
Privacy and Security for Stable Diffusion and LLMs with Nicholas Carlini - #618
The TWIML AI Podcast (formerly This Week in Machine Learning & Artificial Intelligence)
Navigating Adversarial Machine Learning Challenges
This chapter explores the complexities and current state of adversarial machine learning, focusing on the difficulties faced in defending against adversarial examples. It discusses various attack methodologies and the inadequacies of proposed defenses, including adversarial training’s limitations. Additionally, the chapter highlights important privacy concerns related to sensitive data and the risks posed by privacy attacks in machine learning models.
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