On-line power spectra identification and whitening for the noise in interferometric gravitational wave detectors

被引:42
|
作者
Cuoco, E
Calamai, G
Fabbroni, L
Losurdo, G
Mazzoni, M
Stanga, R
Vetrano, F
机构
[1] Univ Florence, Dipartimento Astron & Sci Spazio, I-50125 Florence, Italy
[2] Ist Nazl Fis Nucl, Firenze Urbino Sect, I-50125 Florence, Italy
[3] Osserv Astrofis Arcetri, I-50125 Florence, Italy
[4] Ist Nazl Fis Nucl, Firenze Urbino Sect, I-50125 Florence, Italy
[5] Univ Urbino, I-61029 Urbino, Italy
[6] Ist Nazl Fis Nucl, Fienze Urbino Sect, Inst Fis, I-61029 Urbino, Italy
关键词
D O I
10.1088/0264-9381/18/9/309
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
The knowledge of the noise power spectral density of an interferometric detector of gravitational waves is fundamental for detection algorithms and for the analysis of the data. In this paper we address both the problem of identifying the noise power spectral density of interferometric detectors by parametric techniques and the problem of the whitening procedure of the sequence of data. We will concentrate the study on a power spectral density like that of the Italian-French detector VIRGO and we show that with a reasonable number of parameters we succeed in modelling a spectrum like the theoretical one of VIRGO, reproducing all of its features. We also propose the use of adaptive techniques to identify and to whiten the data of interferometric detectors on-line. We analyse the behaviour of the adaptive techniques in the field of stochastic gradient and in the least-squares filters. As a result, we find that the least-squares lattice filter is the best among those we have analysed. It succeeds optimally in following all the peaks of the noise power spectrum, and one of its outputs is the whitened part of the spectrum. Besides, the fast convergence of this algorithm, it lets us follow the slow non-stationarity of the noise. These procedures could be used to whiten the overall power spectrum or only some region of it. The advantage of the techniques we propose is that they do not require a priori knowledge of the noise power spectrum to be analysed. Moreover, the adaptive techniques let us identify and remove the spectral line, without building any physical model of the source that produced it.
引用
收藏
页码:1727 / 1751
页数:25
相关论文
共 50 条
  • [41] Analysis of data from interferometric gravitational-wave detectors
    Brady, PR
    GRAVITATIONAL-WAVE DETECTION, 2003, 4856 : 193 - 203
  • [42] HIGH-POWER LASERS AND NOVEL OPTICS FOR LASER INTERFEROMETRIC GRAVITATIONAL-WAVE DETECTORS
    VEITCH, PJ
    MUNCH, J
    HAMILTON, MW
    OTTAWAY, D
    GREENTREE, A
    TIKHOMIROV, A
    AUSTRALIAN JOURNAL OF PHYSICS, 1995, 48 (06): : 999 - 1006
  • [43] Finite mirror effects in advanced interferometric gravitational wave detectors
    Lundgren, Andrew P.
    Bondarescu, Ruxandra
    Tsang, David
    Bondarescu, Mihai
    PHYSICAL REVIEW D, 2008, 77 (04):
  • [44] ETpathfinder: a cryogenic testbed for interferometric gravitational-wave detectors
    Utina, A.
    Amato, A.
    Arends, J.
    Arina, C.
    de Baar, M.
    Baars, M.
    Baer, P.
    van Bakel, N.
    Beaumont, W.
    Bertolini, A.
    van Beuzekom, M.
    Biersteker, S.
    Binetti, A.
    ter Brake, H. J. M.
    Bruno, G.
    Bryant, J.
    Bulten, H. J.
    Busch, L.
    Cebeci, P.
    Collette, C.
    Cooper, S.
    Cornelissen, R.
    Cuijpers, P.
    van Dael, M.
    Danilishin, S.
    Diksha, D.
    van Doesburg, S.
    Doets, M.
    Elsinga, R.
    Erends, V
    van Erps, J.
    Freise, A.
    Frenaij, H.
    Garcia, R.
    Giesberts, M.
    Grohmann, S.
    Van Haevermaet, H.
    Heijnen, S.
    van Heijningen, J., V
    Hennes, E.
    Hennig, J-S
    Hennig, M.
    Hertog, T.
    Hild, S.
    Hoffmann, H-D
    Hoft, G.
    Hopman, M.
    Hoyland, D.
    Iandolo, G. A.
    Ietswaard, C.
    CLASSICAL AND QUANTUM GRAVITY, 2022, 39 (21)
  • [45] THE FREQUENCY-RESPONSE OF INTERFEROMETRIC GRAVITATIONAL-WAVE DETECTORS
    MEERS, BJ
    PHYSICS LETTERS A, 1989, 142 (8-9) : 465 - 470
  • [46] SIMULATION OF THERMAL EFFECTS IN INTERFEROMETRIC GRAVITATIONAL-WAVE DETECTORS
    HELLO, P
    VINET, JY
    PHYSICS LETTERS A, 1993, 178 (5-6) : 351 - 356
  • [47] Effects of misalignments and beam jitters in interferometric gravitational wave detectors
    Barone, F
    Calloni, E
    DiFiore, L
    Grado, A
    Hello, P
    Milano, L
    Russo, G
    PHYSICS LETTERS A, 1996, 217 (2-3) : 90 - 96
  • [48] Current status and future perspectives of interferometric gravitational wave detectors
    Mio N.
    Seimitsu Kogaku Kaishi/Journal of the Japan Society for Precision Engineering, 2010, 76 (11): : 1217 - 1220
  • [49] Axion Dark Matter Search with Interferometric Gravitational Wave Detectors
    Nagano, Koji
    Obata, Ippei
    Fujita, Tomohiro
    Michimura, Yuta
    16TH INTERNATIONAL CONFERENCE ON TOPICS IN ASTROPARTICLE AND UNDERGROUND PHYSICS (TAUP 2019), 2020, 1468
  • [50] THERMAL LENSING IN RECYCLING INTERFEROMETRIC GRAVITATIONAL-WAVE DETECTORS
    STRAIN, KA
    DANZMANN, K
    MIZUNO, J
    NELSON, PG
    RUDIGER, A
    SCHILLING, R
    WINKLER, W
    PHYSICS LETTERS A, 1994, 194 (1-2) : 124 - 132