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A Novel Framework Based on SVDD to Classify Water Saturation from Seismic Attributes

机译:基于SVDD的新型框架,以对地震属性分类水饱和度

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Water saturation is an important property in reservoir engineering domain. Thus, satisfactory classification of water saturation from seismic attributes is beneficial for reservoir characterization. However, diverse and non-linear nature of subsurface attributes makes the classification task difficult. In this context, this paper proposes a generalized Support Vector Data Description (SVDD) based novel classification framework to classify water saturation into two classes (Class high and Class low) from three seismic attributes - seismic impedance, amplitude envelop, and seismic sweetness. G-metric means and program execution time are used to quantify the performance of the proposed framework along with established supervised classifiers. The documented results imply that the proposed framework is superior to existing classifiers. The present study is envisioned to contribute in further reservoir modeling.
机译:水饱和度是水库工程领域的重要特性。因此,令人满意地从地震属性进行饱和度的饱和度是有益的储层特征。然而,地下属性的多样化和非线性性质使分类任务变得困难。在这种情况下,本文提出了一种基于三种地震属性 - 地震阻抗,幅度包围和地震甜度的三种基于支持向量数据描述(SVDD)的新颖分类框架,以将水饱和分为两类(阶级高和类)。 G-METRIC装置和程序执行时间用于量化所提出的框架的性能以及已建立的监督分类器。记录的结果意味着所提出的框架优于现有的分类器。设想本研究以进一步的储层建模贡献。

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