skills/skills-codex/novelty-check/SKILL.md
Verify research idea novelty against recent literature. Use when user says "查新", "novelty check", "有没有人做过", "check novelty", or wants to verify a research idea is novel before implementing.
npx skillsauth add wanshuiyin/Auto-claude-code-research-in-sleep novelty-checkInstall this skill globally with one command. Works with Claude Code, Cursor, and Windsurf.
3 of 9 scanners reported clean
Some scanners were skipped, did not run, or reported a non-clean status. Review each row below.
Check whether a proposed method/idea has already been done in the literature: $ARGUMENTS
gpt-5.5 — Model used via a secondary Codex agent. Must be an OpenAI model (e.g., gpt-5.5, o3, gpt-4o)codex — Default: Codex xhigh reviewer. Use --reviewer: oracle-pro only when explicitly requested; if Oracle is unavailable, warn and fall back to Codex xhigh.Given a method description, systematically verify its novelty:
For EACH core claim, search using ALL available sources:
Web Search (via WebSearch):
Known paper databases: Check against:
Read abstracts: For each potentially overlapping paper, WebFetch its abstract and related work section
Call REVIEWER_MODEL via spawn_agent (spawn_agent) with xhigh reasoning:
reasoning_effort: xhigh
Prompt should include:
Output a structured report:
## Novelty Check Report
### Proposed Method
[1-2 sentence description]
### Core Claims
1. [Claim 1] — Novelty: HIGH/MEDIUM/LOW — Closest: [paper]
2. [Claim 2] — Novelty: HIGH/MEDIUM/LOW — Closest: [paper]
...
### Closest Prior Work
| Paper | Year | Venue | Overlap | Key Difference |
|-------|------|-------|---------|----------------|
### Overall Novelty Assessment
- Score: X/10
- Recommendation: PROCEED / PROCEED WITH CAUTION / ABANDON
- Key differentiator: [what makes this unique, if anything]
- Risk: [what a reviewer would cite as prior work]
### Suggested Positioning
[How to frame the contribution to maximize novelty perception]
After each spawn_agent or optional oracle-pro reviewer call, save the trace following ../shared-references/review-tracing.md. Write files directly to .aris/traces/novelty-check/<date>_run<NN>/ and record searched claims, closest papers, reviewer route, raw response, and final novelty decision. Respect the --- trace: parameter when present (default: full).
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Get a deep critical review of research from an external reviewer backend (Codex or manual). Use when user says "review my research", "help me review", "get external review", or wants critical feedback on research ideas, papers, or experimental results.
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