thuml/Nonstationary_Transformers
thuml/Nonstationary_Transformers is an AI-powered project on GitHub with 563 stars, written primarily in Python. Code release for "Non-stationary Transformers: Exploring the Stationarity in Time Series Forecasting" (NeurIPS 2022), https://arxiv.org/abs/2205.14415
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How active is development on thuml/Nonstationary_Transformers?
The most recent commit recorded on thuml/Nonstationary_Transformers was 2.0 years ago, based on the GitHub push timestamp. The repository has 103 forks — one of the better signals of community interest.
How many stars does thuml/Nonstationary_Transformers have?
thuml/Nonstationary_Transformers has 563 GitHub stars — refresh the page for the live number, or check github.com/thuml/Nonstationary_Transformers. TopGit mirrors GitHub's count but does not claim minute-by-minute accuracy.
What else is in the AI Tools space?
thuml/Nonstationary_Transformers is tracked by TopGit under the AI Tools category, alongside 4 GitHub-tagged topics. Trending and Topics pages list peer repositories of comparable stars and language.
What language is thuml/Nonstationary_Transformers written in?
thuml/Nonstationary_Transformers is written primarily in Python. GitHub's language field is based on the largest share of bytes in the default branch.
What topics is thuml/Nonstationary_Transformers associated with?
GitHub's repository topics for thuml/Nonstationary_Transformers: "deep-learning", "forecasting", "non-stationary", "time-series". TopGit's editorial category is AI Tools.
Where do I read more about thuml/Nonstationary_Transformers?
This TopGit page is a snapshot — the READ ME tab shows the project's own README content (links stripped, images preserved). The GitHub repository at github.com/thuml/Nonstationary_Transformers is the definitive source.
Why is thuml/Nonstationary_Transformers categorized under AI Tools?
TopGit places thuml/Nonstationary_Transformers in the AI Tools category based on its GitHub topics and description (tagged: "deep-learning", "forecasting", "non-stationary"). Categories are assigned from real repository metadata, not editorial guesswork.
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