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Implementing Deep Learning to Detect Malicious URLs

Allbwn ymchwil: Pennod mewn Llyfr/Adroddiad/Trafodion CynhadleddCyfraniad mewn cynhadleddadolygiad gan gymheiriaid

Crynodeb

The GoPhish Chrome extension aims to increase web security by providing users with an easy-to-use tool for identifying malicious URLs. With a focus on simplicity, the extension lets users start URL scans with a context menu interaction. This sets off a machine learning system that analyzes the input URL and produces a confidence score that indicates how malignant it is. The main functionality is underpinned by a structured manifest file outlining required rights and JavaScript components handling data processing and user interaction. For effective client-side execution, the machine learning model, which was initially created in Keras, is transformed into TensorFlow.js format.execution. After thorough evaluation and comprehensive testing, it shows an accuracy rate of 74.626% when classifying real-world URLs, this is below the targeted standard of 95% for dependable security applications. This research emphasizes the necessity of additional model optimization to improve its prediction efficacy in real-world situations, demonstrating the continuous challenges associated with implementing machine learning solutions in browser extensions for cybersecurity.

Iaith wreiddiolSaesneg
TeitlAI Applications in Cyber Security and Privacy of Communication Networks - Proceedings of 10th International Conference on Cyber Security, Privacy in Communication Networks, ICCS 2024
GolygyddionChaminda E. R. Hewage, Mohammad Haseeb Zafar, Nishtha Kesswani
CyhoeddwrSpringer Science and Business Media Deutschland GmbH
Tudalennau13-23
Nifer y tudalennau11
ISBN (Electronig)9789819674008
ISBN (Argraffiad)9789819673995
Dynodwyr Gwrthrych Digidol (DOIs)
StatwsCyhoeddwyd - 4 Medi 2025
Digwyddiad10th International Conference on Cyber Security, Privacy in Communication Networks, ICCS 2024 - Cardiff, Y Deyrnas Unedig
Hyd: 9 Rhag 202410 Rhag 2024

Cyfres gyhoeddiadau

EnwLecture Notes in Networks and Systems
Cyfrol1453 LNNS
ISSN (Argraffiad)2367-3370
ISSN (Electronig)2367-3389

Cynhadledd

Cynhadledd10th International Conference on Cyber Security, Privacy in Communication Networks, ICCS 2024
Gwlad/TiriogaethY Deyrnas Unedig
DinasCardiff
Cyfnod9/12/2410/12/24

Dyfynnu hyn