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@Tech2Wild: Running GLM-5.2 at home the FULL 744B, all 256 experts, UNPRUNED across 4× NVIDIA DGX Spark (GB10). 200K context · MTP …

X AI KOLs Following · 2d ago Cached

A detailed recipe for running the unpruned GLM-5.2 model (744B parameters, 256 experts) across 4 NVIDIA DGX Spark nodes with 200K context, achieving up to 60.5 tok/s aggregate. Includes performance benchmarks, credits, and patches.

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#moE

README_EN.md · openpangu/openPangu-2.0-Flash at main

Reddit r/LocalLLaMA · 6d ago Cached

openPangu-2.0-Flash is a 92B-parameter MoE model with 6B activated parameters, trained on Ascend, featuring 512k context length and fast thinking capabilities. It achieves strong performance on reasoning and coding benchmarks, using architectural innovations like MLA attention and multi-token prediction.

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SlimQwen: Exploring the Pruning and Distillation in Large MoE Model Pre-training

Hugging Face Daily Papers · 2026-05-09 Cached

This paper explores structured pruning and knowledge distillation techniques for compressing large Mixture-of-Experts (MoE) models during pre-training. It demonstrates that progressive pruning and combined distillation strategies, such as multi-token prediction distillation, improve downstream performance, exemplified by compressing Qwen3-Next-80A3B to a more efficient 23A2B model.

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