Astrophysical model selection in gravitational wave astronomy

被引:45
作者
Adams, Matthew R. [1 ]
Cornish, Neil J. [1 ]
Littenberg, Tyson B. [2 ,3 ]
机构
[1] Montana State Univ, Dept Phys, Bozeman, MT 59717 USA
[2] Univ Maryland, Dept Phys, Maryland Ctr Fundamental Phys, College Pk, MD 20742 USA
[3] NASA Goddard Spaceflight Ctr, Gravitat Astrophys Lab, Greenbelt, MD 20771 USA
来源
PHYSICAL REVIEW D | 2012年 / 86卷 / 12期
关键词
DOUBLE WHITE-DWARFS; POPULATION SYNTHESIS; BINARIES; SYSTEMS; SIGNAL;
D O I
10.1103/PhysRevD.86.124032
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Theoretical studies in gravitational wave astronomy have mostly focused on the information that can be extracted from individual detections, such as the mass of a binary system and its location in space. Here we consider how the information from multiple detections can be used to constrain astrophysical population models. This seemingly simple problem is made challenging by the high dimensionality and high degree of correlation in the parameter spaces that describe the signals, and by the complexity of the astrophysical models, which can also depend on a large number of parameters, some of which might not be directly constrained by the observations. We present a method for constraining population models using a hierarchical Bayesian modeling approach which simultaneously infers the source parameters and population model and provides the joint probability distributions for both. We illustrate this approach by considering the constraints that can be placed on population models for galactic white dwarf binaries using a future space-based gravitational wave detector. We find that a mission that is able to resolve similar to 5000 of the shortest period binaries will be able to constrain the population model parameters, including the chirp mass distribution and a characteristic galaxy disk radius to within a few percent. This compares favorably to existing bounds, where electromagnetic observations of stars in the galaxy constrain disk radii to within 20%. DOI: 10.1103/PhysRevD.86.124032
引用
收藏
页数:10
相关论文
共 50 条
  • [21] Detecting a stochastic gravitational wave background in the presence of a galactic foreground and instrument noise
    Adams, Matthew R.
    Cornish, Neil J.
    PHYSICAL REVIEW D, 2014, 89 (02):
  • [22] Taiji program: Gravitational-wave sources
    Ruan, Wen-Hong
    Guo, Zong-Kuan
    Cai, Rong-Gen
    Zhang, Yuan-Zhong
    INTERNATIONAL JOURNAL OF MODERN PHYSICS A, 2020, 35 (17):
  • [23] Stochastic gravitational-wave background as a tool for investigating multi-channel astrophysical and primordial black-hole mergers
    Bavera, Simone S.
    Franciolini, Gabriele
    Cusin, Giulia
    Riotto, Antonio
    Zevin, Michael
    Fragos, Tassos
    ASTRONOMY & ASTROPHYSICS, 2022, 660
  • [24] Accelerated Bayesian model-selection and parameter-estimation in continuous gravitational-wave searches with pulsar-timing arrays
    Taylor, Stephen
    Ellis, Justin
    Gair, Jonathan
    PHYSICAL REVIEW D, 2014, 90 (10):
  • [25] Gravitational wave research using pulsar timing arrays
    Hobbs, George
    Dai, Shi
    NATIONAL SCIENCE REVIEW, 2017, 4 (05) : 707 - 717
  • [26] The gravitational wave emission of double white dwarf coalescences
    Zou, Ze-Cheng
    Zhou, Xiao-Long
    Huang, Yong-Feng
    RESEARCH IN ASTRONOMY AND ASTROPHYSICS, 2020, 20 (09)
  • [27] Seeing the gravitational wave universe Pulsar timing arrays will be a window into the gravitational wave background
    Mingarelli, Chiara M. F.
    Casey-Clyde, J. Andrew
    SCIENCE, 2022, 378 (6620) : 592 - 593
  • [28] The Galactic gravitational wave foreground
    Nelemans, Gijs
    CLASSICAL AND QUANTUM GRAVITY, 2009, 26 (09)
  • [29] Detecting gravitational wave with an interferometric seismometer array on lunar nearside
    Li, Junlang
    Liu, Fangfei
    Pan, Yuan
    Wang, Zijian
    Cao, Mengdi
    Wang, Mengyao
    Zhang, Fan
    Zhang, Jinhai
    Zhu, Zong-Hong
    SCIENCE CHINA-PHYSICS MECHANICS & ASTRONOMY, 2023, 66 (10)
  • [30] Parametrized post-Einsteinian framework for gravitational wave bursts
    Loutrel, Nicholas
    Yunes, Nicolas
    Pretorius, Frans
    PHYSICAL REVIEW D, 2014, 90 (10):