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A New Anonymity Model for Privacy-Preserving Data Publishing 被引量:5
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作者 huang xuezhen liu jiqiang han zhen yang jun 《China Communications》 SCIE CSCD 2014年第9期47-59,共13页
Privacy-preserving data publishing(PPDP) is one of the hot issues in the field of the network security.The existing PPDP technique cannot deal with generality attacks,which explicitly contain the sensitivity attack an... Privacy-preserving data publishing(PPDP) is one of the hot issues in the field of the network security.The existing PPDP technique cannot deal with generality attacks,which explicitly contain the sensitivity attack and the similarity attack.This paper proposes a novel model,(w,y,k)-anonymity,to avoid generality attacks on both cases of numeric and categorical attributes.We show that the optimal(w,y,k)-anonymity problem is NP-hard and conduct the Top-down Local recoding(TDL) algorithm to implement the model.Our experiments validate the improvement of our model with real data. 展开更多
关键词 数据发布 隐私保护 名模 PDP技术 网络安全 分类属性 攻击 相似性
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