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๐Ÿ’  Compositional Learning Journal Club

Join us this week for an in-depth discussion on Unlearning in Deep generative models in the context of cutting-edge generative models. We will explore recent breakthroughs and challenges, focusing on how these models handle unlearning tasks and where improvements can be made.

โœ… This Week's Presentation:

๐Ÿ”น Title: The Illusion of Unlearning: The Unstable Nature of Machine Unlearning in Text-to-Image Diffusion Models


๐Ÿ”ธ Presenter: Aryan Komaei

๐ŸŒ€ Abstract:
This paper tackles a critical issue in text-to-image diffusion models like Stable Diffusion, DALLยทE, and Midjourney. These models are trained on massive datasets, often containing private or copyrighted content, which raises serious legal and ethical concerns. To address this, machine unlearning methods have emerged, aiming to remove specific information from the models. However, this paper reveals a major flaw: these unlearned concepts can come back when the model is fine-tuned. The authors introduce a new framework to analyze and evaluate the stability of current unlearning techniques and offer insights into why they often fail, paving the way for more robust future methods.

Session Details:
- ๐Ÿ“… Date: Tuesday
- ๐Ÿ•’ Time: 11:00 - 12:00 PM
- ๐ŸŒ Location: Online at vc.sharif.edu/ch/rohban

We look forward to your participation! โœŒ๏ธ



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๐Ÿ’  Compositional Learning Journal Club

Join us this week for an in-depth discussion on Unlearning in Deep generative models in the context of cutting-edge generative models. We will explore recent breakthroughs and challenges, focusing on how these models handle unlearning tasks and where improvements can be made.

โœ… This Week's Presentation:

๐Ÿ”น Title: The Illusion of Unlearning: The Unstable Nature of Machine Unlearning in Text-to-Image Diffusion Models


๐Ÿ”ธ Presenter: Aryan Komaei

๐ŸŒ€ Abstract:
This paper tackles a critical issue in text-to-image diffusion models like Stable Diffusion, DALLยทE, and Midjourney. These models are trained on massive datasets, often containing private or copyrighted content, which raises serious legal and ethical concerns. To address this, machine unlearning methods have emerged, aiming to remove specific information from the models. However, this paper reveals a major flaw: these unlearned concepts can come back when the model is fine-tuned. The authors introduce a new framework to analyze and evaluate the stability of current unlearning techniques and offer insights into why they often fail, paving the way for more robust future methods.

Session Details:
- ๐Ÿ“… Date: Tuesday
- ๐Ÿ•’ Time: 11:00 - 12:00 PM
- ๐ŸŒ Location: Online at vc.sharif.edu/ch/rohban

We look forward to your participation! โœŒ๏ธ

BY RIML Lab


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Importantly, that investor viewpoint is not new. It cycles in when conditions are right (and vice versa). It also brings the ineffective warnings of an overpriced market with it.Looking toward a good 2022 stock market, there is no apparent reason to expect these issues to change.

That strategy is the acquisition of a value-priced company by a growth company. Using the growth company's higher-priced stock for the acquisition can produce outsized revenue and earnings growth. Even better is the use of cash, particularly in a growth period when financial aggressiveness is accepted and even positively viewed.he key public rationale behind this strategy is synergy - the 1+1=3 view. In many cases, synergy does occur and is valuable. However, in other cases, particularly as the strategy gains popularity, it doesn't. Joining two different organizations, workforces and cultures is a challenge. Simply putting two separate organizations together necessarily creates disruptions and conflicts that can undermine both operations.

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