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A sophisticated AI agent toolkit supporting multiple AI providers with tool calling capabilities.

Project description

nixagent

Python 3.8+ License: MIT

A generic, multipurpose nixagent library in Python. This framework is completely agnostic to specific use cases and architectures, serving as a robust foundation for building autonomous, collaborative AI agents that can manage their own context, interface with each other, and securely use external tools.

๐Ÿš€ Quick Start

Installation

pip install -r requirements.txt

Command Line Usage

First, set up your environment configuration by copying .env.example to .env and adding your API keys.

# Ask a question directly
python app.py "What files are in the current directory?"

# Interactive mode
python app.py

# With custom settings
python app.py "Analyze the code structure" --no-save

Python Library Usage

from nixagent import Agent

# Initialize the core agent
agent = Agent(
    name="MainAgent",
    system_prompt="You are a highly capable AI assistant that uses available tools to accomplish goals."
)

result = agent.run(user_prompt="List all Python files in the project")
print(result)

โœจ Features

  • ๐ŸŒ Standardized API Interface: Uses pure requests following the OpenAI native JSON structure. Compatible with OpenAI, Vertex, Local LLMs (via Ollama/vLLM), Groq, and more.
  • ๐Ÿค– Autonomous Agents: Agents maintain independent conversation histories and automatically delegate sub-tasks when needed.
  • ๐Ÿ”Œ Model Context Protocol (MCP): Dynamic tool extension via MCP Servers via .mcp.json.
  • ๐Ÿ› ๏ธ Rich Built-In Tools: Deep system-level tools covering regex-based file searching, exact content mapping, disk manipulation, and secure subprocess execution.
  • ๐Ÿ—ฃ๏ธ Inter-Agent Collaboration: Support for multiple sub-agents operating concurrently under the same framework via .register_collaborator(agent).

๐Ÿ“ฆ Project Structure

framework/
โ”œโ”€โ”€ app.py                # Main CLI application
โ”œโ”€โ”€ nixagent/             # Core Framework Mechanics
โ”‚   โ”œโ”€โ”€ __init__.py       # Library exports
โ”‚   โ”œโ”€โ”€ agent.py          # Core contextual autonomous Agent
โ”‚   โ”œโ”€โ”€ llm.py            # Central HTTP-based LLM orchestration
โ”‚   โ”œโ”€โ”€ logger.py         # Central system execution logger
โ”‚   โ”œโ”€โ”€ mcp.py            # Model Context Protocol definition and bindings
โ”‚   โ”œโ”€โ”€ providers/        # LLM Vendor specific HTTP adapters
โ”‚   โ”‚   โ”œโ”€โ”€ openai.py
โ”‚   โ”‚   โ”œโ”€โ”€ anthropic.py
โ”‚   โ”‚   โ”œโ”€โ”€ gemini.py
โ”‚   โ”‚   โ”œโ”€โ”€ vertex.py
โ”‚   โ”‚   โ””โ”€โ”€ qwen.py
โ”‚   โ””โ”€โ”€ tools/            # Default Native Tools
โ”‚       โ”œโ”€โ”€ __init__.py   # Tool bindings & descriptions
โ”‚       โ”œโ”€โ”€ cmd.py        # Subprocess shell extensions
โ”‚       โ””โ”€โ”€ fs.py         # File system native operations
โ”œโ”€โ”€ mcp.json              # Model Context Protocol Server mapping
โ”œโ”€โ”€ docs/                 # Additional Documentation
โ”œโ”€โ”€ requirements.txt      # Python dependencies
โ”œโ”€โ”€ .env                  # Operational mapping variables
โ””โ”€โ”€ README.md             # This file

โš™๏ธ Configuration

Create a .env file in your project root:

# LLM Provider (openai, anthropic, gemini, or vertex)
PROVIDER=openai

# OpenAI Configuration
OPENAI_API_KEY=your_api_key_here
OPENAI_BASE_URL=https://api.openai.com/v1
OPENAI_MODEL=gpt-4o

# Anthropic Configuration
ANTHROPIC_API_KEY=your_anthropic_api_key_here
ANTHROPIC_BASE_URL=https://api.anthropic.com/v1
ANTHROPIC_MODEL=claude-3-opus-20240229

# Gemini Configuration
GEMINI_API_KEY=your_gemini_api_key_here
GEMINI_BASE_URL=https://generativelanguage.googleapis.com/v1beta/openai
GEMINI_MODEL=gemini-2.5-flash

# Vertex AI Configuration
VERTEX_API_KEY=your_vertex_api_key_here
VERTEX_BASE_URL=https://aiplatform.googleapis.com/v1
VERTEX_MODEL=gemini-2.5-flash-lite

# Qwen Configuration
QWEN_EMAIL=your_email_here
QWEN_PASSWORD=your_password_here
QWEN_MODEL=qwen3.5-plus

# Tool and Processing Configuration
MAX_ITERATIONS=25

# Logging Configuration
LOG_LEVEL=INFO
LOG_FILE=agent.log  # (Optional) Route all agent tool execution traces to this file instead of stdout

๐Ÿ”Œ Using MCP Servers

Add server definitions to your mcp.json file in the root directory:

{
  "mcpServers": {
    "sqlite": {
      "command": "uvx",
      "args": ["mcp-server-sqlite", "--db-path", "./database.db"],
      "active": true
    }
  }
}

The framework's MCPManager automatically bootstraps all active MCP servers, parses their schemas, and loads their tools natively alongside standard tools upon Agent initialization.

๐Ÿค Collaborative Agents

Agents can securely establish communication networks.

from nixagent import Agent

research_agent = Agent("Researcher", "You perform file system research.")
writer_agent = Agent("Writer", "You answer questions accurately.")

writer_agent.register_collaborator(research_agent)

writer_agent.run("Ask the Researcher to find all text files and read them to me.")

๐Ÿ“„ License

This project is licensed under the MIT License - see the LICENSE file for details.

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