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Well Logging Verification Using Machine Learning Algorithms

机译:利用机器学习算法测井验证

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Well logging analysis plays a crucial role in the design of oil field development. The analysis determines the location of the reservoir and its thickness, which defines directly the estimation of oil reserves. Present paper proposes an approach to the automation and verification of logging studies, namely reservoir identification along the wellbore, based on machine learning methods. Logging data for training were taken from the real oil field in Western Siberia. The paper describes approach used for data pre-processing and key aspects of the data. In this study, we considered two methodologies for reservoir prediction: by sample with the help of gradient busting method and by interval based on one dimensional convolutional neural network.
机译:井井料分析在油田开发设计中起着至关重要的作用。分析决定了储层的位置及其厚度,其定义了石油储备的估计。本文提出了一种对伐木研究的自动化和验证的方法,即沿着机器学习方法沿着井筒的储层识别。用于培训的测井数据是从西伯利亚西部的真正的油田中取出。本文描述了用于数据预处理和数据的关键方面的方法。在这项研究中,我们考虑了储层预测的两种方法:通过梯度破坏方法的帮助和基于一维卷积神经网络的间隔来进行样本。

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