Testing GR with the Gravitational Wave Inspiral Signal GW170817
arXiv:2105.02191 · doi:10.1007/s10714-023-03100-z
Abstract
Observations of gravitational waves from compact binary mergers have enabled unique tests of general relativity in the dynamical and non-linear regimes. One of the most important such tests are constraints on the post-Newtonian (PN) corrections to the phase of the gravitational wave signal. The values of these PN coefficients can be calculated within standard general relativity, and these values are different in many alternate theories of gravity. It is clearly of great interest to constrain these deviations based on gravitational wave observations. In the majority of such tests which have been carried out, and which yield by far the most stringent constraints, it is common to vary these PN coefficients individually. While this might in principle be useful for detecting certain deviations from standard general relativity, it is a serious limitation. For example, we would expect alternate theories of gravity to generically have additional parameters. The corrections to the PN coefficients would be expected to depend on these additional non-GR parameters whence, we expect that the various PN coefficients to be highly correlated. We present an alternate analysis here using data from the binary neutron star coalescence GW170817. Our analysis uses an appropriate linear combination of non-GR parameters that represent absolute deviations from the corresponding post-Newtonian inspiral coefficients in the TaylorF2 approximant phase. These combinations represent uncorrelated non-GR parameters which correspond to principal directions of their covariance matrix in the parameter subspace. Our results illustrate good agreement with GR. In particular, the integral non-GR phase is $Ψ_{\mbox{non-GR}} = (0.447\pm253)\times10^{-1}$ and the deviation from GR percentile is $p^{\mbox{Dev-GR}}_{n}=25.85\%$.
10 pages, 4 figures
References in corpus (11)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Tests of general relativity from timing the double pulsar
- Comparison of post-Newtonian templates for compact binary inspiral signals in gravitational-wave detectors
- Use and Abuse of the Fisher Information Matrix in the Assessment of Gravitational-Wave Parameter-Estimation Prospects
- An improved effective-one-body model of spinning, nonprecessing binary black holes for the era of gravitational-wave astrophysics with advanced detectors
- Multipolar Effective-One-Body Waveforms for Precessing Binary Black Holes: Construction and Validation
- A Highly Spinning and Aligned Binary Black Hole Merger in the Advanced LIGO First Observing Run
- A new effective-one-body description of coalescing nonprecessing spinning black-hole binaries
- Probing the non-linear structure of general relativity with black hole binaries
- Improved gravitational-wave constraints on higher-order curvature theories of gravity
- Parametrized tests of post-Newtonian theory using principal component analysis
Cited by in corpus (12)
- Tests of General Relativity with GWTC-3
- Systematic biases due to waveform mismodeling in parametrized post-Einsteinian tests of general relativity: The impact of neglecting spin precession and higher modes
- Fortifying gravitational-wave tests of general relativity against astrophysical assumptions
- Neural post-Einsteinian framework for efficient theory-agnostic tests of general relativity with gravitational waves
- Template bank to search for exotic gravitational wave signals from astrophysical compact binaries
- Confronting general relativity with principal component analysis: Simulations and results from GWTC-3 events
- GW230814: investigation of a loud gravitational-wave signal observed with a single detector
- A Parametrized Test of General Relativity for LISA Massive Black Hole Binary Inspirals
- Ten years of extreme gravity tests of general theory of relativity with gravitational-wave observations
- Multi-parameter Tests of General Relativity Using Bayesian Parameter Estimation with Principal Component Analysis for LISA
- The Multi-parameter Test of Gravitational Wave Dispersion with Principal Component Analysis
- Constraining Scalar Charge in Neutron Stars through Gravitational Wave Signals from NSBH Mergers