Technology prediction of a 3D model using Neural Network
Technology prediction of a 3D model using Neural Network
Accurate estimation of production times is critical for effective manufacturing scheduling, yet traditional methods relying on expert analysis or historical data often fall short in dynamic or customized production environments. This paper introduces a data-driven approach that predicts manufacturing steps and their durations directly from a product's 3D model. By rendering the model into multiple 2D images and leveraging a neural network inspired by the Generative Query Network, the method learns to map geometric features into time estimates for predefined production steps enabling scalable, adaptive, and precise process planning across varied product types.
Grzegorz Miebs、Rafa? A. Bachorz
计算技术、计算机技术
Grzegorz Miebs,Rafa? A. Bachorz.Technology prediction of a 3D model using Neural Network[EB/OL].(2025-05-07)[2025-06-07].https://arxiv.org/abs/2505.04241.点此复制
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