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Repositorio de GitHub

CausalPy

CausalPy contiene 11 skills recopiladas de pymc-labs, con cobertura ocupacional por repositorio y páginas de detalle dentro del sitio.

skills recopiladas
11
Stars
1.2k
actualizado
2026-07-22
Forks
112
Cobertura ocupacional
3 categorías ocupacionales · 100% clasificado
explorador de repositorios

Skills en este repositorio

review-pr
Analistas de garantía de calidad de software y probadores

Review CausalPy pull requests end-to-end by classifying PR type, checking branch freshness, mergeability, remote CI, correctness, security, tests, docs, and maintainer concerns. Use when asked to review a PR, assess a branch before merge, summarize PR risks, or request changes.

2026-07-22
pr-workflows
Desarrolladores de software

Turn issues into PRs, handle commits, and run prek checks consistently.

2026-07-22
github-issues
Desarrolladores de software

Create, evaluate, and triage GitHub issues for CausalPy. Use when filing a bug, proposing an enhancement, analyzing existing issues, or splitting large work into parent-child sub-issues.

2026-06-10
pr-to-green
Desarrolladores de software

Bring a pull request to green by syncing with main, resolving conflicts safely, and fixing failing checks with CausalPy conventions.

2026-06-10
choosing-causalpy-methods
Científicos de datos

Choose the appropriate CausalPy experiment class from a causal or impact question, data structure, treatment assignment, and identification assumptions. Use before writing analysis code when the method is not yet settled, including plain-English questions about whether a campaign, policy, or intervention worked.

2026-06-10
feature-exploration
Desarrolladores de software

Explore unfamiliar APIs, libraries, or implementation behavior with minimal reproducible examples and documented findings. Use when implementation details are unclear and can be resolved by reading docs, inspecting code, and running focused experiments.

2026-06-08
python-environment
Desarrolladores de software

Detect, configure, and use a conda-compatible tool. Use before tasks that need the project environment, such as importing project code, running tests, building docs, or invoking repo tooling.

2026-06-08
research-and-planning
Desarrolladores de software

Perform structured research and turn findings into an implementation plan.

2026-06-08
working-with-marimo
Desarrolladores de software

Interactive development in marimo notebooks with validation loops. Use for creating/editing marimo notebooks and verifying execution.

2026-06-08
causal-detective
Científicos de datos

Challenge causal claims through structured threat assessment, counterfactual reasoning, and CausalPy falsification checks. Use when validating whether a causal effect is real or when the user asks "is this effect real?" or "can I trust this result?"

2026-06-08
example-datasets
Científicos de datos

Load built-in CausalPy example datasets for demos, tutorials, tests, and quick causal-analysis prototypes. Use when the user needs sample data or asks which demo datasets are available.

2026-06-08