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Mastering Financial Time Series Analysis with Python
Udemy MOOC / Non-credit 0

Mastering Financial Time Series Analysis with Python

About this course

Course HighlightsPart 1: Foundations of Quantitative Trading & Time Series (Sections 1-6)A comprehensive, production-ready foundation in traditional quantitative models. These sections build the essential mathematical and systemic framework required before stepping into the quantum realm.• Time Series & Advanced Strategies: Master traditional models like ARIMA, GARCH, and VECM-EGARCH. Build fully automated, production-ready trading systems with Binance API integration and walk-forward validation.• Machine Learning & Deep Learning: Implement advanced techniques including State-Space Models, Kalman Filters, Prophet, LSTM classifiers, XGBoost, Wavelets, and Copulas to capture non-linear patterns and tail risks.• Asset Pricing & Math Foundations: Hands-on implementation of Fama-French (3, 5, 6-Factor) models, portfolio optimization, and the core mathematical foundations (Linear Algebra, Calculus, Bayesian Filtering) required for algorithmic trading.Part 2: The Quantum Finance Masterclass (The Heart of the System)The ultimate evolution of quantitative trading. Moving beyond the "illusion of statistics," we redefine the market as a physical microstructure of energy. This part introduces the "Financial Demon" engine—a system designed to render the future’s probability density function in real time using principles of quantum physics and energy dynamics.• Quantum Market Microstructure & Energy Modeling: Transition from traditional price-action thinking to energy-based analysis. Learn to substitute order book pressure and trade velocity with Potential and Kinetic energy, discretizing the market into a 10x10 Quantum Energy Grid.• The Schrödinger’s Engine & PDF Rendering: Abandon static point-estimates. Build a prediction engine that renders the complete Probability Density Function (PDF) of

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What you'll learn

  • Master traditional quantitative models like ARIMA, GARCH, and VECM-EGARCH
  • Implement machine learning techniques such as State-Space Models and LSTM classifiers
  • Conduct portfolio optimization and apply Fama-French models

Course objectives

  • Develop fully automated trading systems
  • Transition from traditional price-action analysis to energy-based market analysis
  • Build a prediction engine using quantum principles
Machine Learning Financial Analysis #python #machine learning #predictive modeling #financial modeling #portfolio optimization #time series analysis #quantitative trading #arima #xgboost #lstm #automated trading #energy analysis #Kalman filters #binance API #quantum finance #Fama-French models #GARCH
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