Forecasting Corporate Bond Returns with a Large Set of Predictors: An Iterated Combination Approach
Hai Lin, Chunchi Wu, Guofu Zhou
Management Science
- 주제자산가격과 위험 · 금융경제
- 방법
- 현상
Using a comprehensive return data set and an array of 27 macroeconomic, stock, and bond predictors, we find that corporate bond returns are highly predictable based on an iterated combination model. The large set of predictors outperforms traditional predictors substantially, and predictability generated by the iterated combination is both statistically and economically significant. Stock market and macroeconomic variables play an important role in forming expected bond returns. Return forecasts are closely linked to the evolution of real economy. Corporate bond premia have strong predictive power for business cycle, and the primary source of this predictive power is from the low-grade bond premium. The Internet appendix is available at https://doi.org/10.1287/mnsc.2017.2734 . This paper was accepted by Lauren Cohen, finance.
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- 저널Management Science · 64(9) · 4218–4238
- 토픽Financial Markets and Investment Strategies · Finance
- DOI10.1287/mnsc.2017.2734
- 저자Hai Lin, Chunchi Wu, Guofu Zhou