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Propagation2Vec: Embedding partial propagation networks for explainable fake news early detection

机译:传播2VEC:嵌入部分传播网络以解释可解释的假新闻早期检测

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摘要

Many recent studies have demonstrated that the propagation patterns of news on social media can facilitate the detection of fake news. Most of these studies rely on the complete propagation networks to build their model, which is not fully available in the early stages and may take a long time to complete. Hence, relying on the complete propagation network is not ideal for fake news early detection. However, detecting fake news as early as possible is important due to their fast-spreading nature and the significant harm they can cause. In addition, most existing propagation network-based fake news detection techniques are not explicitly designed to jointly emphasise informative cascades and nodes in the propagation networks to detect fake news. To bridge these research gaps, this work proposes Propagation2Vec, a novel fake news early detection technique, which assigns varying levels of importance for the nodes and cascades in propagation networks, and reconstructs the knowledge of complete propagation networks based on their partial propagation networks at an early detection deadline. Our experiments show that our model can achieve state-of-the-art performance while only having access to the early stage propagation networks. Furthermore, we devise general explanations for the underlying logic of Propagation2Vec based on its attention weights assigned to different nodes and cascades, which improves the applicability of our approach and facilitates future research on propagation network-based fake news detection.
机译:许多最近的研究表明,社交媒体上的新闻的传播模式可以促进检测假新闻。这些研究中的大多数都依赖于完整的传播网络来构建其模型,这在早期阶段没有完全可用,可能需要很长时间才能完成。因此,依靠完整的传播网络对假新闻早期检测不理想。然而,由于他们的快速传播性和可能导致的危害,尽早检测到假新闻非常重要。此外,大多数现有的传播网络的虚假新闻检测技术没有明确设计,以共同强调传播网络中的信息级联和节点来检测假新闻。为了弥合这些研究差距,这项工作提出了一种新颖的假新闻早期检测技术的传播2VEC,它为传播网络中的节点和级联分配了不同程度的重要性,并基于它们的部分传播网络来重建完整传播网络的知识早期检测截止日期。我们的实验表明,我们的模型可以实现最先进的性能,同时只访问早期阶段传播网络。此外,我们根据分配给不同节点和级联的注意力,为传播逻辑2VEC进行了一般性解释,这提高了我们方法的适用性,并促进了对基于网络的虚假新闻检测的未来研究。

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