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Exploring Evolution of Dynamic Networks via Diachronic Node Embeddings

机译:探索动态网络的演变通过探讨媒体嵌入式

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摘要

Dynamic networks evolve with their structures changing over time. It is still a challenging problem to efficiently explore the evolution of dynamic networks in terms of both their structural and temporal properties. In this paper, we propose a visual analytics methodology to interactively explore the temporal evolution of dynamic networks in the context of their structure. A novel diachronic node embedding method is first proposed to learn latent representations of the structural and temporal features of nodes in a vector space. Diachronic node embeddings are then used to discover communities with similar structural proximity and temporal evolution patterns. A visual analytics system is designed to enable users to visually explore the evolutions of nodes, communities, and the network as a whole in terms of their structural and temporal properties. We evaluate the effectiveness of our method using artificial and real-world dynamic networks and comparisons with previous methods.
机译:动态网络随着时间的推移而变化而发展。在其结构和时间特性方面有效地探索动态网络的演变仍然是一个具有挑战性的问题。在本文中,我们提出了一种视觉分析方法,以互动地探索其结构背景下动态网络的时间演变。首先提出一种新的探讨节点嵌入方法,以学习矢量空间中节点结构和时间特征的潜在表示。然后使用Diachronic Node Embeddings来发现具有类似结构接近和时间演进模式的社区。视觉分析系统旨在使用户能够在其结构和时间特性方面,在视觉上探索节点,社区和网络的过程。我们评估我们使用人工和现实世界的动态网络和与以前的方法的比较的方法的有效性。

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