Text Generation
MLX
GGUF
English
Chinese
cellsentry
excel
spreadsheet
formula-audit
pii-detection
data-extraction
lora
qwen2.5
conversational
Instructions to use almax000/cellsentry-model with libraries, inference providers, notebooks, and local apps. Follow these links to get started.
- Libraries
- MLX
How to use almax000/cellsentry-model with MLX:
# Make sure mlx-lm is installed # pip install --upgrade mlx-lm # Generate text with mlx-lm from mlx_lm import load, generate model, tokenizer = load("almax000/cellsentry-model") prompt = "Write a story about Einstein" messages = [{"role": "user", "content": prompt}] prompt = tokenizer.apply_chat_template( messages, add_generation_prompt=True ) text = generate(model, tokenizer, prompt=prompt, verbose=True) - llama-cpp-python
How to use almax000/cellsentry-model with llama-cpp-python:
# !pip install llama-cpp-python from llama_cpp import Llama llm = Llama.from_pretrained( repo_id="almax000/cellsentry-model", filename="cellsentry-1.5b-v3-q4km.gguf", )
llm.create_chat_completion( messages = [ { "role": "user", "content": "What is the capital of France?" } ] ) - Notebooks
- Google Colab
- Kaggle
- Local Apps
- llama.cpp
How to use almax000/cellsentry-model with llama.cpp:
Install from brew
brew install llama.cpp # Start a local OpenAI-compatible server with a web UI: llama-server -hf almax000/cellsentry-model # Run inference directly in the terminal: llama-cli -hf almax000/cellsentry-model
Install from WinGet (Windows)
winget install llama.cpp # Start a local OpenAI-compatible server with a web UI: llama-server -hf almax000/cellsentry-model # Run inference directly in the terminal: llama-cli -hf almax000/cellsentry-model
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 almax000/cellsentry-model # Run inference directly in the terminal: ./llama-cli -hf almax000/cellsentry-model
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 almax000/cellsentry-model # Run inference directly in the terminal: ./build/bin/llama-cli -hf almax000/cellsentry-model
Use Docker
docker model run hf.co/almax000/cellsentry-model
- LM Studio
- Jan
- vLLM
How to use almax000/cellsentry-model with vLLM:
Install from pip and serve model
# Install vLLM from pip: pip install vllm # Start the vLLM server: vllm serve "almax000/cellsentry-model" # Call the server using curl (OpenAI-compatible API): curl -X POST "http://localhost:8000/v1/chat/completions" \ -H "Content-Type: application/json" \ --data '{ "model": "almax000/cellsentry-model", "messages": [ { "role": "user", "content": "What is the capital of France?" } ] }'Use Docker
docker model run hf.co/almax000/cellsentry-model
- Ollama
How to use almax000/cellsentry-model with Ollama:
ollama run hf.co/almax000/cellsentry-model
- Unsloth Studio new
How to use almax000/cellsentry-model with Unsloth Studio:
Install Unsloth Studio (macOS, Linux, WSL)
curl -fsSL https://unsloth.ai/install.sh | sh # Run unsloth studio unsloth studio -H 0.0.0.0 -p 8888 # Then open http://localhost:8888 in your browser # Search for almax000/cellsentry-model to start chatting
Install Unsloth Studio (Windows)
irm https://unsloth.ai/install.ps1 | iex # Run unsloth studio unsloth studio -H 0.0.0.0 -p 8888 # Then open http://localhost:8888 in your browser # Search for almax000/cellsentry-model to start chatting
Using HuggingFace Spaces for Unsloth
# No setup required # Open https://huggingface.co/spaces/unsloth/studio in your browser # Search for almax000/cellsentry-model to start chatting
- Pi new
How to use almax000/cellsentry-model with Pi:
Start the MLX server
# Install MLX LM: uv tool install mlx-lm # Start a local OpenAI-compatible server: mlx_lm.server --model "almax000/cellsentry-model"
Configure the model in Pi
# Install Pi: npm install -g @mariozechner/pi-coding-agent # Add to ~/.pi/agent/models.json: { "providers": { "mlx-lm": { "baseUrl": "http://localhost:8080/v1", "api": "openai-completions", "apiKey": "none", "models": [ { "id": "almax000/cellsentry-model" } ] } } }Run Pi
# Start Pi in your project directory: pi
- Hermes Agent new
How to use almax000/cellsentry-model with Hermes Agent:
Start the MLX server
# Install MLX LM: uv tool install mlx-lm # Start a local OpenAI-compatible server: mlx_lm.server --model "almax000/cellsentry-model"
Configure Hermes
# Install Hermes: curl -fsSL https://hermes-agent.nousresearch.com/install.sh | bash hermes setup # Point Hermes at the local server: hermes config set model.provider custom hermes config set model.base_url http://127.0.0.1:8080/v1 hermes config set model.default almax000/cellsentry-model
Run Hermes
hermes
- MLX LM
How to use almax000/cellsentry-model with MLX LM:
Generate or start a chat session
# Install MLX LM uv tool install mlx-lm # Interactive chat REPL mlx_lm.chat --model "almax000/cellsentry-model"
Run an OpenAI-compatible server
# Install MLX LM uv tool install mlx-lm # Start the server mlx_lm.server --model "almax000/cellsentry-model" # Calling the OpenAI-compatible server with curl curl -X POST "http://localhost:8000/v1/chat/completions" \ -H "Content-Type: application/json" \ --data '{ "model": "almax000/cellsentry-model", "messages": [ {"role": "user", "content": "Hello"} ] }' - Docker Model Runner
How to use almax000/cellsentry-model with Docker Model Runner:
docker model run hf.co/almax000/cellsentry-model
- Lemonade
How to use almax000/cellsentry-model with Lemonade:
Pull the model
# Download Lemonade from https://lemonade-server.ai/ lemonade pull almax000/cellsentry-model
Run and chat with the model
lemonade run user.cellsentry-model-{{QUANT_TAG}}List all available models
lemonade list
Commit ·
a267862
verified ·
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Parent(s):
initial commit
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- README.md +3 -0
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---
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license: mit
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---
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