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Zonal Allocation and Increased Production Opportunities Using Data Mining in Kern River

机译:利用克恩河的数据挖掘进行区域分配和增加生产机会

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This paper presents a fast and effective methodology to estimate zonal allocation for commingled producers in a multilayer reservoir using minimal, readily available data (well completion, historical production, sand depths, and location data). A set of data mining tools including regression, neural networks, and fuzzy logic was used to identify candidates for remedial work and the corresponding production increase expected. This approach was applied and executed in a portion of the Kern River field in California with very promising preliminary results.
机译:本文介绍了一种快速有效的方法,可使用最少的,易于获得的数据(完井,历史产量,砂土深度和位置数据)来估算多层油藏中混合生产商的地带分配。使用了一组数据挖掘工具,包括回归,神经网络和模糊逻辑,以识别补救工作的候选人和预期的相应产量增长。这种方法在加利福尼亚州克恩河油田的一部分中得到应用和执行,并获得了非常有希望的初步结果。

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