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A Local Trust Inferring Algorithm based on Reinforcement Learning DoubleDQN in Online Social Networks

机译:在线社交网络中基于强化学习DoubleDQN的本地信任推断算法

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The development of online social network has greatly promoted the interaction between users. Trust plays an important role in social activities of social network, which can effectively avoid the risk from unreliable users. In fact, most users have no direct interaction, i.e., there is no direct connection in the social network, so the indirect trust of the target user can only be evaluated by the friends who contact indirectly. The propagation and aggregation methods of trust affect the results of trust evaluation to a great extent. The existing aggregation methods generally have the problem of low prediction accuracy. In addition, how to find a reliable path to propagate trust is also a major challenge. This paper proposes a DoubleDQNTrust(DDQNTrust) algorithm based on reinforcement learning DoubleDQN to find reliable trust paths. Secondly, based on standard collaborative filtering and considering the similarity between users, a new aggregation method is proposed. The experimental results on Filmtrust online social network data set show that DDQNTrust algorithm can effectively find reliable trust paths, and can evaluate trust with high prediction accuracy.
机译:在线社交网络的发展极大地促进了用户之间的互动。信任在社交网络的社交活动中起着重要作用,可以有效避免不可靠用户带来的风险。实际上,大多数用户没有直接的交互,即社交网络中没有直接的联系,因此目标用户的间接信任只能由间接联系的朋友来评估。信任的传播和聚集方法在很大程度上影响信任评估的结果。现有的聚合方法通常存在预测精度低的问题。另外,如何找到可靠的传播信任的途径也是一个重大挑战。提出了一种基于强化学习DoubleDQN的DoubleDQNTrust(DDQNTrust)算法,以找到可靠的信任路径。其次,在标准协同过滤的基础上,考虑用户之间的相似性,提出了一种新的聚合方法。在Filmtrust在线社交网络数据集上的实验结果表明,DDQNTrust算法可以有效地找到可靠的信任路径,并且可以以较高的预测精度评估信任。

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