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Unlocking the Power of LSTM for Long Term Time Series Forecasting

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arxiv 2408.10006 v2 pith:YDJY4UU6 submitted 2024-08-19 cs.LG

classification cs.LG
keywords slstmlongmemoryforecastinglstmneuralperformanceseries
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Traditional recurrent neural network architectures, such as long short-term memory neural networks (LSTM), have historically held a prominent role in time series forecasting (TSF) tasks. While the recently introduced sLSTM for Natural Language Processing (NLP) introduces exponential gating and memory mixing that are beneficial for long term sequential learning, its potential short memory issue is a barrier to applying sLSTM directly in TSF. To address this, we propose a simple yet efficient algorithm named P-sLSTM, which is built upon sLSTM by incorporating patching and channel independence. These modifications substantially enhance sLSTM's performance in TSF, achieving state-of-the-art results. Furthermore, we provide theoretical justifications for our design, and conduct extensive comparative and analytical experiments to fully validate the efficiency and superior performance of our model.

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  1. AttenGluco: Multimodal Transformer-Based Blood Glucose Forecasting on AI-READI Dataset

    cs.LG 2025-02 conditional novelty 4.0 of 10

    A multimodal Transformer with cross-attention and multi-scale attention forecasts blood glucose from CGM and activity data, beating a CNN-LSTM baseline on AI-READI by about 10% in RMSE.

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