Hybrid AI Models Outperform Rivals in Solar Power Forecasting Showdown
A systematic benchmark of classical, transformer-based and foundation AI models finds that a hybrid CNN-foundation-transformer architecture more than doubles the ...
A systematic benchmark of classical, transformer-based and foundation AI models finds that a hybrid CNN-foundation-transformer architecture more than doubles the ...
A prospective pilot study at a Turkish children's hospital shows that pairing deep learning demand forecasts with optimization-based physician scheduling ...
Researchers have built a hybrid LSTM-BiLSTM deep learning model that adapts to seasonal wind patterns and outperforms transformers while using ...
Researchers at Shanxi University have developed MAST-LLM, a framework that repurposes large language models with mixture-of-experts alignment and bidirectional spatio-temporal ...
A new lightweight deep learning model called BOA-LSTM combines Bayesian optimization and attention mechanisms to deliver faster and more accurate ...
Researchers used seven machine-learning models, led by Transformer and LSTM architectures, to reconstruct deep soil temperatures in cold-region canal slopes ...
A hybrid NARX–XGBoost machine learning framework predicts daily milk yields in heat-stressed dairy cows with substantially higher accuracy than existing ...
Researchers have developed a graph neural network model that learns dynamic time delays between variables in multivariate time series, improving ...
Researchers in Türkiye used a hybrid stacking ensemble model and real distribution grid data to forecast hourly electric vehicle charging ...
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© 2025 Scienmag - Science Magazine
© 2025 Scienmag - Science Magazine