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The standard for capable and reliable agents in production

Project description

StableAgents Framework

A production-ready framework for building enterprise-grade AI agents - providing robust infrastructure and system-level capabilities that enable reliable, secure, and efficient AI agent operations at scale.

Official site: stableagents.dev

Overview

StableAgents is designed to be the foundation for large-scale AI agent deployments with a focus on:

  • Reliability: Built-in self-healing mechanisms ensure consistent operation even under adverse conditions
  • Scalability: Architecture supports everything from single-agent deployments to complex multi-agent systems
  • Security: Enterprise-grade authentication, access controls, and data protection mechanisms
  • Extensibility: Modular design allows for customization and extension of core capabilities

Key Features

  • Multi-Provider Support: Seamlessly integrate with OpenAI, Anthropic, and other AI providers
  • Local Model Integration: Run models offline with local inference capabilities
  • Self-Healing System: Automatic issue detection, diagnosis, and recovery
  • Memory Management: Efficient handling of context and persistent storage
  • Computer Control: Safe system interaction capabilities
  • Comprehensive Logging: Detailed activity tracking and monitoring

Quick Installation

Option 1: Install from GitHub (Recommended)

pip install git+https://github.com/jordanplows/stableagents.git

Option 2: Install with Local Models Support

pip install git+https://github.com/jordanplows/stableagents.git[local]

Option 3: Development Installation

git clone https://github.com/jordanplows/stableagents.git
cd stableagents
pip install -e .

Quick Start

After installation, start StableAgents:

stableagents-ai --start

The CLI will guide you through:

  1. API Key Setup: Choose between managed keys ($20) or bring your own
  2. Provider Selection: Configure OpenAI, Anthropic, Google, or local models
  3. Security Setup: Set up encrypted storage for your credentials

Basic Usage

Python API

from stableagents import StableAgents

# Initialize the agent
agent = StableAgents()

# Generate text
response = agent.generate_text("Hello, how can you help me today?")
print(response)

Command Line Interface

# Start interactive mode
stableagents-ai

# Run with specific model
stableagents-ai --model openai --api-key your-key

# Use local models
stableagents-ai --local --model-path ~/models/llama-2-7b.gguf

Access

StableAgents is a private framework available to authorized partners and enterprise customers. For access inquiries:

Documentation

Comprehensive documentation is available to authorized users at docs.stableagents.dev

Implementation Examples

Basic Agent Setup

from stableagents import StableAgents

# Initialize with enterprise configuration
agent = StableAgents(
    enable_self_healing=True,
    enable_logging=True
)

# Configure AI provider
agent.set_api_key('openai', 'your-api-key')
agent.set_active_ai_provider('openai')

# Generate text with the agent
response = agent.generate_text("Analyze the performance of our product in Q1")

Custom Health Check Integration

# Register custom component for monitoring
agent.self_healing.register_component(
    "database",
    check_database_health,
    thresholds={
        "connection_status": {"min": True, "severity": "high"}
    }
)

Use Cases

  • Customer Service: Deploy conversational agents that can understand, respond, and solve customer issues
  • Enterprise Assistants: Create specialized assistants for internal business processes
  • Data Analysis: Build agents that can process, analyze, and report on complex business data
  • Content Generation: Develop agents for content creation, curation, and management
  • Research Automation: Automate literature reviews, data collection, and preliminary analysis

License

Proprietary software licensed exclusively to authorized partners and customers.

© 2023-2025 StableAgents. All rights reserved.

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