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Investigation of the Effectiveness of the Method for Recognizing Pre-Emergency Situations at Mining Facilities

机译:调查采矿设施识别紧急情况的方法的有效性

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In previous reports, an analysis of the basic mathematical methods used to solve the pattern recognition problem was carried out. The inappropriateness of applying the Bayesian classification and cluster analysis to solve the problem of recognizing pre-emergency situations in the process of drilling a well is shown. As a mathematical apparatus for solving the problem of determining the current state of an object of research by a given set of features, a pattern recognition method based on an artificial neural network is selected. In this paper, an analysis is made of existing approaches to improving the quality of education aimed at improving the efficiency of its functioning. The results obtained in this paper will improve the quality of work of the previously developed modified algorithm for training the pre-emergency classifier based on the back propagation method, which differs from the classical one by the procedure for finding the global minimum of the error function, and its software implementation has been implemented. The work is an integral part of previously published developments presented in the materials of articles in 2-nd, 3-rd and 4-th International innovative mining symposiums (2017-2019).
机译:在先前的报告中,执行了用于解决模式识别问题的基本数学方法的分析。应用贝叶斯分类和集群分析的不恰当性地解决了识别钻井过程中识别紧急情况的问题。作为解决通过给定的特征集确定研究对象的当前状态的数学仪器,选择了基于人工神经网络的模式识别方法。在本文中,分析了现有的提高教育质量的方法,旨在提高其运作效率。本文获得的结果将提高先前开发的修改算法的工作质量,用于基于背部传播方法训练前紧急分类器的训练方法,这通过通过查找误差函数的全局最小值的过程不同于经典算法,并实现了软件实现。该工作是先前公布的开发开发的一个组成部分,其中包括在2-ND,第3届,第4届国际创新矿业研讨会(2017-2019)中的文章材料中提供。

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