botAGI

agmind-mcp

Community botAGI
Updated

MCP server for measured local-LLM benchmarks from the AGmind claim registry — AMD Strix Halo (Ryzen AI Max+ 395) llama.cpp numbers today, NVIDIA DGX Spark on the bench. search_claims, get_claim, list_measured. Read-only, CC BY 4.0 data.

agmind-mcp

MCP server for measured local-LLM benchmarks. It exposes the AGmind Systems Lab claim registry, currently 40 published claims measured on AMD Strix Halo hardware (Ryzen AI Max+ 395, Radeon 8060S, 128 GB unified memory) running llama.cpp on Vulkan and ROCm backends, as three read-only Model Context Protocol tools. Two NVIDIA DGX Spark (GB10) nodes are on the same lab bench; their claims enter the registry as runs are published. The lab has separately published vLLM work on DGX Spark; registry claims for it follow the same pipeline.

Every claim is a specific measured number: time to first token, inter-token latency, task success rate, answerless-response rate, long-context needle success, endurance drift. Each carries the exact hardware, runtime build, model revision and quantization, a frozen workload scope, stated limitations, an evidence level, links to the raw run records, and a ready-made citation string. Values are re-derived from raw runs on every CI build of the registry, so the numbers a model quotes through this server match the published evidence.

Quickstart

Requires Node.js 18 or newer. No install step is needed; npx fetches the server from GitHub.

Claude Code

claude mcp add agmind -- npx -y github:botAGI/agmind-mcp

Claude Desktop (claude_desktop_config.json) and other MCP clients that take the standard config shape:

{
  "mcpServers": {
    "agmind": {
      "command": "npx",
      "args": ["-y", "github:botAGI/agmind-mcp"]
    }
  }
}

From a local clone:

npm install
node server.mjs        # speaks MCP over stdio
npm test               # spawns the server and drives a real MCP session

Tools

All three tools are read-only. Results are JSON in a text content block, and every claim in every result carries its cite string and permalink so agents can attribute what they quote.

search_claims

Keyword search over headline, metric, system, model, runtime, scope, and id. Case-insensitive; every whitespace-separated term must match.

search_claims({ "query": "ttft 32k" })

Returns {id, headline, value, unit, evidence_level, permalink, cite} per match. Useful queries: decode, answerless, ttft cache, rocm, task-success, endurance.

get_claim

One claim in full by id: the complete answer paragraph, measured value and unit, workload scope, aggregation, limitations, evidence level, raw run ids with GitHub links, the derivation SQL, permalink, and citation string.

get_claim({ "id": "strix.qwen36.docsession.c1.ttft-q2-32k-cache" })

An unknown id returns an error listing the closest matching ids.

list_measured

The distinct system × model × runtime combinations that have published claims, with claim counts and example ids. Call this first to see what has actually been measured.

list_measured({})

Data, license, attribution

Behavior notes

  • Read-only. The server never writes anything anywhere.
  • No telemetry, no analytics, no accounts. The only network call is fetching the registry from agmind.ai.
  • The registry is fetched at startup and cached in memory for one hour; a failed refetch falls back to the cached copy. Set AGMIND_CLAIMS_URL to point at a mirror of the registry if needed.

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