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Fast blocking of undesirable web pages on client PC by discriminating URL using neural networks

机译:通过使用神经网络区分URL,快速阻止客户端PC上不需要的网页

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摘要

The world wide web (WWW) has become the largest information archive in the world because of its connectivity and scalability. Web pages, identified by URLs, are the basic forms for transmitting the requested information to clients' PC, whose number continuously explodes. There are a large portion of the web pages containing undesirable content, such as pornography, crimes, drugs and terrorisms, which makes viewers' discretion necessary. The large number of the undesirable web pages, however, has made the blocking more difficult on a client PC, because checking through the large collection of URLs is a time-consuming task. We propose a neural network method for determining the existing status of a requested URL in the large prohibited collection. The large prohibited URL collection containing 400,000 URLs was obtained by specifying a number of keywords, e.g. "porn" or "sex", on several commercial search engines. The simulation results show superior performances in both memory requirement and speed, comparing with a database implementation on the same PC.
机译:万维网(WWW)由于其连接性和可伸缩性已成为世界上最大的信息档案库。由URL标识的网页是将请求的信息传输到客户PC的基本形式,其数量不断爆炸。网页中有很大一部分包含不受欢迎的内容,例如色情,犯罪,毒品和恐怖主义,这使得观众有必要自行决定。但是,大量不想要的网页使客户端PC上的阻止变得更加困难,因为检查大量的URL是一项耗时的任务。我们提出了一种神经网络方法,用于确定大型禁止集合中所请求URL的现有状态。通过指定多个关键字(例如,在多个商业搜索引擎上使用“色情”或“色情”。与同一台PC上的数据库实现相比,仿真结果显示出在内存需求和速度方面均具有出色的性能。

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