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Multimodal data-driven machine learning for the prediction of surface topography in end milling

  • L. Hu,
  • H. Phan,
  • S. Srinivasan,
  • C. Cooper,
  • J. Zhang,
  • B. Yuan,
  • R. Gao,
  • Y. B. Guo

摘要

Prediction of surface topography in milling usually requires complex kinematics and dynamics modeling of the milling process, plus solving physical models of surface generation is a daunting task. This paper presents a multimodal data-driven machine learning (ML) method to predict milled surface topography. The proposed method predicts the height map of the surface topography by fusing process parameters and in-process acoustic information as model inputs. This method has been validated by comparing the predicted surface topography with the measured data.