Extension of the Bayesian searches for anisotropic stochastic gravitational-wave background with nontensorial polarizations

被引:0
|
作者
Tsukada, Leo [1 ,2 ]
机构
[1] Penn State Univ, Dept Phys, University Pk, PA 16802 USA
[2] Penn State Univ, Inst Gravitat & Cosmos, University Pk, PA 16802 USA
基金
美国国家科学基金会;
关键词
BLACK-HOLE BINARIES; GENERAL-RELATIVITY; RADIATION; INFERENCE; LIMITS; BILBY; TESTS;
D O I
10.1103/PhysRevD.108.124042
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
The recent announcement of strong evidence for a stochastic gravitational-wave background (SGWB) by various pulsar timing array collaborations has highlighted this signal as a promising candidate for future observations. Despite its nondetection by ground-based detectors such as Advanced LIGO and Advanced Virgo, Callister et al. [Phys. Rev. X 7, 041058 (2017)] developed a Bayesian formalism to search for an isotropic SGWB with nontensorial polarizations, imposing constraints on signal amplitude in those components that violate general relativity using LIGO's data. Since our ultimate aim is to estimate the spatial distribution of gravitational-wave sources, we have extended this existing method to allow for anisotropic components in signal models. We then examined the potential benefits from including these additional components. Using injection campaigns, we found that introducing anisotropic components into a signal model led to more significant identification of the signal itself and violations of general relativity. Moreover, the results of our Bayesian parameter estimation suggested that anisotropic components aid in breaking down degeneracies between different polarization components, allowing us to infer model parameters more precisely than through an isotropic analysis. In contrast, constraints on signal amplitude remained comparable in the absence of such a signal. Although these results might depend on the assumed source distribution on the sky, such as the Galactic plane, the formalism presented in this work has laid a foundation for establishing a generalized Bayesian analysis for an SGWB, including its anisotropies and nontensorial polarizations.
引用
收藏
页数:20
相关论文
共 50 条
  • [21] Stochastic background detection with gravitational-wave resonant detectors
    Vitale, S
    Cerdonio, M
    Coccia, E
    Ortolan, A
    [J]. CLASSICAL AND QUANTUM GRAVITY, 1997, 14 (06) : 1487 - 1490
  • [22] Constraining gravitational-wave polarizations with Taiji
    Liu, Chang
    Ruan, Wen-Hong
    Guo, Zong-Kuan
    [J]. PHYSICAL REVIEW D, 2020, 102 (12)
  • [23] Gravitational-wave stochastic background from cosmic strings
    Siemens, Xavier
    Mandic, Vuk
    Creighton, Jolien
    [J]. PHYSICAL REVIEW LETTERS, 2007, 98 (11)
  • [24] Sound Speed Resonance of the Stochastic Gravitational-Wave Background
    Cai, Yi-Fu
    Lin, Chunshan
    Wang, Bo
    Yan, Sheng-Feng
    [J]. PHYSICAL REVIEW LETTERS, 2021, 126 (07)
  • [25] Constraining the Delay Time Distribution of Compact Binary Objects from the Stochastic Gravitational-wave Background Searches
    Safarzadeh, Mohammadtaher
    Biscoveanu, Sylvia
    Loeb, Abraham
    [J]. ASTROPHYSICAL JOURNAL, 2020, 901 (02):
  • [26] A parallelized Bayesian approach to accelerated gravitational-wave background characterization
    Taylor, Stephen R.
    Simon, Joseph
    Schult, Levi
    Pol, Nihan
    Lamb, William G.
    [J]. PHYSICAL REVIEW D, 2022, 105 (08)
  • [27] Astrophysical motivation for directed searches for a stochastic gravitational wave background
    Mazumder, Nairwita
    Mitra, Sanjit
    Dhurandhar, Sanjeev
    [J]. PHYSICAL REVIEW D, 2014, 89 (08):
  • [28] Imprint of relativistic particles on the anisotropies of the stochastic gravitational-wave background
    Dall'Armi, L. Valbusa
    Ricciardone, A.
    Bartolo, N.
    Bertacca, D.
    Matarrese, S.
    [J]. PHYSICAL REVIEW D, 2021, 103 (02)
  • [30] Data analysis techniques to search for the stochastic gravitational-wave background
    Cella, Giancarlo
    [J]. 15TH MARCEL GROSSMANN MEETING, PT A, 2022, : 1659 - 1664