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ΩFFFΣLLIα llama.cpp

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llama_OFFFELLIA_1984 Vintage Web UI - IBM Granite 4.2 Reasoning PIX llama_OFFFELLIA_1984 Vintage Web UI - IBM Granite 4.2 Reasoning llama_OFFFELLIA_1984 Vintage Web UI - IBM Granite 4.2 Reasoning llama_OFFFELLIA_1984 Vintage Web UI - IBM Granite 4.2 Reasoning

Inferência de LLM em C/C++, com a interface Web construída a partir deste código.

License: MIT Upstream

ggml · build · server · licença

Árvore local de llama.cpp. O nome ΩFFFΣLLIα llama.cpp aparece no centro de qualquer página da interface, em qualquer porta do llama-server. Os logos SVG da interface foram substituídos pelo caractere Ω.

Modificações

Área Comportamento nesta árvore
Compilação O CMake principal força LLAMA_BUILD_UI=ON e LLAMA_USE_PREBUILT_UI=OFF. Sempre que o servidor entra no build, o Vite compila tools/ui a partir do código local. Um cache antigo não reativa o download.
Atualização automática A compilação não baixa dist.tar.gz nem consulta o Hugging Face. Não há checagem SHA-256 do pacote da interface.
PWA O service worker não é registrado e não há aviso de versão nova. sw.js, manifest, Workbox e version.json não são exigidos para embutir a interface.
Favicon e SVG npm run build é só vite build. O gerador de assets PWA não lê nem regrava favicon.svg. O HTML não declara favicon e o manifesto não lista ícones.
Logos O logo da barra lateral e o logo MCP renderizam Ω no lugar do SVG.
Temas Em Theme há cinco opções neon: Azul neon, Vermelho neon, Verde neon, Preto e cinza neon e Alumínio escovado. Cada uma troca a paleta e acende bordas, botões e o nome central.
MCP O proxy CORS da interface (--ui-mcp-proxy) fica ligado por padrão. --no-ui-mcp-proxy desliga. Servidores MCP ainda pedem --mcp-servers-config ou --mcp-servers-json. As ferramentas de shell continuam desligadas sem --tools ou --agent.

A primeira compilação do servidor precisa de Node.js e npm, porque o Vite instala as dependências da interface e gera os assets embutidos.

Não exponha o llama-server fora da máquina enquanto o proxy MCP estiver ativo.

Quick start

A few options to get llama.cpp installed on your machine:

# curl
curl -LsSf https://llama.app/install.sh | sh

# powershell
irm https://llama.app/install.ps1 | iex

Once installed:

# Download and run a model directly from Hugging Face
llama cli -hf ggml-org/Qwen3.5-0.8B-GGUF

# Launch OpenAI-compatible API server
llama serve -hf ggml-org/Qwen3.5-0.8B-GGUF
VLM session with `llama cli` VLM session with llama cli Built-in web UI against `llama serve` running Qwen 3.6 Built-in web UI against llama serve

Description

The main goal of llama.cpp is to enable LLM (and VLM) inference with minimal setup and state-of-the-art performance on a wide range of hardware - locally and in the cloud.

  • Plain C/C++ implementation without any dependencies
  • Apple silicon is a first-class citizen - optimized via ARM NEON, Accelerate and Metal frameworks
  • AVX, AVX2, AVX512 and AMX support for x86 architectures
  • RVV, ZVFH, ZFH, ZICBOP and ZIHINTPAUSE support for RISC-V architectures
  • 1.5-bit, 2-bit, 3-bit, 4-bit, 5-bit, 6-bit, and 8-bit integer quantization for faster inference and reduced memory use
  • Custom CUDA kernels for running LLMs on NVIDIA GPUs (support for AMD GPUs via HIP and Moore Threads GPUs via MUSA)
  • Vulkan and SYCL backend support
  • CPU+GPU hybrid inference to partially accelerate models larger than the total VRAM capacity

The llama.cpp project is build on top of the ggml library.

Supported backends

Backend Target devices
BLAS All
BLIS All
CANN Ascend NPU
CUDA Nvidia GPU
HIP AMD GPU
Hexagon Snapdragon
IBM zDNN IBM Z & LinuxONE
MUSA Moore Threads GPU
Metal Apple Silicon
OpenCL Adreno GPU
OpenVINO [In Progress] Intel CPUs, GPUs, and NPUs
RPC All
SYCL Intel GPU
VirtGPU VirtGPU APIR
Vulkan GPU
WebGPU All
ZenDNN AMD CPU

Documentation

Tools

Development

Contributing

  • Contributors can open PRs
  • Collaborators will be invited based on contributions
  • Maintainers can push to branches in the llama.cpp repo and merge PRs into the master branch
  • Any help with managing issues, PRs and projects is very appreciated!
  • Read the CONTRIBUTING.md for more information

Acknowledgements

  • yhirose/cpp-httplib - Single-header HTTP server, used by llama-server - MIT license
  • nothings/stb - Single-header image format decoder, used by multimodal subsystem - Public domain
  • nlohmann/json - Single-header JSON library, used by various tools/examples - MIT License
  • mackron/miniaudio - Single-header audio format decoder, used by multimodal subsystem - Public domain
  • sheredom/subprocess.h - Single-header process launching solution for C and C++ - Public domain
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