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A unifying framework of rating users and data items in peer-to-peer and social networks - Springer

机译:对等和社交网络中对用户和数据项进行评级的统一框架-Springer

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We propose a unifying family of quadratic cost functions to be used in Peer-to-Peer ratings. We show that our approach is general since it captures many of the existing algorithms in the fields of visual layout, collaborative filtering and Peer-to-Peer rating, among them Koren spectral layout algorithm, Katz method, Spatial ranking, Personalized PageRank and Information Centrality. Besides of the theoretical interest in finding common basis of algorithms that where not linked before, we allow a single efficient implementation for computing those various rating methods. We introduce a distributed solver based on the Gaussian Belief Propagation algorithm which is able to efficiently and distributively compute a solution to any single cost function drawn from our family of quadratic cost functions. By implementing our algorithm once, and choosing the computed cost function dynamically on the run we allow a high flexibility in the selection of the rating method deployed in the Peer-to-Peer network. Using simulations over real social network topologies obtained from various sources, including the MSN Messenger social network, we demonstrate the applicability of our approach. We report simulation results using networks of millions of nodes.
机译:我们建议在点对点评级中使用一个统一的二次成本函数族。我们证明了我们的方法是通用的,因为它捕获了视觉布局,协作过滤和对等评级领域中的许多现有算法,其中包括Koren频谱布局算法,Katz方法,空间排名,个性化PageRank和信息中心性。除了寻找以前没有链接过的算法的通用基础的理论兴趣外,我们还允许使用一种有效的实现来计算这些各种评分方法。我们介绍一种基于高斯置信度传播算法的分布式求解器,该算法能够高效地和分布式地计算从我们的二次成本函数族中得出的任何单个成本函数的解决方案。通过一次实施我们的算法,并在运行中动态选择计算的成本函数,我们在选择对等网络中部署的评估方法时具有很高的灵活性。通过使用从各种来源(包括MSN Messenger社交网络)获得的真实社交网络拓扑的模拟,我们证明了该方法的适用性。我们使用数百万个节点的网络报告仿真结果。

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