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Systems and methods employing cooperative optimization-based dimensionality reduction

机译:采用基于协作优化的降维的系统和方法

摘要

Dimensionality reduction systems and methods facilitate visualization, understanding, and interpretation of high-dimensionality data sets, so long as the essential information of the data set is preserved during the dimensionality reduction process. In some of the disclosed embodiments, dimensionality reduction is accomplished using clustering, evolutionary computation of low-dimensionality coordinates for cluster kernels, particle swarm optimization of kernel positions, and training of neural networks based on the kernel mapping. The fitness function chosen for the evolutionary computation and particle swarm optimization is designed to preserve kernel distances and any other information deemed useful to the current application of the disclosed techniques, such as linear correlation with a variable that is to be predicted from future measurements. Various error measures are suitable and can be used.
机译:降维系统和方法可促进高维数据集的可视化,理解和解释,只要在降维过程中保留数据集的基本信息即可。在一些公开的实施例中,使用聚类,用于聚类内核的低维坐标的演化计算,内核位置的粒子群优化以及基于内核映射的神经网络训练来实现降维。被选择用于进化计算和粒子群优化的适应度函数被设计为保留核距离和被认为对所公开技术的当前应用有用的任何其他信息,例如与将从将来的测量中预测的变量的线性相关。各种错误度量均适用并且可以使用。

著录项

  • 公开/公告号US10329900B2

    专利类型

  • 公开/公告日2019-06-25

    原文格式PDF

  • 申请/专利权人 HALLIBURTON ENERGY SERVICES INC.;

    申请/专利号US201615348718

  • 发明设计人 DINGDING CHEN;SYED HAMID;MICHAEL C. DIX;

    申请日2016-11-10

  • 分类号G06N3/08;E21B47/12;G06K9/62;E21B49/08;G06N3;G06N3/04;

  • 国家 US

  • 入库时间 2022-08-21 12:15:51

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