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使用分层网络图对数据流量进行交互式探索。

Interactive exploration of data traffic with Hierarchical Network Maps.

作者信息

Mansmann Florian, Vinnik Svetlana

机构信息

Department of Computer and Information Science, University of Konstanz, Germany.

出版信息

IEEE Trans Vis Comput Graph. 2006 Nov-Dec;12(6):1440-9. doi: 10.1109/TVCG.2006.98.

Abstract

Network communication has become indispensable in business, education, and government. With the pervasive role of the Internet as a means of sharing information across networks, its misuse for destructive purposes, such as spreading malicious code, compromising remote hosts, or damaging data through unauthorized access, has grown immensely in the recent years. The classical way of monitoring the operation of large network systems is by analyzing the system logs for detecting anomalies. In this work, we introduce Hierarchical Network Map, an interactive visualization technique for gaining a deeper insight into network flow behavior by means of user-driven visual exploration. Our approach is meant as an enhancement to conventional analysis methods based on statistics or machine learning. We use multidimensional modeling combined with position and display awareness to view source and target data of the hosts in a hierarchical fashion with the ability to interactively change the level of aggregation or apply filtering. The interdisciplinary approach integrating data warehouse technology, information visualization, and decision support, brings about the benefit of efficiently collecting the input data and aggregating over very large data sets, visualizing the results, and providing interactivity to facilitate analytical reasoning.

摘要

网络通信在商业、教育和政府领域已变得不可或缺。随着互联网作为跨网络共享信息手段的普及,其被用于破坏性目的(如传播恶意代码、入侵远程主机或通过未经授权的访问破坏数据)的情况近年来大幅增加。监控大型网络系统运行的传统方法是分析系统日志以检测异常。在这项工作中,我们引入了分层网络图,这是一种交互式可视化技术,通过用户驱动的视觉探索更深入地了解网络流行为。我们的方法旨在增强基于统计或机器学习的传统分析方法。我们使用多维建模结合位置和显示感知,以分层方式查看主机的源数据和目标数据,并能够交互式地更改聚合级别或应用过滤。这种整合数据仓库技术、信息可视化和决策支持的跨学科方法,带来了有效收集输入数据并在非常大的数据集上进行聚合、可视化结果以及提供交互性以促进分析推理的好处。

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