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A Novel Homogenous Hybridization Scheme for Performance Improvement of Support Vector Machines Regression in Reservoir Characterization

机译:一种新型均匀杂交方案,用于储层表征中的支持向量机回归性能改进

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摘要

Hybrid computational intelligence is defined as a combination of multiple intelligent algorithms such that the resulting model has superior performance to the individual algorithms. Therefore, the importance of fusing two or more intelligent algorithms to achieve better performance cannot be overemphasized. In this work, a novel homogenous hybridization scheme is proposed for the improvement of the generalization and predictive ability of support vector machines regression (SVR). The proposed and developed hybrid SVR (HSVR) works by considering the initial SVR prediction as a feature extraction process and then employs the SVR output, which is the extracted feature, as its sole descriptor. The developed hybrid model is applied to the prediction of reservoir permeability and the predicted permeability is compared to core permeability which is regarded as standard in petroleum industry. The results show that the proposed hybrid scheme (HSVR) performed better than the existing SVR in both generalization and prediction ability. The outcome of this research will assist petroleum engineers to effectively predict permeability of carbonate reservoirs with higher degree of accuracy and will invariably lead to better reservoir. Furthermore, the encouraging performance of this hybrid will serve as impetus for further exploring homogenous hybrid system.
机译:混合计算智能被定义为多个智能算法的组合,使得所得到的模型对各个算法具有卓越的性能。因此,融合了两个或多个智能算法以实现更好的性能的重要性不能赘述。在这项工作中,提出了一种新的均匀杂交方案,用于改善支持载体机器回归(SVR)的泛化和预测能力。通过将初始SVR预测视为特征提取过程,所提出的和开发的混合SVR(HSVR)工作,然后使用作为其唯一描述符的SVR输出,即提取的特征。研制的混合模型应用于储层渗透性的预测,并将预测的渗透率与石油工业中被认为是标准的核心渗透率进行比较。结果表明,所提出的混合方案(HSVR)在泛型和预测能力方面比现有的SVR更好地执行。该研究的结果将帮助石油工程师能够有效地预测碳酸盐储层的渗透性,精度更高,并不导致更好的水库。此外,这种混合动力车的令人鼓舞的表现将作为进一步探索均匀混合系统的推动力。

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