mirror of
https://github.com/SuperClaude-Org/SuperClaude_Framework.git
synced 2025-12-19 10:46:17 +00:00
* refactor: PM Agent complete independence from external MCP servers ## Summary Implement graceful degradation to ensure PM Agent operates fully without any MCP server dependencies. MCP servers now serve as optional enhancements rather than required components. ## Changes ### Responsibility Separation (NEW) - **PM Agent**: Development workflow orchestration (PDCA cycle, task management) - **mindbase**: Memory management (long-term, freshness, error learning) - **Built-in memory**: Session-internal context (volatile) ### 3-Layer Memory Architecture with Fallbacks 1. **Built-in Memory** [OPTIONAL]: Session context via MCP memory server 2. **mindbase** [OPTIONAL]: Long-term semantic search via airis-mcp-gateway 3. **Local Files** [ALWAYS]: Core functionality in docs/memory/ ### Graceful Degradation Implementation - All MCP operations marked with [ALWAYS] or [OPTIONAL] - Explicit IF/ELSE fallback logic for every MCP call - Dual storage: Always write to local files + optionally to mindbase - Smart lookup: Semantic search (if available) → Text search (always works) ### Key Fallback Strategies **Session Start**: - mindbase available: search_conversations() for semantic context - mindbase unavailable: Grep docs/memory/*.jsonl for text-based lookup **Error Detection**: - mindbase available: Semantic search for similar past errors - mindbase unavailable: Grep docs/mistakes/ + solutions_learned.jsonl **Knowledge Capture**: - Always: echo >> docs/memory/patterns_learned.jsonl (persistent) - Optional: mindbase.store() for semantic search enhancement ## Benefits - ✅ Zero external dependencies (100% functionality without MCP) - ✅ Enhanced capabilities when MCPs available (semantic search, freshness) - ✅ No functionality loss, only reduced search intelligence - ✅ Transparent degradation (no error messages, automatic fallback) ## Related Research - Serena MCP investigation: Exposes tools (not resources), memory = markdown files - mindbase superiority: PostgreSQL + pgvector > Serena memory features - Best practices alignment: /Users/kazuki/github/airis-mcp-gateway/docs/mcp-best-practices.md 🤖 Generated with [Claude Code](https://claude.com/claude-code) Co-Authored-By: Claude <noreply@anthropic.com> * chore: add PR template and pre-commit config - Add structured PR template with Git workflow checklist - Add pre-commit hooks for secret detection and Conventional Commits - Enforce code quality gates (YAML/JSON/Markdown lint, shellcheck) NOTE: Execute pre-commit inside Docker container to avoid host pollution: docker compose exec workspace uv tool install pre-commit docker compose exec workspace pre-commit run --all-files 🤖 Generated with [Claude Code](https://claude.com/claude-code) Co-Authored-By: Claude <noreply@anthropic.com> * docs: update PM Agent context with token efficiency architecture - Add Layer 0 Bootstrap (150 tokens, 95% reduction) - Document Intent Classification System (5 complexity levels) - Add Progressive Loading strategy (5-layer) - Document mindbase integration incentive (38% savings) - Update with 2025-10-17 redesign details * refactor: PM Agent command with progressive loading - Replace auto-loading with User Request First philosophy - Add 5-layer progressive context loading - Implement intent classification system - Add workflow metrics collection (.jsonl) - Document graceful degradation strategy * fix: installer improvements Update installer logic for better reliability * docs: add comprehensive development documentation - Add architecture overview - Add PM Agent improvements analysis - Add parallel execution architecture - Add CLI install improvements - Add code style guide - Add project overview - Add install process analysis * docs: add research documentation Add LLM agent token efficiency research and analysis * docs: add suggested commands reference * docs: add session logs and testing documentation - Add session analysis logs - Add testing documentation * feat: migrate CLI to typer + rich for modern UX ## What Changed ### New CLI Architecture (typer + rich) - Created `superclaude/cli/` module with modern typer-based CLI - Replaced custom UI utilities with rich native features - Added type-safe command structure with automatic validation ### Commands Implemented - **install**: Interactive installation with rich UI (progress, panels) - **doctor**: System diagnostics with rich table output - **config**: API key management with format validation ### Technical Improvements - Dependencies: Added typer>=0.9.0, rich>=13.0.0, click>=8.0.0 - Entry Point: Updated pyproject.toml to use `superclaude.cli.app:cli_main` - Tests: Added comprehensive smoke tests (11 passed) ### User Experience Enhancements - Rich formatted help messages with panels and tables - Automatic input validation with retry loops - Clear error messages with actionable suggestions - Non-interactive mode support for CI/CD ## Testing ```bash uv run superclaude --help # ✓ Works uv run superclaude doctor # ✓ Rich table output uv run superclaude config show # ✓ API key management pytest tests/test_cli_smoke.py # ✓ 11 passed, 1 skipped ``` ## Migration Path - ✅ P0: Foundation complete (typer + rich + smoke tests) - 🔜 P1: Pydantic validation models (next sprint) - 🔜 P2: Enhanced error messages (next sprint) - 🔜 P3: API key retry loops (next sprint) ## Performance Impact - **Code Reduction**: Prepared for -300 lines (custom UI → rich) - **Type Safety**: Automatic validation from type hints - **Maintainability**: Framework primitives vs custom code 🤖 Generated with [Claude Code](https://claude.com/claude-code) Co-Authored-By: Claude <noreply@anthropic.com> * refactor: consolidate documentation directories Merged claudedocs/ into docs/research/ for consistent documentation structure. Changes: - Moved all claudedocs/*.md files to docs/research/ - Updated all path references in documentation (EN/KR) - Updated RULES.md and research.md command templates - Removed claudedocs/ directory - Removed ClaudeDocs/ from .gitignore Benefits: - Single source of truth for all research reports - PEP8-compliant lowercase directory naming - Clearer documentation organization - Prevents future claudedocs/ directory creation 🤖 Generated with [Claude Code](https://claude.com/claude-code) Co-Authored-By: Claude <noreply@anthropic.com> * perf: reduce /sc:pm command output from 1652 to 15 lines - Remove 1637 lines of documentation from command file - Keep only minimal bootstrap message - 99% token reduction on command execution - Detailed specs remain in superclaude/agents/pm-agent.md 🤖 Generated with [Claude Code](https://claude.com/claude-code) Co-Authored-By: Claude <noreply@anthropic.com> * perf: split PM Agent into execution workflows and guide - Reduce pm-agent.md from 735 to 429 lines (42% reduction) - Move philosophy/examples to docs/agents/pm-agent-guide.md - Execution workflows (PDCA, file ops) stay in pm-agent.md - Guide (examples, quality standards) read once when needed Token savings: - Agent loading: ~6K → ~3.5K tokens (42% reduction) - Total with pm.md: 71% overall reduction 🤖 Generated with [Claude Code](https://claude.com/claude-code) Co-Authored-By: Claude <noreply@anthropic.com> * refactor: consolidate PM Agent optimization and pending changes PM Agent optimization (already committed separately): - superclaude/commands/pm.md: 1652→14 lines - superclaude/agents/pm-agent.md: 735→429 lines - docs/agents/pm-agent-guide.md: new guide file Other pending changes: - setup: framework_docs, mcp, logger, remove ui.py - superclaude: __main__, cli/app, cli/commands/install - tests: test_ui updates - scripts: workflow metrics analysis tools - docs/memory: session state updates 🤖 Generated with [Claude Code](https://claude.com/claude-code) Co-Authored-By: Claude <noreply@anthropic.com> * refactor: simplify MCP installer to unified gateway with legacy mode ## Changes ### MCP Component (setup/components/mcp.py) - Simplified to single airis-mcp-gateway by default - Added legacy mode for individual official servers (sequential-thinking, context7, magic, playwright) - Dynamic prerequisites based on mode: - Default: uv + claude CLI only - Legacy: node (18+) + npm + claude CLI - Removed redundant server definitions ### CLI Integration - Added --legacy flag to setup/cli/commands/install.py - Added --legacy flag to superclaude/cli/commands/install.py - Config passes legacy_mode to component installer ## Benefits - ✅ Simpler: 1 gateway vs 9+ individual servers - ✅ Lighter: No Node.js/npm required (default mode) - ✅ Unified: All tools in one gateway (sequential-thinking, context7, magic, playwright, serena, morphllm, tavily, chrome-devtools, git, puppeteer) - ✅ Flexible: --legacy flag for official servers if needed ## Usage ```bash superclaude install # Default: airis-mcp-gateway (推奨) superclaude install --legacy # Legacy: individual official servers ``` 🤖 Generated with [Claude Code](https://claude.com/claude-code) Co-Authored-By: Claude <noreply@anthropic.com> * refactor: rename CoreComponent to FrameworkDocsComponent and add PM token tracking ## Changes ### Component Renaming (setup/components/) - Renamed CoreComponent → FrameworkDocsComponent for clarity - Updated all imports in __init__.py, agents.py, commands.py, mcp_docs.py, modes.py - Better reflects the actual purpose (framework documentation files) ### PM Agent Enhancement (superclaude/commands/pm.md) - Added token usage tracking instructions - PM Agent now reports: 1. Current token usage from system warnings 2. Percentage used (e.g., "27% used" for 54K/200K) 3. Status zone: 🟢 <75% | 🟡 75-85% | 🔴 >85% - Helps prevent token exhaustion during long sessions ### UI Utilities (setup/utils/ui.py) - Added new UI utility module for installer - Provides consistent user interface components ## Benefits - ✅ Clearer component naming (FrameworkDocs vs Core) - ✅ PM Agent token awareness for efficiency - ✅ Better visual feedback with status zones 🤖 Generated with [Claude Code](https://claude.com/claude-code) Co-Authored-By: Claude <noreply@anthropic.com> * refactor(pm-agent): minimize output verbosity (471→284 lines, 40% reduction) **Problem**: PM Agent generated excessive output with redundant explanations - "System Status Report" with decorative formatting - Repeated "Common Tasks" lists user already knows - Verbose session start/end protocols - Duplicate file operations documentation **Solution**: Compress without losing functionality - Session Start: Reduced to symbol-only status (🟢 branch | nM nD | token%) - Session End: Compressed to essential actions only - File Operations: Consolidated from 2 sections to 1 line reference - Self-Improvement: 5 phases → 1 unified workflow - Output Rules: Explicit constraints to prevent Claude over-explanation **Quality Preservation**: - ✅ All core functions retained (PDCA, memory, patterns, mistakes) - ✅ PARALLEL Read/Write preserved (performance critical) - ✅ Workflow unchanged (session lifecycle intact) - ✅ Added output constraints (prevents verbose generation) **Reduction Method**: - Deleted: Explanatory text, examples, redundant sections - Retained: Action definitions, file paths, core workflows - Added: Explicit output constraints to enforce minimalism **Token Impact**: 40% reduction in agent documentation size **Before**: Verbose multi-section report with task lists **After**: Single line status: 🟢 integration | 15M 17D | 36% 🤖 Generated with [Claude Code](https://claude.com/claude-code) Co-Authored-By: Claude <noreply@anthropic.com> * refactor: consolidate MCP integration to unified gateway **Changes**: - Remove individual MCP server docs (superclaude/mcp/*.md) - Remove MCP server configs (superclaude/mcp/configs/*.json) - Delete MCP docs component (setup/components/mcp_docs.py) - Simplify installer (setup/core/installer.py) - Update components for unified gateway approach **Rationale**: - Unified gateway (airis-mcp-gateway) provides all MCP servers - Individual docs/configs no longer needed (managed centrally) - Reduces maintenance burden and file count - Simplifies installation process **Files Removed**: 17 MCP files (docs + configs) **Installer Changes**: Removed legacy MCP installation logic 🤖 Generated with [Claude Code](https://claude.com/claude-code) Co-Authored-By: Claude <noreply@anthropic.com> * chore: update version and component metadata - Bump version (pyproject.toml, setup/__init__.py) - Update CLAUDE.md import service references - Reflect component structure changes 🤖 Generated with [Claude Code](https://claude.com/claude-code) Co-Authored-By: Claude <noreply@anthropic.com> --------- Co-authored-by: kazuki <kazuki@kazukinoMacBook-Air.local> Co-authored-by: Claude <noreply@anthropic.com>
303 lines
6.9 KiB
Markdown
303 lines
6.9 KiB
Markdown
# Next Actions
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**Updated**: 2025-10-17
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**Priority**: Testing & Validation → Metrics Collection
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---
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## 🎯 Immediate Actions (今週)
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### 1. pytest環境セットアップ (High Priority)
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**Purpose**: テストスイート実行環境を構築
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**Dependencies**: なし
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**Owner**: PM Agent + DevOps
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**Steps**:
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```bash
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# Option 1: Docker環境でセットアップ (推奨)
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docker compose exec workspace sh
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pip install pytest pytest-cov scipy
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# Option 2: 仮想環境でセットアップ
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python -m venv .venv
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source .venv/bin/activate
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pip install pytest pytest-cov scipy
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```
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**Success Criteria**:
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- ✅ pytest実行可能
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- ✅ scipy (t-test) 動作確認
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- ✅ pytest-cov (カバレッジ) 動作確認
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**Estimated Time**: 30分
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---
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### 2. テスト実行 & 検証 (High Priority)
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**Purpose**: 品質保証層の実動作確認
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**Dependencies**: pytest環境セットアップ完了
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**Owner**: Quality Engineer + PM Agent
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**Commands**:
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```bash
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# 全テスト実行
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pytest tests/pm_agent/ -v
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# マーカー別実行
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pytest tests/pm_agent/ -m unit # Unit tests
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pytest tests/pm_agent/ -m integration # Integration tests
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pytest tests/pm_agent/ -m hallucination # Hallucination detection
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pytest tests/pm_agent/ -m performance # Performance tests
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# カバレッジレポート
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pytest tests/pm_agent/ --cov=. --cov-report=html
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```
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**Expected Results**:
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```yaml
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Hallucination Detection: ≥94%
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Token Budget Compliance: 100%
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Confidence Accuracy: >85%
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Error Recurrence: <10%
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All Tests: PASS
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```
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**Estimated Time**: 1時間
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---
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## 🚀 Short-term Actions (次スプリント)
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### 3. メトリクス収集の実運用開始 (Week 2-3)
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**Purpose**: 実際のワークフローでデータ蓄積
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**Steps**:
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1. **初回データ収集**:
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- 通常タスク実行時に自動記録
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- 1週間分のデータ蓄積 (目標: 20-30タスク)
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2. **初回週次分析**:
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```bash
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python scripts/analyze_workflow_metrics.py --period week
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```
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3. **結果レビュー**:
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- タスクタイプ別トークン使用量
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- 成功率確認
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- 非効率パターン特定
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**Success Criteria**:
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- ✅ 20+タスクのメトリクス記録
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- ✅ 週次レポート生成成功
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- ✅ トークン削減率が期待値内 (60%平均)
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**Estimated Time**: 1週間 (自動記録)
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---
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### 4. A/B Testing Framework起動 (Week 3-4)
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**Purpose**: 実験的ワークフローの検証
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**Steps**:
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1. **Experimental Variant設計**:
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- 候補: `experimental_eager_layer3` (Medium tasksで常にLayer 3)
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- 仮説: より多くのコンテキストで精度向上
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2. **80/20配分実装**:
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```yaml
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Allocation:
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progressive_v3_layer2: 80% # Current best
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experimental_eager_layer3: 20% # New variant
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```
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3. **20試行後の統計分析**:
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```bash
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python scripts/ab_test_workflows.py \
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--variant-a progressive_v3_layer2 \
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--variant-b experimental_eager_layer3 \
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--metric tokens_used
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```
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4. **判定**:
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- p < 0.05 → 統計的有意
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- 成功率 ≥95% → 品質維持
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- → 勝者を標準ワークフローに昇格
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**Success Criteria**:
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- ✅ 各variant 20+試行
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- ✅ 統計的有意性確認 (p < 0.05)
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- ✅ 改善確認 OR 現状維持判定
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**Estimated Time**: 2週間
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---
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## 🔮 Long-term Actions (Future Sprints)
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### 5. Advanced Features (Month 2-3)
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**Multi-agent Confidence Aggregation**:
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- 複数sub-agentの確信度を統合
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- 投票メカニズム (majority vote)
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- Weight付き平均 (expertise-based)
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**Predictive Error Detection**:
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- 過去エラーパターン学習
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- 類似コンテキスト検出
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- 事前警告システム
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**Adaptive Budget Allocation**:
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- タスク特性に応じた動的予算
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- ML-based prediction (過去データから学習)
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- Real-time adjustment
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**Cross-session Learning Patterns**:
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- セッション跨ぎパターン認識
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- Long-term trend analysis
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- Seasonal patterns detection
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---
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### 6. Integration Enhancements (Month 3-4)
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**mindbase Vector Search Optimization**:
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- Semantic similarity threshold tuning
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- Query embedding optimization
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- Cache hit rate improvement
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**Reflexion Pattern Refinement**:
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- Error categorization improvement
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- Solution reusability scoring
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- Automatic pattern extraction
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**Evidence Requirement Automation**:
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- Auto-evidence collection
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- Automated test execution
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- Result parsing and validation
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**Continuous Learning Loop**:
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- Auto-pattern formalization
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- Self-improving workflows
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- Knowledge base evolution
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---
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## 📊 Success Metrics
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### Phase 1: Testing (今週)
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```yaml
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Goal: 品質保証層確立
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Metrics:
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- All tests pass: 100%
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- Hallucination detection: ≥94%
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- Token efficiency: 60% avg
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- Error recurrence: <10%
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```
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### Phase 2: Metrics Collection (Week 2-3)
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```yaml
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Goal: データ蓄積開始
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Metrics:
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- Tasks recorded: ≥20
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- Data quality: Clean (no null errors)
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- Weekly report: Generated
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- Insights: ≥3 actionable findings
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```
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### Phase 3: A/B Testing (Week 3-4)
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```yaml
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Goal: 科学的ワークフロー改善
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Metrics:
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- Trials per variant: ≥20
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- Statistical significance: p < 0.05
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- Winner identified: Yes
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- Implementation: Promoted or deprecated
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```
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---
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## 🛠️ Tools & Scripts Ready
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**Testing**:
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- ✅ `tests/pm_agent/` (2,760行)
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- ✅ `pytest.ini` (configuration)
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- ✅ `conftest.py` (fixtures)
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**Metrics**:
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- ✅ `docs/memory/workflow_metrics.jsonl` (initialized)
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- ✅ `docs/memory/WORKFLOW_METRICS_SCHEMA.md` (spec)
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**Analysis**:
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- ✅ `scripts/analyze_workflow_metrics.py` (週次分析)
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- ✅ `scripts/ab_test_workflows.py` (A/Bテスト)
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---
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## 📅 Timeline
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```yaml
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Week 1 (Oct 17-23):
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- Day 1-2: pytest環境セットアップ
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- Day 3-4: テスト実行 & 検証
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- Day 5-7: 問題修正 (if any)
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Week 2-3 (Oct 24 - Nov 6):
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- Continuous: メトリクス自動記録
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- Week end: 初回週次分析
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Week 3-4 (Nov 7 - Nov 20):
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- Start: Experimental variant起動
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- Continuous: 80/20 A/B testing
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- End: 統計分析 & 判定
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Month 2-3 (Dec - Jan):
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- Advanced features implementation
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- Integration enhancements
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```
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---
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## ⚠️ Blockers & Risks
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**Technical Blockers**:
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- pytest未インストール → Docker環境で解決
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- scipy依存 → pip install scipy
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- なし(その他)
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**Risks**:
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- テスト失敗 → 境界条件調整が必要
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- メトリクス収集不足 → より多くのタスク実行
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- A/B testing判定困難 → サンプルサイズ増加
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**Mitigation**:
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- ✅ テスト設計時に境界条件考慮済み
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- ✅ メトリクススキーマは柔軟
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- ✅ A/Bテストは統計的有意性で自動判定
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---
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## 🤝 Dependencies
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**External Dependencies**:
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- Python packages: pytest, scipy, pytest-cov
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- Docker環境: (Optional but recommended)
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**Internal Dependencies**:
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- pm.md specification (Line 870-1016)
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- Workflow metrics schema
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- Analysis scripts
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**None blocking**: すべて準備完了 ✅
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---
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**Next Session Priority**: pytest環境セットアップ → テスト実行
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**Status**: Ready to proceed ✅
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