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jackal092927
GitHub 제작자 프로필

jackal092927

2개 GitHub 저장소에서 수집된 10개 skills를 저장소 단위로 보여줍니다.

수집된 skills
10
저장소
2
업데이트
2026-05-04
저장소 탐색

저장소와 대표 skills

skillx-full-loop-audit
소프트웨어 개발자

Use when operating SkillX full-loop experiments after an inner-loop run completes, especially to audit result validity, classify failures, decide required/recommended reruns, prepare targeted rerun manifests, or determine whether it is safe to proceed to outer-loop optimization.

2026-05-04
gamma-phase-associator
지구과학자(수문학자·지리학자 제외)

An overview of the python package for running the GaMMA earthquake phase association algorithm. The algorithm expects phase picks data and station data as input and produces (through unsupervised clustering) earthquake events with source information like earthquake location, origin time and magnitude. The skill explains commonly used functions and the expected input/output format.

2026-04-13
gamma-phase-associator
지구과학자(수문학자·지리학자 제외)

An overview of the python package for running the GaMMA earthquake phase association algorithm. The algorithm expects phase picks data and station data as input and produces (through unsupervised clustering) earthquake events with source information like earthquake location, origin time and magnitude. The skill explains commonly used functions and the expected input/output format.

2026-04-13
seisbench-model-api
지구과학자(수문학자·지리학자 제외)

An overview of the core model API of SeisBench, a Python framework for training and applying machine learning algorithms to seismic data. It is useful for annotating waveforms using pretrained SOTA ML models, for tasks like phase picking, earthquake detection, waveform denoising and depth estimation. For any waveform, you can manipulate it into an obspy stream object and it will work seamlessly with seisbench models.

2026-04-13
seismic-picker-selection
지구과학자(수문학자·지리학자 제외)

This is a summary the advantages and disadvantages of earthquake event detection and phase picking methods, shared by leading seismology researchers at the 2025 Earthquake Catalog Workshop. Use it when you have a seismic phase picking task at hand.

2026-04-13
data-cleaning
데이터 과학자

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.

2026-04-03
did-causal-analysis
데이터 과학자

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.

2026-04-03
feature-engineering
데이터 과학자

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

2026-04-03
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