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Testing
Command

/analysis

Comprehensive analysis through distributed agent coordination.

From plugin
agentic-qe
436149 skills169 agents149 commands
Install
> /plugin marketplace add proffesor-for-testing/agentic-qe
> /plugin install agentic-qe-fleet@agentic-qe

How it fires

How this command gets triggered: by you, by Claude, or both.

  • Fires itselfClaude auto-loads it when your prompt matches the work.
  • You can call itInvoke it directly when you want it.
  • Slash command/analysis

Context preview

What this command does when you run it.

Comprehensive analysis through distributed agent coordination.

Command definition

analysis.md

Analysis Swarm Strategy

Purpose

Comprehensive analysis through distributed agent coordination.

Activation

Using MCP Tools

// Initialize analysis swarm
mcp__claude-flow__swarm_init({
  "topology": "mesh",
  "maxAgents": 6,
  "strategy": "adaptive"
})

// Orchestrate analysis task
mcp__claude-flow__task_orchestrate({
  "task": "analyze system performance",
  "strategy": "parallel",
  "priority": "medium"
})

Using CLI (Fallback)

`npx claude-flow swarm "analyze system performance" --strategy analysis`

Agent Roles

Agent Spawning with MCP

// Spawn analysis agents
mcp__claude-flow__agent_spawn({
  "type": "analyst",
  "name": "Data Collector",
  "capabilities": ["metrics", "logging", "monitoring"]
})

mcp__claude-flow__agent_spawn({
  "type": "analyst",
  "name": "Pattern Analyzer",
  "capabilities": ["pattern-recognition", "anomaly-detection"]
})

mcp__claude-flow__agent_spawn({
  "type": "documenter",
  "name": "Report Generator",
  "capabilities": ["reporting", "visualization"]
})

mcp__claude-flow__agent_spawn({
  "type": "coordinator",
  "name": "Insight Synthesizer",
  "capabilities": ["synthesis", "correlation"]
})

Coordination Modes

  • Mesh: For exploratory analysis
  • Pipeline: For sequential processing
  • Hierarchical: For complex systems

Analysis Operations

// Run performance analysis
mcp__claude-flow__performance_report({
  "format": "detailed",
  "timeframe": "24h"
})

// Identify bottlenecks
mcp__claude-flow__bottleneck_analyze({
  "component": "api",
  "metrics": ["response-time", "throughput"]
})

// Pattern recognition
mcp__claude-flow__pattern_recognize({
  "data": performanceData,
  "patterns": ["anomaly", "trend", "cycle"]
})

Status Monitoring

// Monitor analysis progress
mcp__claude-flow__task_status({
  "taskId": "analysis-task-001"
})

// Get analysis results
mcp__claude-flow__task_results({
  "taskId": "analysis-task-001"
})
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