How to use from
vLLM
Install from pip and serve model
# Install vLLM from pip:
pip install vllm
# Start the vLLM server:
vllm serve "HackerTwins/NVIDIA-Nemotron-Labs-3-Elastic-23B-A2.8B-GGUF"
# Call the server using curl (OpenAI-compatible API):
curl -X POST "http://localhost:8000/v1/chat/completions" \
	-H "Content-Type: application/json" \
	--data '{
		"model": "HackerTwins/NVIDIA-Nemotron-Labs-3-Elastic-23B-A2.8B-GGUF",
		"messages": [
			{
				"role": "user",
				"content": "What is the capital of France?"
			}
		]
	}'
Use Docker
docker model run hf.co/HackerTwins/NVIDIA-Nemotron-Labs-3-Elastic-23B-A2.8B-GGUF:Q4_K_M
Quick Links

NVIDIA Nemotron Labs 3 Elastic 23B A2.8B GGUF

Tiny enough to squeeze onto real hardware. Big enough to be interesting.

This repo contains GGUF 4-bit quantized files for running NVIDIA Nemotron Labs 3 Elastic 23B A2.8B with llama.cpp-compatible runtimes.

Files

File Best for Rough memory target
NVIDIA-Nemotron-Labs-3-Elastic-23B-A2.8B-Q4_K_S.gguf Smaller 4-bit run ~16GB VRAM/RAM
NVIDIA-Nemotron-Labs-3-Elastic-23B-A2.8B-Q4_K_M.gguf Better quality 4-bit run ~20GB VRAM/RAM

Which one should I use?

Use Q4_K_S if you are trying to make this thing fit on a 16GB GPU.

Use Q4_K_M if you have around 20GB+ available memory and want the better 4-bit quant.

Use in LM Studio

Open LM Studio and search for:

HackerTwins/NVIDIA-Nemotron-Labs-3-Elastic-23B-A2.8B-GGUF

You can also paste this Hugging Face repo URL directly into LM Studio’s model search.


license: other license_name: nvidia-open-model-license license_link: >- https://www.nvidia.com/en-us/agreements/enterprise-software/nvidia-open-model-license/

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GGUF
Model size
24B params
Architecture
nemotron_h_moe
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