Privacy Preservation Naïve Bayes Classification for a Vertically Distribution Scenario Using Trusted Third Party

Keshavamurthy B.N., Mitesh Sharma, Durga Toshniwal · 2010

Privacy preservation is an important area of research in recent years. Due to the advancement of technology, enormous digital data is being generated at various locations. There are many applications such as market basket analysis, medical research etc where the global results computation places a significant role. The collaborating parties are generally interested in finding the global results for their integrated data without revealing the personal details to the other party. There are few proposals which talk about privacy preservation of vertical partitioned distributed database. Our proposed novel approach preserves the privacy of the distributed databases, using Naïve Bayes Classification along with the trusted third party and secure multiparty computation.

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