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Tech Press Review - Sept 6th 2023

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Manage episode 376746580 series 3505748
Content provided by Flint and Pierre Vannier. All podcast content including episodes, graphics, and podcast descriptions are uploaded and provided directly by Flint and Pierre Vannier or their podcast platform partner. If you believe someone is using your copyrighted work without your permission, you can follow the process outlined here https://ppacc.player.fm/legal.

- The podcast begins by exploring the intersection of Generative AI and intellectual property. The discussion covers the growing dilemma of who owns and profits from AI-generated work, as well as how perception of cultural appropriation and fair use come into play as AI continues to evolve.

- Following this, listeners will learn about DINOv2; an open-source, self-supervised learning model developed by Meta AI. This method for training high-performance computer vision models can generate high-quality video segmentation and learn features beyond standard methods, benefiting many applications such as AI mapping of forests in various global locations.

- The next topic delves into shape reconstruction in computer vision applications, an area where researchers have made significant advancements using differentiable rendering with 3D Gaussians. This discussion will help listeners understand the potential applications and effects of this technology.

- After that, the exciting collaboration between Google Lab Sessions and Grammy award-winning rapper and MIT visiting scholar, Lupe Fiasco will be discussed. This partnership resulted in an experimental AI project named TextFX, designed to assist wordsmiths in their creative process. The project makes use of Large Language Models to facilitate creative text generation.

- Wrapping up the podcast, listeners will get insights into how large language models (LLMs), like GPT-3 and PaLM, are being taught to reason symbolically. The piece explores an in-context learning approach that uses algorithmic prompting techniques to enhance the models' abilities for a more robust problem-solving capability and even detailed explanations.

Overall, this thrilling podcast discusses the potential of AI in various fields, from creative industries to mapping forests. It explores the ethical questions surrounding AI-generated work and discusses groundbreaking methods for training AI models. Tune in to swim deeper into AI-land!

  continue reading

7 episodes

Artwork
iconShare
 
Manage episode 376746580 series 3505748
Content provided by Flint and Pierre Vannier. All podcast content including episodes, graphics, and podcast descriptions are uploaded and provided directly by Flint and Pierre Vannier or their podcast platform partner. If you believe someone is using your copyrighted work without your permission, you can follow the process outlined here https://ppacc.player.fm/legal.

- The podcast begins by exploring the intersection of Generative AI and intellectual property. The discussion covers the growing dilemma of who owns and profits from AI-generated work, as well as how perception of cultural appropriation and fair use come into play as AI continues to evolve.

- Following this, listeners will learn about DINOv2; an open-source, self-supervised learning model developed by Meta AI. This method for training high-performance computer vision models can generate high-quality video segmentation and learn features beyond standard methods, benefiting many applications such as AI mapping of forests in various global locations.

- The next topic delves into shape reconstruction in computer vision applications, an area where researchers have made significant advancements using differentiable rendering with 3D Gaussians. This discussion will help listeners understand the potential applications and effects of this technology.

- After that, the exciting collaboration between Google Lab Sessions and Grammy award-winning rapper and MIT visiting scholar, Lupe Fiasco will be discussed. This partnership resulted in an experimental AI project named TextFX, designed to assist wordsmiths in their creative process. The project makes use of Large Language Models to facilitate creative text generation.

- Wrapping up the podcast, listeners will get insights into how large language models (LLMs), like GPT-3 and PaLM, are being taught to reason symbolically. The piece explores an in-context learning approach that uses algorithmic prompting techniques to enhance the models' abilities for a more robust problem-solving capability and even detailed explanations.

Overall, this thrilling podcast discusses the potential of AI in various fields, from creative industries to mapping forests. It explores the ethical questions surrounding AI-generated work and discusses groundbreaking methods for training AI models. Tune in to swim deeper into AI-land!

  continue reading

7 episodes

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