Skill 디렉토리

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작업으로 실제 GitHub Skill을 검색하고 사용 전에 Stars, 신뢰, 감사, 카테고리, 설치 경로를 확인하세요.

모든 추천은 리포지토리, 감사, 설치 경로와 명확하게 연결됩니다.

검색 결과: forecasting

영문 디렉토리

A python library for user-friendly forecasting and anomaly detection on time series.

9.4K
Stars
86/100
신뢰
카테고리: ml-automation감사

Chronos: Pretrained Models for Time Series Forecasting

5.5K
Stars
81/100
신뢰
카테고리: ml-automation감사

A Python toolkit/library for reality-centric machine/deep learning & data mining on partially-observed time series, with 50+ SOTA neural network models for scientific analysis tasks (imputation, classification, clustering, forecasting, anomaly detection, cleaning) on incomplete industrial irregularly-sampled multivariate TS with NaN missing values

2.0K
Stars
83/100
신뢰
카테고리: data-analysis감사

Lightning ⚡️ fast forecasting with statistical and econometric models.

4.8K
Stars
80/100
신뢰
카테고리: ml-automation감사

Scalable and user friendly neural :brain: forecasting algorithms.

4.2K
Stars
80/100
신뢰
카테고리: ml-automation감사

A Python package for Bayesian forecasting with object-oriented design and probabilistic models under the hood.

2.1K
Stars
74/100
신뢰
카테고리: ml-automation감사

This skill should be used for time series machine learning tasks including classification, regression, clustering, forecasting, anomaly detection, segmentation, and similarity search. Use when working with temporal data, sequential patterns, or time-indexed observations requiring specialized algorithms beyond standard ML approaches. Particularly suited for univariate and multivariate time series analysis with scikit-learn compatible APIs.

34K
Stars
80/100
신뢰
카테고리: research감사

[ICLR 2024] Official implementation of " 🦙 Time-LLM: Time Series Forecasting by Reprogramming Large Language Models"

2.7K
Stars
76/100
신뢰
카테고리: ml-automation감사

[ICLR 2024] Official implementation of "TimeMixer: Decomposable Multiscale Mixing for Time Series Forecasting"

1.9K
Stars
76/100
신뢰
카테고리: ml-automation감사

NeuralProphet: A simple forecasting package

4.3K
Stars
72/100
신뢰
카테고리: ml-automation감사

Jupyter Notebook tutorials on solving real-world problems with Machine Learning & Deep Learning using PyTorch. Topics: Face detection with Detectron 2, Time Series anomaly detection with LSTM Autoencoders, Object Detection with YOLO v5, Build your first Neural Network, Time Series forecasting for Coronavirus daily cases, Sentiment Analysis with BER

2.5K
Stars
71/100
신뢰
카테고리: robotics-iot감사