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Table of Contents
1.Machine Learning for Trading - From Idea to Execution 2.Market and Fundamental Data - Sources and Techniques 3.Alternative Data for Finance - Categories and Use Cases 4.Financial Feature Engineering - How to Research Alpha Factors 5.Portfolio Optimization and Performance Evaluation 6.The Machine Learning Process 7.Linear Models - From Risk Factors to Return Forecasts 8.The ML4T Workflow - From Model to Strategy Backtesting 9.Time-Series Models for Volatility Forecasts and Statistical Arbitrage 10.Bayesian ML - Dynamic Sharpe Ratios and Pairs Trading (N.B. Please use the Look Inside option to see further chapters) |