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A Hybrid Expert Decision Support System Based on Artificial Neural Networks in Process Control of Plaster Production - An Industry 4.0 Perspective

机译:一种基于人工神经网络的血压生产过程控制的混合专家决策支持系统 - 一种行业4.0观点

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Emerging technologies could affect future of factories and smartness is the main trend to receive that points. Quality was important and will be crucial in future but the question is how to build Smart Systems to guaranty quality in workshop level. This is an important challenge in Industry 4.0 paradigm. In this paper the main objective is to present practical solution under the light of Industry 4.0. The aim of this study is to presents propose a Hybrid Expert Decision Support System (EDSS) model, which integrates Neural Network (NN) and Expert System (ES) to detect unnatural CCPs and to estimate the corresponding parameters and starting point of the detected CCP. For this purpose, Learning Vector Quantization (LVQ) and Multi-Layer Perceptron (MLP) networks architecture have been designed to identify unnatural CCPs. Moreover, a rule based ES has been developed for diagnosing causes of process variations and subsequently recommending corrective action. The proposed model was successfully implemented in Construction Plaster producing company to demonstrate the capabilities and applicability of the model.
机译:新兴技术可能会影响工厂的前途和机智是接收点的主要趋势。质量是很重要的,并将在未来是至关重要的,但问题是如何建立自己的智能系统,在车间级保证质量。这是工业4.0模式的一个重要挑战。本文的主要目标是工业4.0的光下呈现实用的解决方案。本研究的目的是呈现提出一种混合型专家决策支持系统(EDSS)模型,它集成了神经网络(NN)和专家系统(ES),以检测非天然CCP和估计相应的参数和检测到的CCP的起点。为了这个目的,学习矢量量化(LVQ)和多层感知器(MLP)网络架构的设计,以确定关键控制点不自然。此外,基于规则ES已经被开发用于诊断过程变化的原因,并随后建议纠正动作。该模型在建筑石膏生产公司成功实施验证了模型的功能和适用性。

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