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TriP-LLM

This is the official checkpoints release for the TriP-LLM, a novel framework for unsupervised anomaly detection in multivariate time-series data using pretrained Large Language Models (LLMs).

Model Description

Usage

Please refer to our GitHub repository
for model definitions, training code, and usage examples.

πŸ“Ž Citation

If you find this repository useful for your research, please cite our paper:

@misc{TriPLLM,
      title={TriP-LLM: A Tri-Branch Patch-wise Large Language Model Framework for Time-Series Anomaly Detection}, 
      author={Yuan-Cheng Yu and Yen-Chieh Ouyang and Chun-An Lin},
      journal={IEEE Access},
      year={2025},
      pages={168643-168653}
}
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