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We present the results of targeted searches for gravitational-wave transients associated with gamma-ray bursts during the second observing run of Advanced LIGO and Advanced Virgo, which took place from 2016 November to 2017 August. We have analyzed 98 gamma-ray bursts using an unmodeled search method that searches for generic transient gravitational waves and 42 with a modeled search method that targets compact-binary mergers as progenitors of short gamma-ray bursts. Both methods clearly detect the previously reported binary merger signal GW170817, with p-values of <9.38 x 10(-6) (modeled) and 3.1 x 10(-4) (unmodeled). We do not find any significant evidence for gravitational-wave signals associated with the other gamma-ray bursts analyzed, and therefore we report lower bounds on the distance to each of these, assuming various source types and signal morphologies. Using our final modeled search results, short gamma-ray burst observations, and assuming binary neutron star progenitors, we place bounds on the rate of short gamma-ray bursts as a function of redshift for z <= 1. We estimate 0.07-1.80 joint detections with Fermi-GBM per year for the 2019-20 LIGO-Virgo observing run and 0.15-3.90 per year when current gravitational-wave detectors are operating at their design sensitivities.
Abbott, B.p., Abbott, R., Abbott, T.d., Abraham, S., Acernese, F., Ackley, K., et al. (2019). Search for gravitational-wave signals associated with gamma-ray bursts during the second observing run of Advanced LIGO and Advanced Virgo. THE ASTROPHYSICAL JOURNAL, 886(1), 75 [10.3847/1538-4357/ab4b48].
Search for gravitational-wave signals associated with gamma-ray bursts during the second observing run of Advanced LIGO and Advanced Virgo
B. P. Abbott;R. Abbott;T. D. Abbott;S. Abraham;F. Acernese;K. Ackley;C. Adams;R. X. Adhikari;V. B. Adya;C. Affeldt;M. Agathos;K. Agatsuma;N. Aggarwal;O. D. Aguiar;L. Aiello;A. Ain;P. Ajith;G. Allen;A. Allocca;M. A. Aloy;P. A. Altin;A. Amato;S. Anand;A. Ananyeva;S. B. Anderson;W. G. Anderson;S. V. Angelova;S. Antier;S. Appert;K. Arai;M. C. Araya;J. S. Areeda;M. Arène;N. Arnaud;S. M. Aronson;S. Ascenzi;G. Ashton;S. M. Aston;P. Astone;F. Aubin;P. Aufmuth;K. AultONeal;C. Austin;V. Avendano;A. Avila-Alvarez;S. Babak;P. Bacon;F. Badaracco;M. K. M. Bader;S. Bae;J. Baird;P. T. Baker;F. Baldaccini;G. Ballardin;S. W. Ballmer;A. Bals;S. Banagiri;J. C. Barayoga;C. Barbieri;S. E. Barclay;B. C. Barish;D. Barker;K. Barkett;S. Barnum;F. Barone;B. Barr;L. Barsotti;M. Barsuglia;D. Barta;J. Bartlett;I. Bartos;R. Bassiri;A. Basti;M. Bawaj;J. C. Bayley;M. Bazzan;B. Bécsy;M. Bejger;I. Belahcene;A. S. Bell;D. Beniwal;M. G. Benjamin;B. K. Berger;G. Bergmann;S. Bernuzzi;C. P. L. Berry;D. Bersanetti;A. Bertolini;J. Betzwieser;R. Bhandare;J. Bidler;E. Biggs;I. A. Bilenko;S. A. Bilgili;G. Billingsley;R. Birney;O. Birnholtz;S. Biscans;M. Bischi;S. Biscoveanu;A. Bisht;M. Bitossi;M. A. Bizouard;J. K. Blackburn;J. Blackman;C. D. Blair;D. G. Blair;R. M. Blair;S. Bloemen;F. Bobba;N. Bode;M. Boer;Y. Boetzel;G. Bogaert;F. Bondu;R. Bonnand;P. Booker;B. A. Boom;R. Bork;V. Boschi;S. Bose;V. Bossilkov;J. Bosveld;Y. Bouffanais;A. Bozzi;C. Bradaschia;P. R. Brady;A. Bramley;M. Branchesi;J. E. Brau;M. Breschi;T. Briant;J. H. Briggs;F. Brighenti;A. Brillet;M. Brinkmann;P. Brockill;A. F. Brooks;J. Brooks;D. D. Brown;S. Brunett;A. Buikema;T. Bulik;H. J. Bulten;A. Buonanno;D. Buskulic;C. Buy;R. L. Byer;M. Cabero;L. Cadonati;G. Cagnoli;C. Cahillane;J. Calderón Bustillo;T. A. Callister;E. Calloni;J. B. Camp;W. A. Campbell;M. Canepa;K. C. Cannon;H. Cao;J. Cao;G. Carapella;F. Carbognani;S. Caride;M. F. Carney;G. Carullo;J. Casanueva Diaz;C. Casentini;S. Caudill;M. Cavaglià;F. Cavalier;R. Cavalieri;G. 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Sanin;D. S. Svinkin;Francesco Carotenuto;Badri Krishnan
2019-01-01
Abstract
We present the results of targeted searches for gravitational-wave transients associated with gamma-ray bursts during the second observing run of Advanced LIGO and Advanced Virgo, which took place from 2016 November to 2017 August. We have analyzed 98 gamma-ray bursts using an unmodeled search method that searches for generic transient gravitational waves and 42 with a modeled search method that targets compact-binary mergers as progenitors of short gamma-ray bursts. Both methods clearly detect the previously reported binary merger signal GW170817, with p-values of <9.38 x 10(-6) (modeled) and 3.1 x 10(-4) (unmodeled). We do not find any significant evidence for gravitational-wave signals associated with the other gamma-ray bursts analyzed, and therefore we report lower bounds on the distance to each of these, assuming various source types and signal morphologies. Using our final modeled search results, short gamma-ray burst observations, and assuming binary neutron star progenitors, we place bounds on the rate of short gamma-ray bursts as a function of redshift for z <= 1. We estimate 0.07-1.80 joint detections with Fermi-GBM per year for the 2019-20 LIGO-Virgo observing run and 0.15-3.90 per year when current gravitational-wave detectors are operating at their design sensitivities.
Abbott, B.p., Abbott, R., Abbott, T.d., Abraham, S., Acernese, F., Ackley, K., et al. (2019). Search for gravitational-wave signals associated with gamma-ray bursts during the second observing run of Advanced LIGO and Advanced Virgo. THE ASTROPHYSICAL JOURNAL, 886(1), 75 [10.3847/1538-4357/ab4b48].
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simulazione ASN
Il report seguente simula gli indicatori relativi alla propria produzione scientifica in relazione alle soglie ASN 2023-2025 del proprio SC/SSD. Si ricorda che il superamento dei valori soglia (almeno 2 su 3) è requisito necessario ma non sufficiente al conseguimento dell'abilitazione. La simulazione si basa sui dati IRIS e sugli indicatori bibliometrici alla data indicata e non tiene conto di eventuali periodi di congedo obbligatorio, che in sede di domanda ASN danno diritto a incrementi percentuali dei valori. La simulazione può differire dall'esito di un’eventuale domanda ASN sia per errori di catalogazione e/o dati mancanti in IRIS, sia per la variabilità dei dati bibliometrici nel tempo. Si consideri che Anvur calcola i valori degli indicatori all'ultima data utile per la presentazione delle domande.
La presente simulazione è stata realizzata sulla base delle specifiche raccolte sul tavolo ER del Focus Group IRIS coordinato dall’Università di Modena e Reggio Emilia e delle regole riportate nel DM 589/2018 e allegata Tabella A. Cineca, l’Università di Modena e Reggio Emilia e il Focus Group IRIS non si assumono alcuna responsabilità in merito all’uso che il diretto interessato o terzi faranno della simulazione. Si specifica inoltre che la simulazione contiene calcoli effettuati con dati e algoritmi di pubblico dominio e deve quindi essere considerata come un mero ausilio al calcolo svolgibile manualmente o con strumenti equivalenti.