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researcher

M. Patwary

47 papers hereh-index 288.3k citations67 works total

Matching runs newest-first, so older work may not be attached to this profile yet.

author position
  • middle author41

Across the 41 of 47 papers where every author was matched, so the position is known.

fields
  • cs.CL30
  • cs.LG9
  • cs.AI4
  • cs.CV1
  • cs.PF1
  • cs.SE1
same name
  • M. Patwary — 1 paper, h 10
  • M. Patwary — 1 paper, h 1
  • M. Patwary — 1 paper, h 1

Either other researchers who publish under this name, or the same person where the external sources have not merged their records.

identity via Semantic Scholar / OpenAlex

activity
20172026
most citedUsing DeepSpeed and Megatron to Train Megatron-Turing NLG 530B, A Large-Scale Generative Language Model

299 citations · 408 across the 31 of their papers we have counts for

collaborators
Showing cs.AIShow all

4 papers · 1 filter

cs.AI2026

Nemotron-Labs-3-Puzzle-75B-A9B: Compressing Hybrid MoE LLMs

Akhiad Bercovich, Talor Abramovich, Daniel Afrimi +67

We present Nemotron-Labs-3-Puzzle-75B-A9B, a compressed variant of Nemotron-3-Super optimized for interactive deployment. We designed the model to maximize server throughput under…

cs.AI2025

Multi-Agent Evolve: LLM Self-Improve through Co-evolution

Yixing Chen, Yiding Wang, Siqi Zhu +5

Reinforcement Learning (RL) has demonstrated significant potential in enhancing the reasoning capabilities of large language models (LLMs). However, the success of RL for LLMs heav…

cs.AI2025

Retro-Search: Exploring Untaken Paths for Deeper and Efficient Reasoning

Ximing Lu, Seungju Han, David Acuna +8

Large reasoning models exhibit remarkable reasoning capabilities via long, elaborate reasoning trajectories. Supervised fine-tuning on such reasoning traces, also known as distilla…

cs.AI2024

MIND: Math Informed syNthetic Dialogues for Pretraining LLMs

Syeda Nahida Akter, Shrimai Prabhumoye, John Kamalu +5

The utility of synthetic data to enhance pretraining data quality and hence to improve downstream task accuracy has been widely explored in recent large language models (LLMs). Yet…

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Not affiliated with arXiv. Researcher data from Semantic Scholar (ODC-BY) and OpenAlex.