Parallelism and Acceleration for Large Language Models with Bryan Catanzaro - #507 episode artwork

EPISODE · Aug 5, 2021 · 50 MIN

Parallelism and Acceleration for Large Language Models with Bryan Catanzaro - #507

from The TWIML AI Podcast (formerly This Week in Machine Learning & Artificial Intelligence) · host Sam Charrington

Today we’re joined by Bryan Catanzaro, vice president of applied deep learning research at NVIDIA. Most folks know Bryan as one of the founders/creators of cuDNN, the accelerated library for deep neural networks. In our conversation, we explore his interest in high-performance computing and its recent overlap with AI, his current work on Megatron, a framework for training giant language models, and the basic approach for distributing a large language model on DGX infrastructure.  We also discuss the three different kinds of parallelism, tensor parallelism, pipeline parallelism, and data parallelism, that Megatron provides when training models, as well as his work on the Deep Learning Super Sampling project and the role it's playing in the present and future of game development via ray tracing.  The complete show notes for this episode can be found at twimlai.com/go/507.

Episode metadata supplied by the publisher feed · Published Aug 5, 2021

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Parallelism and Acceleration for Large Language Models with Bryan Catanzaro - #507

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