Effect of ignoring eccentricity in testing general relativity with gravitational waves
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[1] I. Romero-Shaw,et al. Eccentricity or spin precession? Distinguishing subdominant effects in gravitational-wave data , 2022, Monthly Notices of the Royal Astronomical Society.
[2] P. Lasky,et al. Four Eccentric Mergers Increase the Evidence that LIGO–Virgo–KAGRA’s Binary Black Holes Form Dynamically , 2022, The Astrophysical Journal.
[3] Wayne Hu,et al. Modified gravitational wave propagation with higher modes and its degeneracies with lensing , 2022, Journal of Cosmology and Astroparticle Physics.
[4] P. Lasky,et al. Signs of Eccentricity in Two Gravitational-wave Signals May Indicate a Subpopulation of Dynamically Assembled Binary Black Holes , 2021, The Astrophysical Journal Letters.
[5] M. Mapelli. Formation Channels of Single and Binary Stellar-Mass Black Holes , 2021, Handbook of Gravitational Wave Astronomy.
[6] Pawan Kumar Gupta,et al. Testing the post-Newtonian expansion with GW170817 , 2021, General Relativity and Gravitation.
[7] A. Nitz,et al. Prospects for Detecting Gravitational Waves from Eccentric Subsolar Mass Compact Binaries , 2021, The Astrophysical Journal.
[8] Michael L. Waskom,et al. Seaborn: Statistical Data Visualization , 2021, J. Open Source Softw..
[9] B. Kocsis,et al. High eccentricities and high masses characterize gravitational-wave captures in galactic nuclei as seen by Earth-based detectors , 2020, Monthly Notices of the Royal Astronomical Society.
[10] I. Bartos,et al. Eccentric Black Hole Mergers in Active Galactic Nuclei , 2020, The Astrophysical Journal.
[11] I. Bartos,et al. AGN as potential factories for eccentric black hole mergers , 2020, Nature.
[12] B. A. Boom,et al. Prospects for observing and localizing gravitational-wave transients with Advanced LIGO, Advanced Virgo and KAGRA , 2020, Living Reviews in Relativity.
[13] M. Szczepańczyk,et al. Eccentricity estimate for black hole mergers with numerical relativity simulations , 2020, Nature Astronomy.
[14] P. Lasky,et al. GW190521: Orbital Eccentricity and Signatures of Dynamical Formation in a Binary Black Hole Merger Signal , 2020, The Astrophysical Journal.
[15] Jaime Fern'andez del R'io,et al. Array programming with NumPy , 2020, Nature.
[16] Vivien Raymond,et al. PESummary: The code agnostic Parameter Estimation Summary page builder , 2020, SoftwareX.
[17] G. Desvignes,et al. An improved test of the strong equivalence principle with the pulsar in a triple star system , 2020, Astronomy & Astrophysics.
[18] Aaas News,et al. Book Reviews , 1893, Buffalo Medical and Surgical Journal.
[19] V. Cardoso,et al. Constraints on the astrophysical environment of binaries with gravitational-wave observations , 2019, Astronomy & Astrophysics.
[20] Johannes L. Schönberger,et al. SciPy 1.0: fundamental algorithms for scientific computing in Python , 2019, Nature Methods.
[21] Lucy Rosenbloom. arXiv , 2019, The Charleston Advisor.
[22] Michael Boyle,et al. The SXS collaboration catalog of binary black hole simulations , 2019, Classical and Quantum Gravity.
[23] E. Fauchon-Jones,et al. On modeling for Kerr black holes: basis learning, QNM frequencies, and spherical-spheroidal mixing coefficients , 2018, Classical and Quantum Gravity.
[24] Enrico Ramirez-Ruiz,et al. Eccentric Black Hole Mergers in Dense Star Clusters: The Role of Binary–Binary Encounters , 2018, The Astrophysical Journal.
[25] Mirek Giersz,et al. MOCCA-SURVEY Database. I. Eccentric Black Hole Mergers during Binary–Single Interactions in Globular Clusters , 2017, 1712.06186.
[26] Bence Kocsis,et al. Eccentric Black Hole Gravitational-wave Capture Sources in Galactic Nuclei: Distribution of Binary Parameters , 2017, The Astrophysical Journal.
[27] C. Mishra,et al. Testing general relativity using gravitational wave signals from the inspiral, merger and ringdown of binary black holes , 2017, 1704.06784.
[28] Enrico Ramirez-Ruiz,et al. On the Assembly Rate of Highly Eccentric Binary Black Hole Mergers , 2017, 1703.09703.
[29] F. Antonini,et al. Binary Black Hole Mergers from Field Triples: Properties, Rates, and the Impact of Stellar Evolution , 2017, 1703.06614.
[30] C. A. Oxborrow,et al. Planck2015 results , 2015, Astronomy & Astrophysics.
[31] G. González. The LIGO Scientific Collaboration , 2016 .
[32] C. Broeck,et al. Advanced Virgo: a second-generation interferometric gravitational wave detector , 2014, 1408.3978.
[33] N. Wex. Testing Relativistic Gravity with Radio Pulsars , 2014, 1402.5594.
[34] B. Shappee,et al. Rapid Eccentricity Oscillations and the Mergers of Compact Objects in Hierarchical Triples , 2013, 1308.5682.
[35] Bence Kocsis,et al. Gravitational waves from scattering of stellar-mass black holes in galactic nuclei , 2008, 0807.2638.
[36] L. Wen. On the Eccentricity Distribution of Coalescing Black Hole Binaries Driven by the Kozai Mechanism in Globular Clusters , 2002, astro-ph/0211492.
[37] C. Will. The Confrontation between General Relativity and Experiment , 1980, Living reviews in relativity.
[38] M. J. Williams,et al. Constraints on dark photon dark matter using data from LIGO’s and Virgo’s third observing run The LIGO Scientific Collaboration, Virgo Collaboration, and KAGRA Collaboration , 2021 .
[39] D. Keitel,et al. Determining the final spin of a binary black hole system including in-plane spins: Method and checks of accuracy , 2016 .
[40] The VIRGO Collaboration , 2010 .
[41] William H. Press,et al. Rotating Black Holes: Locally Nonrotating Frames, Energy Extraction, and Scalar Synchrotron Radiation , 1972 .
[42] Rachel McCrindle,et al. private communication , 1969 .
[43] and as an in , 2022 .
[44] S. Klimenko,et al. Advanced LIGO , 2014, 1411.4547.