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Towards a Model for Inferring Trust in Heterogeneous Social Networks

机译:朝着在异构社交网络中推断信任的模型

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People usually use trust and reputation to cope with uncertainty which exists in the nature and routines. The existing approaches for inferring trust rely on homogeneous relations. In other words, trust is just inferred by a homogeneous relation. In this paper, we present a new model for inferring trust using heterogeneous social networks; we use relation extraction to make a trust relation from the other relation such as friendship and the college relation and then introduced an algorithm to infer trust using extracted relation. In order to get higher performance, we extend relation extraction problem by proposing a genetic algorithm. This algorithm is more scalable, interpretable and extensible in comparison with prior ones. We also present a new algorithm for inferring trust in a social network. Using these methods, we conclude higher accuracy for trust values. Our claims are evaluated by experimental results.
机译:人们通常使用信任和声誉来应对自然和惯例中存在的不确定性。现有方法推断信任依赖均匀关系。换句话说,信任只是通过同质关系推断。在本文中,我们为使用异构社交网络推断信任的新模型;我们使用关系提取与友谊和大学关系等其他关系的信任关系,然后引入了一种使用提取关系推断信任的算法。为了获得更高的性能,通过提出遗传算法来扩展关系提取问题。与先前的算法相比,该算法更可扩展,可解释和可扩展。我们还提出了一种用于在社交网络中推断信任的新算法。使用这些方法,我们得出更高的信任值的准确性。我们的索赔通过实验结果评估。

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