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llama-cpp-bin

Pre-built llama.cpp server binaries as a py package. Install a wheel for your platform and run it.

Install

Pre-built wheels (recommended)

pip install --index-url https://vladlearns.github.io/llama-cpp-bin/whl/cpu llama-cpp-bin
pip install --index-url https://vladlearns.github.io/llama-cpp-bin/whl/cu124 llama-cpp-bin
pip install --index-url https://vladlearns.github.io/llama-cpp-bin/whl/cu131 llama-cpp-bin
pip install --index-url https://vladlearns.github.io/llama-cpp-bin/whl/rocm llama-cpp-bin
pip install --index-url https://vladlearns.github.io/llama-cpp-bin/whl/vulkan llama-cpp-bin

Pin to a specific version:

pip install --index-url https://vladlearns.github.io/llama-cpp-bin/whl/cu124 llama-cpp-bin==9095.0.0

PyPI (builds from source)

If no pre-built wheel matches your platform, pip falls back to building from the sdist on PyPI:

pip install llama-cpp-bin

You will need CMake, a c++ compiler, and the llama.cpp source submodule.

Dev

git clone --recurse-submodules https://github.com/vladlearns/llama-cpp-bin
cd llama-cpp-bin
CMAKE_ARGS="-DGGML_CUDA=ON" pip install -v .

Run

CLI:

llama-cpp-server -m your-model.gguf --port 8080

Python:

from llama_cpp_bin import run_server
proc = run_server("your-model.gguf", port=8080)
proc.wait()

Or get the binary path and run it yourself:

import llama_cpp_bin
import subprocess
binary = llama_cpp_bin.get_binary_path()
subprocess.Popen([binary, "--model", "your-model.gguf"])

Download files

Download the file for your platform. If you're not sure which to choose, learn more about installing packages.

Source Distribution

llama_cpp_bin-10075.0.0.tar.gz (35.4 MB view details)

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