feat: Add experiments framework and novelty-driven agent loop

- Add complete experiments directory with pilot study infrastructure
  - 5 experimental conditions (direct, expert-only, attribute-only, full-pipeline, random-perspective)
  - Human assessment tool with React frontend and FastAPI backend
  - AUT flexibility analysis with jump signal detection
  - Result visualization and metrics computation

- Add novelty-driven agent loop module (experiments/novelty_loop/)
  - NoveltyDrivenTaskAgent with expert perspective perturbation
  - Three termination strategies: breakthrough, exhaust, coverage
  - Interactive CLI demo with colored output
  - Embedding-based novelty scoring

- Add DDC knowledge domain classification data (en/zh)
- Add CLAUDE.md project documentation
- Update research report with experiment findings

Co-Authored-By: Claude Opus 4.5 <noreply@anthropic.com>
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2026-01-20 10:16:21 +08:00
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@@ -162,7 +162,6 @@ Result: Novel ideas like "pressure-adaptive seating"
| **Curated** | 210 pre-selected high-quality occupations | Controlled |
| **DBpedia** | 2,164 occupations from database | Broad |
Note: use the domain list (嘗試加入杜威分類法兩層? Future work? )
---
@@ -470,3 +469,10 @@ Our Approach: Query → Attributes → (Attributes × Experts) → Ideas
- `research/experimental_protocol.md`
- `research/paper_outline.md`
- `research/references.md`
---
# Discussion
- Futurework: Domain, 杜威分類法