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The anisotropies of the Stochastic Gravitational-Wave Background (SGWB) produced by merging compact binaries constitute a possible new probe of the Large-Scale Structure (LSS).
Shot noise in the astrophysical gravitational-wave background
Jenkins, A.C.; Sakellariadou, M · 1902
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Directional limits on persistent gravitational waves using data from Advanced LIGO’s first two observing runs
Abbott, B.P.; others · 1903
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Properties of the stochastic astrophysical gravitational wave background: astrophysical sources dependencies
Cusin, G.; Dvorkin, I.; Pitrou, C.; Uzan, J.P · 1904
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Stochastic gravitational wave background anisotropies in the mHz band: astrophysical dependencies
Cusin, G.; Dvorkin, I.; Pitrou, C.; Uzan, J.P · 1904
Earlier work this paper cites.
The search for anisotropy in the gravitational-wave background with pulsar-timing arrays
Hotinli, S.C.; Kamionkowski, M.; Jaffe, A.H · 1904
Earlier work this paper cites.
Estimating the angular power spectrum of the gravitational-wave background in the presence of shot noise
Jenkins, A.C.; Romano, J.D.; Sakellariadou, M · 1907
Earlier work this paper cites.
Merging Rates of Compact Binaries in Galaxies: Perspectives for Gravitational Wave Detections
Boco, L.; Lapi, A.; Goswami, S.; Perrotta, F.; Baccigalupi, C.; Danese, L · 1907
Earlier work this paper cites.
Cosmic Explorer: The U.S. Contribution to Gravitational-Wave Astronomy beyond LIGO
Reitze, D.; others · 1907
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Multimessenger tests of gravity with weakly lensed gravitational waves
Mukherjee, S.; Wandelt, B.D.; Silk, J · 1908
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Probing the theory of gravity with gravitational lensing of gravitational waves and galaxy surveys
Mukherjee, S.; Wandelt, B.D.; Silk, J · 1908
Earlier work this paper cites.
Projection effects on the observed angular spectrum of the astrophysical stochastic gravitational wave background
Bertacca, D.; Ricciardone, A.; Bellomo, N.; Jenkins, A.C.; Matarrese, S.; Raccanelli, A.; Regimbau, T.; Sakellariadou, M · 1909
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Unified view of anisotropies in the astrophysical gravitational-wave background
Pitrou, C.; Cusin, G.; Uzan, J.P · 1910
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Cross-correlation of the astrophysical gravitational-wave background with galaxy clustering
Cañas Herrera, G.; Contigiani, O.; Vardanyan, V · 1910
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A Measurement of the Degree Scale CMB B B -mode Angular Power Spectrum with POLARBEAR
Adachi, S.; others · 1910
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Time-dependence of the astrophysical stochastic gravitational wave background
Mukherjee, S.; Silk, J · 1912
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The Analysis of Counts of the Extragalactic Nebulae in Terms of a Fluctuating Density Field. II
Limber, D.N · 1954
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Binary inspiral, gravitational radiation, and cosmology
Finn, L.S · 1996
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Ellipsoidal collapse and an improved model for the number and spatial distribution of dark matter haloes
Sheth, R.K.; Mo, H.; Tormen, G · 2001
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Detecting the anisotropic astrophysical gravitational wave background in the presence of shot noise through cross-correlations
Alonso, D.; Cusin, G.; Ferreira, P.G.; Pitrou, C · 2002
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Stable clustering, the halo model and nonlinear cosmological power spectra
Smith, R.E.; Peacock, J.A.; Jenkins, A.; White, S.D.M.; Frenk, C.S.; Pearce, F.R.; Thomas, P.A.; Efstathiou, G.; Couchmann, H.M.P · 2003
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Noise angular power spectrum of gravitational wave background experiments
Alonso, D.; Contaldi, C.R.; Cusin, G.; Ferreira, P.G.; Renzini, A.I · 2005
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HEALPix: A Framework for High-Resolution Discretization and Fast Analysis of Data Distributed on the Sphere
Górski, K.M.; Hivon, E.; Banday, A.J.; Wandelt, B.D.; Hansen, F.K.; Reinecke, M.; Bartelmann, M · 2005
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Searching for Cross-Correlation Between Stochastic Gravitational Wave Background and Galaxy Number Counts
Yang, K.Z.; Mandic, V.; Scarlata, C.; Banagiri, S · 2007
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Anisotropic magnification distortion of the 3D galaxy correlation. I. Real space
Hui, L.; Gaztañaga, E.; LoVerde, M · 2007
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Exploring galaxies-gravitational waves cross-correlations as an astrophysical probe
Scelfo, G.; Boco, L.; Lapi, A.; Viel, M · 2007
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StarTrack predictions of the stochastic gravitational-wave background from compact binary mergers
Périgois, C.; Belczynski, C.; Bulik, T.; Regimbau, T · 2008
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CMB-S4: Forecasting Constraints on Primordial Gravitational Waves 2020
Abazajian, K.; others · 2008
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Probing the anisotropies of a stochastic gravitational-wave background using a network of ground-based laser interferometers
Thrane, E.; Ballmer, S.; Romano, J.D.; Mitra, S.; Talukder, D.; Bose, S.; Mandic, V · 2009
Earlier work this paper cites.
A Template bank for gravitational waveforms from coalescing binary black holes. I. Non-spinning binaries
Ajith, P.; others · 2009
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GWTC-2: Compact Binary Coalescences Observed by LIGO and Virgo During the First Half of the Third Observing Run
Abbott, R.; others · 2010
Earlier work this paper cites.
The astrophysical gravitational wave stochastic background
Regimbau, T · 2011
Earlier work this paper cites.
Gravitational wave background from binary systems
Rosado, P.A · 2011
Cited alongside, same era.
Imprint of the merger and ring-down on the gravitational wave background from black hole binaries coalescence
Marassi, S.; Schneider, R.; Corvino, G.; Ferrari, V.; Portegies Zwart, S · 2011
Cited alongside, same era.
Stochastic Gravitational Wave Background from Coalescing Binary Black Holes
Zhu, X.J.; Howell, E.; Regimbau, T.; Blair, D.; Zhu, Z.H · 2011
Cited alongside, same era.
The Cosmic Linear Anisotropy Solving System (CLASS) I: Overview, 2011, [arXiv:astro-ph.IM/1104.2932]
Lesgourgues, J · 2011
Cited alongside, same era.
The Cosmic Linear Anisotropy Solving System (CLASS). Part II: Approximation schemes
Blas, D.; Lesgourgues, J.; Tram, T · 2011
Cited alongside, same era.
Detector configuration of KAGRA: The Japanese cryogenic gravitational-wave detector
Mapping Incoherent Gravitational Wave Backgrounds
Renzini, A.I.; Contaldi, C.R · 2018
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Double neutron stars: merger rates revisited
Chruslinska, M.; Belczynski, K.; Klencki, J.; Benacquista, M · 2018
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GW × \times LSS: chasing the progenitors of merging binary black holes
Scelfo, G.; Bellomo, N.; Raccanelli, A.; Matarrese, S.; Verde, L · 2018
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GWTC-1: A Gravitational-Wave Transient Catalog of Compact Binary Mergers Observed by LIGO and Virgo during the First and Second Observing Runs
Abbott, B.P.; others · 2019
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Stochastic Gravitational Wave Backgrounds
Christensen, N · 2019
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Anisotropies in the astrophysical gravitational-wave background: The impact of black hole distributions
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Somiya, K · 2012
Cited alongside, same era.
Accessibility of the Gravitational-Wave Background due to Binary Coalescences to Second and Third Generation Gravitational-Wave Detectors
Wu, C.; Mandic, V.; Regimbau, T · 2012
Cited alongside, same era.
Evolution of Galaxy Star Formation and Metallicity: Impact on Double Compact Objects Mergers
Boco, L.; Lapi, A.; Chruslinska, M.; Donevski, D.; Sicilia, A.; Danese, L · 2012
Cited alongside, same era.
Cosmology with the lights off: standard sirens in the Einstein Telescope era
Taylor, S.R.; Gair, J.R · 2012
Cited alongside, same era.
On the gravitational wave background from compact binary coalescences in the band of ground-based interferometers
Zhu, X.J.; Howell, E.J.; Blair, D.G.; Zhu, Z.H · 2013
Cited alongside, same era.
Scientific Objectives of Einstein Telescope
Sathyaprakash, B.; others · 2013
Cited alongside, same era.
Sensitivity curves for searches for gravitational-wave backgrounds
Thrane, E.; Romano, J.D · 2013
Cited alongside, same era.
Jenkins, A.C.; O’Shaughnessy, R.; Sakellariadou, M.; Wysocki, D · 2019
Later among the works it cites.
Gravitational Wave Background Sky Maps from Advanced LIGO O1 Data
Renzini, A.I.; Contaldi, C.R · 2019
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On the Amplitude and Stokes Parameters of a Stochastic Gravitational-Wave Background
Conneely, C.; Jaffe, A.H.; Mingarelli, C.M.F · 2019
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The Simons Observatory: Science goals and forecasts
Ade, P.; others · 2019
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European Work on Future Ground-Based CMB Experiments
Ganga, K.; Baccigalupi, C.; Bouchet, F.; Brown, M.; Challinor, A.; Komatsu, E.; Martínez-Gonzalez, E.; Mennella, D.; Mohr, J.; Rubiño-Martín, J.A.; Bersanelli, M.; Barreiro, B.; Lopez-Callado, E.d.l.H.; Colombo, L.; Delabrouille, J.; Errard, J.; Hamilton, J.C.; Jones, M.; Krachmalnicoff, N.; Montier, L.; Natoli, P.; Piacentini, F.; Poletti, D.; Stompor, R.; Taylor, A.; Vielva, P.; Vittorio, N · 2019
Later among the works it cites.
LiteBIRD: A Satellite for the Studies of B-Mode Polarization and Inflation from Cosmic Background Radiation Detection
Hazumi, M.; others · 2019
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The influence of the distribution of cosmic star formation at different metallicities on the properties of merging double compact objects
Chruslinska, M.; Nelemans, G.; Belczynski, K · 2019
Later among the works it cites.
healpy: equal area pixelization and spherical harmonics transforms for data on the sphere in Python
Zonca, A.; Singer, L.; Lenz, D.; Reinecke, M.; Rosset, C.; Hivon, E.; Gorski, K · 2019
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Planck 2018 results. VI. Cosmological parameters
Aghanim, N.; others · 2020
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GWTC-2.1: Deep Extended Catalog of Compact Binary Coalescences Observed by LIGO and Virgo During the First Half of the Third Observing Run 2021
Abbott, R.; others · 2021
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Upper limits on the isotropic gravitational-wave background from Advanced LIGO and Advanced Virgo’s third observing run
Abbott, R.; others · 2021
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Search for anisotropic gravitational-wave backgrounds using data from Advanced LIGO and Advanced Virgo’s first three observing runs
Abbott, R.; others · 2021
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Intensity and anisotropies of the stochastic gravitational wave background from merging compact binaries in galaxies
Capurri, G.; Lapi, A.; Baccigalupi, C.; Boco, L.; Scelfo, G.; Ronconi, T · 2021
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CLASS_GWB: robust modeling of the astrophysical gravitational wave background anisotropies 2021
Bellomo, N.; Bertacca, D.; Jenkins, A.C.; Matarrese, S.; Raccanelli, A.; Regimbau, T.; Ricciardone, A.; Sakellariadou, M · 2021
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ET sensitivity to the anisotropic Stochastic Gravitational Wave Background
Mentasti, G.; Peloso, M · 2021
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Cross-Correlating Astrophysical and Cosmological Gravitational Wave Backgrounds with the Cosmic Microwave Background
Ricciardone, A.; Dall’Armi, L.V.; Bartolo, N.; Bertacca, D.; Liguori, M.; Matarrese, S · 2021
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Probing prerecombination physics by the cross-correlation of stochastic gravitational waves and CMB anisotropies
Braglia, M.; Kuroyanagi, S · 2021
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Improved Constraints on Primordial Gravitational Waves using Planck, WMAP, and BICEP/Keck Observations through the 2018 Observing Season
Ade, P.A.R.; others · 2021
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The Atacama Cosmology Telescope: delensed power spectra and parameters
Han, D.; others · 2021
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The PICASSO map-making code: application to a simulation of the QUIJOTE northern sky survey
Guidi, F.; Rubiño-Martín, J.A.; Pelaez-Santos, A.E.; Génova-Santos, R.T.; Ashdown, M.; Barreiro, R.B.; Bilbao-Ahedo, J.D.; Harper, S.E.; Watson, R.A · 2021
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Measurements of the E-mode polarization and temperature-E-mode correlation of the CMB from SPT-3G 2018 data
Dutcher, D.; others · 2021
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Four-year Cosmology Large Angular Scale Surveyor (CLASS) Observations: On-sky Receiver Performance at 40, 90, 150, and 220 GHz Frequency Bands 2021
Dahal, S.; others · 2021
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The large scale polarization explorer (LSPE) for CMB measurements: performance forecast
Addamo, G.; others · 2021
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Simons Observatory: Constraining inflationary gravitational waves with multitracer B-mode delensing
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Population Properties of Compact Objects from the Second LIGO-Virgo Gravitational-Wave Transient Catalog
Abbott, R.; others · 2041
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Observation of gravitational waves from two neutron star-black hole coalescences
Abbott, R.; others · 2041
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