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Skill-Usage

Skill-Usage contiene 11 skills recopiladas de UCSB-NLP-Chang, con cobertura ocupacional por repositorio y páginas de detalle dentro del sitio.

skills recopiladas
11
Stars
45
actualizado
2026-04-08
Forks
5
Cobertura ocupacional
4 categorías ocupacionales · 100% clasificado
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Skills en este repositorio

harbor
Otras ocupaciones informáticas

Harbor framework for agent evaluation. Use when: (1) Running harbor commands (harbor run, harbor tasks check), (2) Creating/validating SkillsBench tasks, (3) Understanding task format or debugging failures.

2026-04-08
finding-skills-keyword
Otras ocupaciones informáticas

Discovers relevant agent skills using keyword (BM25) search. Breaks complex tasks into sub-tasks and finds 10 skills via term matching. Use when starting a new task, looking for specialized capabilities, or wanting to find best practices for a domain.

2026-04-08
finding-skills-semantic
Otras ocupaciones informáticas

Discovers relevant agent skills using semantic (embedding) search. Breaks complex tasks into sub-tasks and finds 10 skills via natural language similarity. Use when starting a new task, looking for specialized capabilities, or wanting to find best practices for a domain.

2026-04-08
finding-skills
Otras ocupaciones informáticas

Discovers relevant agent skills from a local index of skills for a given task. Breaks complex tasks into sub-tasks and finds 10 skills across keyword, semantic, and hybrid search. Use when starting a new task, looking for specialized capabilities, or wanting to find best practices for a domain.

2026-04-08
civ6lib
Desarrolladores de software

Civilization 6 district mechanics library. Use when working with district placement validation, adjacency bonus calculations, or understanding Civ6 game rules.

2026-04-08
threejs
Desarrolladores de software

Three.js scene-graph parsing and export workflows for mesh baking, InstancedMesh expansion, part partitioning, per-link OBJ export, and URDF articulation.

2026-04-08
data-cleaning
Científicos de datos

Clean messy tabular datasets with deduplication, missing value imputation, outlier handling, and text processing. Use when dealing with dirty data that has duplicates, nulls, or inconsistent formatting.

2026-04-08
did-causal-analysis
Científicos de datos

Difference-in-Differences causal analysis to identify demographic drivers of behavioral changes with p-value significance testing. Use for event effects, A/B testing, or policy evaluation.

2026-04-08
feature-engineering
Científicos de datos

Engineer dataset features before ML or Causal Inference. Methods include encoding categorical variables, scaling numerics, creating interactions, and selecting relevant features.

2026-04-08
time-series-anomaly-detection
Científicos de datos

Detect anomalies in time series data using Prophet Framework (Meta), which frames the seasonality, trend holiday effect and other needed regressors into its model, to identify unusual surges or slumps in trends. This is a general methodology analyst can use for understanding what changes of their tracking metrics are manifesting anomalies pattern.

2026-04-08
data-reconciliation
Analistas financieros y de inversiones

Recovering missing spreadsheet values by using totals, percentages, growth rates, and other mathematical constraints in tabular data.

2026-04-08