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VAE-ALSTM for prediction of high-dimensional physical field evolution in complex manufacturing: a case study of spinning process

  • Xinshun Li
  • , Pengfei Gao
  • , Xinggang Yan
  • , Guangda Shao
  • , Zhipeng Ren
  • , Mei Zhan
  • Northwestern Polytechnical University Xian

科研成果: 期刊稿件文章同行评审

摘要

In complex manufacturing processes, the prediction of physical field evolution is critical to precise process control and product quality assurance. To this end, this study proposes a spatiotemporally collaborative prediction approach based on spatial encoding and temporal modeling. Guided by this approach, a hybrid network integrating Variational Autoencoder and Attention-based LSTM (VAE-ALSTM) is constructed. The network maps high-dimensional physical field variables to a compact latent manifold space through a Variational Autoencoder (VAE). In the latent manifold space, an integrated MLP-LSTM-Attention module (ALSTM) is used to simultaneously capture temporal irreversible accumulation processes and external environmental disturbances, thereby forming an end-to-end prediction model suitable for physical field evolution in complex manufacturing processes. To validate the approach, the deformation field evolution of the flange in spinning forming is used as a representative case study. Through comparation with the informed prediction methods in the spinning domain, it is found that VAE-ALSTM can effectively maintain the temporal dependency characteristics of physical field evolution while preserving complete spatial topological information. Overall, the results suggest that VAE-ALSTM provides a promising modeling paradigm for high-dimensional spatiotemporal physical-field prediction, with its effectiveness demonstrated on a representative spinning case.

源语言英语
文章编号104950
期刊Advanced Engineering Informatics
76
DOI
出版状态已出版 - 11月 2026

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