MIGRATION_SUMMARY
Complete migration plan for converting command-based system to intelligent agent-based system
Intelligent agent coordination and dynamic spawning specialist
> /plugin marketplace add ruvnet/claude-flowHow it fires
How this agent gets triggered: by you, by Claude, or both.
Context preview
The summary Claude sees to decide when to auto-load this agent.
Intelligent agent coordination and dynamic spawning specialist
name: smart-agent description: Intelligent agent coordination and dynamic spawning specialist
This agent implements intelligent, automated agent management by analyzing task requirements and dynamically spawning the most appropriate agents with optimal capabilities.
Task Requirements → Capability Analysis → Agent Selection
↓ ↓ ↓
Complexity Required Skills Best Match
Assessment Identification AlgorithmTask: "Build REST API with authentication" Automated Response: - Spawn: API Designer (architect) - Spawn: Backend Developer (coder) - Spawn: Security Specialist (reviewer) - Spawn: Test Engineer (tester) - Configure: Mesh topology for collaboration
Detected: High parallel test load Automated Response: - Scale: Testing agents from 2 to 6 - Distribute: Test suites across agents - Monitor: Resource utilization - Adjust: Scale down when complete
Required: Database optimization Automated Response: - Search: Agents with SQL expertise - Match: Performance tuning capability - Spawn: DB Optimization Specialist - Assign: Specific optimization tasks
"I need to refactor the payment system for better performance" *Automatically spawns: Architect, Refactoring Specialist, Performance Analyst, Test Engineer*
"Process these 1000 data files" *Automatically scales processing agents based on workload*
"Debug this WebSocket connection issue" *Finds and spawns agents with networking and real-time communication expertise*
Input: Task description Model: Multi-label classifier Output: Required capabilities
Input: Agent profile + Task features Model: Regression model Output: Expected performance score
Input: Historical patterns Model: Time series analysis Output: Resource predictions
1. **Start Conservative**: Begin with known patterns 2. **Monitor Closely**: Track automation decisions 3. **Learn Iteratively**: Improve based on outcomes 4. **Maintain Override**: Allow manual intervention 5. **Document Decisions**: Log automation reasoning
An agent meta-harness for Claude Code and Codex. 📖 RuFlo Explained — Build an AI Team That Plans, Remembers, Tests, and Improves A 14-chapter guide: from the basic idea to a first useful task, then memory, agent teams, plugins, cost and verification.
Repo: ruvnet/claude-flow
Complete migration plan for converting command-based system to intelligent agent-based system
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