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This paper presents a search for generic short-duration gravitational-wave (GW) transients (or GW bursts) in the data from the third observing run of Advanced LIGO and Advanced Virgo.
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R. P. van der Marel, Intermediate-mass Black Holes in the Universe: A Review of Formation Theories and Observational Constraints, Coevolution of Black Holes and Galaxies , 37 (2004), astro-ph/0302101
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S. Klimenko and G. Mitselmakher, A wavelet method for detection of gravitational wave bursts, Class. Quant. Grav. 21
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B. Abbott et al. (LIGO Scientific), First upper limits from ligo on gravitational wave bursts, Phys. Rev. D 69
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T. Damour and A. Vilenkin, Gravitational radiation from cosmic (super)strings: Bursts, stochastic background, and observational windows, Phys. Rev. D 71
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S. Klimenko et al. , Constraint likelihood analysis for a network of gravitational wave detectors, prd 72
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B. Abbott et al. (LIGO Scientific), Search for gravitational-wave bursts in LIGO’s third science run, Class. Quant. Grav. 23
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A. M. Green and B. J. Kavanagh, Primordial Black Holes as a dark matter candidate, J. Phys. G 48
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H. Grote (LIGO Scientific Collaboration), The GEO 600 status, Gravitational waves. Proceedings, 8th Edoardo Amaldi Conference, Amaldi 8, New York, USA, June 22-26, 2009 , Class. Quant. Grav. 27
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2010
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2012
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S. Vinciguerra, M. Drago, G. A. Prodi, S. Klimenko, C. Lazzaro, V. Necula, F. Salemi, V. Tiwari, M. C. Tringali, and G. Vedovato, Enhancing the significance of gravitational wave bursts through signal classification, Classical and Quantum Gravity 34
2017
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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, Monthly Notices of the Royal Astronomical Society 468
2017
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2017
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L. Warszawski and A. Melatos, Gravitational-wave bursts and stochastic background from superfluid vortex avalanches during pulsar glitches, MNRAS 423
2012
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V. Necula, S. Klimenko, and G. Mitselmakher, Transient analysis with fast Wilson-Daubechies time-frequency transform, Gravitational waves. Numerical relativity - data analysis. Proceedings, 9th Edoardo Amaldi Conference, Amaldi 9, and meeting, NRDA 2011, Cardiff, UK, July 10-15, 2011 , J. Phys. Conf. Ser. 363
2012
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2012
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P. Cerdá-Durán, N. DeBrye, M. A. Aloy, J. A. Font, and M. Obergaulinger, Gravitational wave signatures in black hole forming core collapse, Astrophys. J. Lett. 779
2013
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2013
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2013
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2014
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2014
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2018
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2018
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2018
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2018
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2018
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2018
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2018
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2019
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H. Andresen, E. Müller, H. T. Janka, A. Summa, K. Gill, and M. Zanolin, Gravitational waves from 3D core-collapse supernova models: The impact of moderate progenitor rotation, Mon. Not. R. Astron. Soc. 486
2019
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2019
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M. Cavaglià, S. Gaudio, T. Hansen, K. Staats, M. Szczepańczyk, and M. Zanolin, Improving the background of gravitational-wave searches for core collapse supernovae: a machine learning approach, Machine Learning: Science and Technology 1
2020
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2021
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2021
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2021
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M. Drago, S. Klimenko, C. Lazzaro, E. Milotti, G. Mitselmakher, V. Necula, B. O’Brian, G. A. Prodi, F. Salemi, M. Szczepanczyk, S. Tiwari, V. Tiwari, G. V, G. Vedovato, and I. Yakushin, coherent waveburst, a pipeline for unmodeled gravitational-wave data analysis, SoftwareX 14
2021
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S. Klimenko, G. Vedovato, V. Necula, F. Salemi, M. Drago, R. Poulton, E. Chassande-Mottin, V. Tiwari, C. Lazzaro, B. O’Brian, M. Szczepanczyk, S. Tiwari, and V. Gayathri, cwb pipeline library: 6.4.1 (2021)
2021
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2021
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2021
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V. Gayathri, J. Healy, J. Lange, B. O’Brien, M. Szczepańczyk, I. Bartos, M. Campanelli, S. Klimenko, C. O. Lousto, and R. O’Shaughnessy, Eccentricity estimate for black hole mergers with numerical relativity simulations, Nature Astronomy 6
2022
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J. Samsing, I. Bartos, D. J. D’Orazio, Z. Haiman, B. Kocsis, N. W. C. Leigh, B. Liu, M. E. Pessah, and H. Tagawa, Agn as potential factories for eccentric black hole mergers, Nature 603
2022
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G. Vedovato, E. Milotti, G. Prodi, S. Bini, M. Drago, V. Gayathri, O. Halim, C. Lazzaro, D. Lopez, A. Miani, et al. , Minimally-modeled search of higher multipole gravitational-wave radiation in compact binary coalescences, Classical and Quantum Gravity 39
2022
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2022
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