Privacy Preserving Data Mining Using Time Series Data Aggregation

Sivaranjani Reddi
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Abstract

This article proposes a mechanism to provide privacy to mined results by assuming that the data is distributed across many nodes. The first objective includes mining the query results by the node in a cluster, communicating it to the cluster head, aggregating the data collected from all the cluster nodes and then communicating it to the group controller. The second objective is to incorporate privacy at each level of the clusters node: cluster head and the group controller level. The final objective is to provide a dynamic network feature, where the nodes can join or leave the distributed network without disturbing the network functionality. The proposed algorithm was implemented and validated in Java for its performance in terms of communication costs computational complexity.
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基于时间序列数据聚合的隐私保护数据挖掘
本文提出了一种机制,通过假设数据分布在许多节点上,为挖掘结果提供隐私。第一个目标包括按集群中的节点挖掘查询结果,将其传递给集群头,聚合从所有集群节点收集的数据,然后将其传递给组控制器。第二个目标是在集群节点的每个级别(簇头和组控制器级别)合并隐私。最终目标是提供一个动态的网络特性,节点可以在不干扰网络功能的情况下加入或离开分布式网络。该算法在Java中实现并验证了其通信开销和计算复杂度方面的性能。
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