Zusammenfassung
Malicious URLs are harmful to every aspect of computer users. Detecting of the malicious URL is very important. Currently, detection of malicious web pages techniques includes black-list and white-list methodology and machine learning classification algorithms are used. However, the black-list and white-list technology is useless if a particular URL is not in list. In this paper, we propose a multi-layer model for detecting malicious URL. The filter can directly determine the URL by training the threshold of each layer filter when it reaches the threshold. Otherwise, the filter leaves the URL to next layer. We also used an example to verify that the model can improve the accuracy of URL detection.
Beschreibung
In recent years, the Internet has been playing a bigger and bigger role in people’s work and life. Currently, we observed that not every website is user-friendly and profitable. More and more malicious websites began to appear and these malicious websites end angering all aspects of the user. This can lead the user towards economic classes, even some can create confusion over the management of the country. Detecting and stopping malicious websites has become an important control measure to avoid the risk of information security [10],[8], [7].Generally, the only entrance to the website is URL, which can be malicious URL.
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