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A review of machining monitoring systems based on artificial intelligence process models

机译:基于人工智能过程模型的加工监控系统综述

摘要

Many machining monitoring systems based on artificial intelligence (AI) process models have been successfully developed in the past for optimising, predicting or controlling machining processes. In general, these monitoring systems present important differences among them, and there are no clear guidelines for their implementation. In order to present a generic view of machining monitoring systems and facilitate their implementation, this paper reviews six key issues involved in the development of intelligent machining systems: (1) the different sensor systems applied to monitor machining processes, (2) the most effective signal processing techniques, (3) the most frequent sensory features applied in modelling machining processes, (4) the sensory feature selection and extraction methods for using relevant sensory information, (5) the design of experiments required to model a machining operation with the minimum amount of experimental data and (6) the main characteristics of several artificial intelligence techniques to facilitate their application/selection.
机译:过去已经成功开发了许多基于人工智能(AI)工艺模型的加工监控系统,用于优化,预测或控制加工过程。通常,这些监视系统在它们之间存在重要的差异,并且没有明确的实施准则。为了呈现加工监控系统的一般视图并促进其实施,本文回顾了智能加工系统开发中涉及的六个关键问题:(1)用于监控加工过程的不同传感器系统,(2)最有效的传感器系统。信号处理技术;(3)在建模加工过程中应用最频繁的感官特征;(4)使用相关的感官信息的感官特征选择和提取方法;(5)以最少的模型对加工操作进行建模所需的实验设计大量的实验数据和(6)几种人工智能技术的主要特征,以方便其应用/选择。

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