How serious can the stealth bias be in gravitational wave parameter estimation?
arXiv:1311.2057 · doi:10.1103/PhysRevD.89.022002
Abstract
The upcoming direct detection of gravitational waves will open a window to probing the strong-field regime of general relativity (GR). As a consequence, waveforms that include the presence of deviations from GR have been developed (e.g. in the parametrized post-Einsteinian approach). TIGER, a data analysis pipeline which builds Bayesian evidence to support or question the validity of GR, has been written and tested. In particular, it was shown recently that data from the LIGO and Virgo detectors will allow to detect deviations from GR smaller than can be probed with Solar System tests and pulsar timing measurements or not accessible with conventional tests of GR. However, evidence from several detections is required before a deviation from GR can be confidently claimed. An interesting consequence is that, should GR not be the correct theory of gravity in its strong field regime, using standard GR templates for the matched filter analysis of interferometer data will introduce biases in the gravitational wave measured parameters with potentially disastrous consequences on the astrophysical inferences, such as the coalescence rate or the mass distribution. We consider three heuristic possible deviations from GR and show that the biases introduced by assuming GR's validity manifest in various ways. The mass parameters are usually the most affected, with biases that can be as large as standard deviations for the symmetric mass ratio, and nearly one percent for the chirp mass, which is usually estimated with sub-percent accuracy. We conclude that statements about the nature of the observed sources, e.g. if both objects are neutron stars, depend critically on the explicit assumption that GR it the right theory of gravity in the strong field regime.
10 pages, 9 figures, 5 tables
References in corpus (5)
- A Massive Pulsar in a Compact Relativistic Binary
- LIGO: The Laser Interferometer Gravitational-Wave Observatory
- The Nuclear Equation of State and Neutron Star Masses
- Comparison of post-Newtonian templates for compact binary inspiral signals in gravitational-wave detectors
- Demonstrating the feasibility of probing the neutron star equation of state with second-generation gravitational wave detectors
Cited by in corpus (20)
- Tests of general relativity with GW150914
- Testing General Relativity with Present and Future Astrophysical Observations
- Tests of General Relativity with the Binary Black Hole Signals from the LIGO-Virgo Catalog GWTC-1
- Theoretical Physics Implications of the Binary Black-Hole Mergers GW150914 and GW151226
- TIGER: A data analysis pipeline for testing the strong-field dynamics of general relativity with gravitational wave signals from coalescing compact binaries
- Black Hole Based Tests of General Relativity
- Parameter estimation for binary neutron-star coalescences with realistic noise during the Advanced LIGO era
- Testing the no-hair theorem with black hole ringdowns using TIGER
- Measuring the spin of black holes in binary systems using gravitational waves
- Measuring the Hubble constant with neutron star black hole mergers
- Parameter estimation for heavy binary-black holes with networks of second-generation gravitational-wave detectors
- Polarization-based Tests of Gravity with the Stochastic Gravitational-Wave Background
- Accumulating errors in tests of general relativity with gravitational waves: overlapping signals and inaccurate waveforms
- Constraining modified theories of gravity with gravitational wave stochastic background
- Gravitational wave inference on a numerical-relativity simulation of a black hole merger beyond general relativity
- Gravitational wave emission under general parametrized metric from extreme mass ratio inspirals
- Testing general relativity with compact coalescing binaries: comparing exact and predictive methods to compute the Bayes factor
- Unveiling Microlensing Biases in Testing General Relativity with Gravitational Waves
- Influence of mass-ratio corrections in extreme-mass-ratio inspirals for testing general relativity
- SCoRe: A New Framework to Study Unmodeled Physics from Gravitational Wave Data