The Co-Pricing Factor Zoo

Fuente: arXiv
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Autores principales: Dickerson, Alexander, Julliard, Christian, Mueller, Philippe
Formato: Preprint
Publicado: 2026
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author Dickerson, Alexander
Julliard, Christian
Mueller, Philippe
author_facet Dickerson, Alexander
Julliard, Christian
Mueller, Philippe
contents We analyze 18 quadrillion models for the joint pricing of corporate bond and stock returns. Strikingly, we find that equity and nontradable factors alone suffice to explain corporate bond risk premia once their Treasury term structure risk is accounted for, rendering the extensive bond factor literature largely redundant for this purpose. While only a handful of factors, behavioral and nontradable, are likely robust sources of priced risk, the true latent stochastic discount factor is dense in the space of observable factors. Consequently, a Bayesian Model Averaging Stochastic Discount Factor explains risk premia better than all low-dimensional models, in- and out-of-sample, by optimally aggregating dozens of factors that serve as noisy proxies for common underlying risks, yielding an out-of-sample Sharpe ratio of 1.5 to 1.8. This SDF, as well as its conditional mean and volatility, are persistent, track the business cycle and times of heightened economic uncertainty, and predict future asset returns.
format Preprint
id arxiv_https___arxiv_org_abs_2604_04430
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle The Co-Pricing Factor Zoo
Dickerson, Alexander
Julliard, Christian
Mueller, Philippe
Pricing of Securities
We analyze 18 quadrillion models for the joint pricing of corporate bond and stock returns. Strikingly, we find that equity and nontradable factors alone suffice to explain corporate bond risk premia once their Treasury term structure risk is accounted for, rendering the extensive bond factor literature largely redundant for this purpose. While only a handful of factors, behavioral and nontradable, are likely robust sources of priced risk, the true latent stochastic discount factor is dense in the space of observable factors. Consequently, a Bayesian Model Averaging Stochastic Discount Factor explains risk premia better than all low-dimensional models, in- and out-of-sample, by optimally aggregating dozens of factors that serve as noisy proxies for common underlying risks, yielding an out-of-sample Sharpe ratio of 1.5 to 1.8. This SDF, as well as its conditional mean and volatility, are persistent, track the business cycle and times of heightened economic uncertainty, and predict future asset returns.
title The Co-Pricing Factor Zoo
topic Pricing of Securities
url https://arxiv.org/abs/2604.04430