Nowcasting Business Cycle Turning Points with Stock Networks and Machine Learning

Nowcasting Business Cycle Turning Points with Stock Networks and Machine Learning
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Total Pages :
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ISBN-10 : 9289944110
ISBN-13 : 9789289944113
Rating : 4/5 (10 Downloads)

Book Synopsis Nowcasting Business Cycle Turning Points with Stock Networks and Machine Learning by :

Download or read book Nowcasting Business Cycle Turning Points with Stock Networks and Machine Learning written by and published by . This book was released on 2020 with total page pages. Available in PDF, EPUB and Kindle. Book excerpt: We propose a granular framework that makes use of advanced statistical methods to approximate developments in economy-wide expected corporate earnings. In particular, we evaluate the dynamic network structure of stock returns in the United States as a proxy for the transmission of shocks through the economy and identify node positions (firms) whose connectedness provides a signal for economic growth. The nowcasting exercise, with both the in-sample and the out-of-sample consistent feature selection, highlights which firms are contemporaneously exposed to aggregate downturns and provides a more complete narrative than is usually provided by more aggregate data. The two-state model for predicting periods of negative growth can remarkably well predict future states by using information derived from the node-positions of manufacturing, transportation and financial (particularly insurance) firms. The three-states model, which identifies high, low and negative growth, successfully predicts economic regimes by making use of information from the financial, insurance, and retail sectors.


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