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Processing Method For High Order Tensor Data

机译:高阶张量数据的处理方法

摘要

A processing method for high-order tensor data, which can avoid that the vectorization process of the image observation sample set damage the internal structure of the data, simplify the large amount of redundant information in the high-order tensor data in the image observation sample set, and improve the image processing speed. In this processing method for high-order tensor data, the high-order tensor data are divided into three parts: the shared subspace component, the personality subspace component and the noise part; the shared subspace component and the personality subspace component respectively represent the high-order tensor data as a group of linear combination of the tensor base and the vector coefficient; the variational EM method is used to solve the base tensor and the vector coefficient; design a classifier to classify the test samples by comparing the edge distribution of samples.
机译:一种高阶张量数据的处理方法,可以避免图像观测样本集的矢量化过程破坏数据的内部结构,简化了图像观测样本中高阶张量数据中的大量冗余信息设置,并提高图像处理速度。在这种高阶张量数据的处理方法中,高阶张量数据分为三个部分:共享子空间分量,个性子空间分量和噪声部分;共享子空间分量和个性子空间分量分别将高阶张量数据表示为张量基和矢量系数的线性组合。用变分EM方法求解基本张量和矢量系数。设计一个分类器,通过比较样本的边缘分布来对测试样本进行分类。

著录项

  • 公开/公告号US2020226417A1

    专利类型

  • 公开/公告日2020-07-16

    原文格式PDF

  • 申请/专利权人 BEIJING UNIVERSITY OF TECHNOLOGY;

    申请/专利号US201916709947

  • 发明设计人 YANFENG SUN;FUJIAO JU;

    申请日2019-12-11

  • 分类号G06K9/62;G06K9/44;

  • 国家 US

  • 入库时间 2022-08-21 11:25:25

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