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Inspiraling binary neutron stars are expected to be one of the most significant sources of gravitational-wave signals for the new generation of advanced ground-based detectors.
The Black Hole Mass Distribution in the Galaxy
Feryal Özel, Dimitrios Psaltis, Ramesh Narayan, and Jeffrey E. McClintock · 1918
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Determining the Hubble Constant from Gravitational Wave Observations
Bernard F. Schutz · 1986
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Observing binary inspiral in gravitational radiation: One interferometer
Lee Samuel Finn and David F. Chernoff · 1993
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Gravitational waves from merging compact binaries: How accurately can one extract the binary’s parameters from the inspiral wave form?
Curt Cutler and Eanna É. Flanagan · 1994
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An increased estimate of the merger rate of double neutron stars from observations of a highly relativistic system
M. Burgay, N. D’Amico, A. Possenti, R. N. Manchester, A. G. Lyne, B. C. Joshi, M. A. McLaughlin, M. Kramer, J. M. Sarkissian, F. Camilo, V. Kalogera, C. Kim, and D. R. Lorimer · 2003
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A Metropolis-Hastings routine for estimating parameters from compact binary inspiral events with laser interferometric gravitational radiation data
N. Christensen, A. Libson, and R. Meyer · 2004
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LISA observations of rapidly spinning massive black hole binary systems
Alberto Vecchio · 2004
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Bayesian Logical Data Analysis for the Physical Sciences
Philip C. Gregory · 2005
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Detecting gravitational waves from precessing binaries of spinning compact objects: Adiabatic limit
Alessandra Buonanno, Yan-bei Chen, and Vallisneri Michele · 2006
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A radio pulsar spinning at 716-hz
Jason W. T. Hessels, Scott M. Ransom, Stairs Ingrid H., Paulo Cesar Carvalho Freire, Kaspi Victoria M., and Fernando Camilo · 2006
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Bayesian inference on compact binary inspiral gravitational radiation signals in interferometric data
Christian Röver, Renate Meyer, and Christensen Nelson · 2006
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Nested sampling for general Bayesian computation
J. Skilling · 2006
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Measuring coalescing massive binary black holes with gravitational waves: The Impact of spin-induced precession
Ryan N. Lang and Scott A. Hughes · 2008
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Binary and Millisecond Pulsars
D. R. Lorimer · 2008
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Use and abuse of the Fisher information matrix in the assessment of gravitational-wave parameter-estimation prospects
Michele Vallisneri · 2008
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Gravitational-Wave Astronomy with Inspiral Signals of Spinning Compact-Object Binaries
M. V. van der Sluys, C. Röver, A. Stroeer, V. Raymond, I. Mandel, N. Christensen, V. Kalogera, R. Meyer, and A. Vecchio · 2008
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Comparison of post-Newtonian templates for compact binary inspiral signals in gravitational-wave detectors
Alessandra Buonanno, Bala Iyer, Evan Ochsner, Yi Pan, and B. S. Sathyaprakash · 2009
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Tidal deformability of neutron stars with realistic equations of state and their gravitational wave signatures in binary inspiral
Tanja Hinderer, Benjamin D. Lackey, Ryan N. Lang, and Jocelyn S. Read · 2010
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Compact Binary Coalescences in the Band of Ground-based Gravitational-Wave Detectors
Ilya Mandel and Richard O’Shaughnessy · 2010
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Exploring short gamma-ray bursts as gravitational-wave standard sirens
Samaya Nissanke, Daniel E. Holz, Scott A. Hughes, Neal Dalal, and Jonathan L. Sievers · 2010
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Bayesian coherent analysis of in-spiral gravitational wave signals with a detector network
J. Veitch and A. Vecchio · 2010
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The Mass Distribution of Stellar-Mass Black Holes
Will M. Farr, Niharika Sravan, Andrew Cantrell, Laura Kreidberg, Charles D. Bailyn, Mandel Ilya, and Vicky Kalogera · 2011
Cited alongside, same era.
The spin parameter of uniformly rotating compact stars
Ka-Wai Lo and Lap-Ming Lin · 2011
Cited alongside, same era.
Localizing compact binary inspirals on the sky using ground-based gravitational wave interferometers
Samaya Nissanke, Jonathan Sievers, Neal Dalal, and Daniel Holz · 2011
Cited alongside, same era.
Early aLIGO Configurations: example scenarios toward design sensitivity
L. Barsotti and P. Fritschel · 2012
Cited alongside, same era.
Detecting binary neutron star systems with spin in advanced gravitational-wave detectors
Duncan A. Brown, Ian Harry, Andrew Lundgren, and Alexander H. Nitz · 2012
Cited alongside, same era.
Toward Early-Warning Detection of Gravitational Waves from Compact Binary Coalescence
Reconstructing the sky location of gravitational-wave detected compact binary systems: methodology for testing and comparison
T. Sidery, B. Aylott, N. Christensen, B. Farr, W. Farr, F. Feroz, J. Gair, K. Grover, P. Graff, C. Hanna, V. Kalogera, I. Mandel, R. O’Shaughnessy, M. Pitkin, L. Price, V. Raymond, C. Röver, L. Singer, M. van der Sluys, R. J. E. Smith, A. Vecchio, J. Veitch, and S. Vitale · 2014
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The first two years of electromagnetic follow-up with Advanced LIGO and Virgo
L. P. Singer, L. R. Price, B. Farr, A. L. Urban, C. Pankow, S. Vitale, J. Veitch, W. M. Farr, C. Hanna, K. Cannon, T. Downes, P. Graff, C.-J. Haster, I. Mandel, T. Sidery, and A. Vecchio · 2014
Later among the works it cites.
Measuring the spin of black holes in binary systems using gravitational waves
Salvatore Vitale, Ryan Lynch, John Veitch, Vivien Raymond, and Riccardo Sturani · 2014
Later among the works it cites.
Systematic and statistical errors in a bayesian approach to the estimation of the neutron-star equation of state using advanced gravitational wave detectors
L. Wade, J. D. E. Creighton, E. Ochsner, B. D. Lackey, B. F. Farr, T. B. Littenberg, and V. Raymond · 2014
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K. Cannon, R. Cariou, A. Chapman, M. Crispin-Ortuzar, N. Fotopoulos, M. Frei, C. Hanna, E. Kara, D. Keppel, L. Liao, S. Privitera, A. Searle, L. Singer, and A. Weinstein · 2012
Cited alongside, same era.
Measurability of the tidal polarizability of neutron stars in late-inspiral gravitational-wave signals
Thibault Damour, Alessandro Nagar, and Loic Villain · 2012
Cited alongside, same era.
Inference of the cosmological parameters from gravitational waves: application to second generation interferometers
Walter Del Pozzo · 2012
Cited alongside, same era.
Mass Measurements of Black Holes in X-Ray Transients: Is There a Mass Gap?
Laura Kreidberg, Charles D. Bailyn, Will M. Farr, and Vassiliki Kalogera · 2012
Cited alongside, same era.
On the Mass Distribution and Birth Masses of Neutron Stars
Feryal Özel, Dimitrios Psaltis, Ramesh Narayan, and Antonio Santos Villarreal · 2012
Cited alongside, same era.
Estimating parameters of coalescing compact binaries with proposed advanced detector networks
J. Veitch, I. Mandel, B. Aylott, B. Farr, V. Raymond, C. Rodriguez, M. van der Sluys, V. Kalogera, and A. Vecchio · 2012
Cited alongside, same era.
Parameter estimation for compact binary coalescence signals with the first generation gravitational-wave detector network
J. Aasi, J. Abadie, B. P. Abbott, R. Abbott, T. D. Abbott, M. Abernathy, T. Accadia, F. Acernese, C. Adams, T. Adams, and et al · 2013
Cited alongside, same era.
Kent Yagi and Nicolas Yunes · 2014
Later among the works it cites.
Advanced LIGO
J. Aasi, B. P. Abbott, R. Abbott, T. Abbott, M. R. Abernathy, K. Ackley, C. Adams, T. Adams, P. Addesso, and et al · 2015
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Advanced Virgo: a second-generation interferometric gravitational wave detector
F. Acernese, M. Agathos, K. Agatsuma, D. Aisa, N. Allemandou, A. Allocca, J. Amarni, P. Astone, G. Balestri, G. Ballardin, and et al · 2015
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Parameter estimation for binary neutron-star coalescences with realistic noise during the Advanced LIGO era
C. P. L. Berry, I. Mandel, H. Middleton, L. P. Singer, A. L. Urban, A. Vecchio, S. Vitale, K. Cannon, B. Farr, W. M. Farr, P. B. Graff, C. Hanna, C.-J. Haster, S. Mohapatra, C. Pankow, L. R. Price, T. Sidery, and J. Veitch · 2015
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High-energy electromagnetic offline follow-up of LIGO-Virgo gravitational-wave binary coalescence candidate events
L. Blackburn, M. S. Briggs, J. Camp, N. Christensen, V. Connaughton, P. Jenke, R. A. Remillard, and J. Veitch · 2015
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Accelerated gravitational-wave parameter estimation with reduced order modeling
P. Canizares, S. E. Field, J. Gair, V. Raymond, R. Smith, and M. Tiglio · 2015
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Efficient method for measuring the parameters encoded in a gravitational-wave signal
Carl-Johan Haster, Ilya Mandel, and Will M. Farr · 2015
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Distinguishing types of compact-object binaries using the gravitational-wave signatures of their mergers
Ilya Mandel, Carl-Johan Haster, Michal Dominik, and Krzysztof Belczynski · 2015
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Novel scheme for rapid parallel parameter estimation of gravitational waves from compact binary coalescences
C. Pankow, P. Brady, E. Ochsner, and R. O’Shaughnessy · 2015
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Parameter estimation for compact binaries with ground-based gravitational-wave observations using the LALInference software library
J. Veitch, V. Raymond, B. Farr, W. Farr, P. Graff, S. Vitale, B. Aylott, K. Blackburn, N. Christensen, M. Coughlin, W. Del Pozzo, F. Feroz, J. Gair, C.-J. Haster, V. Kalogera, T. Littenberg, I. Mandel, R. O’Shaughnessy, M. Pitkin, C. Rodriguez, C. Röver, T. Sidery, R. Smith, M. Van Der Sluys, A. Vecchio, W. Vousden, and L. Wade · 2015
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B. P. Abbott et al · 2016
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Techniques for reconstructing sampled probability distributions: An application for gravitational-wave observations of binary neutron stars
Walter Del Pozzo et al · 2016
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Rapid Bayesian position reconstruction for gravitational-wave transients
Leo P. Singer and Larry R. Price · 2016
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Spin-Precession: Breaking the Black Hole–Neutron Star Degeneracy
Katerina Chatziioannou, Neil Cornish, Klein Antoine, and Nicol Yunes · 2041
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WHEN CAN GRAVITATIONAL-WAVE OBSERVATIONS DISTINGUISH BETWEEN BLACK HOLES AND NEUTRON STARS?
Mark Hannam, Duncan A. Brown, Stephen Fairhurst, Chris L. Fryer, and Ian W. Harry · 2041
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Neutron stars versus black holes: probing the mass gap with LIGO/Virgo
Tyson B. Littenberg, Ben Farr, Scott Coughlin, Vicky Kalogera, and Daniel E. Holz · 2041
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