Tom Boucher 97730e59a1 fix(#1164): wire external-job config keys + document wave:post choice (#2006)
Refinements A-D to the external-job capability (PR #1998 follow-up):

A. Document why the contribution registers at execute:wave:post: #1164 asks
   for wave:pre, but execute-phase.md only dispatches wave:post today (wave:pre
   is declared in the loop host contract but not rendered). Wiring wave:pre is
   a core-loop change #1164 puts out of scope; the executor honors the
   runtime_budget classification guidance before running any tagged task.

B. external_job.artifact_dir is now consumed (was declared but unused): the
   adapter resolves it via the canonical capability-config seam and surfaces
   the resolved root in submit output.

C. external_job.submit_timeout_ms / poll_timeout_ms are now read from config
   (were shadowed by env-only reads). Precedence: env > config > registry
   default; non-numeric config values fall back (no guessing, no NaN).

D. CLI surface gains unit coverage: parseFlags, findPlanningDir,
   resolveExternalJobSettings, formatShowReport.

Regenerates capability-registry.cjs from the updated capability.json.
2026-07-05 14:04:00 -04:00

GSD Core

Git. Ship. Done.

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A light-weight meta-prompting, context engineering, and spec-driven development system for Claude Code, OpenCode, Antigravity CLI, Kimi CLI, Kilo, Codex, Copilot, Cursor, Windsurf, and more.

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What is GSD Core

GSD Core is a context-engineering and spec-driven development framework that drives AI coding agents (Claude Code, Codex, Antigravity CLI, Kimi CLI, Copilot, Cursor, and more) through a disciplined phase loop. It solves context rot — the quality degradation that accumulates as an AI fills its context window — by running all heavy research, planning, and execution work in fresh-context subagents while keeping your main session lean.


How it works

Each milestone repeats the same five-step loop, one phase at a time:

  1. Discuss — capture implementation decisions before anything is planned
  2. Plan — research, decompose, and verify the plan fits a fresh context window
  3. Execute — run plans in parallel waves; each executor starts with a clean 200k-token context
  4. Verify — walk through what was built; diagnose and fix before declaring done
  5. Ship — create the PR, archive the phase, repeat for the next one

Quickstart

npx @opengsd/gsd-core@latest

The installer prompts for your runtime (Claude Code, OpenCode, Antigravity CLI, Kimi CLI, Kilo, Codex, Copilot, Cursor, Windsurf, and more) and whether to install globally or locally. The installer is required for cross-runtime compatibility — do not copy files from agents/ or commands/ directly.

On another runtime or without Node.js? See Install on your runtime.

Once installed, start your first project:

/gsd-new-project

New here? Follow Your first project for a guided walkthrough from install to first shipped phase.


Documentation

Tutorials — learning by doing:

How-to guides — task-focused recipes:

Reference — authoritative facts:

Explanation — concepts and design decisions:

Full index: docs/README.md. Other languages: 日本語 · 한국어 · Português · 简体中文.


Why it works

Most AI-coding setups fail at scale because context bloat silently degrades output quality, there is no shared memory between sessions, and nothing verifies that code actually works. GSD Core solves all three: heavy work runs in fresh subagents, structured artifacts like STATE.md and CONTEXT.md survive session boundaries, and the verify step walks through what was built and generates fix plans before a phase is declared done. See docs/explanation/context-engineering.md for the full reasoning.

Troubleshooting? See docs/how-to/recover-and-troubleshoot.md.


Community

Project Platform
gsd-opencode Original OpenCode port
Discord Community support

Star History

Star History Chart

License

MIT License. See LICENSE for details.


Claude Code is powerful. GSD Core makes it reliable.

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