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논문 기본 정보

자료유형
학술저널
저자정보
Yidong Li (University of Adelaide) Hong Shen (University of Adelaide)
저널정보
Korean Institute of Information Scientists and Engineers Journal of Computing Science and Engineering Journal of Computing Science and Engineering Vol.5 No.3
발행연도
2011.9
수록면
197 - 209 (13page)

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초록· 키워드

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The increasing popularity of graph data, such as social and online communities, has initiated a prolific research area in knowledge discovery and data mining. As more real-world graphs are released publicly, there is growing concern about privacy breaching for the entities involved. An adversary may reveal identities of individuals in a published graph, with the topological structure and/or basic graph properties as background knowledge. Many previous studies addressing such attacks as identity disclosure, however, concentrate on preserving privacy in simple graph data only. In this paper, we consider the identity disclosure problem in weighted graphs. The motivation is that, a weighted graph can introduce much more unique information than its simple version, which makes the disclosure easier. We first formalize a general anonymization model to deal with weight-based attacks. Then two concrete attacks are discussed based on weight properties of a graph, including the sum and the set of adjacent weights for each vertex. We also propose a complete solution for the weight anonymization problem to prevent a graph from both attacks. In addition, we also investigate the impact of the proposed methods on community detection, a very popular application in the graph mining field. Our approaches are efficient and practical, and have been validated by extensive experiments on both synthetic and real-world datasets.

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Abstract
1. INTRODUCTION
Ⅱ. RELATED WORK
Ⅲ. PROBLEM DEFINITION
Ⅳ. HISTOGRAM ANONYMIZATION
Ⅴ. EXPERIMENTS
Ⅵ. EXTENSION: COMMUNITY PRESERVATION
Ⅶ. CONCLUSIONS
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