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Ada-MoGE: Adaptive Mixture of Gaussian Expert Model for Time Series Forecasting

arXiv:2512.02061v1 Announce Type: new Abstract: Multivariate time series forecasts are widely used, such as industrial, transportation and financial forecasts. However, the dominant frequencies in time series may shift with the evolving spectral distribution of the data. Traditional Mixture of Experts…

DPWMixer: Dual-Path Wavelet Mixer for Long-Term Time Series Forecasting

arXiv:2512.02070v1 Announce Type: new Abstract: Long-term time series forecasting (LTSF) is a critical task in computational intelligence. While Transformer-based models effectively capture long-range dependencies, they often suffer from quadratic complexity and overfitting due to data sparsity. Conversely, efficient linear models…

Forecasting in Offline Reinforcement Learning for Non-stationary Environments

arXiv:2512.01987v2 Announce Type: replace Abstract: Offline Reinforcement Learning (RL) provides a promising avenue for training policies from pre-collected datasets when gathering additional interaction data is infeasible. However, existing offline RL methods often assume stationarity or only consider synthetic perturbations at…

Training a Scientific Reasoning Model for Chemistry

arXiv:2506.17238v2 Announce Type: replace Abstract: Reasoning models are large language models that emit a long chain-of-thought before answering, providing both higher accuracy and explicit reasoning for their response. A major question has been whether language model reasoning generalizes beyond mathematics,…