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Enhancing stock market anomalies with machine learning

Enhancing stock market anomalies with machine learning Abstract We examine the predictability of 299 capital market anomalies enhanced by 30 machine learning approaches and over 250 models in a dataset with more than 500 million firm-month anomaly observations. We find significant monthly (out-of-sample) returns of around 1.8–2.0%, and over 80% of the models yield returns equal to or larger than our linearly constructed baseline factor. For the best performing models, the risk-adjusted returns ...

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Enhancing stock market anomalies with machine learning | Awareness Public Knowledge