Complex fuzzy-probabilistic analysis of information on drilling mud losses

Efendiyev Gm, Piriverdiyev Ia
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引用次数: 0

Abstract

In recent years, classification and clustering have been widely used for processing and analyzing information for the purpose of structuring, ordering, summarizing, and sorting. Classification and clustering are used when working with information processes both in enterprises (large and medium-sized) and in various fields of scientific activity, which is especially important in the context of the constant growth of processed information. At the same time, during cluster analysis, an important task is to assess its quality. In this work, cluster analysis was used to identify loss circulation zones when drilling wells and classify them by severity (intensity). To determine the quality of the cluster analysis, the entropy value was calculated, which should tend to a minimum. In our case, it was 0.23, which allows us to judge the fairly high quality of the cluster solution.
钻井泥浆损失信息的复杂模糊概率分析
近年来,分类和聚类被广泛用于处理和分析信息,以达到结构化、排序、总结和分类的目的。在企业(大中型企业)和各种科学活动领域处理信息过程时,都会用到分类和聚类,这在处理的信息不断增长的情况下尤为重要。同时,在聚类分析过程中,一项重要任务是评估其质量。在这项工作中,聚类分析被用来识别钻井时的损失循环区,并按照严重程度(强度)对其进行分类。为确定聚类分析的质量,需要计算熵值,该值应趋于最小。在我们的案例中,熵值为 0.23,因此可以判断聚类解决方案的质量相当高。
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