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Observations with next-generation ground-based detectors further enhanced with multi-messenger (electromagnetic and neutrino) detections will allow us to probe new extreme astrophysics.
1902
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1903
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2004
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2005
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2006
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2007
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2008
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2008
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J. W. Murphy, C. D. Ott, and A. Burrows, “A Model for Gravitational Wave Emission from Neutrino-Driven Core-Collapse Supernovae,” ApJ 707
2009
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K. Kotake, W. Iwakami, N. Ohnishi, and S. Yamada, “Ray-Tracing Analysis of Anisotropic Neutrino Radiation for Estimating Gravitational Waves in Core-Collapse Supernovae,” ApJ 704
2009
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A. Marek, H. Janka, and E. Müller, “Equation-of-state dependent features in shock-oscillation modulated neutrino and gravitational-wave signals from supernovae,” A&A 496
2009
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2009
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2010
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T. Sidery, A. Passamonti, and N. Andersson, “The dynamics of pulsar glitches: contrasting phenomenology with numerical evolutions,” MNRAS
2010
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M. F. Bennett, C. A. van Eysden, and A. Melatos, “Continuous-wave gravitational radiation from pulsar glitch recovery,” MNRAS
2010
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R. Abbasi, Y. Abdou, T. Abu-Zayyad, M. Ackermann, J. Adams, J. A. Aguilar, M. Ahlers, M. M. Allen, D. Altmann, K. Andeen, and et al., “IceCube sensitivity for low-energy neutrinos from nearby supernovae,” A&A 535
2011
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K. Tolich, “Supernova detection with KamLAND,” Nucl. Phys. Proc. Suppl
2011
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C. D. Ott, C. Reisswig, E. Schnetter, E. O’Connor, U. Sperhake, F. Löffler, P. Diener, E. Abdikamalov, I. Hawke, and A. Burrows, “Dynamics and Gravitational Wave Signature of Collapsar Formation,” Physical Review Letters
T. Yokozawa, M. Asano, T. Kayano, Y. Suwa, N. Kanda, Y. Koshio, and M. R. Vagins, “Probing the Rotation of Core-collapse Supernova with a Concurrent Analysis of Gravitational Waves and Neutrinos,” ApJ 811
2015
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S. Dwyer, D. Sigg, S. W. Ballmer, L. Barsotti, N. Mavalvala, and M. Evans, “Gravitational wave detector with cosmological reach,” Phys. Rev
2015
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2015
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P. D. Lasky, A. Melatos, V. Ravi, and G. Hobbs, “Pulsar timing noise and the minimum observation time to detect gravitational waves with pulsar timing arrays,” MNRAS 449
2015
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L. Keer and D. I. Jones, “Developing a model for neutron star oscillations following starquakes,” MNRAS
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2011
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S. Hild et al
2011
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C. M. Espinoza, A. G. Lyne, B. W. Stappers, and M. Kramer, “A study of 315 glitches in the rotation of 102 pulsars,” MNRAS
2011
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2011
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E. Müller, H.-T. Janka, and A. Wongwathanarat, “Parametrized 3D models of neutrino-driven supernova explosions. Neutrino emission asymmetries and gravitational-wave signals,” A&A 537
2012
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C. D. Ott, E. Abdikamalov, E. O’Connor, C. Reisswig, R. Haas, P. Kalmus, S. Drasco, A. Burrows, and E. Schnetter, “Correlated gravitational wave and neutrino signals from general-relativistic rapidly rotating iron core collapse,” Phys. Rev. D 86
2012
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B. Müller, H.-T. Janka, and A. Marek, “A New Multi-dimensional General Relativistic Neutrino Hydrodynamics Code of Core-collapse Supernovae. III. Gravitational Wave Signals from Supernova Explosion Models,” ApJ 766
2013
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B. Müller, H.-T. Janka, and A. Marek, “A New Multi-dimensional General Relativistic Neutrino Hydrodynamics Code of Core-collapse Supernovae. III. Gravitational Wave Signals from Supernova Explosion Models,” ApJ 766
2013
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2015
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A. Melatos, J. A. Douglass, and T. P. Simula, “Persistent Gravitational Radiation from Glitching Pulsars,” ApJ
2015
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LIGO Scientific, Virgo
2016
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T. Kuroda, K. Kotake, and T. Takiwaki, “A New Gravitational-wave Signature from Standing Accretion Shock Instability in Supernovae,” ApJ 829
2016
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2016
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K. Nakamura, S. Horiuchi, M. Tanaka, K. Hayama, T. Takiwaki, and K. Kotake, “Multimessenger signals of long-term core-collapse supernova simulations: synergetic observation strategies,” MNRAS 461
2016
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S. E. Gossan, P. Sutton, A. Stuver, M. Zanolin, K. Gill, and C. D. Ott, “Observing Gravitational Waves from Core-Collapse Supernovae in the Advanced Detector Era,” Phys. Rev. D
2016
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J. Powell, S. E. Gossan, J. Logue, and I. S. Heng, “Inferring the core-collapse supernova explosion mechanism with gravitational waves,” Phys. Rev. D 94
2016
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B. Müller, T. Melson, A. Heger, and H.-T. Janka, “Supernova simulations from a 3D progenitor model - Impact of perturbations and evolution of explosion properties,” MNRAS 472
2017
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S. Richers, C. D. Ott, E. Abdikamalov, E. O’Connor, and C. Sullivan, “Equation of state effects on gravitational waves from rotating core collapse,” Phys. Rev. D 95
2017
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T. Kuroda, K. Kotake, K. Hayama, and T. Takiwaki, “Correlated Signatures of Gravitational-wave and Neutrino Emission in Three-dimensional General-relativistic Core-collapse Supernova Simulations,” ApJ 851
2017
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K. N. Yakunin, A. Mezzacappa, P. Marronetti, E. J. Lentz, S. W. Bruenn, W. R. Hix, O. E. B. Messer, E. Endeve, J. M. Blondin, and J. A. Harris, “The Gravitational Wave Signal of a Core Collapse Supernova Explosion of a 15M _ ⊙ \_\odot Star,” ArXiv e-prints
2017
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K. Riles, “Recent searches for continuous gravitational waves,” Modern Physics Letters A
2017
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A. Patruno, B. Haskell, and N. Andersson, “The Spin Distribution of Fast-spinning Neutron Stars in Low-mass X-Ray Binaries: Evidence for Two Subpopulations,” ApJ 850
2017
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V. M. Kaspi and A. M. Beloborodov, “Magnetars,” ARA&A 55
2017
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V. Morozova, D. Radice, A. Burrows, and D. Vartanyan, “The Gravitational Wave Signal from Core-collapse Supernovae,” ApJ 861
2018
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A. Torres-Forné, P. Cerdá-Durán, A. Passamonti, and J. A. Font, “Towards asteroseismology of core-collapse supernovae with gravitational-wave observations - I. Cowling approximation,” MNRAS 474
2018
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T. Takiwaki and K. Kotake, “Anisotropic emission of neutrino and gravitational-wave signals from rapidly rotating core-collapse supernovae,” MNRAS 475
2018
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K.-C. Pan, M. Liebendörfer, S. M. Couch, and F.-K. Thielemann, “Equation of State Dependent Dynamics and Multi-messenger Signals from Stellar-mass Black Hole Formation,” ApJ 857
2018
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KAGRA, LIGO Scientific, Virgo
2018
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LIGO Scientific, Virgo
2018
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G. Woan, M. D. Pitkin, B. Haskell, D. I. Jones, and P. D. Lasky, “Evidence for a Minimum Ellipticity in Millisecond Pulsars,” Astrophys. J. Lett
2018
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H. Andresen, B. Müller, E. Müller, and H.-T. Janka, “Gravitational wave signals from 3D neutrino hydrodynamics simulations of core-collapse supernovae,” MNRAS 468
2051
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