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This paper applies machine learning algorithms to the modeling of realized betas for the purposes of forecasting stock systematic risk. Forecast horizons range from 1 week up to 1 month. The machine learning algorithms employed are ridge regression, decision tree learning, adaptive boosting,...
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contract theory predicts that non-local buyers may pay such a price premium because of the higher cost of gathering information … Kong. A novel machine-learning algorithm with the latest technique in natural language processing where applicable to multi …
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theory (cf. e.g. Mukherjee, 2017; Veltri, 2017). This article proposes so-called Dynamic Factor Trees (DFT) and Dynamic … reduce to the standard Dynamic Factor Model (DFM) as a special case and allow us to embed theory-led factor models in …
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This paper deals with identification and inference on the unobservable conditional factor space and its dimension in large unbalanced panels of asset returns. The model specification is nonparametric regarding the way the loadings vary in time as functions of common shocks and individual...
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