Instructions to use TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF with libraries, inference providers, notebooks, and local apps. Follow these links to get started.
- Notebooks
- Google Colab
- Kaggle
- Local Apps Settings
- llama.cpp
How to use TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF with 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 TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF:Q4_K_M # Run inference directly in the terminal: llama cli -hf TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF:Q4_K_M
Install from WinGet (Windows)
winget install llama.cpp # Start a local OpenAI-compatible server with a web UI: llama serve -hf TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF:Q4_K_M # Run inference directly in the terminal: llama cli -hf TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF:Q4_K_M
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 TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF:Q4_K_M # Run inference directly in the terminal: ./llama-cli -hf TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF:Q4_K_M
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 TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF:Q4_K_M # Run inference directly in the terminal: ./build/bin/llama-cli -hf TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF:Q4_K_M
Use Docker
docker model run hf.co/TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF:Q4_K_M
- LM Studio
- Jan
- Ollama
How to use TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF with Ollama:
ollama run hf.co/TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF:Q4_K_M
- Unsloth Desktop
- Pi
How to use TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF with Pi:
Start the llama.cpp server
# Install llama.cpp: brew install llama.cpp # Start a local OpenAI-compatible server: llama serve -hf TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF:Q4_K_M
Configure the model in Pi
# Install Pi: npm install -g @earendil-works/pi-coding-agent # Add to ~/.pi/agent/models.json: { "providers": { "llama-cpp": { "baseUrl": "http://localhost:8080/v1", "api": "openai-completions", "apiKey": "none", "models": [ { "id": "TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF:Q4_K_M" } ] } } }Run Pi
# Start Pi in your project directory: pi
- Docker Model Runner
How to use TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF with Docker Model Runner:
docker model run hf.co/TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF:Q4_K_M
- Lemonade
How to use TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF with Lemonade:
Pull the model
# Download Lemonade from https://lemonade-server.ai/ lemonade pull TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF:Q4_K_M
Run and chat with the model
lemonade run user.Qwen2.5-3B-Instruct-grpo-gmail-GGUF-Q4_K_M
List all available models
lemonade list
- Hermes Agent
How to use TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF with Hermes Agent:
Start the llama.cpp server
# Install llama.cpp: brew install llama.cpp # Start a local OpenAI-compatible server: llama serve -hf TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF:Q4_K_M
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 TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF:Q4_K_M
Run Hermes
hermes
- Atomic Chat
- OpenClaw
How to use TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF with OpenClaw:
Start the llama.cpp server
# Install llama.cpp: brew install llama.cpp # Start a local OpenAI-compatible server: llama serve -hf TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF:Q4_K_M
Configure OpenClaw
# Install OpenClaw: npm install -g openclaw@latest # Register the local server and set it as the default model: openclaw onboard --non-interactive --mode local \ --auth-choice custom-api-key \ --custom-base-url http://127.0.0.1:8080/v1 \ --custom-model-id "TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF:Q4_K_M" \ --custom-provider-id llama-cpp \ --custom-compatibility openai \ --custom-text-input \ --accept-risk \ --skip-health
Run OpenClaw
openclaw agent --local --agent main --message "Hello from Hugging Face"
Upload README.md with huggingface_hub
Browse files
README.md
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---
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language:
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- en
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license: apache-2.0
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base_model: TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail
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quantized_by: TurkishCodeMan
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tags:
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- gguf
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- quantized
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- tool-calling
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- llama.cpp
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- 4-bit
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---
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# Qwen2.5-3B-Instruct GRPO Gmail (Q4_K_M GGUF)
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**Quantized version** of [TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail](https://huggingface.co/TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail).
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## 📥 Download & Run
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\`\`\`bash
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# Download (recommended - 3.5 GB)
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huggingface-cli download TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail-GGUF Qwen2.5-3B-Instruct-grpo-gmail-Q4_K_M.gguf
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# Run with GPU
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./llama-server -m Qwen2.5-3B-Instruct-grpo-gmail-Q4_K_M.gguf --port 8080 -ngl 99
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# Run on CPU
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./llama-server -m Qwen2.5-3B-Instruct-grpo-gmail-Q4_K_M.gguf --port 8080
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\`\`\`
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## ⚙️ Quantization Info
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- **Method**: Q4_K_M (4-bit with K-means)
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- **Size**: ~2.3 GB (vs 6.7 GB F16)
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- **Quality**: 95%+ of F16 performance
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- **Speed**: 3-4x faster inference
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## 🔗 Related Models
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- **Full precision (F16)**: [TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail](https://huggingface.co/TurkishCodeMan/Qwen2.5-3B-Instruct-grpo-gmail)
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- **Base model**: [unsloth/Qwen2.5-3B-Instruct](https://huggingface.co/unsloth/Qwen2.5-3B-Instruct)
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## 🎯 Tool Calling Example
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\`\`\`python
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import requests
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response = requests.post("http://localhost:8080/v1/chat/completions", json={
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"messages": [
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{"role": "system", "content": "You are a tool-calling assistant."},
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{"role": "user", "content": "Send email to test@gmail.com about meeting tomorrow"}
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],
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"temperature": 0.0,
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"max_tokens": 512
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})
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print(response.json()['choices'][0]['message']['content'])
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# Output: {"tool_calls": [{"function": "send_email", "arguments": {"to": ["test@gmail.com"], "subject": "Meeting Tomorrow", "body": "..."}}]}
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\`\`\`
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## 📊 Training
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- **SFT**: 300 steps on 57 Gmail examples
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- **GRPO**: 300 steps reinforcement learning for tool calling accuracy
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- **Final loss**: 0.50 (excellent convergence)
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## 🛠️ Supported Tools
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\`send_email\`, \`draft_email\`, \`read_email\`, \`search_emails\`, \`delete_email\`, \`modify_email\`, \`batch_modify_emails\`, \`batch_delete_emails\`, \`list_email_labels\`, \`create_label\`, \`update_label\`, \`delete_label\`, \`get_or_create_label\`, \`create_filter\`, \`list_filters\`, \`get_filter\`, \`delete_filter\`, \`create_filter_from_template\`, \`download_attachment\`
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