赵磊, 邹云峰, 徐超, 马玉龙, 沈文, 杨仪馨. 基于鲁棒零水印的半结构化电力数据追踪[J]. 电力信息与通信技术, 2025, 1(1): 60-67. DOI: 10.16543/j.2095-641x.electric.power.ict.2025.01.08
引用本文: 赵磊, 邹云峰, 徐超, 马玉龙, 沈文, 杨仪馨. 基于鲁棒零水印的半结构化电力数据追踪[J]. 电力信息与通信技术, 2025, 1(1): 60-67. DOI: 10.16543/j.2095-641x.electric.power.ict.2025.01.08
ZHAO Lei, ZOU Yunfeng, XU Chao, MA Yulong, SHEN Wen, YANG Yixin. Semi-structured Power Data Tracking Based on Robust Zero Watermarking[J]. Electric Power Information and Communication Technology, 2025, 1(1): 60-67. DOI: 10.16543/j.2095-641x.electric.power.ict.2025.01.08
Citation: ZHAO Lei, ZOU Yunfeng, XU Chao, MA Yulong, SHEN Wen, YANG Yixin. Semi-structured Power Data Tracking Based on Robust Zero Watermarking[J]. Electric Power Information and Communication Technology, 2025, 1(1): 60-67. DOI: 10.16543/j.2095-641x.electric.power.ict.2025.01.08

基于鲁棒零水印的半结构化电力数据追踪

Semi-structured Power Data Tracking Based on Robust Zero Watermarking

  • 摘要: 电力数据在线上渠道对外分享过程中,可能存在数据泄露的风险,因此需要对泄露数据进行有效溯源。文章提出一种基于鲁棒零水印的半结构化电力数据追踪方法,通过嵌入不改变原始数据的零水印,在数据发生局部变动情况下仍可对泄露数据进行追踪。首先,提取出半结构化电力数据部分键值对生成特征序列,作为零水印的载体;其次,将特征序列和水印本体处理成相同数量的块;然后,结合抹除码和冗余纠错码理论,通过一个转移矩阵得到中间序列,并使用纠错码对其进行编码;最后,将纠错编码后的水印信息嵌入特征序列,生成电力数据的鲁棒零水印。在追踪过程中,通过提取与分析被追踪数据的鲁棒零水印,可以有效识别和定位数据的异动。实验和仿真验证证明该方法在保证数据安全性的同时,零水印提取成功率达98%以上。文章提出的方法对于电力系统的数据监测和异动追踪具有重要的应用价值。

     

    Abstract: In the process of sharing power data through online channels, there exists a potential risk of data leakage, necessitating effective data traceability of leaked information. This paper proposes a novel method for tracing semi-structured power data based on robust zerowatermarking, which enables traceability even when the leaked data undergoes local modifications. First, relevant key-value pairs are extracted from the semi-structured power data to create a feature sequence as the carrier for the zero watermarking. Then, the feature sequence and the watermark body are divided into equal-sized blocks. By integrating erasure codes and redundant error correction codes theory, an intermediate sequence is obtained through a transfer matrix, and then encoded using error correction codes. Finally, the error corrected watermarking information is embedded into the feature sequence, generating a robust zero watermarking for the power data. During the tracing process, the robust zero watermarking of the tracked data is extracted and analyzed to effectively identify and locate data anomalies. Experimental and simulation results demonstrate that the proposed method achieves a watermark extraction success rate of over 98%, while ensuring data security. The presented approach holds significant application value in the monitoring and anomaly tracing of power systems' data.

     

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