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Parameter estimation for compact binary coalescence signals with the first generation gravitational-wave detector network

Publication ,  Journal Article
Aasi, J; Abadie, J; Abbott, BP; Abbott, R; Abbott, TD; Abernathy, M; Accadia, T; Acernese, F; Adams, C; Adams, T; Addesso, P; Adhikari, R ...
Published in: Physical Review D - Particles, Fields, Gravitation and Cosmology
September 4, 2013

Compact binary systems with neutron stars or black holes are one of the most promising sources for ground-based gravitational-wave detectors. Gravitational radiation encodes rich information about source physics; thus parameter estimation and model selection are crucial analysis steps for any detection candidate events. Detailed models of the anticipated waveforms enable inference on several parameters, such as component masses, spins, sky location and distance, that are essential for new astrophysical studies of these sources. However, accurate measurements of these parameters and discrimination of models describing the underlying physics are complicated by artifacts in the data, uncertainties in the waveform models and in the calibration of the detectors. Here we report such measurements on a selection of simulated signals added either in hardware or software to the data collected by the two LIGO instruments and the Virgo detector during their most recent joint science run, including a "blind injection" where the signal was not initially revealed to the collaboration. We exemplify the ability to extract information about the source physics on signals that cover the neutron-star and black-hole binary parameter space over the component mass range 1 M⊙-25 M⊙ and the full range of spin parameters. The cases reported in this study provide a snapshot of the status of parameter estimation in preparation for the operation of advanced detectors. © 2013 American Physical Society.

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Published In

Physical Review D - Particles, Fields, Gravitation and Cosmology

DOI

EISSN

1550-2368

ISSN

1550-7998

Publication Date

September 4, 2013

Volume

88

Issue

6

Related Subject Headings

  • Nuclear & Particles Physics
  • 5107 Particle and high energy physics
  • 5101 Astronomical sciences
  • 4902 Mathematical physics
  • 0206 Quantum Physics
  • 0202 Atomic, Molecular, Nuclear, Particle and Plasma Physics
  • 0201 Astronomical and Space Sciences
 

Citation

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Aasi, J., Abadie, J., Abbott, B. P., Abbott, R., Abbott, T. D., Abernathy, M., … Bridges, D. O. (2013). Parameter estimation for compact binary coalescence signals with the first generation gravitational-wave detector network. Physical Review D - Particles, Fields, Gravitation and Cosmology, 88(6). https://doi.org/10.1103/PhysRevD.88.062001
Aasi, J., J. Abadie, B. P. Abbott, R. Abbott, T. D. Abbott, M. Abernathy, T. Accadia, et al. “Parameter estimation for compact binary coalescence signals with the first generation gravitational-wave detector network.” Physical Review D - Particles, Fields, Gravitation and Cosmology 88, no. 6 (September 4, 2013). https://doi.org/10.1103/PhysRevD.88.062001.
Aasi J, Abadie J, Abbott BP, Abbott R, Abbott TD, Abernathy M, et al. Parameter estimation for compact binary coalescence signals with the first generation gravitational-wave detector network. Physical Review D - Particles, Fields, Gravitation and Cosmology. 2013 Sep 4;88(6).
Aasi, J., et al. “Parameter estimation for compact binary coalescence signals with the first generation gravitational-wave detector network.” Physical Review D - Particles, Fields, Gravitation and Cosmology, vol. 88, no. 6, Sept. 2013. Scopus, doi:10.1103/PhysRevD.88.062001.
Aasi J, Abadie J, Abbott BP, Abbott R, Abbott TD, Abernathy M, Accadia T, Acernese F, Adams C, Adams T, Addesso P, Adhikari R, Affeldt C, Agathos M, Agatsuma K, Ajith P, Allen B, Allocca A, Amador Ceron E, Amariutei D, Anderson SB, Anderson WG, Arai K, Araya MC, Ast S, Aston SM, Astone P, Atkinson D, Aufmuth P, Aulbert C, Aylott BE, Babak S, Baker P, Ballardin G, Ballmer S, Bao Y, Barayoga JCB, Barker D, Barone F, Barr B, Barsotti L, Barsuglia M, Barton MA, Bartos I, Bassiri R, Bastarrika M, Basti A, Batch J, Bauchrowitz J, Bauer TS, Bebronne M, Beck D, Behnke B, Bejger M, Beker MG, Bell AS, Bell C, Belopolski I, Benacquista M, Berliner JM, Bertolini A, Betzwieser J, Beveridge N, Beyersdorf PT, Bhadbade T, Bilenko IA, Billingsley G, Birch J, Biswas R, Bitossi M, Bizouard MA, Black E, Blackburn JK, Blackburn L, Blair D, Bland B, Blom M, Bock O, Bodiya TP, Bogan C, Bond C, Bondarescu R, Bondu F, Bonelli L, Bonnand R, Bork R, Born M, Boschi V, Bose S, Bosi L, Bouhou B, Braccini S, Bradaschia C, Brady PR, Braginsky VB, Branchesi M, Brau JE, Breyer J, Briant T, Bridges DO. Parameter estimation for compact binary coalescence signals with the first generation gravitational-wave detector network. Physical Review D - Particles, Fields, Gravitation and Cosmology. 2013 Sep 4;88(6).

Published In

Physical Review D - Particles, Fields, Gravitation and Cosmology

DOI

EISSN

1550-2368

ISSN

1550-7998

Publication Date

September 4, 2013

Volume

88

Issue

6

Related Subject Headings

  • Nuclear & Particles Physics
  • 5107 Particle and high energy physics
  • 5101 Astronomical sciences
  • 4902 Mathematical physics
  • 0206 Quantum Physics
  • 0202 Atomic, Molecular, Nuclear, Particle and Plasma Physics
  • 0201 Astronomical and Space Sciences