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unsloth/MiniMax-M3-GGUF
MiniMax-M3-GGUF is a image-text-to-text model from unsloth. Use it for the image-text-to-text task on the model card, and read the license before you ship it in a product. It is set up for transformers. The card lists the license as other.
<div <p style="margin: 0 0 0px 0; margin-top: 0px;" <emSee <a href="https://unsloth.ai/docs/basics/unsloth-dynamic-v2.0-gguf"Unsloth Dynamic 2.0 GGUFs</a for our quantization benchmarks.</em </p <div style="display: f…
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From the Hugging Face model README
MiniMax-M3 support in llama.cpp is preliminary and not yet in a released build. To run these GGUFs, build llama.cpp from PR #24523:
git clone https://github.com/ggml-org/llama.cpp
cd llama.cpp
git fetch origin pull/24523/head:minimax-m3
git checkout minimax-m3
cmake -B build -DGGML_CUDA=ON
cmake --build build --config Release -j --target llama-cli llama-server
Then run a quant. The model is large (~428B params), so offload across GPUs with -ngl 99 or keep the weights in CPU RAM:
./build/bin/llama-cli -hf unsloth/MiniMax-M3-GGUF:UD-IQ1_M
Note: MiniMax Sparse Attention is not supported yet, so inference falls back to dense attention.
Highlights:
| Architecture | MoE + MSA (MiniMax Sparse Attention) |
| Total Parameters | ~428B |
| Activated Parameters | ~23B |
| Experts | 128 (4 active per token) |
| Layers | 60 |
| Context Length | 1M tokens |
| Modalities | Text, Image, Video |
| Precision | bfloat16 |
| Transformers | ≥ 4.52.4 (trust_remote_code=True) |
| License | MiniMax Community License |
M3 supports two reasoning modes:
Download the model:
hf download MiniMaxAI/MiniMax-M3 --local-dir MiniMax-M3
You can also get model weights from ModelScope.
We recommend the following parameters for best performance: temperature=1.0, top_p=0.95, top_k=40. Default system prompt:
You are a helpful assistant. Your name is MiniMax-M3 and was built by MiniMax.