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Privacy-Preserving Hierarchical Anonymization Framework over Encrypted Data

研究成果: Article査読

抄録

Smart cities, which can monitor the real world and provide smart services in a variety of fields, have improved people’s living standards as urbanization has accelerated. However, there are security and privacy concerns because smart city applications collect large amounts of privacy-sensitive information from people and their social circles. Anonymization, which generalizes data and reduces data uniqueness, is an important step in preserving the privacy of sensitive information. However, anonymization methods frequently require large datasets and rely on untrusted third parties to collect and manage data, particularly in a cloud environment. In this case, private data leakage remains a critical issue, discouraging users from sharing their data and impeding the advancement of smart city services. This problem can be solved if the computational entity performs anonymization without obtaining the original plain text. This study proposed a hierarchical k-anonymization framework using homomorphic encryption and secret sharing composed of two types of domains. Different computing methods are selected flexibly, and two domains are connected hierarchically to obtain higher-level anonymization results efficiently. The experimental results show that connecting two domains can accelerate the anonymization process, indicating that the proposed secure hierarchical architecture is practical and efficient.

本文言語English
ページ(範囲)1011-1019
ページ数9
ジャーナルIEEJ Transactions on Electronics, Information and Systems
144
10
DOI
出版ステータスPublished - 2024 10月 1

UN SDG

この成果は、次の持続可能な開発目標に貢献しています

  1. SDG 11 - 住み続けられるまちづくり
    SDG 11 住み続けられるまちづくり

ASJC Scopus subject areas

  • 電子工学および電気工学

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