Network mining and analysis for social applications

Feida Zhu, Huan Sun, Xifeng Yan
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引用次数: 3

Abstract

The recent blossom of social network and communication services in both public and corporate settings have generated a staggering amount of network data of all kinds. Unlike the bio-networks and the chemical compound graph data often used in traditional network mining and analysis, the new network data grown out of the social applications are characterized by their rich attributes, high heterogeneity, enormous sizes and complex patterns of various semantic meanings, all of which have posed significant research challenges to the graph/network mining community. In this tutorial, we aim to examine some recent advances in network mining and analysis for social applications, covering a diverse collection of methodologies and applications from the perspectives of event, relationship, collaboration, and network pattern. We would present the problem settings, the challenges, the recent research advances and some future directions for each perspective. Topics include but are not limited to correlation mining, iceberg finding, anomaly detection, relationship discovery, information flow, task routing, and pattern mining.
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社会应用的网络挖掘和分析
最近社交网络和通信服务在公共和企业环境中的蓬勃发展产生了数量惊人的各种网络数据。与传统网络挖掘和分析中经常使用的生物网络和化学复合图数据不同,从社会应用中产生的新型网络数据具有属性丰富、异构性高、规模庞大、各种语义模式复杂等特点,这些都对图/网络挖掘界提出了重大的研究挑战。在本教程中,我们的目标是研究社交应用程序的网络挖掘和分析方面的一些最新进展,从事件、关系、协作和网络模式的角度涵盖了各种方法和应用程序。我们将介绍问题设置、挑战、最近的研究进展和未来的一些方向。主题包括但不限于相关性挖掘、冰山发现、异常检测、关系发现、信息流、任务路由和模式挖掘。
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