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System and Method of Graph Feature Extraction Based on Adjacency Matrix

机译:基于邻接矩阵的图特征提取系统及方法

摘要

A method and system of graph feature extraction and graph classification based on adjacency matrix is provided. The invention first concentrates the connection information elements in the adjacency matrix into a specific diagonal region of the adjacency matrix which reduces the non-connection information elements in advance. Then the subgraph structure of the graph is further extracted along the diagonal direction using the filter matrix. Further, it uses a stacked convolutional neural network to extract a larger subgraph structure. On one hand, it greatly reduces the amount of computation and complexity, getting rid of the limitations caused by computational complexity and window size. On the other hand, it can capture large subgraph structure through a small window, as well as deep features from the implicit correlation structures at both vertex and edge level, which improves speed and accuracy of graph classification.
机译:提供了一种基于邻接矩阵的图特征提取和图分类的方法和系统。本发明首先将邻接矩阵中的连接信息元素集中到邻接矩阵的特定对角区域中,这预先减少了非连接信息元素。然后,使用滤波器矩阵沿对角线方向进一步提取图形的子图形结构。此外,它使用堆叠式卷积神经网络提取较大的子图结构。一方面,它大大减少了计算量和复杂度,摆脱了由计算复杂度和窗口大小引起的限制。另一方面,它可以通过一个小窗口捕获较大的子图结构,以及来自顶点和边缘级别的隐式相关结构的深层特征,从而提高了图分类的速度和准确性。

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