The NANOGrav 15 yr Data Set: Evidence for a Gravitational-wave Background

Gabriella Agazie,Akash Anumarlapudi,Anne M. Archibald,Zaven Arzoumanian,Paul T. Baker,Bence Becsy,Laura Blecha,Adam Brazier,Paul R. Brook,Sarah Burke-Spolaor,Rand Burnette,Robin Case,Maria Charisi,Shami Chatterjee,Katerina Chatziioannou,Belinda D. Cheeseboro,Siyuan Chen,Tyler Cohen,James M. Cordes,Neil Cornish,Fronefield Crawford,H. Thankful Cromartie,Kathryn Crowter,Curt J. Cutler,Megan E. DeCesar,Dallas DeGan,Paul B. Demorest,Heling Deng,Timothy Dolch,Brendan Drachler,Justin A. Ellis,Elizabeth C. Ferrara,William Fiore,Emmanuel Fonseca, Gabriel E. Freedman,Nate Garver-Daniels,Peter A. Gentile,Kyle A. Gersbach,Joseph Glaser,Deborah C. Good,Kayhan Gueltekin,Jeffrey S. Hazboun, Sophie Hourihane,Kristina Islo,Ross J. Jennings,Aaron D. Johnson,Megan L. Jones,Andrew R. Kaiser,David L. Kaplan,Luke Zoltan Kelley,Matthew Kerr,Joey S. Key,Tonia C. Klein,Nima Laal,Michael T. Lam,William G. Lamb,T. Joseph W. Lazio,Natalia Lewandowska,Tyson B. Littenberg,Tingting Liu,Andrea Lommen,Duncan R. Lorimer,Jing Luo,Ryan S. Lynch,Chung-Pei Ma,Dustin R. Madison, Margaret A. Mattson,Alexander McEwen,James W. McKee,Maura A. McLaughlin, Natasha McMann,Bradley W. Meyers,Patrick M. Meyers,Chiara M. F. Mingarelli,Andrea Mitridate,Priyamvada Natarajan,Cherry Ng,David J. Nice,Stella Koch Ocker,Ken D. Olum,Timothy T. Pennucci,Benetge B. P. Perera,Polina Petrov,Nihan S. Pol, Henri A. Radovan,Scott M. Ransom,Paul S. Ray,Joseph D. Romano,Shashwat C. Sardesai,Ann Schmiedekamp, Carl Schmiedekamp,Kai Schmitz,Levi Schult,Brent J. Shapiro-Albert,Xavier Siemens,Joseph Simon,Magdalena S. Siwek,Ingrid H. Stairs,Daniel R. Stinebring,Kevin Stovall,Jerry P. Sun,Abhimanyu Susobhanan,Joseph K. Swiggum,Jacob Taylor,Stephen R. Taylor,Jacob E. Turner,Caner Unal,Michele Vallisneri,Rutger van Haasteren,Sarah J. Vigeland,Haley M. Wahl,Qiaohong Wang,Caitlin A. Witt,Olivia Young

ASTROPHYSICAL JOURNAL LETTERS(2023)

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摘要
We report multiple lines of evidence for a stochastic signal that is correlated among 67 pulsars from the 15 yr pulsar timing data set collected by the North American Nanohertz Observatory for Gravitational Waves. The correlations follow the Hellings-Downs pattern expected for a stochastic gravitational-wave background. The presence of such a gravitational-wave background with a power-law spectrum is favored over a model with only independent pulsar noises with a Bayes factor in excess of 1014, and this same model is favored over an uncorrelated common power-law spectrum model with Bayes factors of 200-1000, depending on spectral modeling choices. We have built a statistical background distribution for the latter Bayes factors using a method that removes interpulsar correlations from our data set, finding p = 10-3 (similar to 3s) for the observed Bayes factors in the null no-correlation scenario. A frequentist test statistic built directly as a weighted sum of interpulsar correlations yields p = 5 x 10-5 to 1.9 x 10-4 (similar to 3.5s-4s). Assuming a fiducial f -2/3 characteristic strain spectrum, as appropriate for an ensemble of binary supermassive black hole inspirals, the strain amplitude is 2.4 0.6 100.7 ' 15 -+ - (median + 90% credible interval) at a reference frequency of 1 yr-1. The inferred gravitationalwave background amplitude and spectrum are consistent with astrophysical expectations for a signal from a population of supermassive black hole binaries, although more exotic cosmological and astrophysical sources cannot be excluded. The observation of Hellings-Downs correlations points to the gravitational-wave origin of this signal.
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gravitational-wave
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