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WSU-Carbon-Lab
GitHub クリエイタープロフィール

WSU-Carbon-Lab

4 件の GitHub リポジトリにある 26 件の収集済み skills をリポジトリ単位で表示します。

収集済み skills
26
リポジトリ
4
更新
2026-04-30
リポジトリエクスプローラー

リポジトリと代表的な skills

dataframes
データサイエンティスト

Pandas and Polars for tabular data: when to use which, indexing and dtypes, joins and reshaping, lazy Polars, I/O and Parquet, nulls, Arrow interop, and performance. Use for DataFrame/Series/LazyFrame code. Triggers on pandas, polars, DataFrame, LazyFrame, parquet, groupby, merge, join.

2026-04-08
general-python
ソフトウェア開発者

Python stack hub: uv/ruff/ty workflows, builtins and collections, functions and classes, dataclasses, typing boundaries, pytest and NumPy-style docs. Use for any Python task in repos that follow this stack; pairs with python-reviewer, python-types, and python-refactor. Related skills: numpy-scientific, dataframes, numpy-docstrings, matplotlib-scientific, lab-instrumentation. Triggers on Python, uv, ruff, ty, pytest, dataclass, typing.

2026-04-08
general
ソフトウェア開発者

Applies cross-language defaults for scientific/engineering work, documentation discipline, non-lazy execution, and effective use of rules, skills, and documentation tools.

2026-04-08
lab-instrumentation
ソフトウェア開発者

PyVISA and lab instrument control in Python: VISA resource lifecycle, timeouts and terminations, raw TCP/UDP sockets vs VISA, when to introduce hardware abstraction layers, validating user and config input before hardware, testing without hardware, and extracting tables or text from instrument manuals and datasheets (PDF). Triggers on pyvisa, VISA, GPIB, USB-TMC, serial instrument, socket lab, SCPI, datasheet PDF, instrument driver.

2026-04-08
matplotlib-scientific
データサイエンティスト

Build publication-quality Matplotlib figures for scientific Python. Use when plotting experiment or analysis results, multi-panel figures, journal-sized layouts, tick formatting, legends (fancy/plain, placement, compact handles), point annotations, inset zooms, twin axes, colored spines/ticks, colorblind-safe palettes, PNG/PDF export, or SciencePlots styling. Triggers on matplotlib, pyplot, subplots, savefig, legend, annotate, inset, twinx, scientific figures, panel labels.

2026-04-08
numpy-docstrings
ソフトウェア開発者

Write and review NumPy-style (numpydoc) docstrings for Python public APIs. Covers section order, semantics (what belongs in docstrings vs types vs tests), anti-patterns (comment soup, stub docs, wrong style), Parameters, Returns, Yields, Raises, See Also, Notes, References, Examples, and class/module docs. Use when authoring or auditing docstrings. Triggers on docstring, numpydoc, Parameters, Returns, Examples, Sphinx, TODO, comment.

2026-04-08
numpy-scientific
データサイエンティスト

NumPy for scientific Python: dtypes and casting, creation, reshaping, broadcasting, indexing vs views, ufuncs and reductions, linear algebra and einsum, random Generator, I/O, structured arrays, performance and pandas boundaries. Use when writing or reviewing ndarray code. Triggers on numpy, ndarray, broadcasting, dtype, ufunc, einsum, vectorization.

2026-04-08
rust-pyo3
ソフトウェア開発者

Applies dotagent conventions for Rust PyO3 and Maturin extension crates on top of the base Rust stack.

2026-04-08
このリポジトリの収集済み skills 10 件中、上位 8 件を表示しています。
heroui-react
ウェブ開発者

HeroUI v3 React component library (Tailwind CSS v4 + React Aria). Use when building UIs with HeroUI — creating Buttons, Modals, Forms, Cards; installing @heroui/react; configuring dark/light themes with oklch variables; or fetching component docs. Keywords: HeroUI, Hero UI, heroui, @heroui/react, @heroui/styles.

2026-04-04
general-typescript
ソフトウェア開発者

TypeScript hub for Bun workflows, tsconfig and tsc, interface vs type vs enum, no any, unknown only with explicit user approval, ESM, lint/format, Vitest or Bun test, JSDoc or TSDoc, delegation to typescript-types. Triggers on TypeScript, interface, type, enum, any, unknown, Bun, tsc, eslint.

2026-04-02
heroui-components
ソフトウェア開発者

HeroUI as the only component library: v3 imports from @heroui/react, theme tokens from globals.css, Tailwind composition without fighting HeroUI variants, forms and accessibility hooks. Triggers on HeroUI, heroui, Button, Input, Modal, TSX UI.

2026-04-02
typescript-types
ソフトウェア開発者

Deep TypeScript typing for discriminated unions, exhaustive handling, generics, satisfies, branding, and fixing tsc output without any or silent unknown on public APIs. Use when resolving complex type errors or designing type-heavy APIs. Pairs with general-typescript (no any; unknown only with explicit user approval). Triggers on generics, union, narrowing, exhaustive, satisfies, inference.

2026-04-02
typescript-web
ウェブ開発者

T3 Next.js App Router umbrella: stack roles, src/ layout, RSC vs client, HeroUI-only UI, globals.css theme authority. Load web-trpc-api, web-url-search-state, heroui-components for depth; general-typescript for Bun and TS.

2026-04-02
web-trpc-api
ウェブ開発者

tRPC procedures with auth context, Zod inputs, query vs mutation semantics, Prisma on server, error mapping, and optional Next.js REST route handlers that share validation. For T3 Next.js apps. Triggers on tRPC, router, procedure, protectedProcedure, prisma, zod, app/api route.ts.

2026-04-02
web-url-search-state
ウェブ開発者

Next.js App Router URL search state: Zod schemas for searchParams, shareable list/filter URLs, sync with Link and router, SSR-friendly patterns. Triggers on searchParams, nuqs, URL, query string, bookmark.

2026-04-02
web-design-guidelines
ソフトウェア開発者

Xray Atlas project guidelines - stack, architecture, auth, design review, and production build. Use for stack questions, design architecture, auth patterns, UI review, accessibility audit, or pre-deployment checklist.

2026-02-03
dataframes
データサイエンティスト

Pandas and Polars for tabular data: when to use which, indexing and dtypes, joins and reshaping, lazy Polars, I/O and Parquet, nulls, Arrow interop, and performance. Use for DataFrame/Series/LazyFrame code. Triggers on pandas, polars, DataFrame, LazyFrame, parquet, groupby, merge, join.

2026-04-01
general-python
ソフトウェア開発者

Python stack hub: uv/ruff/ty workflows, builtins and collections, functions and classes, dataclasses, typing boundaries, pytest and NumPy-style docs. Use for any Python task in repos that follow this stack; pairs with python-reviewer, python-types, and python-refactor. Related skills: numpy-scientific, dataframes, numpy-docstrings, matplotlib-scientific, lab-instrumentation. Triggers on Python, uv, ruff, ty, pytest, dataclass, typing.

2026-04-01
dotagent-general
その他のエンジニア

Applies cross-language defaults for scientific/engineering work, documentation discipline, non-lazy execution, and effective use of rules, skills, and documentation tools.

2026-04-01
lab-instrumentation
ソフトウェア開発者

PyVISA and lab instrument control in Python: VISA resource lifecycle, timeouts and terminations, raw TCP/UDP sockets vs VISA, when to introduce hardware abstraction layers, validating user and config input before hardware, testing without hardware, and extracting tables or text from instrument manuals and datasheets (PDF). Triggers on pyvisa, VISA, GPIB, USB-TMC, serial instrument, socket lab, SCPI, datasheet PDF, instrument driver.

2026-04-01
matplotlib-scientific
データサイエンティスト

Build publication-quality Matplotlib figures for scientific Python. Use when plotting experiment or analysis results, multi-panel figures, journal-sized layouts, tick formatting, legends (fancy/plain, placement, compact handles), point annotations, inset zooms, twin axes, colored spines/ticks, colorblind-safe palettes, PNG/PDF export, or SciencePlots styling. Triggers on matplotlib, pyplot, subplots, savefig, legend, annotate, inset, twinx, scientific figures, panel labels.

2026-04-01
numpy-docstrings
ソフトウェア開発者

Write and review NumPy-style (numpydoc) docstrings for Python public APIs. Covers section order, semantics (what belongs in docstrings vs types vs tests), anti-patterns (comment soup, stub docs, wrong style), Parameters, Returns, Yields, Raises, See Also, Notes, References, Examples, and class/module docs. Use when authoring or auditing docstrings. Triggers on docstring, numpydoc, Parameters, Returns, Examples, Sphinx, TODO, comment.

2026-04-01
numpy-scientific
データサイエンティスト

NumPy for scientific Python: dtypes and casting, creation, reshaping, broadcasting, indexing vs views, ufuncs and reductions, linear algebra and einsum, random Generator, I/O, structured arrays, performance and pandas boundaries. Use when writing or reviewing ndarray code. Triggers on numpy, ndarray, broadcasting, dtype, ufunc, einsum, vectorization.

2026-04-01
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