Hiding sensitive patterns in association rules mining

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Abstract

Data mining techniques have been developed in many applications. However, it also causes a threat to privacy. We investigate to find an appropriate balance between a need for privacy and information discovery on association patterns. In this paper, we propose an innovative technique for hiding sensitive patterns. In our approach, a sanitization matrix is defined. By multiplying the original transaction database and the sanitization matrix, a new database, which is sanitized for privacy concern, is gotten. Moreover, a set of experiments is performed to show the effectiveness of our approach. © 2004 IEEE.

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Lee, G., Chang, C. Y., & Chen, A. L. P. (2004). Hiding sensitive patterns in association rules mining. In Proceedings - International Computer Software and Applications Conference (Vol. 1, pp. 424–429). https://doi.org/10.1109/cmpsac.2004.1342874

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