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Application of Pattern Recognition Techniques to Hydrogeological Modeling of Mature Oilfields

机译:模式识别技术在老油田水文地质建模中的应用

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摘要

Several pattern recognition techniques are applied for hydrogeological modeling of mature oilfields. Principle component analysis and clustering have become an integral part of microarray data analysis and interpretation. The algorithmic basis of clustering - the application of unsupervised machine-learning techniques to identify the patterns inherent in a data set - is well established. This paper discusses the motivations for and applications of these techniques to integrate water production data with other physicochemical information in order to classify the aquifers of an oilfield. Further, two time series pattern recognition techniques for basic water cut signatures are discussed and integrated within the methodology for water breakthrough mechanism identification.
机译:几种模式识别技术已应用于成熟油田的水文地质建模。主成分分析和聚类已经成为微阵列数据分析和解释的组成部分。聚类的算法基础-无监督机器学习技术的应用来识别数据集中固有的模式-已得到很好的建立。本文讨论了将水生产数据与其他理化信息相集成以对油田含水层进行分类的这些技术的动机和应用。此外,讨论了两种用于基本含水率签名的时间序列模式识别技术,并将其集成到了水突破机理识别的方法中。

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