数据挖掘中的Helmholtz原理

Boris Dadachev, A. Balinsky, H. Balinsky, S. Simske
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引用次数: 45

摘要

短文档和文件流(电子邮件、新闻、tweet、日志文件、消息等)中的异常行为检测和信息提取是安全应用中的重要问题。文献[1]、[2]介绍了一种大型文档快速变更检测和自动摘要的新方法。这种方法是基于社会网络理论和图像处理的思想,特别是基于人类感知的格式塔理论中的亥姆霍兹原理。在本文中,我们修改,优化和验证了[1],[2]的方法,以从小文档中进行异常行为检测和信息提取。
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On the Helmholtz Principle for Data Mining
Unusual behaviour detection and information extraction in streams of short documents and files (emails, news, tweets, log files, messages, etc.) are important problems in security applications. In [1], [2], a new approach to rapid change detection and automatic summarization of large documents was introduced. This approach is based on a theory of social networks and ideas from image processing and especially on the Helmholtz Principle from the Gestalt Theory of human perception. In this article we modify, optimize and verify the approach from [1], [2] to unusual behaviour detection and information extraction from small documents.
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