Gao Lei, Zeng Yonghu, Wang Liandong, et al. Application strategy for intermittent sampling repeater jamming to wideband imaging radar[J]. High Power Laser and Particle Beams, 2018, 30: 053203. doi: 10.11884/HPLPB201830.170430
Citation: Ding Qiao, Cheng Lei, Li Yukai. Research of equivalent model for a conduct electromagnetic leakage source[J]. High Power Laser and Particle Beams, 2019, 31: 103218. doi: 10.11884/HPLPB201931.190129

Research of equivalent model for a conduct electromagnetic leakage source

doi: 10.11884/HPLPB201931.190129
  • Received Date: 2019-04-25
  • Rev Recd Date: 2019-07-28
  • Publish Date: 2019-10-15
  • Electromagnetic leakage detection is very important in the area of network attack and defense system.Electromagnetic leakage detection can be divided into initiative detection and passive detection.The initiative detection mainly adopts the way to launch signal to special equipment and then detect current/voltage in specific location.When we get this useful information, we can get the knowledge of leakage information or other feature information of specific equipment.This article tries to build an equivalent model based on a kind of initiative conduct electromagnetic leakage source.According to the working frequencies, it builds two models: the equivalent antenna model and the equivalent circuit model.To verify the accuracy of these two models, the article provides theoretical analysis and simulation verification accordingly.The research of these equivalent models are beneficial for further study of electromagnetic leakage detection.
  • [1]
    石军. 电磁信息泄漏测试新技术[C]//第26届全国计算机安全学术交流会. 2011: 113-115.

    Shi Jun. New technology of electromagnetic information leak test//The 26th National Computer Security Academic Conference. 2011: 113-115
    [2]
    石德琳. 计算机显示系统电磁信息泄漏的检测与分析[J]. 电脑迷, 2018(10): 206. https://www.cnki.com.cn/Article/CJFDTOTAL-DNMI201804192.htm

    Shi Delin. Electromagnetic information leakage detection and analysis of computer display system. PC Fan, 2018(10): 206 https://www.cnki.com.cn/Article/CJFDTOTAL-DNMI201804192.htm
    [3]
    葛笑通. 计算机显示系统电磁信息泄漏的检测研究[J]. 数字技术与应用, 2015(12): 202. https://www.cnki.com.cn/Article/CJFDTOTAL-SZJT201512163.htm

    Ge Xiaotong. Research of electromagnetic information leakage detection of computer display system. Digital Technology and Application, 2015(12): 202 https://www.cnki.com.cn/Article/CJFDTOTAL-SZJT201512163.htm
    [4]
    杨海南, 汪家宇, 温欣. 计算机显示系统电磁信息泄漏的检测研究[J]. 四川水泥, 2017(4): 140. https://www.cnki.com.cn/Article/CJFDTOTAL-SCSA201704135.htm

    Yang Hainan, Wang Jiayu, Wen Xin. Research of computer display system electromagnetic information leakage detection. Sichuan Cement, 2017(4): 140 https://www.cnki.com.cn/Article/CJFDTOTAL-SCSA201704135.htm
    [5]
    赵志强, 刘泰康, 姜云. 计算机显卡电磁信息泄漏的检测与分析[J]. 计算机安全, 2013(2): 20-22. https://www.cnki.com.cn/Article/CJFDTOTAL-DZJC201302008.htm

    Zhao Zhiqiang, Liu Taikang, Jiang Yun. Detection and analysis of computer display card electromagnetic information leakage. Computer Safety, 2013(2): 20-22 https://www.cnki.com.cn/Article/CJFDTOTAL-DZJC201302008.htm
    [6]
    赵志强. 计算机显示系统电磁信息泄漏的检测与分析[D]. 太原: 太原科技大学, 2013.

    Zhao Zhiqiang. Detection and analysis of computer display system electromagnetic information leak. Taiyuan: Taiyuan University of Science and Technology, 2013
    [7]
    石珺. 基于电磁指纹的计算机视频泄漏信号检测和计算机个体识别[D]. 北京: 中国科学院大学, 2017.

    Shi Jun. Computer video signal leakage detection and computer recognition based on electromagnetic fingerprint. Beijing: Chinese Academy of Science University, 2017
    [8]
    徐艳云, 郭佳, 李怡伟, 等. 信息设备电磁泄漏还原图像的文本识别研究[J]. 信息安全研究, 2016, 2(2): 137-142. https://www.cnki.com.cn/Article/CJFDTOTAL-XAQY201602008.htm

    Xu Yanyun, Guo Jia, Li Yiwei, et al. Research of character recognition of reconstructed image from electromagnetic emanation of information equipment. Journal of Information Research, 2016, 2(2): 137-142 https://www.cnki.com.cn/Article/CJFDTOTAL-XAQY201602008.htm
    [9]
    张南, 吕英华, 王宜颖, 等. LCD计算机视频电磁泄漏探查及信息还原分析[C]//第25届全国电磁兼容学术会议论文集. 2015: 8-13.

    Zhang Nan, Lü Yinghua, Wang Yiying, et al. Analysis of LCD computer video electromagnetic leakage detection and information restore//The 25th National Conference of EMC. 2015: 8-13
    [10]
    莫凡. 计算机伴随电磁发射的视频信息认知及还原技术研究[D]. 北京: 北京邮电大学, 2013.

    Mo Fan. Research of video cognition and restore technology leading by computer EM emitting. Beijing: Beijing University of Posts and Telecommunications, 2013
    [11]
    方哲, 郁滨, 岳云天. 传输线电磁信息泄漏防护相关噪声方法设计[J]. 计算机工程与设计, 2014(12): 4114-4119. https://www.cnki.com.cn/Article/CJFDTOTAL-SJSJ201412011.htm

    Fang Zhe, Yu Bin, Yue Yuntian. Design of related noise method for electromagnetic information leakage in transmission line. Computer Engineering and Design, 2014(12): 4114-4119 https://www.cnki.com.cn/Article/CJFDTOTAL-SJSJ201412011.htm
    [12]
    北京计算机技术及应用研究所. 一种视频电磁泄漏信号防护系统及其方法: CN201410678034.6[P]. 2016-06-15.

    Beijing Institute of Computer Technology and Application. A protection system and method of video electromagnetic leakage signal. CN201410678034.6. 2016-06-15
    [13]
    电信设备的电磁辐射信息泄漏要求和测量方法: YD/T 1536-2018[S].

    Requirements and measurements of electromagnetic radiation information leakage for telecommunication equipment. YD/T 1536-2018
    [14]
    程磊, 罗儒俊, 寇云峰, 等. 基于电源线的传导电磁信息泄漏模型与验证[J]. 通信技术, 2018, 51(4): 941-946. https://www.cnki.com.cn/Article/CJFDTOTAL-TXJS201804036.htm

    Cheng Lei, Luo Rujun, Kou Yunfeng, et al. Verification of conductive electromagnetic information leakage model based on power line. Communications Technology, 2018, 51(4): 941-946 https://www.cnki.com.cn/Article/CJFDTOTAL-TXJS201804036.htm
    [15]
    中国电子科技网络信息安全有限公司. 一种交流电源传导电磁信息泄漏防护装置及方法: CN201710451278.4[P]. 2017-09-05.

    China Electronic Technology Cyber Security Co., Ltd. A device and method for alternative power conduct electromagnetic information leakage. CN201710451278.4.2017-09-05
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