Turbomcp Wasm Macros
БесплатноНе проверенProcedural macros for TurboMCP WASM servers - zero-boilerplate MCP server development
Описание
Procedural macros for TurboMCP WASM servers - zero-boilerplate MCP server development
README
Crates.io Documentation License: MIT
A ground-up Rust SDK for the Model Context Protocol — both halves of the protocol, server and client — with a macro-driven, zero-boilerplate surface and strict spec compliance as a feature.
Status:
4.0.0-alpha.5— a prerelease for community testing. v4 is a from-scratch rewrite of TurboMCP; the stable line is3.x. Edition 2024, MSRV 1.88. It interoperates with the official Rust SDK in both directions, on both revisions, and both halves are scored against the official MCP conformance suite: 231 successful server assertions and 488 distinct successful client scenario/check pairs using pinned client fixture corrections, with zero failures, skips, or warnings. All three advertised revisions (2025-06-18,2025-11-25,2026-07-28) are dated and frozen;2026-07-28is generated from the releasedschema/2026-07-28/, not the RC. Found something broken or unergonomic? Please open an issue.
What you get
- One macro defines a server.
#[server]over animplblock turns#[tool]/#[resource]/#[prompt]methods into a fully-wired MCP server. The macro generates schema derivation code; schema values are initialized once at runtime and cloned for callers, and the advertised capabilities are derived from which markers are present — they can't drift from the implementation. - Three protocol revisions, one handler. The same server answers
2025-06-18,2025-11-25, and2026-07-28. Your handlers speak version-neutral types; the version-specific wire shapes are conversions, not signature changes — including dropping, per session, the fields a revision predates. Pin the set with#[server(protocols("2025-11-25", …))]. - Transports behind one builder. stdio (default), Streamable HTTP (axum),
and WebSocket.
MyServer.run_stdio(),.run_http(addr, cfg), orturbomcp::ws::serve_websocket(listener, factory). - The client too. A typed
Clientruns the handshake, negotiates the version, and speaks the same neutral API — interoperating with the official Rust SDK (rmcp) in both directions. - Production seams. OAuth 2.1 on both halves (resource-server bearer validation and the client auth-code + PKCE flow), identity-keyed rate limiting, OpenTelemetry tracing + metrics, progress/logging, subscriptions, response caching (SEP-2549), and bidirectional elicitation — each opt-in behind a feature flag.
How this relates to rmcp, the official Rust SDK
rmcp is the official SDK,
maintained in the modelcontextprotocol organization. It is the reasonable
default, and this project is tested against it — cross-SDK interop tests run in
both directions, a TurboMCP client against an rmcp server and the reverse, on
every change.
TurboMCP's interoperability tests pin rmcp 3.2. TurboMCP serves three
revisions (2025-06-18, 2025-11-25, 2026-07-28) using separate generated
wire types and exhaustive conversions to a neutral handler API. It does not
serve 2024-11-05 or 2025-03-26.
The distinguishing APIs are macro-derived capabilities, typed per-RPC contexts, composition, caller-specific visibility, and Tower middleware. Conformance and interoperability are compatibility evidence; they do not establish performance superiority over another SDK. See deployment and migration for the limits and security contracts.
Quickstart
use turbomcp::prelude::*;
#[derive(Clone)]
struct Hello;
#[server(name = "hello", version = "1.0.0")]
impl Hello {
/// Say hello to someone.
#[tool(description = "Say hello to someone")]
async fn hello(&self, name: String) -> McpResult<String> {
Ok(format!("Hello, {name}!"))
}
}
#[tokio::main]
async fn main() -> Result<(), turbomcp::ProtocolError> {
// Logs MUST go to stderr — stdout carries the MCP protocol framing.
Hello.run_stdio().await
}
See the turbomcp crate README for the full API tour (tools/resources/prompts, structured output, HTTP, feature flags) and the examples/.
Workspace layout
The SDK is a Cargo workspace; the turbomcp facade re-exports the pieces most
users need, so a typical dependency is just turbomcp.
| Crate | Role |
|---|---|
turbomcp |
Main SDK facade — re-exports, prelude, examples |
turbomcp-macros |
#[server] / #[tool] / #[resource] / #[prompt] |
turbomcp-core |
no_std foundation: McpError, ProtocolVersion, JSON-RPC, _meta |
turbomcp-codec |
Wire codec: bytes ↔ JsonRpcMessage (serde_json baseline, opt-in SIMD via sonic-rs) |
turbomcp-protocol |
MCP protocol: neutral types, date-versioned wire shapes, version dispatch |
turbomcp-service |
The tower-shaped protocol seam, transport trait, shared RPC middleware |
turbomcp-server |
Handler registry, dispatcher, ServerBuilder, graceful shutdown |
turbomcp-client |
Typed client: handshake, version negotiation, neutral API |
turbomcp-transport-stdio / -http / -ws |
Transport implementations |
turbomcp-auth |
OAuth 2.1 resource-server auth (bearer validation, RFC 9728) |
turbomcp-telemetry |
OpenTelemetry tracing (W3C _meta propagation, PII-safe spans) |
turbomcp-ext-tasks |
Draft Tasks extension (io.modelcontextprotocol/tasks, SEP-2663) |
Verification
Compliance is tested, not asserted:
- Official conformance suite, both halves — the
@modelcontextprotocol/conformanceharness runs in both directions on both scored revisions. As the server, it drives a full-featured TurboMCP server over Streamable HTTP: 236 checks, 231 pass, 0 fail, 5 informational. As the client, it stands up a deliberately awkward mock server per scenario and referees what our client did on the wire: 488 distinct successful scenario/check pairs, 0 failures, including the OAuth scenarios through the publicOAuthSessioncoordinator. The client gate uses hash-pinned fixture corrections and reports zero failures, skips, or warnings. The unmodified upstream mode remains available with its original fixture limitations. Neither side has failure waivers (crates/turbomcp-conformance). - Cross-SDK interop — a TurboMCP client drives an official-Rust-SDK
(rmcp 3.2) server and vice-versa, in-process, on
2025-11-25and the stateless2026-07-28(crates/turbomcp-interop). - Workspace regression tests (also run against the
no_stdfoundation configs) — dual-version dispatch, transport hardening (Origin/auth/size caps/idle reaping), handler-panic containment, MRTR elicitation, tasks (including in-execution input), subscriptions, pagination, response caching, auth negative paths, client failure semantics against misbehaving servers, and byte-level codec interchangeability (serde_json ↔ sonic-rs). - Fuzzing + supply chain — cargo-fuzz targets for every untrusted-input
decoder (JSON-RPC codec,
Mcp-Paramheader sentinel, URI templates, and a sonic-vs-serde differential), run out of band viajust fuzz;cargo-deny(advisories/bans/licenses/sources) runs in CI on every push. - wasm-portable foundation —
turbomcp-core/-codec/-protocolbuildno_stdforwasm32-unknown-unknownon every gate run.
Migrating from v3
The macro surface is intentionally source-compatible for the common case; see crates/turbomcp/MIGRATION.md for the v3 → v4 deltas.
License
MIT
Установка Turbomcp Wasm Macros
У этого сервера нет опубликованного пакета — он собирается из исходников. Открой репозиторий и следуй инструкции в README.
▸ github.com/Epistates/turbomcpFAQ
Turbomcp Wasm Macros MCP бесплатный?
Да, Turbomcp Wasm Macros MCP бесплатный — установка в пару кликов через Unyly без оплаты.
Нужен ли API-ключ для Turbomcp Wasm Macros?
Нет, Turbomcp Wasm Macros работает без API-ключей и переменных окружения.
Turbomcp Wasm Macros — hosted или self-hosted?
Self-hosted: сервер запускается локально на твоей машине командой из раздела установки.
Как установить Turbomcp Wasm Macros в Claude Desktop, Claude Code или Cursor?
Открой Turbomcp Wasm Macros на unyly.org, выбери вкладку своего клиента (Claude Desktop, Claude Code, Cursor) и нажми Install — конфиг сгенерируется автоматически, без правки JSON.
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