glm-5.3-flash 9c6fec17ca feat(review 007 Unit 3): pump_bidi two-pump helper (R-03, ADR-050)
Extracts the two-pump data-plane helper alknet ADR-078 deferred until
the shapes converged (they have: alktunnels POC pump_halves + alktty's
channels session). Purely additive.

- channels::pump::pump_bidi(channel, peer_read, peer_write) -> (u64, u64):
  two joined pumps, shutdown-on-completion per direction; copy counts
  for observability. The channel side is a single AsyncRead +
  AsyncWrite value (the accept_bi BiStream); the peer side takes split
  halves — the establisher's natural dial result (into_split).
- Return (u64, u64), not the review sketch's io::Result<(u64, u64)>:
  both pumps swallow copy errors by contract (mid-stream error =
  abrupt close, no error channel mid-stream per ADR-049 §6), so an
  Err state would be dead code. Deviation recorded in ADR-050.
- alktty's three-pump session does not fit (exit future as a third
  signal) and stays as-is, per the review's scope.
- Tests reproduce the POC's two-pump semantics through the helper:
  bidirectional flow with exact counts, EOF-from-one-side completes
  the other's shutdown (clean EOF at the far end), dead-source =
  EOF-shaped teardown.
- ADR-050 records the decision, deviations, and two-way door type.

Verification: cargo test (625 passed, +2), clippy -D warnings, fmt
--check, doc clean, test --all-features clean, wasm32-unknown-unknown
check clean.
2026-09-07 08:47:46 +00:00
2026-08-11 08:48:35 +00:00
2026-08-11 08:48:35 +00:00

alkcall

Call + channels RPC: structured JSON operations, streaming subscriptions, service discovery, and N-channel multiplexing over one transport stream.

This crate unifies the call protocol and the channels protocol, plus the vendored core types formerly in alknet-core. It is a pure protocol crate — no networking, no transport dependencies. Downstream crates (alktty, alktunnels, alktrader) compose on top of it.

Quick start

Producer — register an operation and run a dispatcher

use std::sync::Arc;
use alkcall::core::{Capabilities, IdentityProvider};
use alkcall::protocol::{CallAdapter, connection::CallConnection};
use alkcall::registry::{
    registration::{HandlerRegistration, HandlerKind, OperationRegistry, make_handler},
    spec::{OperationSpec, OperationType, Visibility, AccessControl},
};

let registry = OperationRegistry::new();
registry.register(HandlerRegistration::new(
    OperationSpec::new(
        "echo/run",
        OperationType::Query,
        Visibility::External,
        serde_json::json!({}),
        serde_json::json!({}),
        vec![],
        AccessControl::default(),
        None,
    ),
    HandlerKind::Once(make_handler(|input, ctx| async move {
        alkcall::protocol::wire::ResponseEnvelope::ok(ctx.request_id, input)
    })),
    alkcall::registry::registration::OperationProvenance::Local,
    None,
    None,
    Capabilities::new(),
)).unwrap();

let registry = Arc::new(registry);
let provider: Arc<dyn IdentityProvider> = /* your identity provider */;

let adapter = CallAdapter::new(registry, provider);
// adapter implements ProtocolHandler — call adapter.handle(connection, &auth).await

Consumer — call an operation

use alkcall::core::Connection;
use alkcall::protocol::connection::CallConnection;

let connection = Connection::from_bidi(
    transport_stream,
    b"alk/call".to_vec(),
    Some(remote_addr),
);
let conn = CallConnection::new(connection);

let response = conn.call("echo/run", serde_json::json!({"msg": "hello"})).await;
assert!(response.result.is_ok());

Channels — open a channel and call through channel 0

use alkcall::channels::client::ChannelClient;
use alkcall::core::Connection;

let connection = Connection::from_bidi(
    transport_stream,
    b"alk/channels".to_vec(),
    Some(remote_addr),
);
let client = ChannelClient::from_connection(connection).await?;

let response = client.call_open_op(
    "echo/run",
    serde_json::json!({"msg": "hello"}),
).await;

from_call — discover and import remote operations

use alkcall::client::{from_call, FromCallConfig};

let registrations = from_call(&conn, FromCallConfig::new()).await?;
for reg in registrations {
    conn.register_imported(reg);
}
// now call remote ops as if they were local
let response = conn.call("remote/status", serde_json::json!({})).await;

Serving your own ops as a connected consumer

The call protocol is symmetric — both sides of a connection can serve ops. A ChannelClient built with from_connection is a pure consumer (inbound call.requested frames are dropped); pass a ServingConfig to also serve your registry to the peer, and use op/register to announce which ops you serve:

use std::sync::Arc;
use alkcall::channels::client::{ChannelClient, ServingConfig};
use alkcall::registry::discovery::install_bootstrap_discovery;

let registry = Arc::new(OperationRegistry::new());
// ... register your ops on the registry, then:
install_bootstrap_discovery(&registry)?;

let client = ChannelClient::from_connection_with_serving(
    connection,
    Some(ServingConfig {
        registry: Arc::clone(&registry),
        identity_provider: provider,
    }),
).await?;
// peer-callable ops resolve against `registry` on channel 0;
// `client.call_open_op` still works — both directions share the pump

Architecture

alkcall is a pure protocol crate — no networking, no transport dependencies. It provides the call and channels protocols as a library. Downstream crates compose on top of it in a layered dependency chain.

Role Call protocol Channels protocol
Producer Registers ops on an OperationRegistry, runs a Dispatcher Runs a ChannelsAdapter, registers openable ALPNs via ChannelCore::register_openable
Consumer Uses CallConnection to call ops, uses from_call to discover/import remote ops; may also serve its own ops (from_connection_with_serving) Uses ChannelClient to open channels via call_open_op + open_channel
Hub Both: runs a Dispatcher for ops it produces, holds CallConnections to spokes for ops it consumes Both: runs a ChannelsAdapter for inbound connections, holds ChannelClients to spokes
Spoke / Worker Both: produces ops (its own services), consumes hub ops Both: produces channels (TTY, tunnel), may consume hub channels

A single process can be a producer of some ops, a consumer of others, a channel opener for TTY, and a channel acceptor for tunnels — all on the same alk/channels connection.

Documentation

  • Architecture docs — the authoritative spec: ADRs, wire formats, protocol contracts, and composition patterns.
  • API docs — full crate documentation on docs.rs.
  • Open questions — tracked deferred decisions and feature gaps.

License

MIT OR Apache-2.0

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