5min chapter

Latent Space: The AI Engineer Podcast — Practitioners talking LLMs, CodeGen, Agents, Multimodality, AI UX, GPU Infra and all things Software 3.0 cover image

AI Fundamentals: Datasets 101

Latent Space: The AI Engineer Podcast — Practitioners talking LLMs, CodeGen, Agents, Multimodality, AI UX, GPU Infra and all things Software 3.0

CHAPTER

How to Train a Model That Is 100 Billion Parameters

The most important thing about datasets is one understanding how big they are and then using skin loss to work yourself back into a size model you can train with them. One token is an integer that can be up to, actually don't know what the highest number will be, but it's an integer representation of words. The same word can also have different representations based on where it is in a sentence. They actually am at the depth of tokenization. And honestly, there was actually a well-known flaw with GPT-3, where you could actually do a quick test if you're talking to a bot or not.

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