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LLM4TS: Two-Stage Fine-Tuning for Time-Series Forecasting with Pre-Trained LLMs

Ching Chang,Wen-Chih Peng,Tien-Fu Chen

2023 · DOI: 10.48550/arXiv.2308.08469
arXiv.org · 156 citas

TLDR

This work leverages pre-trained Large Language Models to enhance time-series forecasting and adopts several Parameter-Efficient Fine-Tuning (PEFT) techniques, which have yielded state-of-the-art results in long-term forecasting.