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Timothy Chou

4 papers

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papers

Publications (4)

cs.LG2026

ScaleBITS: Scalable Bitwidth Search for Hardware-Aligned Mixed-Precision LLMs

Xinlin Li, Timothy Chou, Josh Fromm +3

Post-training weight quantization is crucial for reducing the memory and inference cost of large language models (LLMs), yet pushing the average precision below 4 bits remains chal…

cs.LG2025

Accelerating Transformer Inference and Training with 2:4 Activation Sparsity

Daniel Haziza, Timothy Chou, Dhruv Choudhary +7

In this paper, we demonstrate how to leverage 2:4 sparsity, a popular hardware-accelerated GPU sparsity pattern, to activations to accelerate large language model training and infe…

cs.LG2025

Fast and Simplex: 2-Simplicial Attention in Triton

Aurko Roy, Timothy Chou, Sai Surya Duvvuri +5

Recent work has shown that training loss scales as a power law with both model size and the number of tokens, and that achieving compute-optimal models requires scaling model size…

cs.AI2024

The Llama 3 Herd of Models

Aaron Grattafiori, Abhimanyu Dubey, Abhinav Jauhri +556

Modern artificial intelligence (AI) systems are powered by foundation models. This paper presents a new set of foundation models, called Llama 3. It is a herd of language models th…

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