Pisama MCP Server

Pisama MCP Server

Enables analysis of AI agent traces to detect and fix failures using heuristic detectors, with no LLM calls required.

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README

Pisama

Find and fix failures in AI agent systems. No LLM calls required.

PyPI License: MIT Python 3.10+

Pisama ships 32 core heuristic detectors plus framework-specific detectors for n8n, LangGraph, Dify, and OpenClaw. They run locally with zero LLM cost on the heuristic tier. An archived run on the TRAIL benchmark reports 59.9% joint accuracy (span and category), compared with 11.9% for the best general-purpose LLM judge tested. The public confusion counts reproduce the reported macro-F1 and micro-F1. See the benchmark evidence and its reproducibility boundary.

Install

pip install pisama

Usage

from pisama import analyze

result = analyze("trace.json")  # also accepts dicts and JSON strings

for issue in result.issues:
    print(f"[{issue.type}] {issue.summary} (severity: {issue.severity})")
    print(f"  Fix: {issue.recommendation}")

CLI

pisama analyze trace.json          # Analyze a trace
pisama watch python my_agent.py    # Watch a live agent (pip install pisama[auto])
pisama replay <trace-id>           # Re-run detection on stored traces
pisama smoke-test --last 50        # Batch test recent traces
pisama detectors                   # List all 32 core detectors
pisama mcp-server                  # Start MCP server (pip install pisama[mcp])

MCP Server

Works in Cursor, Claude Desktop, and Windsurf. No API key is needed:

{
  "mcpServers": {
    "pisama": { "command": "pisama", "args": ["mcp-server"] }
  }
}

Detectors

32 core detectors plus framework-specific detectors for n8n, LangGraph, Dify, and OpenClaw. A representative selection:

Detector What It Catches
loop Infinite loops, retry storms, stuck patterns
coordination Deadlocked handoffs, message storms
hallucination Factual errors, fabricated tool results
injection Prompt injection, jailbreak attempts
corruption State corruption, type drift
persona_drift Persona drift, role confusion
derailment Task deviation, goal drift
context Context neglect, ignored instructions
specification Output vs. requirement mismatch
communication Inter-agent message breakdown
decomposition Poor task breakdown, circular dependencies
workflow Unreachable nodes, missing error handling
completion Premature completion, unfinished work
withholding Suppressed findings, hidden errors
convergence Metric plateau, regression, thrashing
overflow Context window exhaustion
delegation Delegation quality and task handoff failures
grounding Claims not supported by source documents
retrieval_quality Poor retrieval relevance or coverage
compaction_quality Information loss during context compaction

Benchmark Results

TRAIL (trace-level failure detection, 148 traces):

Method Joint Accuracy
GPT-5.4 11.9%
Gemini 3.1 Pro 6.8%
Pisama archived run 59.9%

Who&When (ICML 2025, multi-agent attribution, 58 hand-crafted cases):

Method Agent Accuracy Step Accuracy
GPT-5.4 Mini 60.3% 22.4%
Pisama + Sonnet 4 60.3% 24.1%

Links

License

MIT

Source boundary

This repository is the public source for the MIT-licensed pisama Python package. It does not contain the Pisama Cloud backend, dashboard, calibration data, managed detection tiers, or paid automation.

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