polyhedral-workflow-mesh

Coordinate multi-agent tasks across browser, terminal, repo, and automation surfaces.

6|1|Updated Jan 17, 2026
One-click install
npx skills add https://github.com/issdandavis/SCBE-AETHERMOORE --skill polyhedral-workflow-mesh
Or copy as Structured Prompt for Agent▼
Please help me install this Agent Skill.
Skill: polyhedral-workflow-mesh
Source: https://github.com/issdandavis/SCBE-AETHERMOORE/tree/main/external/codex-skills-live/polyhedral-workflow-mesh
Command: npx skills add https://github.com/issdandavis/SCBE-AETHERMOORE --skill polyhedral-workflow-mesh

SYSTEM DOCUMENTATION & REQUIREMENTS

💡 This Skill includes references (resource) components.

What problem does it solve?

Coordinating cross-agent tasks and maintaining state across browser, terminal, repo, and automation surfaces can be error-prone and asynchronous. This skill provides a structured mesh to align goals, handoffs, and proof-backed checkpoints.

Core Features & Use Cases

  • Unified governance mesh: maps tasks, faces, and relays across surfaces with a canonical ledger.
  • Reliable handoffs: edges, relays, triggers, and rendezvous buffers preserve intent and proof.
  • Cross-surface automation: supports browser, terminal, repository, and automation surfaces for multi-agent goals.

Quick Start

Initialize a polyhedral workflow mesh by defining involved faces and a first relay setup.

Frequently Asked Questions about polyhedral-workflow-mesh

High-intent search queries and answers about installing and using this skill.

FAQPage Schema
How do I coordinate multi-agent workflows across different automation surfaces?▼

Multi-agent workflow coordination uses a structured mesh to map tasks, faces, and relays across browser, terminal, repo, and automation surfaces via a canonical state ledger, ensuring aligned goals and reliable handoffs.

What is the best way to maintain state across browser and terminal automation tasks?▼

To maintain state across browser and terminal tasks, use a canonical state ledger combined with edge relays and rendezvous buffers that guarantee traceable progress and proof-backed handoffs between surfaces.

How do proof-backed handoffs work in a multi-agent coordination mesh?▼

Proof-backed handoffs work by using edges, relays, triggers, and rendezvous buffers within the mesh to preserve intent and verify checkpoint completion, guaranteeing traceable asynchronous progress across agents.

When do I need a polyhedral workflow mesh for multi-agent coordination?▼

You need a polyhedral workflow mesh when your automation goals span multiple faces, require cross-surface relays and checkpoints, and need proof-backed handoffs to guarantee traceable progress across asynchronous agents.

Can I use multi-agent coordination across browser, terminal, and repository surfaces without losing intent?▼

Yes, you can coordinate multi-agent tasks across browser, terminal, and repository surfaces without losing intent by applying edge relays, triggers, and rendezvous buffers that enforce a canonical state ledger.

What are the limitations of using a canonical state ledger for cross-surface automation?▼

A limitation of using a canonical state ledger for cross-surface automation is that it requires initializing involved faces and a relay setup, adding structural overhead to asynchronous multi-agent goals that span multiple surfaces.