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open-dynamic-workflows
Plan, orchestrate, and adversarially verify parallel AI coding agents with a dynamic multi-agent workflow engine.
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Plan, orchestrate, and adversarially verify parallel AI coding agents with a dynamic multi-agent workflow engine.
AI-powered presentation generation via the 2slides API — create slides from text, match a reference image style, summarize documents into decks, add AI voice narration, and export pages/audio. Use for any "make slides", "create a deck", or "slides from this document" request.
Diff a live page's accessibility violations against a baseline — by default compares uncommitted changes (stash-based), or pass --branch [<name>] to diff against a branch. Reports only new violations introduced, violations fixed, and pre-existing count. Use `scan` for a full audit with no diffing.
Use the Hugging Face Hub CLI (`hf`) to download, upload, and manage models, datasets, and Spaces.
Manage opencode permissions: review always-allow lists, suggest safe read-only commands, configure permission patterns
Generate AI images, videos, and music/audio from agents using the RunAPI CLI.
Generate and implement JSON-LD structured data for web apps, blogs, FAQs, and SaaS sites. Supports WebSite, SoftwareApplication, BlogPosting, FAQPage, HowTo, and more.
| name | open-dynamic-workflows |
| description | Plan, orchestrate, and adversarially verify parallel AI coding agents with a dynamic multi-agent workflow engine. |
| category | ai-agents |
| risk | critical |
| source | community |
| source_repo | Suraj1235/open-dynamic-workflows |
| source_type | community |
| date_added | 2026-06-06 |
| author | Suraj1235 |
| tags | ["multi-agent","orchestration","workflow","adversarial-verification","coding-agents"] |
| tools | ["claude","cursor","codex","gemini","antigravity"] |
| license | MIT |
| license_source | https://github.com/Suraj1235/open-dynamic-workflows/blob/main/LICENSE |
Open Dynamic Workflows (ODW) is an open-source dynamic multi-agent workflow engine for AI coding agents such as OpenCode, Codex, Antigravity, and VS Code. It lets you plan a task, orchestrate multiple agents working in parallel, and adversarially verify their output before it lands. ODW ships a Codex/Antigravity skill folder (SKILL.md plus a daemon bridge) and an OpenCode plugin, and it is bring-your-own-model (Anthropic, OpenAI-compatible, or Ollama). This skill is adapted from the community project at Suraj1235/open-dynamic-workflows.
ODW takes a high-level goal and produces a dynamic workflow graph of subtasks, identifying which can run in parallel and which have dependencies.
The engine dispatches subtasks to parallel agents through the OpenCode plugin or the Codex/Antigravity daemon bridge, using your configured model provider (Anthropic, OpenAI-compatible, or Ollama).
Completed work is routed through an adversarial verification pass that challenges the output before results are synthesized and returned.
ODW is installed from source (clone the repo, then npm install). The CLI is
odw-daemon — run it as npm run odw -- <args> from inside the repo, or as
npx odw-daemon <args> / a global odw-daemon if you link the bin.
# Configure your model provider (bring-your-own-model)
export ANTHROPIC_API_KEY=... # or an OpenAI-compatible / Ollama endpoint
# One-time setup: generate ~/.odw/config.json
npm run setup
# Start the local workflow daemon (once)
npm run odw -- start
# Plan, orchestrate, and verify a task across parallel agents
npm run odw -- run --prompt "refactor the auth module and add tests"
# ODW ships a SKILL.md + daemon bridge consumed by Codex / Antigravity.
# Start the daemon, then run a saved orchestration script through it:
npm run odw -- start
npm run odw -- run --script examples/workflows/studio-prime.workflow.js --cwd .
@multi-agent-orchestration - When coordinating multiple agents on one goal.@code-review - How adversarial verification complements human review.