How to use from
llama.cpp
Install (macOS, Linux)
curl -LsSf https://llama.app/install.sh | sh
# Start a local OpenAI-compatible server with a web UI:
llama serve -hf schneewolflabs/B1-9B-GGUF:Q8_0
# Run inference directly in the terminal:
llama cli -hf schneewolflabs/B1-9B-GGUF:Q8_0
Install from WinGet (Windows)
winget install llama.cpp
# Start a local OpenAI-compatible server with a web UI:
llama serve -hf schneewolflabs/B1-9B-GGUF:Q8_0
# Run inference directly in the terminal:
llama cli -hf schneewolflabs/B1-9B-GGUF:Q8_0
Use pre-built binary
# Download pre-built binary from:
# https://github.com/ggerganov/llama.cpp/releases
# Start a local OpenAI-compatible server with a web UI:
./llama-server -hf schneewolflabs/B1-9B-GGUF:Q8_0
# Run inference directly in the terminal:
./llama-cli -hf schneewolflabs/B1-9B-GGUF:Q8_0
Build from source code
git clone https://github.com/ggerganov/llama.cpp.git
cd llama.cpp
cmake -B build
cmake --build build -j --target llama-server llama-cli
# Start a local OpenAI-compatible server with a web UI:
./build/bin/llama-server -hf schneewolflabs/B1-9B-GGUF:Q8_0
# Run inference directly in the terminal:
./build/bin/llama-cli -hf schneewolflabs/B1-9B-GGUF:Q8_0
Use Docker
docker model run hf.co/schneewolflabs/B1-9B-GGUF:Q8_0
Quick Links

B1-9B — GGUF

Q8_0 (the quant every card number was measured on) and vision mmproj for schneewolflabs/B1-9B — the B0-9B iteration that answers after it thinks.

llama-server -m B1-9B-Q8_0.gguf -ngl 99 -c 8192 --jinja -fa on -np 1 \
    --spec-type draft-mtp --spec-draft-n-max 4 \
    --mmproj B1-9B-mmproj-f16.gguf

Same architecture and layer count as B0-9B, so the B0-9B-GGUF deployment guide — offload rules, f16 KV cache, 6GB recipes — applies unchanged. With thinking on, pass tool definitions through the native tools field and do not prefix /think; that request shape is where the answer-after-thinking gain is largest.

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GGUF
Model size
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Architecture
qwen35
Hardware compatibility
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