2018
DOI: 10.1155/2018/4678746
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Web Phishing Detection Using a Deep Learning Framework

Abstract: Web service is one of the key communications software services for the Internet. Web phishing is one of many security threats to web services on the Internet. Web phishing aims to steal private information, such as usernames, passwords, and credit card details, by way of impersonating a legitimate entity. It will lead to information disclosure and property damage. This paper mainly focuses on applying a deep learning framework to detect phishing websites. This paper first designs two types of features for web … Show more

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Cited by 93 publications
(49 citation statements)
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“…In building up the system, we utilized a portion of the broadly utilized content-based highlights, for example, breaking down Java content, source code, and word phrases (for example obsolete copyrights and "pay by telephone"). Phishing sites more often than not have many spelling and linguistic errors and long URLs [3].Another page substance highlight is the likeness score between pages' substance. Phishing sites for the most part utilizes comparable or even a similar content substance to its objective website page so as to draw their guests.…”
Section: A Feature Selectionmentioning
confidence: 99%
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“…In building up the system, we utilized a portion of the broadly utilized content-based highlights, for example, breaking down Java content, source code, and word phrases (for example obsolete copyrights and "pay by telephone"). Phishing sites more often than not have many spelling and linguistic errors and long URLs [3].Another page substance highlight is the likeness score between pages' substance. Phishing sites for the most part utilizes comparable or even a similar content substance to its objective website page so as to draw their guests.…”
Section: A Feature Selectionmentioning
confidence: 99%
“…They are recognized from other neural systems by having a criticism circle associated with their past choices, and memory cells. The choice a repetitive net came to at time step − 1 influences the choice it will achieve one minute later at time step [3].…”
Section: A Recurrent Neural Networkmentioning
confidence: 99%
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