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The nanohertz frequency band explored by pulsar timing arrays provides a unique discovery space for gravitational wave signals.
Theory of communication. part 1: The analysis of information
Dennis Gabor · 1946
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Reversible jump markov chain monte carlo computation and bayesian model determination
Peter J Green · 1995
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Gravitational wave bursts from cusps and kinks on cosmic strings
Thibault Damour and Alexander Vilenkin · 2001
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The International Pulsar Timing Array project: using pulsars as a gravitational wave detector
G. Hobbs, A. Archibald, Z. Arzoumanian, et al · 2010
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Detection, Localization, and Characterization of Gravitational Wave Bursts in a Pulsar Timing Array
Lee Samuel Finn and Andrea N. Lommen · 2010
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Triplets of supermassive black holes: astrophysics, gravitational waves and detection
Pau Amaro-Seoane, Alberto Sesana, Loren Hoffman, et al · 2010
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Pulsar Timing Array Observations of Massive Black Hole Binaries
Vincent Corbin and Neil J. Cornish · 2010
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Extending gravitational wave burst searches with pulsar timing arrays
Matthew Pitkin · 2012
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Model choice using reversible jump markov chain monte carlo
David I. Hastie and Peter J. Green · 2012
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All-sky search for gravitational-wave bursts in the second joint LIGO-Virgo run
J. Abadie, B. P. Abbott, R. Abbott, et al · 2012
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The Parkes Pulsar Timing Array Project
R. N. Manchester, G. Hobbs, M. Bailes, et al · 2013
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Searching for gravitational wave bursts via Bayesian nonparametric data analysis with pulsar timing arrays
Xihao Deng · 2014
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Bayeswave: Bayesian inference for gravitational wave bursts and instrument glitches
Neil J. Cornish and Tyson B. Littenberg · 2015
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Bayesian inference for spectral estimation of gravitational wave detector noise
Tyson B. Littenberg and Neil J. Cornish · 2015
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Detecting Gravitation-Wave Transients at 5 σ \sigma : A Hierarchical Approach
Eric Thrane and Michael Coughlin · 2015
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Advanced LIGO
J. Aasi, B. P. Abbott, R. Abbott, et al · 2015
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Advanced Virgo: a second-generation interferometric gravitational wave detector
F. Acernese, M. Agathos, K. Agatsuma, et al · 2015
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Detection and localization of single-source gravitational waves with pulsar timing arrays
X. J. Zhu, L. Wen, G. Hobbs, et al · 2015
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The NANOGrav Nine-year Data Set: Observations, Arrival Time Measurements, and Analysis of 37 Millisecond Pulsars
NANOGrav Collaboration, Zaven Arzoumanian, Adam Brazier, et al · 2015
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Generative pulsar timing analysis
L. Lentati, P. Alexander, and M. P. Hobson · 2015
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High-precision timing of 42 millisecond pulsars with the European Pulsar Timing Array
G. Desvignes, R. N. Caballero, L. Lentati, et al · 2016
The astrophysics of nanohertz gravitational waves
Sarah Burke-Spolaor, Stephen R. Taylor, Maria Charisi, et al · 2019
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The International Pulsar Timing Array: second data release
B. B. P. Perera, M. E. DeCesar, P. B. Demorest, et al · 2019
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The NANOGrav 11 yr Data Set: Limits on Gravitational Waves from Individual Supermassive Black Hole Binaries
K. Aggarwal, Z. Arzoumanian, P. T. Baker, et al · 2019
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All-sky search for short gravitational-wave bursts in the second Advanced LIGO and Advanced Virgo run
The LIGO Scientific Collaboration and The Virgo Collaboration · 2019
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All-sky search for long-duration gravitational-wave transients in the second Advanced LIGO observing run
LIGO Scientific Collaboration and Virgo Collaboration · 2019
Later among the works it cites.
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Cited alongside, same era.
Prospects of Gravitational Wave Detection Using Pulsar Timing Array for Chinese Future Telescopes
K. J. Lee · 2016
Cited alongside, same era.
MeerTime - the MeerKAT Key Science Program on Pulsar Timing
M. Bailes, E. Barr, N. D. R. Bhat, et al · 2016
Cited alongside, same era.
The International Pulsar Timing Array: First data release
J. P. W. Verbiest, L. Lentati, G. Hobbs, et al · 2016
Cited alongside, same era.
Method for detection and reconstruction of gravitational wave transients with networks of advanced detectors
S. Klimenko, G. Vedovato, M. Drago, et al · 2016
Cited alongside, same era.
Transdimensional Bayesian approach to pulsar timing noise analysis
J. A. Ellis and N. J. Cornish · 2016
Cited alongside, same era.
Information-theoretic approach to the gravitational-wave burst detection problem
Ryan Lynch, Salvatore Vitale, Reed Essick, Erik Katsavounidis, and Florent Robinet · 2017
Cited alongside, same era.
Detecting gravitational wave bursts with LISA in the presence of instrumental glitches
Travis Robson and Neil J. Cornish · 2019
Later among the works it cites.
The NANOGrav 12.5 yr Data Set: Search for an Isotropic Stochastic Gravitational-wave Background
Zaven Arzoumanian, Paul T. Baker, Harsha Blumer, et al · 2020
Closest in time.
Joint search for isolated sources and an unresolved confusion background in pulsar timing array data
Bence Bécsy and Neil J. Cornish · 2020
Closest in time.
The NANOGrav 11 yr Data Set: Limits on Gravitational Wave Memory
K. Aggarwal, Z. Arzoumanian, P. T. Baker, et al · 2020
Closest in time.
Enterprise: Enhanced numerical toolbox enabling a robust pulsar inference suite
Justin A. Ellis, Michele Vallisneri, Stephen R. Taylor, and Paul T. Baker · 2020
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La forge
Jeffrey Shafiq Hazboun · 2020
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Astrophysics Milestones For Pulsar Timing Array Gravitational Wave Detection
Nihan S. Pol, Stephen R. Taylor, Luke Zoltan Kelley, et al · 2020
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The NANOGrav 12.5 yr Data Set: Observations and Narrowband Timing of 47 Millisecond Pulsars
Md F. Alam, Zaven Arzoumanian, Paul T. Baker, et al · 2021
Closest in time.
BayesWave analysis pipeline in the era of gravitational wave observations
Neil J. Cornish, Tyson B. Littenberg, Bence Bécsy, et al · 2021
Closest in time.