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Official Python SDK for Contex - Semantic context routing for AI agents

Project description

Contex Python SDK

Official Python client for Contex - Semantic context routing for AI agents.

Installation

pip install contex-python

Quick Start

Async Client (Recommended)

from contex import ContexAsyncClient

async def main():
    async with ContexAsyncClient(
        url="http://localhost:8001",
        api_key="ck_your_api_key_here"
    ) as client:
        # Publish data
        await client.publish(
            project_id="my-app",
            data_key="coding_standards",
            data={
                "style": "PEP 8",
                "max_line_length": 100,
                "quotes": "double"
            }
        )
        
        # Register agent
        response = await client.register_agent(
            agent_id="code-reviewer",
            project_id="my-app",
            data_needs=[
                "coding standards and style guidelines",
                "testing requirements and coverage goals"
            ]
        )
        
        print(f"Matched {len(response.matched_data)} items")
        for match in response.matched_data:
            print(f"  {match.data_key}: {match.similarity_score:.2f}")
        
        # Query for data
        results = await client.query(
            project_id="my-app",
            query="authentication configuration"
        )
        
        for result in results.results:
            print(f"{result.data_key}: {result.data}")

import asyncio
asyncio.run(main())

Sync Client

from contex import ContexClient

client = ContexClient(
    url="http://localhost:8001",
    api_key="ck_your_api_key_here"
)

# Publish data
client.publish(
    project_id="my-app",
    data_key="config",
    data={"env": "prod", "debug": False}
)

# Register agent
response = client.register_agent(
    agent_id="my-agent",
    project_id="my-app",
    data_needs=["configuration", "secrets"]
)

Features

  • Async & Sync: Both async and synchronous interfaces
  • Type Hints: Full type annotations with Pydantic models
  • Error Handling: Comprehensive exception hierarchy
  • Retry Logic: Automatic retries with exponential backoff
  • Rate Limiting: Built-in rate limit handling
  • Authentication: API key authentication support

API Reference

Client Initialization

client = ContexAsyncClient(
    url="http://localhost:8001",  # Contex server URL
    api_key="ck_...",              # API key for authentication
    timeout=30.0,                  # Request timeout in seconds
    max_retries=3,                 # Maximum number of retries
)

Publishing Data

await client.publish(
    project_id="my-app",           # Project identifier
    data_key="unique-key",         # Unique key for this data
    data={"any": "json"},          # Data payload
    data_format="json",            # Format: json, yaml, toml, text
    metadata={"tags": ["prod"]},   # Optional metadata
)

Registering Agents

response = await client.register_agent(
    agent_id="agent-1",                    # Unique agent ID
    project_id="my-app",                   # Project ID
    data_needs=["config", "secrets"],      # Data needs (natural language)
    notification_method="redis",           # redis or webhook
    webhook_url="https://...",             # Optional webhook URL
    webhook_secret="secret",               # Optional webhook secret
    last_seen_sequence="0",                # Last seen sequence
)

Querying Data

results = await client.query(
    project_id="my-app",
    query="authentication settings",
    max_results=10,
)

for result in results.results:
    print(f"{result.data_key}: {result.similarity_score}")

API Key Management

# Create API key
key_response = await client.create_api_key(name="production-key")
print(f"API Key: {key_response.key}")  # Store this securely!

# List keys
keys = await client.list_api_keys()

# Revoke key
await client.revoke_api_key(key_id="key-123")

Health Checks

# Comprehensive health
health = await client.health()

# Readiness check
ready = await client.ready()

# Rate limit status
rate_limit = await client.rate_limit_status()
print(f"Remaining: {rate_limit.remaining}/{rate_limit.limit}")

Exception Handling

from contex import (
    ContexError,
    AuthenticationError,
    RateLimitError,
    ValidationError,
    NotFoundError,
    ServerError,
)

try:
    await client.publish(...)
except AuthenticationError:
    print("Invalid API key")
except RateLimitError as e:
    print(f"Rate limited. Retry after {e.retry_after} seconds")
except ValidationError as e:
    print(f"Validation error: {e}")
except NotFoundError:
    print("Resource not found")
except ServerError:
    print("Server error")
except ContexError as e:
    print(f"Contex error: {e}")

Development

Setup

cd sdk/python
pip install -e ".[dev]"

Running Tests

pytest

Code Formatting

black contex/
ruff check contex/
mypy contex/

Examples

See the examples directory for more usage examples:

  • basic_usage.py - Basic publish and query
  • agent_registration.py - Agent registration and updates
  • webhook_agent.py - Webhook-based agent
  • error_handling.py - Error handling patterns
  • batch_operations.py - Batch publishing

License

MIT License - see LICENSE for details.

Links

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