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We investigate the impact of post-adiabatic (1PA) terms on parameter estimation for extreme and intermediate mass-ratio inspirals using state-of-the-art waveform models.
N. Wiener et al. , “Generalized harmonic analysis,” Acta mathematica , vol. 55, pp. 117–258, 1930
1930
Earlier work this paper cites.
A. Khintchine, “Korrelationstheorie der stationären stochastischen prozesse,” Mathematische Annalen , vol. 109, no. 1, pp. 604–615, 1934
1934
Earlier work this paper cites.
P. Whittle, “Curve and periodogram smoothing,” Journal of the Royal Statistical Society: Series B (Statistical Methodology) , vol. 19, pp. 38–63, 1957
1957
Earlier work this paper cites.
S. A. Hughes, “Adiabatic and post-adiabatic approaches to extreme mass ratio inspiral,” in 14th Marcel Grossmann Meeting on Recent Developments in Theoretical and Experimental General Relativity, Astrophysics, and Relativistic Field Theories , vol. 2, 2017, pp. 1953–1959
1959
Earlier work this paper cites.
W. Dixon, “A covariant multipole formalism for extended test bodies in general relativity,” Il Nuovo Cimento , vol. 34, no. 2, pp. 317–339, Oct 1964
1964
Earlier work this paper cites.
J. N. Goldberg, A. J. Macfarlane, E. T. Newman, F. Rohrlich, and E. C. G. Sudarshan, “Spin-s Spherical Harmonics and ð,” Journal of Mathematical Physics , vol. 8, no. 11, pp. 2155–2161, Nov. 1967
1967
Earlier work this paper cites.
W. G. Dixon, “Dynamics of extended bodies in general relativity. I. Momentum and angular momentum,” Proc. Roy. Soc. Lond. , vol. A314, pp. 499–527, 1970
1970
Earlier work this paper cites.
——, “Dynamics of extended bodies in general relativity. II. Moments of the charge-current vector,” Proc. Roy. Soc. Lond. , vol. A319, pp. 509–547, 1970
1970
Earlier work this paper cites.
R. Rüdiger, “Conserved quantities of spinning test particles in general relativity. i,” Proceedings of the Royal Society of London. Series A, Mathematical and Physical Sciences , vol. 375, no. 1761, pp. 185–193, 1981. [Online]. Available: http://www.jstor.org/stable/2990231
1981
Earlier work this paper cites.
——, “Conserved quantities of spinning test particles in general relativity. ii,” Proceedings of the Royal Society of London. Series A, Mathematical and Physical Sciences , vol. 385, no. 1788, pp. 229–239, 1983. [Online]. Available: http://www.jstor.org/stable/2397480
1983
Earlier work this paper cites.
L. S. Finn, “Detection, measurement, and gravitational radiation,” Physical Review D , vol. 46, no. 12, p. 5236, 1992
1992
Earlier work this paper cites.
C. Cutler, D. Kennefick, and E. Poisson, “Gravitational radiation reaction for bound motion around a Schwarzschild black hole,” Phys. Rev. D , vol. 50, pp. 3816–3835, 1994
1994
Earlier work this paper cites.
T. Tanaka, Y. Mino, M. Sasaki, and M. Shibata, “Gravitational waves from a spinning particle in circular orbits around a rotating black hole,” Phys. Rev. D , vol. 54, pp. 3762–3777, 1996
1996
Earlier work this paper cites.
D. Kennefick and A. Ori, “Radiation reaction induced evolution of circular orbits of particles around Kerr black holes,” Phys. Rev. D , vol. 53, pp. 4319–4326, 1996
1996
Earlier work this paper cites.
M. K. Cowles and B. P. Carlin, “Markov chain monte carlo convergence diagnostics: a comparative review,” Journal of the American Statistical Association , vol. 91, no. 434, pp. 883–904, 1996
1996
Earlier work this paper cites.
J. Armstrong, F. Estabrook, and M. Tinto, “Time-delay interferometry for space-based gravitational wave searches,” The Astrophysical Journal , vol. 527, no. 2, p. 814, 1999
1999
Earlier work this paper cites.
A. Ori and K. S. Thorne, “Transition from inspiral to plunge for a compact body in a circular equatorial orbit around a massive, spinning black hole,” Physical Review D , vol. 62, no. 12, p. 124022, 2000
2000
Earlier work this paper cites.
R. O’Shaughnessy, “Transition from inspiral to plunge for eccentric equatorial kerr orbits,” Physical Review D , vol. 67, no. 4, p. 044004, 2003
2003
Earlier work this paper cites.
J. R. Gair, L. Barack, T. Creighton, C. Cutler, S. L. Larson, E. S. Phinney, and M. Vallisneri, “Event rate estimates for lisa extreme mass ratio capture sources,” Classical and Quantum Gravity , vol. 21, no. 20, p. S1595, 2004
2004
Earlier work this paper cites.
L. Barack and C. Cutler, “Lisa capture sources: Approximate waveforms, signal-to-noise ratios, and parameter estimation accuracy,” Physical Review D , vol. 69, no. 8, p. 082005, 2004
2004
Earlier work this paper cites.
K. Martel, “Gravitational wave forms from a point particle orbiting a Schwarzschild black hole,” Phys. Rev. D , vol. 69, p. 044025, 2004
2004
Earlier work this paper cites.
L. Barack and C. Cutler, “LISA capture sources: Approximate waveforms, signal-to-noise ratios, and parameter estimation accuracy,” Phys. Rev. D , vol. 69, p. 082005, 2004
2004
Earlier work this paper cites.
M. Tinto and S. V. Dhurandhar, “TIME DELAY,” Living Rev. Rel. , vol. 8, p. 4, 2005
2005
Earlier work this paper cites.
M. Vallisneri, “Synthetic lisa: Simulating time delay interferometry in a model lisa,” Physical Review D , vol. 71, no. 2, p. 022001, 2005
2005
Earlier work this paper cites.
L. Barack and C. Cutler, “Using lisa extreme-mass-ratio inspiral sources to test off-kerr deviations in the geometry of massive black holes,” Physical Review D , vol. 75, no. 4, p. 042003, 2007
2007
Earlier work this paper cites.
S. Babak, H. Fang, J. R. Gair, K. Glampedakis, and S. A. Hughes, ““kludge” gravitational waveforms for a test-body orbiting a kerr black hole,” Physical Review D , vol. 75, no. 2, p. 024005, 2007
2007
Earlier work this paper cites.
C. Cutler and M. Vallisneri, “Lisa detections of massive black hole inspirals: Parameter extraction errors due to inaccurate template waveforms,” Physical Review D , vol. 76, no. 10, p. 104018, 2007
2007
Earlier work this paper cites.
L. Barack and C. Cutler, “Using LISA EMRI sources to test off-Kerr deviations in the geometry of massive black holes,” Phys. Rev. D , vol. 75, p. 042003, 2007
2007
Earlier work this paper cites.
J. D. Hunter, “Matplotlib: A 2d graphics environment,” Computing in Science & Engineering , vol. 9, no. 3, pp. 90–95, 2007
2007
Earlier work this paper cites.
T. Hinderer and E. E. Flanagan, “Two timescale analysis of extreme mass ratio inspirals in Kerr. I. Orbital Motion,” Phys. Rev. D , vol. 78, p. 064028, 2008
2008
Earlier work this paper cites.
L. Lindblom, B. J. Owen, and D. A. Brown, “Model waveform accuracy standards for gravitational wave data analysis,” Physical Review D , vol. 78, no. 12, p. 124020, 2008
2008
Earlier work this paper cites.
M. Vallisneri, “Use and abuse of the fisher information matrix in the assessment of gravitational-wave parameter-estimation prospects,” Physical Review D , vol. 77, no. 4, p. 042001, 2008
2008
Earlier work this paper cites.
I. Mandel, D. A. Brown, J. R. Gair, and M. C. Miller, “Rates and characteristics of intermediate mass ratio inspirals detectable by advanced ligo,” The Astrophysical Journal , vol. 681, no. 2, p. 1431, 2008
2008
Earlier work this paper cites.
J. R. Gair, E. Porter, S. Babak, and L. Barack, “A constrained metropolis–hastings search for emris in the mock lisa data challenge 1b,” Classical and Quantum Gravity , vol. 25, no. 18, p. 184030, 2008
2008
Earlier work this paper cites.
J. R. Gair, I. Mandel, and L. Wen, “Improved time–frequency analysis of extreme-mass-ratio inspiral signals in mock lisa data,” Classical and Quantum Gravity , vol. 25, no. 18, p. 184031, 2008
2008
Earlier work this paper cites.
R. Fujita, W. Hikida, and H. Tagoshi, “An Efficient Numerical Method for Computing Gravitational Waves Induced by a Particle Moving on Eccentric Inclined Orbits around a Kerr Black Hole,” Prog. Theor. Phys. , vol. 121, pp. 843–874, 2009
2009
Earlier work this paper cites.
I. Mandel and J. R. Gair, “Can we detect intermediate mass ratio inspirals?” Classical and Quantum Gravity , vol. 26, no. 9, p. 094036, 2009
2009
Earlier work this paper cites.
R. Fujita and W. Hikida, “Analytical solutions of bound timelike geodesic orbits in Kerr spacetime,” Class. Quant. Grav. , vol. 26, p. 135002, 2009
2009
Earlier work this paper cites.
S. Babak, J. R. Gair, and E. K. Porter, “An algorithm for the detection of extreme mass ratio inspirals in lisa data,” Classical and quantum gravity , vol. 26, no. 13, p. 135004, 2009
2009
Earlier work this paper cites.
S. Babak et al. , “The Mock LISA Data Challenges: From Challenge 3 to Challenge 4,” Class. Quant. Grav. , vol. 27, p. 084009, 2010
2010
Earlier work this paper cites.
J. Goodman and J. Weare, “Ensemble samplers with affine invariance,” Communications in applied mathematics and computational science , vol. 5, no. 1, pp. 65–80, 2010
2010
Earlier work this paper cites.
S. Babak, J. G. Baker, M. J. Benacquista, N. J. Cornish, S. L. Larson, I. Mandel, S. T. McWilliams, A. Petiteau, E. K. Porter, E. L. Robinson et al. , “The mock lisa data challenges: from challenge 3 to challenge 4,” Classical and Quantum Gravity , vol. 27, no. 8, p. 084009, 2010
2010
Earlier work this paper cites.
M. Kesden, “Transition from adiabatic inspiral to plunge into a spinning black hole,” Physical Review D , vol. 83, no. 10, p. 104011, 2011
2011
Earlier work this paper cites.
P. Pani, V. Cardoso, and L. Gualtieri, “Gravitational waves from extreme mass-ratio inspirals in Dynamical Chern-Simons gravity,” Phys. Rev. D , vol. 83, p. 104048, 2011
2011
Earlier work this paper cites.
N. J. Cornish, “Detection strategies for extreme mass ratio inspirals,” Classical and Quantum Gravity , vol. 28, no. 9, p. 094016, 2011
2011
Earlier work this paper cites.
A. Le Tiec, E. Barausse, and A. Buonanno, “Gravitational Self-Force Correction to the Binding Energy of Compact Binary Systems,” Phys. Rev. Lett. , vol. 108, p. 131103, 2012
2012
Earlier work this paper cites.
R. Fujita, “Gravitational Waves from a Particle in Circular Orbits around a Schwarzschild Black Hole to the 22nd Post-Newtonian Order,” Prog. Theor. Phys. , vol. 128, pp. 971–992, 2012
2012
Earlier work this paper cites.
M. Vallisneri and C. R. Galley, “Non-sky-averaged sensitivity curves for space-based gravitational-wave observatories,” Classical and Quantum Gravity , vol. 29, no. 12, p. 124015, 2012
2012
Earlier work this paper cites.
P. Canizares, J. R. Gair, and C. F. Sopuerta, “Testing Chern-Simons Modified Gravity with Gravitational-Wave Detections of Extreme-Mass-Ratio Binaries,” Phys. Rev. D , vol. 86, p. 044010, 2012
2012
Earlier work this paper cites.
N. Yunes, P. Pani, and V. Cardoso, “Gravitational Waves from Quasicircular Extreme Mass-Ratio Inspirals as Probes of Scalar-Tensor Theories,” Phys. Rev. D , vol. 85, p. 102003, 2012
2012
Cited alongside, same era.
J. R. Gair, M. Vallisneri, S. L. Larson, and J. G. Baker, “Testing general relativity with low-frequency, space-based gravitational-wave detectors,” Living Reviews in Relativity , vol. 16, pp. 1–109, 2013
2013
Cited alongside, same era.
D. Foreman-Mackey, D. W. Hogg, D. Lang, and J. Goodman, “emcee: The MCMC Hammer,” Astronomical Society of the Pacific , vol. 125, no. 925, p. 306, Mar. 2013
2013
Cited alongside, same era.
E. E. Flanagan, S. A. Hughes, and U. Ruangsri, “Resonantly enhanced and diminished strong-field gravitational-wave fluxes,” Phys. Rev. D , vol. 89, no. 8, p. 084028, 2014
2014
Cited alongside, same era.
V. Skoupý and G. Lukes-Gerakopoulos, “Spinning test body orbiting around a Kerr black hole: Eccentric equatorial orbits and their asymptotic gravitational-wave fluxes,” Phys. Rev. D , vol. 103, no. 10, p. 104045, 2021
2021
Later among the works it cites.
J. Miller and A. Pound, “Two-timescale evolution of extreme-mass-ratio inspirals: waveform generation scheme for quasicircular orbits in Schwarzschild spacetime,” Phys. Rev. D , vol. 103, no. 6, p. 064048, 2021
2021
Later among the works it cites.
N. Warburton, A. Pound, B. Wardell, J. Miller, and L. Durkan, “Gravitational-Wave Energy Flux for Compact Binaries through Second Order in the Mass Ratio,” Phys. Rev. Lett. , vol. 127, no. 15, p. 151102, 2021
2021
Later among the works it cites.
W. Martens and E. Joffre, “Trajectory design for the esa lisa mission,” The Journal of the Astronautical Sciences , vol. 68, no. 2, pp. 402–443, 2021
2021
Later among the works it cites.
alphaXiv searches the wider corpus for related work and actual follow-ups.
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P. M. Woodward, Probability and information theory, with applications to radar: international series of monographs on electronics and instrumentation . Elsevier, 2014, vol. 3
2014
Cited alongside, same era.
C. J. Moore, R. H. Cole, and C. P. Berry, “Gravitational-wave sensitivity curves,” Classical and Quantum Gravity , vol. 32, no. 1, p. 015014, 2014
2014
Cited alongside, same era.
A. I. Harte, “Motion in classical field theories and the foundations of the self-force problem,” Fund. Theor. Phys. , vol. 179, pp. 327–398, 2015
2015
Cited alongside, same era.
P. I. Jefremov, O. Yu. Tsupko, and G. S. Bisnovatyi-Kogan, “Innermost stable circular orbits of spinning test particles in Schwarzschild and Kerr space-times,” Phys. Rev. , vol. D91, no. 12, p. 124030, 2015
2015
Cited alongside, same era.
T. Osburn, N. Warburton, and C. R. Evans, “Highly eccentric inspirals into a black hole,” Phys. Rev. D , vol. 93, no. 6, p. 064024, 2016
2016
Cited alongside, same era.
J. L. Blázquez-Salcedo, C. F. B. Macedo, V. Cardoso, V. Ferrari, L. Gualtieri, F. S. Khoo, J. Kunz, and P. Pani, “Perturbed black holes in Einstein-dilaton-Gauss-Bonnet gravity: Stability, ringdown, and gravitational-wave emission,” Phys. Rev. D , vol. 94, no. 10, p. 104024, 2016
2016
Cited alongside, same era.
D. Foreman-Mackey, “corner.py: Scatterplot matrices in python,” The Journal of Open Source Software , vol. 1, no. 2, p. 24, jun 2016. [Online]. Available: https://doi.org/10.21105/joss.00024
2016
Cited alongside, same era.
S. R. Hinton, “ChainConsumer,” The Journal of Open Source Software , vol. 1, p. 00045, Aug. 2016
2016
Cited alongside, same era.
A. J. K. Chua, M. L. Katz, N. Warburton, and S. A. Hughes, “Rapid generation of fully relativistic extreme-mass-ratio-inspiral waveform templates for LISA data analysis,” Phys. Rev. Lett. , vol. 126, no. 5, p. 051102, 2021
2021
Later among the works it cites.
M. L. Katz, A. J. K. Chua, L. Speri, N. Warburton, and S. A. Hughes, “Fast extreme-mass-ratio-inspiral waveforms: New tools for millihertz gravitational-wave data analysis,” Phys. Rev. D , vol. 104, no. 6, p. 064047, 2021
2021
Later among the works it cites.
G. Compère and L. Küchler, “Self-consistent adiabatic inspiral and transition motion,” Physical review letters , vol. 126, no. 24, p. 241106, 2021
2021
Later among the works it cites.
C. Talbot, E. Thrane, S. Biscoveanu, and R. Smith, “Inference with finite time series: Observing the gravitational universe through windows,” Physical Review Research , vol. 3, no. 4, p. 043049, 2021
2021
Later among the works it cites.
O. Edy, A. Lundgren, and L. K. Nuttall, “Issues of mismodeling gravitational-wave data for parameter estimation,” Physical Review D , vol. 103, no. 12, p. 124061, 2021
2021
Later among the works it cites.
2021
Later among the works it cites.
E. Maggio, M. van de Meent, and P. Pani, “Extreme mass-ratio inspirals around a spinning horizonless compact object,” Phys. Rev. D , vol. 104, no. 10, p. 104026, 2021
2021
Later among the works it cites.
D. Laghi, N. Tamanini, W. Del Pozzo, A. Sesana, J. Gair, S. Babak, and D. Izquierdo-Villalba, “Gravitational-wave cosmology with extreme mass-ratio inspirals,” Monthly Notices of the Royal Astronomical Society , vol. 508, no. 3, pp. 4512–4531, 2021
2021
Later among the works it cites.
A. Maselli, N. Franchini, L. Gualtieri, T. P. Sotiriou, S. Barsanti, and P. Pani, “Detecting fundamental fields with LISA observations of gravitational waves from extreme mass-ratio inspirals,” Nature Astron. , vol. 6, no. 4, pp. 464–470, 2022
2022
Later among the works it cites.
S. Barsanti, N. Franchini, L. Gualtieri, A. Maselli, and T. P. Sotiriou, “Extreme mass-ratio inspirals as probes of scalar fields: eccentric equatorial orbits around Kerr black holes,” 3 2022
2022
Later among the works it cites.
A. Pound and B. Wardell, “Black hole perturbation theory and gravitational self-force,” Handbook of Gravitational Wave Astronomy , pp. 1–119, 2022
2022
Later among the works it cites.
Lynch, Philip and van de Meent, Maarten and Warburton, Niels, “Eccentric self-forced inspirals into a rotating black hole,” Class. Quant. Grav. , vol. 39, no. 14, p. 145004, 2022
2022
Later among the works it cites.
S. Isoyama, R. Fujita, A. J. K. Chua, H. Nakano, A. Pound, and N. Sago, “Adiabatic Waveforms from Extreme-Mass-Ratio Inspirals: An Analytical Approach,” Phys. Rev. Lett. , vol. 128, no. 23, p. 231101, 2022
2022
Later among the works it cites.
P. Gupta, L. Speri, B. Bonga, A. J. K. Chua, and T. Tanaka, “Modeling transient resonances in extreme-mass-ratio inspirals,” Phys. Rev. D , vol. 106, no. 10, p. 104001, 2022
2022
Later among the works it cites.
P. Lynch, “Efficient trajectory calculations for extreme mass-ratio inspirals using near-identity (averaging) transformations,” Ph.D. dissertation, University College Dublin, 2022, available electronically at http://hdl.handle.net/10197/13347
2022
Later among the works it cites.
J. Mathews, A. Pound, and B. Wardell, “Self-force calculations with a spinning secondary,” Phys. Rev. D , vol. 105, no. 8, p. 084031, 2022
2022
Later among the works it cites.
L. V. Drummond and S. A. Hughes, “Precisely computing bound orbits of spinning bodies around black holes. I. General framework and results for nearly equatorial orbits,” Phys. Rev. D , vol. 105, no. 12, p. 124040, 2022
2022
Later among the works it cites.
Drummond, Lisa V. and Hughes, Scott A., “Precisely computing bound orbits of spinning bodies around black holes. II. Generic orbits,” Phys. Rev. D , vol. 105, no. 12, p. 124041, 2022
2022
Later among the works it cites.
A. J. Chua and C. J. Cutler, “Nonlocal parameter degeneracy in the intrinsic space of gravitational-wave signals from extreme-mass-ratio inspirals,” Physical Review D , vol. 106, no. 12, p. 124046, 2022
2022
Later among the works it cites.
A. I. Burke and O. Burke, “Extreme precision and extreme complexity: source modelling and data analysis development for the laser interferometer space antenna,” Ph.D. dissertation, The University of Edinburgh, 2022, available electronically at https://era.ed.ac.uk/handle/1842/38372
2022
Later among the works it cites.
K. G. Arun et al. , “New horizons for fundamental physics with LISA,” Living Rev. Rel. , vol. 25, no. 1, p. 4, 2022
2022
Later among the works it cites.
A. Albertini, A. Nagar, A. Pound, N. Warburton, B. Wardell, L. Durkan, and J. Miller, “Comparing second-order gravitational self-force, numerical relativity, and effective one body waveforms from inspiralling, quasicircular, and nonspinning black hole binaries,” Phys. Rev. D , vol. 106, no. 8, p. 084061, 2022
2022
Later among the works it cites.
P. Gupta, L. Speri, B. Bonga, A. J. Chua, and T. Tanaka, “Modeling transient resonances in extreme-mass-ratio inspirals,” Physical Review D , vol. 106, no. 10, p. 104001, 2022
2022
Later among the works it cites.
A. Maselli, N. Franchini, L. Gualtieri, T. P. Sotiriou, S. Barsanti, and P. Pani, “Detecting fundamental fields with lisa observations of gravitational waves from extreme mass-ratio inspirals,” Nature Astronomy , vol. 6, no. 4, pp. 464–470, 2022
2022
Later among the works it cites.
M. L. Katz, J.-B. Bayle, A. J. Chua, and M. Vallisneri, “Assessing the data-analysis impact of lisa orbit approximations using a gpu-accelerated response model,” Physical Review D , vol. 106, no. 10, p. 103001, 2022
2022
Later among the works it cites.
2023
Closest in time.
2023
Closest in time.
2023
Closest in time.
S. A. Hughes, N. Warburton, G. Khanna, A. J. K. Chua, and M. L. Katz, “Adiabatic waveforms for extreme mass-ratio inspirals via multivoice decomposition in time and frequency,” Phys. Rev. D , vol. 103, no. 10, p. 104014, 2021, [Erratum: Phys.Rev.D 107, 089901 (2023)]
2023
Closest in time.
B. Wardell, A. Pound, N. Warburton, J. Miller, L. Durkan, and A. Le Tiec, “Gravitational Waveforms for Compact Binaries from Second-Order Self-Force Theory,” Phys. Rev. Lett. , vol. 130, no. 24, p. 241402, 2023
2023
Closest in time.
P. A. Seoane et al. , “Astrophysics with the Laser Interferometer Space Antenna,” Living Rev. Rel. , vol. 26, no. 1, p. 2, 2023
2023
Closest in time.
G. A. Piovano, A. Maselli, and P. Pani, “Constraining the tidal deformability of supermassive objects with extreme mass ratio inspirals and semianalytical frequency-domain waveforms,” Phys. Rev. D , vol. 107, no. 2, p. 024021, 2023
2023
Closest in time.
2023
Closest in time.
L. Blanchet, G. Faye, Q. Henry, F. Larrouturou, and D. Trestini, “Gravitational-wave flux and quadrupole modes from quasicircular nonspinning compact binaries to the fourth post-Newtonian order,” Phys. Rev. D , vol. 108, no. 6, p. 064041, 2023
2023
Closest in time.
N. Warburton, B. Wardell, O. Long, S. Upton, P. Lynch, Z. Nasipak, and L. C. Stein, “Kerrgeodesics,” Jul. 2023. [Online]. Available: https://doi.org/10.5281/zenodo.8108265
2023
Closest in time.
C. Munna, C. R. Evans, and E. Forseth, “Tidal heating and torquing of the primary black hole in eccentric-orbit, nonspinning, extreme-mass-ratio inspirals to 22PN order,” Phys. Rev. D , vol. 108, no. 4, p. 044039, 2023
2023
Closest in time.
N. Warburton, B. Wardell, C. Munna, and C. Kavanagh, “Postnewtonianselfforce,” Jul. 2023. [Online]. Available: https://doi.org/10.5281/zenodo.8112975
2023
Closest in time.
2023
Closest in time.
M. Katz, N. Karnesis, and N. Korsakova, “mikekatz04/eryn: first full release,” Mar. 2023, available at https://doi.org/10.5281/zenodo.7705496
2023
Closest in time.
C. E. A. Chapman-Bird, C. P. L. Berry, and G. Woan, “Rapid determination of LISA sensitivity to extreme mass ratio inspirals with machine learning,” Monthly Notices of the Royal Astronomical Society , vol. 522, no. 4, pp. 6043–6054, 05 2023. [Online]. Available: https://doi.org/10.1093/mnras/stad1397
2023
Closest in time.
S. D. B. Fell, L. Heisenberg, and D. Veske, “Detecting Fundamental Vector Fields with LISA,” 4 2023
2023
Closest in time.
S. Barsanti, A. Maselli, T. P. Sotiriou, and L. Gualtieri, “Detecting Massive Scalar Fields with Extreme Mass-Ratio Inspirals,” Phys. Rev. Lett. , vol. 131, no. 5, p. 051401, 2023
2023
Closest in time.
M. L. Katz, L. Speri, A. J. K. Chua, C. E. A. Chapman-Bird, N. Warburton, and S. A. Hughes, “BlackHolePerturbationToolkit/FastEMRIWaveforms: Frequency Domain Waveform Added!” Jul. 2023. [Online]. Available: https://doi.org/10.5281/zenodo.8190418
2023
Closest in time.
V. Witzany and G. A. Piovano, “Analytic Solutions for the Motion of Spinning Particles near Spherically Symmetric Black Holes and Exotic Compact Objects,” Phys. Rev. Lett. , vol. 132, no. 17, p. 171401, 2024
2024
Closest in time.