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This paper reviews the role of artificial neural networks (ANNs) in enhancing cybersecurity measures. It delves into research methodologies employed to detect security breaches, potential threats, and spam, among other cybersecurity challenges. The study further investigates the literature to gauge the efficacy of using AI methodologies in pinpointing system attacks, showcasing the potential of AI in safeguarding various data types, be it academic or industrial, and preventing system vulnerabilities. ANNs, with their predictive capabilities and experiential learning, emerge as advanced security protection and threat detection tools. Additionally, the research delves into developing a hybrid multi-agent system that leverages deep learning for identifying and mitigating cyberattacks, aiming to shed light on the current risks in information systems and propose effective countermeasures.
Ali et al. (Mon,) studied this question.
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