learn — for Claude Code Claude-Setup---Wyss-Members, community, for Claude Code, ide skills, Extraction, Extract, non-obvious, discoveries, reusable, persist

v1.0.0

Über diesen Skill

Geeigneter Einsatz: Ideal for AI agents that need /learn — skill extraction workflow. Lokalisierte Zusammenfassung: A copy and paste setup for Claude Code # /learn — Skill Extraction Workflow Extract non-obvious discoveries into reusable skills that persist across sessions.

Funktionen

/learn — Skill Extraction Workflow
Extract non-obvious discoveries into reusable skills that persist across sessions.
When to Use This Skill
Invoke /learn when you encounter:
Non-obvious debugging — Investigation that took significant effort, not in docs

# Kernthemen

AndreaMentasti AndreaMentasti
[1]
[0]
Aktualisiert: 4/9/2026

Skill Overview

Start with fit, limitations, and setup before diving into the repository.

Geeigneter Einsatz: Ideal for AI agents that need /learn — skill extraction workflow. Lokalisierte Zusammenfassung: A copy and paste setup for Claude Code # /learn — Skill Extraction Workflow Extract non-obvious discoveries into reusable skills that persist across sessions.

Warum diese Fähigkeit verwenden

Empfehlung: learn helps agents /learn — skill extraction workflow. A copy and paste setup for Claude Code # /learn — Skill Extraction Workflow Extract non-obvious discoveries into reusable skills that persist across

Am besten geeignet für

Geeigneter Einsatz: Ideal for AI agents that need /learn — skill extraction workflow.

Handlungsfähige Anwendungsfälle for learn

Anwendungsfall: Applying /learn — Skill Extraction Workflow
Anwendungsfall: Applying Extract non-obvious discoveries into reusable skills that persist across sessions
Anwendungsfall: Applying When to Use This Skill

! Sicherheit & Einschränkungen

  • Einschraenkung: Continue only if YES to at least one question.
  • Einschraenkung: Search for related skills to avoid duplication:
  • Einschraenkung: Requires repository-specific context from the skill documentation

About The Source

The section below comes from the upstream repository. Use it as supporting material alongside the fit, use-case, and installation summary on this page.

Labs-Demo

Browser Sandbox Environment

⚡️ Ready to unleash?

Experience this Agent in a zero-setup browser environment powered by WebContainers. No installation required.

Boot Container Sandbox

FAQ und Installationsschritte

These questions and steps mirror the structured data on this page for better search understanding.

? Häufige Fragen

Was ist learn?

Geeigneter Einsatz: Ideal for AI agents that need /learn — skill extraction workflow. Lokalisierte Zusammenfassung: A copy and paste setup for Claude Code # /learn — Skill Extraction Workflow Extract non-obvious discoveries into reusable skills that persist across sessions.

Wie installiere ich learn?

Führen Sie den Befehl aus: npx killer-skills add AndreaMentasti/Claude-Setup---Wyss-Members/learn. Er funktioniert mit Cursor, Windsurf, VS Code, Claude Code und mehr als 19 weiteren IDEs.

Wofür kann ich learn verwenden?

Wichtige Einsatzbereiche sind: Anwendungsfall: Applying /learn — Skill Extraction Workflow, Anwendungsfall: Applying Extract non-obvious discoveries into reusable skills that persist across sessions, Anwendungsfall: Applying When to Use This Skill.

Welche IDEs sind mit learn kompatibel?

Dieser Skill ist mit Cursor, Windsurf, VS Code, Trae, Claude Code, OpenClaw, Aider, Codex, OpenCode, Goose, Cline, Roo Code, Kiro, Augment Code, Continue, GitHub Copilot, Sourcegraph Cody, and Amazon Q Developer kompatibel. Nutzen Sie die Killer-Skills CLI für eine einheitliche Installation.

Gibt es Einschränkungen bei learn?

Einschraenkung: Continue only if YES to at least one question.. Einschraenkung: Search for related skills to avoid duplication:. Einschraenkung: Requires repository-specific context from the skill documentation.

So installieren Sie den Skill

  1. 1. Terminal öffnen

    Öffnen Sie Ihr Terminal oder die Kommandozeile im Projektverzeichnis.

  2. 2. Installationsbefehl ausführen

    Führen Sie aus: npx killer-skills add AndreaMentasti/Claude-Setup---Wyss-Members/learn. Die CLI erkennt Ihre IDE oder Ihren Agenten automatisch und richtet den Skill ein.

  3. 3. Skill verwenden

    Der Skill ist jetzt aktiv. Ihr KI-Agent kann learn sofort im aktuellen Projekt verwenden.

! Source Notes

This page is still useful for installation and source reference. Before using it, compare the fit, limitations, and upstream repository notes above.

Upstream Repository Material

The section below comes from the upstream repository. Use it as supporting material alongside the fit, use-case, and installation summary on this page.

Upstream Source

learn

A copy and paste setup for Claude Code # /learn — Skill Extraction Workflow Extract non-obvious discoveries into reusable skills that persist across sessions.

SKILL.md
Readonly
Upstream Repository Material
The section below comes from the upstream repository. Use it as supporting material alongside the fit, use-case, and installation summary on this page.
Upstream Source

/learn — Skill Extraction Workflow

Extract non-obvious discoveries into reusable skills that persist across sessions.

When to Use This Skill

Invoke /learn when you encounter:

  • Non-obvious debugging — Investigation that took significant effort, not in docs
  • Misleading errors — Error message was wrong, found the real cause
  • Workarounds — Found a limitation with a creative solution
  • Tool integration — Undocumented API usage or configuration
  • Trial-and-error — Multiple attempts before success
  • Repeatable workflows — Multi-step task you'd do again
  • User-facing automation — Reports, checks, or processes users will request

Workflow Phases

PHASE 1: Evaluate (Self-Assessment)

Before creating a skill, answer these questions:

  1. "What did I just learn that wasn't obvious before starting?"
  2. "Would future-me benefit from this being documented?"
  3. "Was the solution non-obvious from documentation alone?"
  4. "Is this a multi-step workflow I'd repeat?"

Continue only if YES to at least one question.

PHASE 2: Check Existing Skills

Search for related skills to avoid duplication:

bash
1# Check project skills 2ls .claude/skills/ 2>/dev/null 3 4# Search for keywords 5grep -r -i "KEYWORD" .claude/skills/ 2>/dev/null

Outcomes:

  • Nothing related → Create new skill (continue to Phase 3)
  • Same trigger & fix → Update existing skill (bump version)
  • Partial overlap → Update with new variant

PHASE 3: Create Skill

Create the skill file at .claude/skills/[skill-name]/SKILL.md:

yaml
1--- 2name: descriptive-kebab-case-name 3description: | 4 [CRITICAL: Include specific triggers in the description] 5 - What the skill does 6 - Specific trigger conditions (exact error messages, symptoms) 7 - When to use it (contexts, scenarios) 8author: Claude Code Academic Workflow 9version: 1.0.0 10argument-hint: "[expected arguments]" # Optional 11--- 12 13# Skill Name 14 15## Problem 16[Clear problem description — what situation triggers this skill] 17 18## Context / Trigger Conditions 19[When to use — exact error messages, symptoms, scenarios] 20[Be specific enough that you'd recognize it again] 21 22## Solution 23[Step-by-step solution] 24[Include commands, code snippets, or workflows] 25 26## Verification 27[How to verify it worked] 28[Expected output or state] 29 30## Example 31[Concrete example of the skill in action] 32 33## References 34[Documentation links, related files, or prior discussions]

PHASE 4: Quality Gates

Before finalizing, verify:

  • Description has specific trigger conditions (not vague)
  • Solution was verified to work (tested)
  • Content is specific enough to be actionable
  • Content is general enough to be reusable
  • No sensitive information (credentials, personal data)
  • Skill name is descriptive and uses kebab-case

Output

After creating the skill, report:

✓ Skill created: .claude/skills/[name]/SKILL.md
  Trigger: [when to use]
  Problem: [what it solves]

Example: Creating a Skill

User discovers that a specific R package silently drops observations:

markdown
1--- 2name: fixest-missing-covariate-handling 3description: | 4 Handle silent observation dropping in fixest when covariates have missing values. 5 Use when: estimates seem wrong, sample size unexpectedly small, or comparing 6 results between packages. 7author: Claude Code Academic Workflow 8version: 1.0.0 9--- 10 11# fixest Missing Covariate Handling 12 13## Problem 14The fixest package silently drops observations when covariates have NA values, 15which can produce unexpected results when comparing to other packages. 16 17## Context / Trigger Conditions 18- Sample size in fixest is smaller than expected 19- Results differ from Stata or other R packages 20- Model has covariates with potential missing values 21 22## Solution 231. Check for NA patterns before regression: 24 ```r 25 summary(complete.cases(data[, covariates]))
  1. Explicitly handle NA values or use na.action parameter
  2. Document the expected sample size in comments

Verification

Compare nobs(model) with nrow(data) — difference indicates dropped obs.

References

  • fixest documentation on missing values
  • [LEARN:r-code] entry in MEMORY.md

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