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Abstract:
提出一种基于取整划分函数的K匿名算法,并从理论上证明该算法在非平凡的数据集中可以取得更低的上界.特别地,当数据集大于2k~2时,该算法产生的匿名化数据的匿名组规模的上界为k+1;而当待发布数据表足够大时,算法所生成的所有匿名组的平均规模将足够趋近于K.仿真实验结果表明,该算法是有效而可行的.
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软件学报
ISSN: 1000-9825
CN: 11-2560/TP
Year: 2012
Issue: 08
Volume: 23
Page: 2138-2148
Cited Count:
WoS CC Cited Count: 0
SCOPUS Cited Count:
ESI Highly Cited Papers on the List: 0 Unfold All
WanFang Cited Count:
Chinese Cited Count:
30 Days PV: 1
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