On Detecting Abnormal Access for Online Ideological and Political Education

Yuzhu Yang
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引用次数: 7

Abstract

With the development and spread of networks, online education has become a new way in education. The online education platform encounters a large number of concurrent visiting, while the system must guarantee network security in the process of online education. The network visiting requests are real-time and dynamic in online education. In order to detect network intrusion and abnormal access in real time and adapt to the dynamic changes of network visiting requests, this paper adopts a data stream-based network intrusion detection method to monitor and manage online education visiting. First, a knowledge library is constructed by normal visiting mode and abnormal visiting mode. Second, the dissimilarity between data point and data cluster is used to measure the similarity between normal mode and abnormal mode. Lastly, the knowledge library is updated to reflect the changes of network in online education system by re-clustering. The proposed method is evaluated on a real dataset.
论网络思想政治教育异常接入的检测
随着网络的发展和普及,在线教育已经成为一种新的教育方式。在线教育平台面临着大量的并发访问,而系统在进行在线教育的过程中必须保证网络安全。在网络教育中,网络访问请求具有实时性和动态性。为了实时检测网络入侵和异常访问,适应网络访问请求的动态变化,本文采用基于数据流的网络入侵检测方法对在线教育访问进行监控和管理。首先,通过正常访问模式和异常访问模式构建知识库。其次,利用数据点与数据簇之间的不相似度来度量正常模式与异常模式之间的相似度。最后,通过重新聚类对在线教育系统的知识库进行更新,以反映网络的变化。在一个真实数据集上对该方法进行了评估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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