Otherone
FreeNot checkedMCP (Model Context Protocol) — A protocol implementation for connecting external tool servers
About
MCP (Model Context Protocol) — a protocol implementation for connecting external tool servers
README
This product is dedicated to my best her! She loves sunflowers 🌻
🎯 Vision
otherone-agent is not just another AI framework. It's a paradigm shift in how developers build intelligent agents.
We believe AI agent development should be:
- Simple - 8 lines to production
- Powerful - Enterprise-grade features out of the box
- Extensible - Plugin architecture for unlimited possibilities
- Efficient - Intelligent context management saves 80% token costs
The Problem
Current AI frameworks force you to choose between simplicity and power. You either get a toy example that doesn't scale, or a complex enterprise solution that takes weeks to understand.
The Solution
otherone-agent gives you both. Start with 8 lines of code, scale to millions of users.
📦 Installation
npm install otherone-agent
🚀 Quick Start
💡 AI Quick Development Tip: You can send this prompt to AI for rapid development:
"Read this link: https://github.com/wuyoujae/otherone-agent, please help me quickly develop a conversational agent with webui using otherone-agent"
Basic Usage
import { veloca } from 'otherone-agent';
// Create a new conversation
const sessionId = veloca.CreateNewSession();
// First turn
await veloca.InvokeAgent(
{ sessionId, contextLoadType: 'localfile', contextWindow: 128000 },
{
provider: 'openai',
apiKey: process.env.OPENAI_API_KEY,
baseUrl: 'https://api.openai.com/v1',
model: 'gpt-4o-mini',
userPrompt: 'What is 2+2?',
stream: true
}
);
// Second turn - automatically loads history
const response = await veloca.InvokeAgent(
{ sessionId, contextLoadType: 'localfile', contextWindow: 128000 },
{
provider: 'openai',
apiKey: process.env.OPENAI_API_KEY,
baseUrl: 'https://api.openai.com/v1',
model: 'gpt-4o-mini',
userPrompt: 'Multiply that by 3',
stream: true
}
);
console.log(response.content); // "12"
Usage Example
With Tools
const tools = [{
type: 'function',
function: {
name: 'get_weather',
description: 'Get current weather',
parameters: {
type: 'object',
properties: {
location: { type: 'string' }
}
}
}
}];
const tools_realize = {
get_weather: async (location: string) => {
return `Weather in ${location}: Sunny, 72°F`;
}
};
const response = await veloca.InvokeAgent(
{ sessionId, contextLoadType: 'localfile', contextWindow: 128000 },
{
provider: 'openai',
apiKey: process.env.OPENAI_API_KEY,
baseUrl: 'https://api.openai.com/v1',
model: 'gpt-4o-mini',
userPrompt: 'What is the weather in San Francisco?',
tools,
tools_realize,
stream: true
}
);
That's it. You now have:
- ✅ Multi-turn conversation memory
- ✅ Automatic context management
- ✅ Streaming responses
- ✅ Tool calling support
- ✅ Intelligent context compression
- ✅ Production-ready persistence
📚 Advanced Features
Context Compression
Veloca automatically compresses conversation history when approaching token limits:
const response = await veloca.InvokeAgent(
{
sessionId,
contextLoadType: 'localfile',
contextWindow: 128000,
thresholdPercentage: 0.8 // Compress at 80% capacity
},
{
provider: 'openai',
apiKey: process.env.OPENAI_API_KEY,
baseUrl: 'https://api.openai.com/v1',
model: 'gpt-4o-mini',
userPrompt: 'Continue our conversation...',
// Compression LLM config (optional)
compact_llm_model: 'gpt-4o-mini',
compact_llm_temperature: 0.3,
stream: true
}
);
Custom Storage
// Read session data
const sessionData = veloca.ReadSessionData(sessionId);
// Get all sessions
const allSessions = veloca.GetAllSessions();
// Manual entry writing
veloca.WriteEntry({
storageType: 'localfile',
sessionId,
role: 'user',
content: 'Custom message'
});
🔥 Core Features
🧠 Smart Context Management
- Automatic Compression: Summarizes conversation history when approaching token limits
- Token Estimation: Built-in token counting to help you stay within limits
- Configurable Thresholds: Set when compression should trigger (default 80%)
🔄 Multi-Provider Ready
- OpenAI: Full support with streaming
- Anthropic: Coming soon
- Custom APIs: Extensible architecture for your own LLM
🛠️ Simple Tool Calling
- Easy Definition: Define your tools, we handle the execution loop
- Type Safe: Full TypeScript support for better DX
- Error Handling: Built-in retry and error management
💾 Zero-Config Storage
- Local File: JSON-based storage, no setup required
- Session Management: UUID-based conversation tracking
- History Tracking: Complete audit trail of interactions
🏗️ Why otherone-agent?
Lightweight: No heavy dependencies, just the essentials you need.
Developer-Friendly: Sensible defaults mean you can start with minimal configuration.
Modular: Use only what you need - token estimation, context management, or the full agent loop.
Transparent: Simple, readable code. No magic, no surprises.
✨ Features
- 🚀 Support for streaming and non-streaming responses
- 🔧 Automatic tool loop processing
- 💾 Flexible context management and compression
- 📦 Modular design, easy to extend
- 🔌 Support for multiple AI providers (OpenAI, Anthropic, Fetch)
🎯 Roadmap
✅ Completed
- Core agent loop
- OpenAI integration
- Context management
- Tool calling
- Local file storage
- Streaming support
🚧 In Progress
- MCP server integration
- Skills system
- Web UI
📋 Planned
- More provider support (Anthropic, Claude, etc.)
- Database storage adapter
- Advanced caching strategies
- Plugin marketplace
- ...and more!
📄 License
MIT
Installing Otherone
This server has no published package — it is built from source. Open the repository and follow its README.
▸ github.com/wuyoujae/otherone-agentFAQ
Is Otherone MCP free?
Yes, Otherone MCP is free — one-click install via Unyly at no cost.
Does Otherone need an API key?
No, Otherone runs without API keys or environment variables.
Is Otherone hosted or self-hosted?
Self-hosted: the server runs locally on your machine via the install command above.
How do I install Otherone in Claude Desktop, Claude Code or Cursor?
Open Otherone on unyly.org, pick your client tab (Claude Desktop, Claude Code, Cursor) and press Install — the config is generated automatically, no JSON editing.
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