Tools for privacy preserving distributed data mining
Author(s) -
Chris Clifton,
Murat Kantarcıoǧlu,
Jaideep Vaidya,
Xiaodong Lin,
Michael Yu Zhu
Publication year - 2002
Publication title -
acm sigkdd explorations newsletter
Language(s) - English
Resource type - Journals
eISSN - 1931-0153
pISSN - 1931-0145
DOI - 10.1145/772862.772867
Subject(s) - computer science , information privacy , data mining , computer security
Privacy preserving mining of distributed data has numerous applications. Each application poses different constraints: What is meant by privacy, what are the desired results, how is the data distributed, what are the constraints on collaboration and cooperative computing, etc. We suggest that the solution to this is a toolkit of components that can be combined for specific privacy-preserving data mining applications. This paper presents some components of such a toolkit, and shows how they can be used to solve several privacy-preserving data mining problems.
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