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SKILL unreviewed Apache-2.0 Self-run

Autonomous Loops

skill-x-cmd-skill-autonomous-loops · by x-cmd

Patterns and architectures for autonomous Claude Code loops — from simple sequential pipelines to RFC-driven multi-agent DAG systems.

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Install

$ agentstack add skill-x-cmd-skill-autonomous-loops

Open-source listing, not yet scanned by AgentStack. Follow the source repository for install instructions.

Security review

⚠ Flagged

1 finding(s); flagged for manual review. · v0.1.0 How review works →

  • Prompt-injection patterns
  • Secret / credential exfiltration
  • Dangerous shell & filesystem operations
  • Untrusted network calls
  • Known-malicious package signatures
  • high Pipes remote content directly into a shell (remote code execution).

What it can access

  • Network access Used
  • Filesystem access No
  • Shell / process execution No
  • Environment & secrets No
  • Dynamic code execution No

From automated source analysis of v0.1.0. “Used” means the capability is present in the source — more access means more to trust, not that it’s unsafe.

View the full security report →

Reliability & compatibility

Not yet reviewed
0 installs to date
no reviews yet
2mo ago

Declared compatibility

Claude CodeClaude Desktop

Compatibility is declared by the source manifest. End-to-end runtime verification is coming, see below.

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About

Autonomous Loops Skill

Patterns, architectures, and reference implementations for running Claude Code autonomously in loops. Covers everything from simple claude -p pipelines to full RFC-driven multi-agent DAG orchestration.

When to Use

  • Setting up autonomous development workflows that run without human intervention
  • Choosing the right loop architecture for your problem (simple vs complex)
  • Building CI/CD-style continuous development pipelines
  • Running parallel agents with merge coordination
  • Implementing context persistence across loop iterations
  • Adding quality gates and cleanup passes to autonomous workflows

Loop Pattern Spectrum

From simplest to most sophisticated:

| Pattern | Complexity | Best For | |---------|-----------|----------| | [Sequential Pipeline](#1-sequential-pipeline-claude--p) | Low | Daily dev steps, scripted workflows | | [NanoClaw REPL](#2-nanoclaw-repl) | Low | Interactive persistent sessions | | [Infinite Agentic Loop](#3-infinite-agentic-loop) | Medium | Parallel content generation, spec-driven work | | [Continuous Claude PR Loop](#4-continuous-claude-pr-loop) | Medium | Multi-day iterative projects with CI gates | | [De-Sloppify Pattern](#5-the-de-sloppify-pattern) | Add-on | Quality cleanup after any Implementer step | | [Ralphinho / RFC-Driven DAG](#6-ralphinho--rfc-driven-dag-orchestration) | High | Large features, multi-unit parallel work with merge queue |


1. Sequential Pipeline (claude -p)

The simplest loop. Break daily development into a sequence of non-interactive claude -p calls. Each call is a focused step with a clear prompt.

Core Insight

> If you can't figure out a loop like this, it means you can't even drive the LLM to fix your code in interactive mode.

The claude -p flag runs Claude Code non-interactively with a prompt, exits when done. Chain calls to build a pipeline:

#!/bin/bash
# daily-dev.sh — Sequential pipeline for a feature branch

set -e

# Step 1: Implement the feature
claude -p "Read the spec in docs/auth-spec.md. Implement OAuth2 login in src/auth/. Write tests first (TDD). Do NOT create any new documentation files."

# Step 2: De-sloppify (cleanup pass)
claude -p "Review all files changed by the previous commit. Remove any unnecessary type tests, overly defensive checks, or testing of language features (e.g., testing that TypeScript generics work). Keep real business logic tests. Run the test suite after cleanup."

# Step 3: Verify
claude -p "Run the full build, lint, type check, and test suite. Fix any failures. Do not add new features."

# Step 4: Commit
claude -p "Create a conventional commit for all staged changes. Use 'feat: add OAuth2 login flow' as the message."

Key Design Principles

  1. Each step is isolated — A fresh context window per claude -p call means no context bleed between steps.
  2. Order matters — Steps execute sequentially. Each builds on the filesystem state left by the previous.
  3. Negative instructions are dangerous — Don't say "don't test type systems." Instead, add a separate cleanup step (see [De-Sloppify Pattern](#5-the-de-sloppify-pattern)).
  4. Exit codes propagateset -e stops the pipeline on failure.

Variations

With model routing:

# Research with Opus (deep reasoning)
claude -p --model opus "Analyze the codebase architecture and write a plan for adding caching..."

# Implement with Sonnet (fast, capable)
claude -p "Implement the caching layer according to the plan in docs/caching-plan.md..."

# Review with Opus (thorough)
claude -p --model opus "Review all changes for security issues, race conditions, and edge cases..."

With environment context:

# Pass context via files, not prompt length
echo "Focus areas: auth module, API rate limiting" > .claude-context.md
claude -p "Read .claude-context.md for priorities. Work through them in order."
rm .claude-context.md

With --allowedTools restrictions:

# Read-only analysis pass
claude -p --allowedTools "Read,Grep,Glob" "Audit this codebase for security vulnerabilities..."

# Write-only implementation pass
claude -p --allowedTools "Read,Write,Edit,Bash" "Implement the fixes from security-audit.md..."

2. NanoClaw REPL

ECC's built-in persistent loop. A session-aware REPL that calls claude -p synchronously with full conversation history.

# Start the default session
node scripts/claw.js

# Named session with skill context
CLAW_SESSION=my-project CLAW_SKILLS=tdd-workflow,security-review node scripts/claw.js

How It Works

  1. Loads conversation history from ~/.claude/claw/{session}.md
  2. Each user message is sent to claude -p with full history as context
  3. Responses are appended to the session file (Markdown-as-database)
  4. Sessions persist across restarts

When NanoClaw vs Sequential Pipeline

| Use Case | NanoClaw | Sequential Pipeline | |----------|----------|-------------------| | Interactive exploration | Yes | No | | Scripted automation | No | Yes | | Session persistence | Built-in | Manual | | Context accumulation | Grows per turn | Fresh each step | | CI/CD integration | Poor | Excellent |

See the /claw command documentation for full details.


3. Infinite Agentic Loop

A two-prompt system that orchestrates parallel sub-agents for specification-driven generation. Developed by disler (credit: @disler).

Architecture: Two-Prompt System

PROMPT 1 (Orchestrator)              PROMPT 2 (Sub-Agents)
┌─────────────────────┐             ┌──────────────────────┐
│ Parse spec file      │             │ Receive full context  │
│ Scan output dir      │  deploys   │ Read assigned number  │
│ Plan iteration       │────────────│ Follow spec exactly   │
│ Assign creative dirs │  N agents  │ Generate unique output │
│ Manage waves         │             │ Save to output dir    │
└─────────────────────┘             └──────────────────────┘

The Pattern

  1. Spec Analysis — Orchestrator reads a specification file (Markdown) defining what to generate
  2. Directory Recon — Scans existing output to find the highest iteration number
  3. Parallel Deployment — Launches N sub-agents, each with:
  • The full spec
  • A unique creative direction
  • A specific iteration number (no conflicts)
  • A snapshot of existing iterations (for uniqueness)
  1. Wave Management — For infinite mode, deploys waves of 3-5 agents until context is exhausted

Implementation via Claude Code Commands

Create .claude/commands/infinite.md:

Parse the following arguments from $ARGUMENTS:
1. spec_file — path to the specification markdown
2. output_dir — where iterations are saved
3. count — integer 1-N or "infinite"

PHASE 1: Read and deeply understand the specification.
PHASE 2: List output_dir, find highest iteration number. Start at N+1.
PHASE 3: Plan creative directions — each agent gets a DIFFERENT theme/approach.
PHASE 4: Deploy sub-agents in parallel (Task tool). Each receives:
  - Full spec text
  - Current directory snapshot
  - Their assigned iteration number
  - Their unique creative direction
PHASE 5 (infinite mode): Loop in waves of 3-5 until context is low.

Invoke:

/project:infinite specs/component-spec.md src/ 5
/project:infinite specs/component-spec.md src/ infinite

Batching Strategy

| Count | Strategy | |-------|----------| | 1-5 | All agents simultaneously | | 6-20 | Batches of 5 | | infinite | Waves of 3-5, progressive sophistication |

Key Insight: Uniqueness via Assignment

Don't rely on agents to self-differentiate. The orchestrator assigns each agent a specific creative direction and iteration number. This prevents duplicate concepts across parallel agents.


4. Continuous Claude PR Loop

A production-grade shell script that runs Claude Code in a continuous loop, creating PRs, waiting for CI, and merging automatically. Created by AnandChowdhary (credit: @AnandChowdhary).

Core Loop

┌─────────────────────────────────────────────────────┐
│  CONTINUOUS CLAUDE ITERATION                        │
│                                                     │
│  1. Create branch (continuous-claude/iteration-N)   │
│  2. Run claude -p with enhanced prompt              │
│  3. (Optional) Reviewer pass — separate claude -p   │
│  4. Commit changes (claude generates message)       │
│  5. Push + create PR (gh pr create)                 │
│  6. Wait for CI checks (poll gh pr checks)          │
│  7. CI failure? → Auto-fix pass (claude -p)         │
│  8. Merge PR (squash/merge/rebase)                  │
│  9. Return to main → repeat                         │
│                                                     │
│  Limit by: --max-runs N | --max-cost $X             │
│            --max-duration 2h | completion signal     │
└─────────────────────────────────────────────────────┘

Installation

curl -fsSL https://raw.githubusercontent.com/AnandChowdhary/continuous-claude/HEAD/install.sh | bash

Usage

# Basic: 10 iterations
continuous-claude --prompt "Add unit tests for all untested functions" --max-runs 10

# Cost-limited
continuous-claude --prompt "Fix all linter errors" --max-cost 5.00

# Time-boxed
continuous-claude --prompt "Improve test coverage" --max-duration 8h

# With code review pass
continuous-claude \
  --prompt "Add authentication feature" \
  --max-runs 10 \
  --review-prompt "Run npm test && npm run lint, fix any failures"

# Parallel via worktrees
continuous-claude --prompt "Add tests" --max-runs 5 --worktree tests-worker &
continuous-claude --prompt "Refactor code" --max-runs 5 --worktree refactor-worker &
wait

Cross-Iteration Context: SHAREDTASKNOTES.md

The critical innovation: a SHARED_TASK_NOTES.md file persists across iterations:

## Progress
- [x] Added tests for auth module (iteration 1)
- [x] Fixed edge case in token refresh (iteration 2)
- [ ] Still need: rate limiting tests, error boundary tests

## Next Steps
- Focus on rate limiting module next
- The mock setup in tests/helpers.ts can be reused

Claude reads this file at iteration start and updates it at iteration end. This bridges the context gap between independent claude -p invocations.

CI Failure Recovery

When PR checks fail, Continuous Claude automatically:

  1. Fetches the failed run ID via gh run list
  2. Spawns a new claude -p with CI fix context
  3. Claude inspects logs via gh run view, fixes code, commits, pushes
  4. Re-waits for checks (up to --ci-retry-max attempts)

Completion Signal

Claude can signal "I'm done" by outputting a magic phrase:

continuous-claude \
  --prompt "Fix all bugs in the issue tracker" \
  --completion-signal "CONTINUOUS_CLAUDE_PROJECT_COMPLETE" \
  --completion-threshold 3  # Stops after 3 consecutive signals

Three consecutive iterations signaling completion stops the loop, preventing wasted runs on finished work.

Key Configuration

| Flag | Purpose | |------|---------| | --max-runs N | Stop after N successful iterations | | --max-cost $X | Stop after spending $X | | --max-duration 2h | Stop after time elapsed | | --merge-strategy squash | squash, merge, or rebase | | --worktree | Parallel execution via git worktrees | | --disable-commits | Dry-run mode (no git operations) | | --review-prompt "..." | Add reviewer pass per iteration | | --ci-retry-max N | Auto-fix CI failures (default: 1) |


5. The De-Sloppify Pattern

An add-on pattern for any loop. Add a dedicated cleanup/refactor step after each Implementer step.

The Problem

When you ask an LLM to implement with TDD, it takes "write tests" too literally:

  • Tests that verify TypeScript's type system works (testing typeof x === 'string')
  • Overly defensive runtime checks for things the type system already guarantees
  • Tests for framework behavior rather than business logic
  • Excessive error handling that obscures the actual code

Why Not Negative Instructions?

Adding "don't test type systems" or "don't add unnecessary checks" to the Implementer prompt has downstream effects:

  • The model becomes hesitant about ALL testing
  • It skips legitimate edge case tests
  • Quality degrades unpredictably

The Solution: Separate Pass

Instead of constraining the Implementer, let it be thorough. Then add a focused cleanup agent:

# Step 1: Implement (let it be thorough)
claude -p "Implement the feature with full TDD. Be thorough with tests."

# Step 2: De-sloppify (separate context, focused cleanup)
claude -p "Review all changes in the working tree. Remove:
- Tests that verify language/framework behavior rather than business logic
- Redundant type checks that the type system already enforces
- Over-defensive error handling for impossible states
- Console.log statements
- Commented-out code

Keep all business logic tests. Run the test suite after cleanup to ensure nothing breaks."

In a Loop Context

for feature in "${features[@]}"; do
  # Implement
  claude -p "Implement $feature with TDD."

  # De-sloppify
  claude -p "Cleanup pass: review changes, remove test/code slop, run tests."

  # Verify
  claude -p "Run build + lint + tests. Fix any failures."

  # Commit
  claude -p "Commit with message: feat: add $feature"
done

Key Insight

> Rather than adding negative instructions which have downstream quality effects, add a separate de-sloppify pass. Two focused agents outperform one constrained agent.


6. Ralphinho / RFC-Driven DAG Orchestration

The most sophisticated pattern. An RFC-driven, multi-agent pipeline that decomposes a spec into a dependency DAG, runs each unit through a tiered quality pipeline, and lands them via an agent-driven merge queue. Created by enitrat (credit: @enitrat).

Architecture Overview

RFC/PRD Document
       │
       ▼
  DECOMPOSITION (AI)
  Break RFC into work units with dependency DAG
       │
       ▼
┌──────────────────────────────────────────────────────┐
│  RALPH LOOP (up to 3 passes)                         │
│                                                      │
│  For each DAG layer (sequential, by dependency):     │
│                                                      │
│  ┌── Quality Pipelines (parallel per unit) ───────┐  │
│  │  Each unit in its own worktree:                │  │
│  │  Research → Plan → Implement → Test → Review   │  │
│  │  (depth varies by complexity tier)             │  │
│  └────────────────────────────────────────────────┘  │
│                                                      │
│  ┌── Merge Queue ─────────────────────────────────┐  │
│  │  Rebase onto main → Run tests → Land or evict │  │
│  │  Evicted units re-enter with conflict context  │  │
│  └────────────────────────────────────────────────┘  │
│                                                      │
└──────────────────────────────────────────────────────┘

RFC Decomposition

AI reads the RFC and produces work units:

interface WorkUnit {
  id: string;              // kebab-case identifier
  name: string;            // Human-readable name
  rfcSections: string[];   // Which RFC sections this addresses
  description: string;     // Detailed description
  deps: string[];          // Dependencies (other unit IDs)
  acceptance: string[];    // Concrete acceptance criteria
  tier: "trivial" | "small" | "medium" | "large";
}

Decomposition Rules:

  • Prefer fewer, cohesive units (minimize merge risk)
  • Minimize cross-unit file overlap (avoid conflicts)
  • Keep tests WITH implementation (never separate "implement X" + "test X")
  • Dependencies only where real code dependency exists

The dependency DAG determines execution order:

Layer 0: [unit-a, unit-b]     ← no deps, run in parallel
Layer 1: [unit-c]             ← depends on unit-a
Layer 2: [unit-d, unit-e]     ← depend on unit-c

Complexity Tiers

Different tiers get d

Source & license

This open-source skill is cataloged on AgentStack and links to its original source — we do not rehost the code.

  • Author: x-cmd
  • Source: x-cmd/skill
  • License: Apache-2.0
  • Homepage: https://x-cmd.com

Install and usage instructions live in the source repository linked above.

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Versions

  • v0.1.0 Imported from the upstream source.