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基于网络拓扑的改进图卷积神经网络的电力通信毁伤韧性量化评估方法

田安琪 于秋生 孙超 江颖洁 李丽 张璞

软件导刊2026,Vol.25Issue(6):134-141,8.
软件导刊2026,Vol.25Issue(6):134-141,8.DOI:10.11907/rjdk.251268

基于网络拓扑的改进图卷积神经网络的电力通信毁伤韧性量化评估方法

An Assessment Method for Power Communication Destruction Toughness Based on Improved Graph Convolutional Neural Network with Network Topology

田安琪 1于秋生 1孙超 1江颖洁 1李丽 1张璞1

作者信息

  • 1. 国网山东省电力公司信息通信公司,山东 济南 250001
  • 折叠

摘要

Abstract

The current assessment methods for the damage resilience of power networks have problems such as not considering the functional characteristics of the power network itself and not effectively utilizing data information,which makes it difficult to guarantee the reliability of the assessment results.Therefore,a network topology based method for predicting power communication risks and quantitatively evaluating damage resilience is proposed.Firstly,a power communication risk prediction model based on improved graph convolutional neural network and multi head self attention is adopted to achieve quantitative risk warning evaluation.At the same time,a business based power super net-work is constructed to evaluate node importance;Secondly,develop recovery strategies based on the damage form,and calculate the overall performance of the power communication network through simulation of the recovery process;Finally,the PRF curve is used to accurately evaluate the damage resilience of the power network.The experimental results showed that compared with the optimal baseline,the recall rate and F1 score of the proposed model increased by 9.87%and 5.96%,respectively.This model can effectively improve the risk prediction perfor-mance of power communication and achieve accurate quantitative evaluation of the damage resilience of power communication networks.

关键词

电力通信/风险预测/毁伤韧性评估/图卷积神经网络/多头自注意力

Key words

power communication/risk prediction/damage toughness assessment/graph convolutional neural networks/multi-head self-attention

分类

信息技术与安全科学

引用本文复制引用

田安琪,于秋生,孙超,江颖洁,李丽,张璞..基于网络拓扑的改进图卷积神经网络的电力通信毁伤韧性量化评估方法[J].软件导刊,2026,25(6):134-141,8.

基金项目

国网山东省电力公司科技项目(520627240007) (520627240007)

软件导刊

1672-7800

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