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Back to quantium-ai/patternity

Open-source alternatives to Patternity

18 open-source projects similar to quantium-ai/patternity, ranked by how many features they have in common. Compare stars, activity and what each one does to find the best Patternity alternative.

  • goldmansachs/gs-quantgoldmansachs avatar

    goldmansachs/gs-quant

    9,912View on GitHub↗

    gs-quant is a quantitative finance library and financial data analytics toolkit. It serves as a framework for analyzing financial data, developing systematic trading strategies, and managing risk exposure for derivative products in global markets. The project provides tools for quantitative financial analysis, quantitative portfolio modeling, and the development of systematic trading strategies. It enables the calculation of risk for derivative products to structure and hedge positions across markets.

    Jupyter Notebookderivativesgoldman-sachsgs-quant
    View on GitHub↗9,912
  • llmquant/quant-wikiLLMQuant avatar

    LLMQuant/quant-wiki

    3,041View on GitHub↗

    quant-wiki is a comprehensive knowledge base and structured reference for quantitative finance, financial engineering, and algorithmic trading. It serves as a centralized library of documentation covering mathematical models, financial instruments, and systematic trading strategies. The project integrates AI-driven capabilities through a modular retrieval-augmented generation framework that extracts structured data from research papers and news. It features a multi-agent workflow engine designed to discover and validate predictive alpha factors, alongside tools for local large language model

    quantitative-financequantitative-tradingwiki
    View on GitHub↗3,041
  • fincept-corporation/finceptterminalFincept-Corporation avatar

    Fincept-Corporation/FinceptTerminal

    26,900View on GitHub↗

    FinceptTerminal is a quantitative finance platform and financial engineering library designed for asset valuation, risk management, and fixed-income analytics. It provides a comprehensive suite for algorithmic trading and investment strategy automation, integrating specialized language model agents and node-based workflows to automate market research and alpha generation. The project distinguishes itself with a dedicated game theory analysis engine for calculating Nash equilibria and simulating strategic interactions in competitive markets. It also features a specialized credit risk modeling

    C++bloomberg-terminalcontributions-welcomefinance
    View on GitHub↗26,900

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  • hudson-and-thames/mlfinlabhudson-and-thames avatar

    hudson-and-thames/mlfinlab

    4,835View on GitHub↗

    mlfinlab is a Python machine learning library for finance designed for building and validating models used in quantitative trading and portfolio management. It provides a financial data engineering toolkit and a quantitative strategy backtesting framework to transform raw market data into predictive signals and target classes. The library includes a synthetic financial data generator to create artificial datasets that mimic the statistical properties of real assets for stress testing. It also provides specialized tools for financial time series labeling and sampling to prevent data leakage in

    Pythonalgorithmic-tradingfinancefinancial-machine-learning
    View on GitHub↗4,835
  • je-suis-tm/quant-tradingje-suis-tm avatar

    je-suis-tm/quant-trading

    9,190View on GitHub↗

    This project is a Python financial analytics framework and quantitative trading library. It provides a suite of mathematical tools for asset pricing, statistical market analysis, and the development of algorithmic trading strategies. The library is distinguished by its focus on currency and commodity correlation modeling, using regression and normalization to identify exchange rate drivers. It features a specialized portfolio optimization engine that applies graph theory, such as clique centrality and degeneracy ordering, alongside quadratic programming to balance risk-adjusted returns. The

    Pythonalgorithmic-tradingbollinger-bandscommodity-trading
    View on GitHub↗9,190
  • carlos8f/zenbraincarlos8f avatar

    carlos8f/zenbrain

    51View on GitHub↗

    A framework for machine-learning bots

    CSS
    View on GitHub↗51
  • ceruleanacg/personaeCeruleanacg avatar

    Ceruleanacg/Personae

    1,407View on GitHub↗

    📈 Personae is a repo of implements and environment of Deep Reinforcement Learning & Supervised Learning for Quantitative Trading.

    Python
    View on GitHub↗1,407
  • ceruleanacg/quantitative-tradingCeruleanacg avatar

    Ceruleanacg/Quantitative-Trading

    39View on GitHub↗

    💸 Papers and Code Implements for Quantitative-Trading

    Jupyter Notebook
    View on GitHub↗39
  • hackthemarket/gym-tradinghackthemarket avatar

    hackthemarket/gym-trading

    711View on GitHub↗

    Environment for reinforcement-learning algorithmic trading models

    Jupyter Notebook
    View on GitHub↗711
  • kostis-s-z/trading-rlKostis-S-Z avatar

    Kostis-S-Z/trading-rl

    222View on GitHub↗

    Deep Reinforcement Learning for Financial Trading using Price Trailing @ ICASSP 2019

    Python
    View on GitHub↗222
  • nixtla/mlforecastNixtla avatar

    Nixtla/mlforecast

    1,230View on GitHub↗

    Scalable machine 🤖 learning for time series forecasting.

    Python
    View on GitHub↗1,230
  • quantium-ai/researchquantium-ai avatar

    quantium-ai/research

    66View on GitHub↗

    Research experiments exploring uncommon quant techniques.

    Jupyter Notebook
    View on GitHub↗66
  • 6-billionaires/trading-gym6-Billionaires avatar

    6-Billionaires/trading-gym

    235View on GitHub↗

    This trading-gym is the first trading for agent to train with episode of short term trading itself.

    Jupyter Notebook
    View on GitHub↗235
  • sachink2010/automatedstocktrading-deepq-learningsachink2010 avatar

    sachink2010/AutomatedStockTrading-DeepQ-Learning

    289View on GitHub↗

    Every day, millions of traders around the world are trying to make money by trading stocks. These days, physical traders are also being replaced by automated trading robots. Algorithmic trading market has experienced significant growth rate and large number of firms are using it. I have tried to build a Deep Q-learning reinforcement agent model to do automated stock trading.

    Jupyter Notebook
    View on GitHub↗289
  • ai4finance-llc/deep-reinforcement-learning-for-automated-stock-trading-ensemble-strategy-icaif-2020AI4Finance-LLC avatar

    AI4Finance-LLC/Deep-Reinforcement-Learning-for-Automated-Stock-Trading-Ensemble-Strategy-ICAIF-2020

    3,319View on GitHub↗

    FinRL-X: An AI-Native Modular Infrastructure for Quantitative Trading

    Python
    View on GitHub↗3,319
  • ai4finance-llc/finrl-libraryAI4Finance-LLC avatar

    AI4Finance-LLC/FinRL-Library

    15,443View on GitHub↗

    FinRL-Library is a reinforcement learning trading framework and algorithmic trading library used to develop and backtest automated financial trading strategies. It functions as a quantitative trading pipeline and financial market simulator, allowing users to build decision policies that optimize asset trading across various financial markets. The framework features a modular integration system for swapping reinforcement learning algorithms through a consistent API. It utilizes a standardized environment wrapper to encapsulate market dynamics into a state-action-reward interface, facilitating

    Jupyter Notebook
    View on GitHub↗15,443
  • alphasmartdog/deeplearningnotesAlphaSmartDog avatar

    AlphaSmartDog/DeepLearningNotes

    379View on GitHub↗

    机器学习和量化分析学习进行中

    Jupyter Notebook
    View on GitHub↗379
  • borisbanushev/stockpredictionaiborisbanushev avatar

    borisbanushev/stockpredictionai

    5,577View on GitHub↗

    This project is a collection of predictive models and quantitative tools for stock price forecasting. It implements a variety of machine learning architectures, including generative adversarial networks, long short-term memory networks, and language models for financial analysis. The system distinguishes itself by combining time-series forecasting with natural language processing to convert financial news into numerical sentiment scores. It also incorporates synthetic market data generation and automated hyperparameter optimization using Bayesian and reinforcement learning methods to reduce p

    JavaScript
    View on GitHub↗5,577