The NVIDIA DeepSeek V3-0324 FP4 model is the quantized version of DeepSeek AI's DeepSeek V3-0324 model, which is an auto-regressive language model that uses an optimized transformer architecture. For more information, please check
here
. The NVIDIA DeepSeek V3-0324 FP4 model is quantized with
TensorRT Model Optimizer
.
This model is ready for commercial/non-commercial use.
Third-Party Community Consideration
This model is not owned or developed by NVIDIA. This model has been developed and built to a third-party’s requirements for this application and use case; see link to Non-NVIDIA
(DeepSeek V3-0324) Model Card
.
Developers looking to take off the shelf pre-quantized models for deployment in AI Agent systems, chatbots, RAG systems, and other AI-powered applications.
Input Type(s):
Text
Input Format(s):
String
Input Parameters:
1D (One-Dimensional): Sequences
Other Properties Related to Input:
Context length up to 128K
Output:
Output Type(s):
Text
Output Format:
String
Output Parameters:
1D (One-Dimensional): Sequences
Other Properties Related to Output:
N/A
This model was obtained by quantizing the weights and activations of DeepSeek V3-0324 to FP4 data type, ready for inference with TensorRT-LLM. Only the weights and activations of the linear operators within transformer blocks are quantized. This optimization reduces the number of bits per parameter from 8 to 4, reducing the disk size and GPU memory requirements by approximately 1.6x.
Usage
Deploy with TensorRT-LLM
To deploy the quantized FP4 checkpoint with
TensorRT-LLM
LLM API, follow the sample codes below (you need 8xB200 GPU and TensorRT LLM built from source with the latest main branch):
LLM API sample usage:
from tensorrt_llm import SamplingParams
from tensorrt_llm._torch import LLM
def main():
prompts = [
"Hello, my name is",
"The president of the United States is",
"The capital of France is",
"The future of AI is",
]
sampling_params = SamplingParams(max_tokens=32)
llm = LLM(model="nvidia/DeepSeek-V3-0324-FP4", tensor_parallel_size=8, enable_attention_dp=True)
outputs = llm.generate(prompts, sampling_params)
# Print the outputs.
for output in outputs:
prompt = output.prompt
generated_text = output.outputs[0].text
print(f"Prompt: {prompt!r}, Generated text: {generated_text!r}")
# The entry point of the program need to be protected for spawning processes.
if __name__ == '__main__':
main()
Benchmarks
This section compares the accuracy of the original DeepSeek V3-0324 model with our FP4-quantized version across benchmarks.
NVIDIA believes Trustworthy AI is a shared responsibility and we have established policies and practices to enable development for a wide array of AI applications. When downloaded or used in accordance with our terms of service, developers should work with their internal model team to ensure this model meets requirements for the relevant industry and use case and addresses unforeseen product misuse.
Please report security vulnerabilities or NVIDIA AI Concerns
here
.
Runs of nvidia DeepSeek-V3-0324-NVFP4 on huggingface.co
37.8K
Total runs
0
24-hour runs
60
3-day runs
-1.5K
7-day runs
-25.0K
30-day runs
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