Comprehensive backtesting software Tools for Every Need

Get access to backtesting software solutions that address multiple requirements. One-stop resources for streamlined workflows.

backtesting software

  • AI agent automates quantitative investment strategy creation, backtesting, portfolio optimization, and risk analysis using OpenAI Autogen.
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    What is Autogen Quant Invest Agent?
    Autogen Quant Invest Agent leverages large language models to automate the full quantitative investment pipeline. It connects to data APIs for market, fundamental, and alternative datasets, performs feature engineering and statistical analysis, and formulates algorithmic trading strategies. The agent orchestrates backtesting across historical periods, generates performance reports, and conducts risk assessments including drawdown, Sharpe ratio, and VaR. With customizable modules, users can tune strategy parameters, integrate custom indicators, and automate portfolio rebalancing rules. The framework’s modular chain-of-agents design allows seamless integration with order execution systems or data warehouses. This tool streamlines systematic research, reduces manual scripting, and empowers quantitative analysts to rapidly prototype, evaluate, and deploy investment models.
  • Cryptohopper is an AI-driven trading bot for cryptocurrency automation and optimization.
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    What is Cryptohopper?
    Cryptohopper utilizes advanced AI algorithms to facilitate automated trading in the cryptocurrency market. It allows users to create and customize trading strategies, analyze historical data, subscribe to the best signal providers, and access comprehensive portfolio management tools. The platform supports a variety of exchanges, enabling seamless trading experiences and performance optimization through backtesting and real-time data analytics.
  • An open-source AI-driven trading agent automates market analysis, signal generation, backtesting, and real-time order execution for day traders.
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    What is Day Trading Agents?
    Day Trading Agents provides a comprehensive suite of AI-powered modules that automate the entire day trading workflow. The platform continuously ingests tick-level market data and applies machine learning models to identify entry and exit points. It features backtesting utilities that simulate performance over historical timeframes, risk management engines for dynamic position sizing and drawdown control, and live execution adapters that connect to brokerage APIs such as Interactive Brokers and Alpaca. Custom strategy components can be written in Python, allowing traders to incorporate technical, fundamental, or sentiment-based indicators. With a modular architecture, users can mix and match data preprocessors, predictive models, and execution strategies to fine-tune performance and minimize latency. The system also logs detailed trade metrics for performance analysis and iterative improvement.
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