Invest Like the Best with Patrick O'Shaughnessy cover image

Jeremiah Lowin – Machine Learning in Investing – [Invest Like the Best, EP.105]

Invest Like the Best with Patrick O'Shaughnessy

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Data Acquisition, Feature Engineering, and the Importance of Interpretability in Machine Learning for Investing

This chapter highlights the significance of clean data and effective feature engineering in building successful models for investing. It discusses the implications of using time series data, strategies for data splitting, and common pitfalls to avoid when constructing predictive market investing models. Additionally, the chapter emphasizes the importance of interpretability in machine learning models for investing, focusing on leveraging machine learning to enhance human decision-making rather than fully automated trading.

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