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Influence Maximization with Novelty Decay in Social Networks
Conference proceeding

Influence Maximization with Novelty Decay in Social Networks

Shanshan Feng, Xufeng Chen, Gao Cong, Yifeng Zeng, Yeow Meng Chee and Yanping Xiang
2014

Abstract

Influence maximization problem is to find a set of seed nodes in a social network such that their influence spread is maximized under certain propagation models. A few algorithms have been proposed for solving this problem. However, they have not considered the impact of novelty decay on influence propagation, i.e., repeated exposures will have diminishing influence on users. In this paper, we consider the problem of influence maximization with novelty decay (IMND). We investigate the effect of novelty decay on influence propagation on real-life datasets and formulate the IMND problem. We further analyze the problem properties and propose an influence estimation technique. We demonstrate the performance of our algorithms on four social networks.

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