基于多启发式条件的比特币地址聚类方法

IET Blockchain Pub Date : 2022-05-31 DOI:10.1049/blc2.12014
Xi He, Ketai He, Shenwen Lin, Jinglin Yang, Hongliang Mao
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引用次数: 3

摘要

单一的启发式方法和不完整的启发式条件难以全面准确地聚类大量地址。因此,本文分析了比特币交易与地址之间的关联,并使用六个启发式条件对地址和实体进行聚类。我们提出了一种改进的变更地址检测算法,并将其与原变更地址算法进行了比较,以证明改进算法的有效性。通过添加条件约束,使识别出的变化地址更加准确,加快了算法的收敛速度。我们的工作提出了比特币系统的伪匿名机制,可以被执法机构用来跟踪和打击非法交易。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Bitcoin address clustering method based on multiple heuristic conditions

Single heuristic method and incomplete heuristic conditions were difficult to cluster a large number of addresses comprehensively and accurately. Therefore, this paper analysed the associations between Bitcoin transactions and addresses and used six heuristic conditions to cluster addresses and entities. We proposed an improved change address detection algorithm and compared it with the original change address algorithm to prove the effectiveness of the improved algorithm. By adding conditional constraints, the identified change address was more accurate, and the convergence speed of the algorithm was accelerated. Our work presented the pseudo-anonymity mechanism of the Bitcoin system, which could be used by the law enforcement agencies to track and crack down illegal transactions.

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