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SemanticCast: Content-Based Data Distribution over Self-Organizing Semantic Overlay Networks

机译:SemanticCast:通过自组织语义重叠网络进行基于内容的数据分发

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Many applications demand distributing data with different contents efficiently in the network environment with unreliable links and a high node churn. Existing approaches mostly focus on optimizing either efficiency or robustness of data distribution, and fail to ensure both of them simultaneously. In this paper, we propose Semantic Cast - a content-based data distribution approach over self-organizing semantic overlay networks. Semantic Cast maintains a self-organizing semantic overlay based on view exchange (called Crowd). In Crowd, each node seeks neighbors with more similar interests by periodically exchanging its neighbor list (called view) with a chosen neighbor. Through these nodes' self-organizing behavior, various interest communities emerge in the overlay. For data distribution over Crowd, Semantic Cast adopts random walk to route data between interest communities, and adopts flooding to disseminate data inside the interested communities. The experimental results show that compared to existing approaches, Semantic Cast can support efficient content-based data distribution in the unreliable and highly dynamic network environment.
机译:许多应用程序要求在网络环境中以不可靠的链接和高节点流失率高效地分发具有不同内容的数据。现有的方法主要集中在优化数据分发的效率或健壮性,而不能同时确保两者。在本文中,我们提出了语义投射(Smantic Cast)-一种在自组织语义覆盖网络上基于内容的数据分发方法。语义Cast维护基于视图交换(称为Crowd)的自组织语义覆盖。在Crowd中,每个节点通过与选定的邻居定期交换其邻居列表(称为视图)来寻找兴趣相似的邻居。通过这些节点的自组织行为,覆盖层中出现了各种兴趣社区。为了在人群上分发数据,语义转换采用随机游走在感兴趣的社区之间路由数据,并采用泛洪在感兴趣的社区内传播数据。实验结果表明,与现有方法相比,Semantic Cast可以在不可靠且高度动态的网络环境中支持基于内容的有效数据分发。

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