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A text mining approach to Internet abuse detection

机译:一种用于互联网滥用检测的文本挖掘方法

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摘要

As the use of the Internet in organizations continues to grow, so does Internet abuse in the workplace. Internet abuse activities by employees-such as online chatting, gaming, investing, shopping, illegal downloading, pornography, and cybersex-and online crimes are inflicting severe costs to organizations in terms of productivity losses, resource wasting, security risks, and legal liabilities. Organizations have started to fight back via Internet usage policies, management training, and monitoring. Internet filtering software products are finding an increasing number of adoptions in organizations. These products mainly rely on blacklists, whitelists, and keyword/profile matching. In this paper, we propose a text mining approach to Internet abuse detection. We have empirically compared a variety of term weighting, feature selection, and classification techniques for Internet abuse detection in the workplace of software programmers. The experimental results are very promising; they demonstrate that the proposed approach would effectively complement the existing Internet filtering techniques.
机译:随着组织中Internet的使用不断增长,工作场所中的Internet滥用也在增加。员工的互联网滥用活动,例如在线聊天,游戏,投资,购物,非法下载,色情和网络色情,以及在线犯罪,在生产力损失,资源浪费,安全风险和法律责任方面,给组织造成了沉重的成本。组织已经开始通过Internet使用策略,管理培训和监视进行反击。 Internet过滤软件产品正在组织中得到越来越多的采用。这些产品主要依靠黑名单,白名单以及关键字/配置文件匹配。在本文中,我们提出了一种用于Internet滥用检测的文本挖掘方法。我们从经验上比较了软件程序员工作场所中各种术语权重,功能选择和分类技术,以进行Internet滥用检测。实验结果很有希望;他们证明了所提出的方法将有效地补充现有的Internet过滤技术。

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