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Prediction of production line performance using neural networks

机译:使用神经网络预测生产线性能

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The use of artificial neural networks in many fields is still on the increase. The paper deals with application of neural networks as a data mining method to a prediction of the production line performance. Performance of production line was defined by output indicators like number of finished products, flow time and work in progress production. Predictive model was implemented in the program STATISTICA Data Miner, therefore this paper brings also short overview of used options. The overall quality of learned networks was evaluated. PMML file was created for fast deployment to new data and better decision making. Neural networks provide an effective analyzing and diagnosing tool to understand and simulate the behavior of the plant, and can be used as a valuable performance assessment tool for decision makers.
机译:在许多领域中使用人工神经网络仍在增加。本文涉及神经网络作为数据挖掘方法,以预测生产线性能。生产线的性能由输出指示器定义,如成品数量,流量时间和正在进行生产中的工作。预测模型在程序统计数据矿工中实施,因此本文也带来了使用的选项概述。评估了学习网络的整体质量。创建PMML文件以便快速部署到新数据和更好的决策。神经网络提供了有效的分析和诊断工具,以了解和模拟工厂的行为,可用作决策者的有价值的性能评估工具。

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