Time-frequency analysis of gravitational wave data

被引:28
|
作者
Cornish, Neil J. [1 ]
机构
[1] Montana State Univ, eXtreme Grav Inst, Dept Phys, Bozeman, MT 59717 USA
基金
美国国家科学基金会;
关键词
NOISE; SPECTRA; SERIES;
D O I
10.1103/PhysRevD.102.124038
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Data from gravitational wave detectors are recorded as time series that include contributions from myriad noise sources in addition to any gravitational wave signals. When regularly sampled data are available, such as for ground based and future space based interferometers, analyses are typically performed in the frequency domain, where stationary (time invariant) noise processes can be modeled very efficiently. In reality, detector noise is not stationary due to a combination of short duration noise transients and longer duration drifts in the power spectrum. This nonstationarity produces correlations across samples at different frequencies, obviating the main advantage of a frequency domain analysis. Here an alternative time-frequency approach to gravitational wave data analysis is proposed that uses discrete, orthogonal wavelet wave packets. The time domain data is mapped onto a uniform grid of time-frequency pixels. For locally stationary noise-that is, noise with an adiabatically varying spectrum-the time-frequency pixels are uncorrelated, which greatly simplifies the calculation of quantities such as the likelihood. Moreover, the gravitational wave signals from binary systems can be compactly represented as a collection of lines in time-frequency space, resulting in a computational cost for computing waveforms and likelihoods that scales as the square root of the number of time samples, as opposed to the linear scaling for time or frequency based analyses. Key to this approach is having fast methods for computing binary signals directly in the wavelet domain. Multiple fast transform methods are developed in detail.
引用
收藏
页数:20
相关论文
共 50 条
  • [1] Sparsifying Time-Frequency Distributions for Gravitational Wave Data Analysis
    Addesso, P.
    Longo, M.
    Marano, S.
    Matta, V.
    Pinto, I. M.
    Principe, M.
    2015 3RD INTERNATIONAL WORKSHOP ON COMPRESSED SENSING THEORY AND ITS APPLICATION TO RADAR, SONAR, AND REMOTE SENSING (COSERA), 2015, : 154 - 158
  • [2] Time-Frequency Analysis of Gravitational Waves
    Singh, Pushpendra
    Singhal, Amit
    Joshi, Shiv Dutt
    2018 INTERNATIONAL CONFERENCE ON SIGNAL PROCESSING AND COMMUNICATIONS (SPCOM 2018), 2018, : 197 - 201
  • [3] A time-frequency analysis of gravitational wave signals with non-harmonic analysis
    Yanagisawa, Kenta
    Jia, Dongbao
    Hirobayashi, Shigeki
    Uchikata, Nami
    Narikawa, Tatsuya
    Ueno, Koh
    Takahashi, Hirotaka
    Tagoshi, Hideyuki
    PROGRESS OF THEORETICAL AND EXPERIMENTAL PHYSICS, 2019, 2019 (06):
  • [4] Time-frequency detection algorithm for gravitational wave bursts
    Sylvestre, J
    PHYSICAL REVIEW D, 2002, 66 (10):
  • [5] Gravitational wave signal identification and transformations in time-frequency domain
    Thirumalainambi, Rajkumar
    Thompson, David E.
    LECTURE NOTES IN SIGNAL SCIENCE, INTERNET AND EDUCATION (SSIP'07/MIV'07/DIWEB'07), 2007, : 141 - +
  • [6] Time-frequency track distance for comparing continuous gravitational wave signals
    Tenorio, Rodrigo
    Keitel, David
    Sintes, Alicia M.
    PHYSICAL REVIEW D, 2021, 103 (06)
  • [7] Spectrogram correlated stacking: A novel time-frequency domain analysis of the stochastic gravitational wave background
    Dey, Ramit
    Micchi, Lufs Felipe Longo
    Mukherjee, Suvodip
    Afshordi, Niayesh
    PHYSICAL REVIEW D, 2024, 109 (02)
  • [8] TIME-FREQUENCY ANALYSIS OF MAGNETOTELLURIC DATA
    CHANT, IJ
    HASTIE, LM
    GEOPHYSICAL JOURNAL INTERNATIONAL, 1992, 111 (02) : 399 - 413
  • [9] Time-frequency analysis of dispersive wave phenomena
    Shin, YJ
    Chao, A
    Powers, EJ
    PROCEEDINGS OF THE 10TH (2000) INTERNATIONAL OFFSHORE AND POLAR ENGINEERING CONFERENCE, VOL III, 2000, : 42 - 49
  • [10] Time-frequency detection of gravitational waves
    Anderson, WG
    Balasubramanian, R
    PHYSICAL REVIEW D, 1999, 60 (10):