ai4s-agent
Use when the user wants an end-to-end AI4S research pipeline — broad direction or specific topic in, full research package out (exploration + literature survey…
Use when the user wants a comprehensive literature survey on a specific research topic. Outputs a complete PDF survey (6–20 pages, 60+ real citations, 100+ recommended) with LaTeX source, topic-specific publication figures, and a classified literature table. Single-stage, no
$ npx -y skills add ai4s-research/ai4s-skills --skill literature-survey --agent claude-codeHow it fires
How this skill gets triggered: by you, by Claude, or both.
/literature-surveyContext preview
The summary Claude sees to decide when to auto-load this skill.
Use when the user wants a comprehensive literature survey on a specific research topic. Outputs a complete PDF survey (6–20 pages, 60+ real citations, 100+ recommended) with LaTeX source, topic-specific publication figures, and a classified literature table. Single-stage, no
name: literature-survey description: Use when the user wants a comprehensive literature survey on a specific research topic. Outputs a complete PDF survey (6–20 pages, 60+ real citations, 100+ recommended) with LaTeX source, topic-specific publication figures, and a classified literature table. Single-stage, no Python runtime.
End-to-end literature survey builder. **Single stage, full quality from the start.** The agent (Claude Code / Cursor / Aider / Codex / …) does the entire build using its own tools (WebFetch, WebSearch, Write, Bash). This SKILL is procedure + reference playbooks + LaTeX template — no Python runtime, no LLM SDK.
The substantive work is decomposed into reference playbooks under `references/`:
| Reference | Topic | |---|---| | `references/00-incremental-execution.md` | how to actually do this without losing work: batch sizes, persistence, resume — **read first** | | `references/01-bibliography-expansion.md` | grow `bibliography.bib` to 60+ real entries (100+ recommended) via WebFetch (no memory) | | `references/02-survey-figures.md` | taxonomy / timeline / coverage-matrix / area-map figures | | `references/03-survey-section-playbook.md` | per-section structure for survey-shaped papers | | `references/04-layout-discipline.md` | tables, figures, floats, cross-refs, author + disclosure footnote | | `references/05-quality-gate.md` | self-check before delivery |
**Read the relevant reference _before_ writing, not after.** The full pass does not fit in a single turn — `references/00-incremental-execution.md` is the only execution mode that completes.
Confirm with the user:
Always tell the user that human review by a domain expert is recommended before publication or production use.
TOPIC="<topic>"
SLUG=$(python3 -c "import re,hashlib,sys; t=sys.argv[1]; n=re.sub(r'[\\s_]+','-',re.sub(r'[^\\w\\s-]','',t.lower().strip())).strip('-')[:40].rstrip('-'); h=hashlib.sha1(t.encode()).hexdigest()[:8]; print(f'{n}-{h}')" "$TOPIC")
TS=$(date +%Y-%m-%d_%H%M%S)
RUN=output/literature-survey/$SLUG/$TS/survey_paper
mkdir -p "$RUN/sections" "$RUN/figures"
cp -r literature-survey/templates/survey/. "$RUN/"
ln -sfn "$TS" "output/literature-survey/$SLUG/latest"In commands below `$RUN` = `output/literature-survey/<slug>/latest/survey_paper`.
Open `references/00-incremental-execution.md` first. Then carry out the five tracks below across many turns, persisting state to `$RUN/` after every batch.
**Open:** `references/01-bibliography-expansion.md`.
**First (§0 of that reference): read the topic's temporal/scope intent and pick a search posture.** AI4S and similarly fast-moving fields default to at least 60% of references from the current calendar year and previous two years. If the topic names a year or says "latest/recent", use the stricter recency-led profile. Historical/theoretical surveys retain a timeline-spanning exception.
Then plan **12–20** query angles, weighted by the posture. For each angle: WebSearch → triage → WebFetch each kept candidate's abstract URL → extract canonical title/authors/year/venue/url → append a BibTeX entry to `$RUN/bibliography.bib`. **Every entry must originate from a URL fetched in this session.** Memory entries forbidden.
**Hard stop:** do not draft prose until the bibliography has ≥ 60 entries (100+ recommended) and passes `check_bibliography_freshness.py` for the recorded profile.
**Open:** `references/02-survey-figures.md`.
A survey is defined by how well it organises a field. Choose 6–10 topic-specific figures from the families that the evidence supports:
Never force a family to fill a slot. Save each figure into `$RUN/figures/` with reproducible source alongside.
**Open:** `references/03-survey-section-playbook.md`.
Survey sections differ in shape from research-paper sections. Order: introduction → background → methods (themed survey) → discussion → conclusion → related work → **abstract last**.
**Open:** `references/04-layout-discipline.md`.
Put each figure or table in the section whose prose first introduces or interprets it, immediately after that paragraph in the source. Use standard LaTeX floats with booktabs for tables and choose `[htbp]`, `[tbp]`, or `[p]` from the artifact's size and narrative role; do not force a common position or section. Use `~
Open-source agent skills for AI for Science: topic exploration, literature survey, experiments, paper writing, and integrity audit — driven by any coding agent.
Repo: ai4s-research/ai4s-skills
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