The 10 Reasons Most Machine Learning Funds Fail
Marcos López de Prado
Abstract
The rate of failure in quantitative finance is high, particularly in financial machine learning applications. The few managers who succeed amass a large amount of assets and deliver consistently exceptional performance to their investors. However, that is a rare outcome, for reasons that the author explains in this article. In the author's experience, 10 critical mistakes underline those failures.
TOPIC: Big data/machine learning
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