Markov Encrypted Data Prefetching Model Based On Attribute Classification

Zhengbo Chen, Liu Xiu, Xing Yafei, Hu Miao, Xiaoming Ju
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Abstract

In order to improve the buffering performance of the data encrypted by CP-ABE (ciphertext policy attribute based encryption), this paper proposed a Markov prefetching model based on attribute classification. The prefetching model combines the access strategy of CP-ABE encrypted file, establishes the user relationship network according to the attribute value of the user, classifies the user by the modularity-based community partitioning algorithm, and establishes a Markov prefetching model based on attribute classification. In comparison with the traditional Markov prefetching model and the classification-based Markov prefetching model, the attribute-based Markov prefetching model is proposed in this paper has higher prefetch accuracy and coverage.
基于属性分类的马尔可夫加密数据预取模型
为了提高CP-ABE(密文策略属性加密)加密数据的缓冲性能,本文提出了一种基于属性分类的马尔可夫预取模型。预取模型结合CP-ABE加密文件的访问策略,根据用户的属性值建立用户关系网络,采用基于模块化的社区划分算法对用户进行分类,建立基于属性分类的马尔可夫预取模型。与传统的马尔可夫预取模型和基于分类的马尔可夫预取模型相比,本文提出的基于属性的马尔可夫预取模型具有更高的预取精度和覆盖率。
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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