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CLaST achieves unprecedented accuracy in time series forecasting by preserving contextual relationships, outperforming existing models by up to 48.6%.
Achieving up to 52.68% error reduction in long-term forecasting while slashing model weight by 93% makes DecoVAE a game-changer in time series analysis.
Achieve 15x faster inference for probabilistic forecasting of irregular time series by fusing U-Nets, Transformers, and Neural CDEs into a parallelizable architecture.