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Get Started Free →Grant and challenge proposal support for radiology and medical AI projects. Structures significance, innovation, approach, milestones, and consortium roles while keeping claims evidence-based and executable.
.claude/skills/aperivue-grant-builder/SKILL.md| Test case | Without → With | Effect | Δ tokens | Δ turns |
|---|---|---|---|---|
| case-04 | ✗→✓ | ▲ Improved | 13% | 0% |
| case-06 | ✗→✓ | ▲ Improved | 24% | 0% |
| case-07 | ✗→✓ | ▲ Improved | -1% | 0% |
| case-08 | ✗→✓ | ▲ Improved | 44% | 0% |
| case-10 | ✗→✓ | ▲ Improved | 25% | 0% |
This skill supports competitive proposal writing for:
It is optimized for projects where clinical relevance, multi-site coordination, and executable milestones matter as much as technical novelty.
When the user requests a Korean industry-academia grant (산학과제) or research plan (연구계획서), apply the adaptations below. Korean program terms are preserved in parentheses because they are the literal form used on the funding agency's template.
Most Korean grants follow a standardized three-attachment format:
investigator CVs, publication / patent record.
typically finalized after a kickoff meeting between the institutions.
1. Significance & Aims (약 2p)
- clinical problem with quantitative framing
- domestic + international trends (3–5 year literature / guideline window)
- differentiation of the proposed work
2. Research Content & Methods (약 4p)
- staged roadmap (Phase 1 – N with time ranges)
- pipeline schematic (mandatory when an AI pipeline is in scope)
- per-subproject institution and personnel assignment
3. Team Capability (약 1p)
- expertise + representative record (SCI papers, patents) per investigator
- cross-institution synergy (hospital = data / clinical; university = algorithm)
4. Expected Outcomes & Utilization (약 2p)
- quantitative targets: SCI papers, patents
- qualitative targets: clinical impact, standardization contribution
- linkage to follow-on larger grants (positioning as a seed)
5. Budget Plan (약 1p)
- RA salaries, computing equipment, consumables, academic activities, indirect costsmore than overdelivering on a modest one.
Depending on the request, produce one or more of:
SignificanceInnovationApproachExtract:
If no call text is available, infer a generic academic-medical AI proposal structure and label assumptions.
Define:
Gate: Present the problem framing (clinical pain point, gap, proposed solution) to the user. Confirm before building proposal sections — a misframed problem produces an unfundable proposal.
Always articulate:
Must answer:
Should focus on:
Should define:
Generate:
text## Proposal Summary Title: ... Goal: ... Clinical problem: ... ### Significance ... ### Innovation ... ### Approach Aim 1. ... Aim 2. ... Aim 3. ... ### Milestones - ... ### Consortium roles - ... ### Major risks and mitigations - ...
Before finalizing, check:
search-lit to support significance and prior-art positioningdesign-study if the evaluation framework is weakwrite-paper only when the proposal requires publication-style narrative sections/search-lit with confirmed DOI or PMID. Mark unverified references as [UNVERIFIED - NEEDS MANUAL CHECK].[VERIFY] and ask the user.| Case | Status | Duration (ms) | Turns | Tokens | Tool calls | ||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Without | With | Δ | Without | With | Δ | Without | With | Δ | Without | With | Δ | ||
case-01 | fail→fail | 26,855 | 40,958 | +53% | 1 | 1 | 0% | 4,695 | 7,276 | +55% | 0 | 0 | — |
case-02 | fail→fail | 36,935 | 26,330 | -29% | 1 | 1 | 0% | 6,217 | 5,885 | -5% | 0 | 0 | — |
case-03 | fail→fail | 23,203 | 64,638 | +179% | 1 | 1 | 0% | 3,722 | 7,632 | +105% | 0 | 0 | — |
case-04 | fail→pass | 12,558 | 4,771 | -62% | 1 | 1 | 0% | 2,101 | 2,378 | +13% | 0 | 0 | — |
case-05 | pass→pass | 15,387 | 14,359 | -7% | 1 | 1 | 0% | 2,461 | 3,733 | +52% | 0 | 0 | — |
case-06 | fail→pass | 18,217 | 12,036 | -34% | 1 | 1 | 0% | 2,808 | 3,469 | +24% | 0 | 0 | — |
case-07 | fail→pass | 17,206 | 7,861 | -54% | 1 | 1 | 0% | 2,846 | 2,829 | -1% | 0 | 0 | — |
case-08 | fail→pass | 12,594 | 9,674 | -23% | 1 | 1 | 0% | 2,000 | 2,874 | +44% | 0 | 0 | — |
case-09 | pass→pass | 12,681 | 8,043 | -37% | 1 | 1 | 0% | 1,869 | 2,769 | +48% | 0 | 0 | — |
case-10 | fail→pass | 12,029 | 4,083 | -66% | 1 | 1 | 0% | 1,753 | 2,190 | +25% | 0 | 0 | — |
case-11 | fail→pass | 9,340 | 4,183 | -55% | 1 | 1 | 0% | 1,333 | 2,175 | +63% | 0 | 0 | — |
case-12 | fail→pass | 11,797 | 4,080 | -65% | 1 | 1 | 0% | 1,889 | 2,183 | +16% | 0 | 0 | — |
case-13 | pass→pass | 6,521 | 8,393 | +29% | 1 | 1 | 0% | 894 | 2,639 | +195% | 0 | 0 | — |
case-14 | pass→pass | 16,424 | 7,740 | -53% | 1 | 1 | 0% | 2,892 | 2,879 | -0% | 0 | 0 | — |
case-15 | pass→pass | 9,930 | 9,921 | -0% | 1 | 1 | 0% | 1,410 | 3,042 | +116% | 0 | 0 | — |
case-16 | fail→fail | 7,470 | 5,772 | -23% | 1 | 1 | 0% | 1,116 | 2,426 | +117% | 0 | 0 | — |
case-17 | pass→pass | 13,529 | 9,283 | -31% | 1 | 1 | 0% | 2,006 | 2,894 | +44% | 0 | 0 | — |
case-18 | pass→pass | 14,796 | 8,713 | -41% | 1 | 1 | 0% | 2,277 | 2,763 | +21% | 0 | 0 | — |
case-19 | fail→fail | 9,967 | 6,148 | -38% | 1 | 1 | 0% | 1,520 | 2,538 | +67% | 0 | 0 | — |
case-20 | fail→pass | 13,929 | 11,059 | -21% | 1 | 1 | 0% | 2,345 | 3,002 | +28% | 0 | 0 | — |
case-21 | pass→pass | 3,444 | 3,923 | +14% | 1 | 1 | 0% | 456 | 2,094 | +359% | 0 | 0 | — |
case-22 | fail→fail | 6,143 | 10,240 | +67% | 1 | 1 | 0% | 930 | 3,001 | +223% | 0 | 0 | — |
DecimalAI ran this skill against gemini-3.6-flash twice over the same eval suite — once with the skill loaded and once without — and compared the two runs case by case. 22 cases were attempted. The headline lift of +36 percentage points is the difference between those two pass rates over the 22 comparable cases.
Without the skill loaded, the model failed this case. With it loaded, the same prompt on the same model passed. This is one improved case from the latest verified run; every case, including any that regressed, is in the table above.
Other measured skills in the registry, with their headline benchmark lift.