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How hard is it to pick the right model? MCS and backtest overfitting

Diego Aparicio () and Marcos López de Prado ()
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Diego Aparicio: Department of Economics, Massachusetts Institute of Technology, Postal: Cambridge, MA, USA
Marcos López de Prado: True Positive Technologies, Postal: New York, NY, USA

Algorithmic Finance, 2018, vol. 7, issue 1-2, 53-61

Abstract: Recent advances in machine learning, artificial intelligence, and the availability of billions of high frequency data signals have made model selection a challenging and pressing need. However, most of the model selection methods available in modern finance are subject to backtest overfitting. This is the probability that one will select a financial strategy that outperforms during backtest, but underperforms in practice. We evaluate the performance of the novel model confidence set (MCS) introduced in Hansen et al. (2011a) in a simple machine learning trading strategy problem. We find that MCS is not robust to multiple testing and that it requires a very high signal-to-noise ratio to be utilizable. More generally, we raise awareness on the limitations of model selection in finance.

Keywords: Forecasting; model confidence set; machine learning; model selection; multiple testing JEL Codes: G17; C52; C53 (search for similar items in EconPapers)
JEL-codes: C00 (search for similar items in EconPapers)
Date: 2018
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Citations: View citations in EconPapers (2)

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Persistent link: https://EconPapers.repec.org/RePEc:ris:iosalg:0067

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