipes feature enabled, the client can open raw binary streams to the host. A Pipe is a unidirectional QUIC stream that carries a lightweight PipeRequest handshake frame, then transitions to raw bytes with zero per-frame overhead.

Enabling Pipes

Add the pipes feature to your dependency:

[dependencies]
mtp = { path = "/path/to/mtp", features = ["client", "pipes"] }

Creating a Pipe

use mtp::client::MTPClient;
use tokio::io::AsyncWriteExt;

let conn = MTPClient::connect(config).await?;

// Initiate a pipe request
let handle = conn.create_pipe("file-transfer").await?;

// Wait for the host to accept or reject
match handle.wait().await? {
    Some(mut writer) => {
        writer.write_all(b"raw binary data").await?;
        writer.finish().await?; // graceful close
    }
    None => {
        println!("host rejected the pipe");
    }
}

PipeHandle

pub struct PipeHandle {
    pipe_id: u32,
    description: String,
}
Method Returns Description
wait() Result<Option<PipeWriter>, PipeError> Block until the host responds. Some(writer) if accepted, None if rejected.

PipeHandle consumes itself on wait(), so you cannot poll it multiple times.

PipeWriter

pub struct PipeWriter {
    // wraps a QUIC SendStream
}

PipeWriter implements tokio::io::AsyncWrite. After the handshake succeeds, writes go directly to the QUIC stream with no framing overhead.

Method Returns Description
finish() Result<(), CommunicationError> Gracefully close the stream (sends FIN)
abort() Result<(), ClosedStream> Abruptly reset the stream
use tokio::io::AsyncWriteExt;

let mut writer = handle.wait().await?.unwrap();
writer.write_all(b"chunk 1").await?;
writer.write_all(b"chunk 2").await?;
writer.finish().await?;

PipeError

pub enum PipeError {
    Rejected,          // pipe request was rejected
    HandshakeTimeout,  // pipe handshake timed out
    StreamClosed,      // pipe stream closed unexpectedly
    IoError(String),   // pipe I/O error
    ConnectionClosed,  // connection closed
}

PipeError implements std::error::Error and can be converted from CommunicationError via PipeError::from().

Do Not Use receiver.receive() for Pipes

When the pipes feature is active, conn.receiver.receive() will skip PipeResponse frames and may return them as ordinary messages if called from the wrong task. Use the facade methods:

  • conn.receive() to receive normal CommunicationValue messages
  • conn.create_pipe(description) to initiate a new pipe

These methods are internally synchronised and safe to call from separate tasks.

Crypto Containers

With the crypto feature, DataValue supports encrypted, signed, and signed+encrypted containers. Encryption uses ML-KEM to encapsulate to a recipient's KEM public key (from their PublicKeyBundle); only the holder of the matching Keyring can decrypt. Signing uses the sender's Ed25519 key.

use mtp::crypto::{EncryptionType, Ed25519Signer, SigAlgorithm};

let enc_type = EncryptionType::MlKemChaCha20Poly1305;
let signer = Ed25519Signer::new(&keyring.sig_cl_secret_key)?;

// `recipient` is the PublicKeyBundle of whoever should be able to decrypt
// (e.g. the host's bundle, obtained out of band).

// Encrypted container
let mut enc = DataValue::Container(vec![
    (DataTypeId(1), DataValue::Str("secret".into())),
]);
enc.encrypt_container(enc_type, &recipient, b"aad");

// Signed container
let mut sig = DataValue::Container(vec![
    (DataTypeId(1), DataValue::Str("signed".into())),
]);
sig.sign_container(SigAlgorithm::ED25519, &signer);

// Signed + encrypted
let mut sec = DataValue::Container(vec![
    (DataTypeId(1), DataValue::Str("both".into())),
]);
sec.sign_and_encrypt_container(SigAlgorithm::ED25519, &signer, enc_type, &recipient, b"aad");

On the receiving side, the recipient decrypts with its own Keyring (each blob is self-describing: its leading byte selects the algorithm and the matching KEM key from the keyring):

enc.decrypt_into_container(&keyring, b"aad");                // -> Container
sig.verify_into_container(&verifier);                        // verifier: impl SignatureScheme
sec.decrypt_signed_encrypted_container(&keyring, b"aad");    // -> SignedContainer, then verify_into_container

Policy Configuration

The Policy struct controls transport behaviour:

use mtp::transport::{Policy, SendMode};

let policy = Policy {
    send_mode: SendMode::PersistentStream,
    max_message_size: 1_000_000_000,
    open_stream_timeout: Duration::from_millis(2000),
    write_timeout: Duration::from_millis(2000),
    read_timeout: Duration::from_millis(30_000),
    keep_alive_interval: Some(Duration::from_secs(3)),
    max_idle_timeout: Some(Duration::from_secs(30)),
    ..Default::default()
};

To apply a custom policy, call mtp_transport::connect() directly instead of using MTPClient:

use mtp_transport::{connect, Policy};

let server_cert = match &config.tls {
    ClientTlsConfig::SystemRoots => None,
    ClientTlsConfig::PinnedPem(pem) => Some(pem.clone()),
};
let (sender, receiver) = connect(&config.url, server_cert, policy).await?;

Then build and send the initial Identification frame manually to complete version negotiation.

Version

The client's protocol version is baked in at compile time via the PROTOCOL_VERSION constant from mtp::codec. The version is set by the protocol_version field in your type-maps.yaml.

The client never imports the registry module; it uses a single compiled-in version and expects the host to negotiate a compatible version.

Error Handling

CommunicationError covers transport errors:

Variant Meaning
StreamClosed Connection was closed by peer or timed out
StreamError Transport-level I/O error
MessageTooLarge Frame exceeds max_message_size
ParseCommunicationValue Failed to deserialize incoming frame
AuthenticationFailed Nonce mismatch or invalid host signature
ConnectionError QUIC connection failure
UseAfterClosed Attempted send/receive after close