The rapid advancements and growing variety of publicly available generative AI tools enables cybersecurity use cases for threat modeling, security awareness support, web application scanning, actionable insights, and alert fatigue prevention, they also came with a steep rise in the number of offensive/rogue/malicious generative AI applications. The result is a new era of cybersecurity that necessitates new approaches to detect and mitigate cyberattacks. With large language models, social engineering tactics can reach new heights in the efficiency of phishing campaigns and cyber-deception in general. This book is a review of technologies, tools, and approaches in this rapidly increasing field. Specifically, it looks into the most common generative AI tools used by malicious actors, outlines cyber-deception techniques realized using generative AI, and the security risks of large language models. It covers malicious prompt engineering techniques hackers use in chatbots for jailbreaking common defenses, such as via a DAN prompt, the switch technique, or character play, noting that unsafe code can be generated with genAI chatbots even without jailbreaking (such as via modular coding). Being familiar with these is important not only to understand how threat actors bypass security mechanisms of chatbots, but also to be able to use chatbots for ethical hacking without being blocked (differentiating between legitimate and nefarious use). This book also discusses how text-to-image, text-to-speech, and text-to-video diffusion models are used in the wild for cyber-deception, and deepfake detection techniques to fight against this. The reactive countermeasures covered also include spam detection and online harassment protection. Proactive countermeasures are suggested to make generative AI models less susceptible to misuse, from hardening security of generative AI services and tools to securing generative AI use.
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Paperback. Etat : new. Paperback. This book explores the most common generative AI (GenAI) tools and techniques used by malicious actors for hacking and cyber-deception, along with the security risks of large language models (LLMs). It also covers how LLM deployment and use can be secured, and how generative AI can be utilized in SOC automation.The rapid advancements and growing variety of publicly available generative AI tools enables cybersecurity use cases for threat modeling, security awareness support, web application scanning, actionable insights, and alert fatigue prevention. However, they also came with a steep rise in the number of offensive/rogue/malicious generative AI applications. With large language models, social engineering tactics can reach new heights in the efficiency of phishing campaigns and cyber-deception via synthetic media generation (misleading deepfake images and videos, faceswapping, morphs, and voice clones). The result is a new era of cybersecurity that necessitates innovative approaches to detect and mitigate sophisticated cyberattacks, and to prevent hyper-realistic cyber-deception.This work provides a starting point for researchers and students diving into malicious chatbot use, system administrators trying to harden the security of GenAI deployments, and organizations prone to sensitive data leak through shadow AI. It also benefits SOC analysts considering generative AI for partially automating incident detection and response, and GenAI vendors working on security guardrails against malicious prompting. This item is printed on demand. Shipping may be from multiple locations in the US or from the UK, depending on stock availability. N° de réf. du vendeur 9783032052490
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Taschenbuch. Etat : Neu. This item is printed on demand - it takes 3-4 days longer - Neuware -This book explores the most common generative AI (GenAI) tools and techniques used by malicious actors for hacking and cyber-deception, along with the security risks of large language models (LLMs). It also covers how LLM deployment and use can be secured, and how generative AI can be utilized in SOC automation.The rapid advancements and growing variety of publicly available generative AI tools enables cybersecurity use cases for threat modeling, security awareness support, web application scanning, actionable insights, and alert fatigue prevention. However, they also came with a steep rise in the number of offensive/rogue/malicious generative AI applications. With large language models, social engineering tactics can reach new heights in the efficiency of phishing campaigns and cyber-deception via synthetic media generation (misleading deepfake images and videos, faceswapping, morphs, and voice clones). The result is a new era of cybersecurity that necessitates innovative approaches to detect and mitigate sophisticated cyberattacks, and to prevent hyper-realistic cyber-deception.This work provides a starting point for researchers and students diving into malicious chatbot use, system administrators trying to harden the security of GenAI deployments, and organizations prone to sensitive data leak through shadow AI. It also benefits SOC analysts considering generative AI for partially automating incident detection and response, and GenAI vendors working on security guardrails against malicious prompting. 71 pp. Englisch. N° de réf. du vendeur 9783032052490
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