Statistical and systematic errors for gravitational-wave inspiral signals: A principal component analysis
arXiv:1304.7017 · doi:10.1103/PhysRevD.88.042002
Abstract
Identifying the source parameters from a gravitational-wave measurement alone is limited by our ability to discriminate signals from different sources and the accuracy of the waveform family employed in the search. Here we address both issues in the framework of an adapted coordinate system that allows for linear Fisher-matrix type calculations of waveform differences that are both accurate and computationally very efficient. We investigate statistical errors by using principal component analysis of the post-Newtonian (PN) expansion coefficients, which is well conditioned despite the Fisher matrix becoming ill conditioned for larger numbers of parameters. We identify which combinations of physical parameters are most effectively measured by gravitational-wave detectors for systems of neutron stars and black holes with aligned spin. We confirm the expectation that the dominant parameter of the inspiral waveform is the chirp mass. The next dominant parameter depends on a combination of the spin and the symmetric mass ratio. In addition, we can study the systematic effect of various spin contributions to the PN phasing within the same parametrization, showing that the inclusion of spin-orbit corrections up to next-to-leading order, but not necessarily of spin-spin contributions, is crucial for an accurate inspiral waveform model. This understanding of the waveform structure throughout the parameter space is important to set up an efficient search strategy and correctly interpret future gravitational-wave observations.
16 pages, 7 figures, pdfLaTeX, improved presentation, matches published version
References in corpus (12)
- LIGO: The Laser Interferometer Gravitational-Wave Observatory
- 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
- Model Waveform Accuracy Standards for Gravitational Wave Data Analysis
- Towards models of gravitational waveforms from generic binaries: A simple approximate mapping between precessing and non-precessing inspiral signals
- Next-to-next-to-leading order spin-orbit effects in the gravitational wave flux and orbital phasing of compact binaries
- Detecting binary neutron star systems with spin in advanced gravitational-wave detectors
- When can gravitational-wave observations distinguish between black holes and neutron stars?
- A template bank to search for gravitational waves from inspiralling compact binaries I: physical models
- Simulations of black-hole binaries with unequal masses or non-precessing spins: accuracy, physical properties, and comparison with post-Newtonian results
- Accuracy and effectualness of closed-form, frequency-domain waveforms for non-spinning black hole binaries
- Use and Abuse of the Model Waveform Accuracy Standards
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