Gravitational-Wave Signatures of Nonviolent Nonlocality
Abstract
Measurement of gravitational waves can provide precision tests of the nature of black holes and compact objects. In this Letter, we test Giddings’ nonviolent nonlocality proposal, which posits that quantum information is transferred via a nonlocal interaction that generates metric perturbations around black holes. In contrast to firewalls, these quantum fluctuations would be spread out over a larger distance range—up to a Schwarzschild radius away. In this Letter, we model the modification to the gravitational waveform from nonviolent nonlocality. We modify the nonspinning EOBNRv2 effective one body waveform to include metric perturbations that are due to a random Gaussian process. We find that the waveform exhibits random deviations which are particularly important in the late inspiral-plunge phase. We find an optimal dephasing parameter for detecting this effect with a principal component analysis. This is particularly intriguing because it predicts random phase deviations across different gravitational wave events, providing theoretical support for hierarchical tests of general relativity. We estimate the constraint on the perturbations in nonviolent nonlocality with events for the LIGO-Virgo network and for a third-generation network.
Copyright and License
© 2026 American Physical Society.
Acknowledgement
We thank Jacob Golomb, Ethan Payne, Sophie Hourihane, Max Isi, Bangalore Sathyaprakash, Matthew Giesler, Steve Giddings, Hang Yu, and Katerina Chatziioannou for their insightful discussions. B. S. acknowledges support by the National Science Foundation Graduate Research Fellowship under Grant No. DGE-1745301. Y. C. and B. C. S. acknowledge support from the Brinson Foundation, the Simons Foundation (Award No. 568762), and by NSF Grants No. PHY-2309211 and No. PHY-2309231.
Funding
B. S. acknowledges support by the National Science Foundation Graduate Research Fellowship under Grant No. DGE-1745301. Y. C. and B. C. S. acknowledge support from the Brinson Foundation, the Simons Foundation (Award No. 568762), and by NSF Grants No. PHY-2309211 and No. PHY-2309231.
Supplemental Material
In the Supplemental Material, we add details on how the effective-one-body waveform is calculated so it can be replicated. We also include material that confirms that the principal component analysis is sufficient. Finally, we include supplemental figures about other statistical tests of nonviolent nonlocality.
Files
yj2l-3hml.pdf
Additional details
Related works
- Is new version of
- Discussion Paper: arXiv:2411.13714 (arXiv)
Funding
- National Science Foundation
- DGE-1745301
- Brinson Foundation
- Simons Foundation
- 568762
- National Science Foundation
- PHY-2309211
- National Science Foundation
- PHY-2309231
Dates
- Submitted
-
2025-11-27
- Accepted
-
2025-12-01
Caltech Custom Metadata
- Caltech groups
- Astronomy Department , TAPIR , Walter Burke Institute for Theoretical Physics , Division of Physics, Mathematics and Astronomy (PMA) , Physics Department
- Publication Status
- Published