| 1 | Abbott, B. et al. (LIGO Scientific Collaboration), “Analysis of LIGO data for gravitational
waves from binary neutron stars”, Phys. Rev. D, 69, 122001, 1–16, (2004). Related online
version (cited on 8 January 2005):
|
|
| 2 | Abbott, B. et al. (LIGO Scientific Collaboration), “First upper limits from LIGO on
gravitational wave bursts”, Phys. Rev. D, 69, 102001, 1–21, (2004). Related online version
(cited on 8 January 2005):
|
|
| 3 | Abbott, B. et al. (LIGO Scientific Collaboration), “Setting upper limits on the strength of
periodic gravitational waves from PSR J1939+2134 using the first science data from the GEO
600 and LIGO detectors”, Phys. Rev. D, 69, 082004, 1–16, (2004). Related online version (cited
on 8 January 2005):
|
|
| 4 | Adler, R.J., The Geometry of Random Fields, (Wiley, Chichester, U.K.; New York, U.S.A., 1981). | |
| 5 | Allen, B., “The stochastic gravity-wave background: Sources and detection”, in Marck, J.-A.,
and Lasota, J.-P., eds., Relativistic gravitation and gravitational radiation, Proceedings of the
Les Houches School of Physics, held in Les Houches, Haute Savoie, 26 September – 6 October,
1995, Cambridge Contemporary Astrophysics, (Cambridge University Press, Cambridge, U.K.,
1997). Related online version (cited on 8 January 2005):
|
|
| 6 | Allen, B., Blackburn, J.K., Brady, P.R., Creighton, J.D., Creighton, T., Droz, S., Gillespie,
A.D., Hughes, S.A., Kawamura, S., Lyons, T.T., Mason, J.E., Owen, B.J., Raab, F.J.,
Regehr, M.W., Sathyaprakash, B.S., Savage Jr, R.L., Whitcomb, S., and Wiseman, A.G.,
“Observational Limit on Gravitational Waves from Binary Neutron Stars in the Galaxy”, Phys.
Rev. Lett., 83, 1498–1501, (1999). Related online version (cited on 8 January 2005):
|
|
| 7 | Allen, B., Creighton, D.E., Flanagan, É.É., and Romano, J.D., “Robust statistics for
deterministic and stochastic gravitational waves in non-Gaussian noise I: Frequentist analyses”,
Phys. Rev. D, 65, 122002, (2002). Related online version (cited on 10 June 2007):
|
|
| 8 | Allen, B., Creighton, D.E., Flanagan, É.É., and Romano, J.D., “Robust statistics for
deterministic and stochastic gravitational waves in non-Gaussian noise I: Bayesian analyses”,
Phys. Rev. D, 67, 122002, (2003). Related online version (cited on 10 June 2007):
|
|
| 9 | Apostolatos, T.A., “Search templates for gravitational waves from precessing, inspiraling binaries”, Phys. Rev. D, 52, 605–620, (1995). | |
| 10 | Armstrong, J.W., Estabrook, F.B., and Tinto, M., “Time-Delay Interferometry for Space-Based Gravitational Wave Searches”, Astrophys. J., 527, 814–826, (1999). | |
| 11 | Arnaud, N., Barsuglia, M., Bizouard, M., Brisson, V., Cavalier, F., Davier, M., Hello, P.,
Kreckelbergh, S., and Porter, E.K., “Coincidence and coherent data analysis methods for
gravitational wave bursts in a network of interferometric detectors”, Phys. Rev. D, 68, 102001,
1–18, (2003). Related online version (cited on 8 January 2005):
|
|
| 12 | Arun, K.G., Iyer, B.R., Sathyaprakash, B.S., and Sundararajan, P.A., “Parameter estimation
of inspiralling compact binaries using 3.5 post-Newtonian gravitational wave phasing: The
non-spinning case”, Phys. Rev. D, 71, 084008, 1–16, (2005). Related online version (cited on
23 July 2007):
|
|
| 13 | Astone, P., “Long-term operation of the Rome “Explorer” cryogenic gravitational wave detector”, Phys. Rev. D, 47, 362–375, (1993). | |
| 14 | Astone, P., Babusci, D., Baggio, L., Bassan, M., Blair, D.G., Bonaldi, M., Bonifazi, P., Busby, D., Carelli, P., Cerdonio, M., Coccia, E., Conti, L., Cosmelli, C., D’Antonio, S., Fafone, V., Falferi, P., Fortini, P., Frasca, S., Giordano, G., Hamilton, W.O., Heng, I.S., Ivanov, E.N., Johnson, W.W., Marini, A., Mauceli, E., McHugh, M.P., Mezzena, R., Minenkov, Y., Modena, I., Modestino, G., Moleti, A., Ortolan, A., Pallottino, G.V., Pizzella, G., Prodi, G.A., Quintieri, L., Rocchi, A., Rocco, E., Ronga, F., Salemi, F., Santostasi, G., Taffarello, L., Terenzi, R., Tobar, M.E., Torrioli, G., Vedovato, G., Vinante, A., Visco, M., Vitale, S., and Zendri, J.P., “Methods and results of the IGEC search for burst gravitational waves in the years 1997–2000”, Phys. Rev. D, 68, 022001, 1–33, (2003). | |
| 15 | Astone, P., Babusci, D., Bassan, M., Borkowski, K.M., Coccia, E., D’Antonio, S., Fafone, V., Giordano, G., Jaranowski, P., Królak, A., Marini, A., Minenkov, Y., Modena, I., Modestino, G., Moleti, A., Pallottino, G.V., Pietka, M., Pizzella, G., Quintieri, L., Rocchi, A., Ronga, F., Terenzi, R., and Visco, M., “All-sky upper limit for gravitational radiation from spinning neutron stars”, Class. Quantum Grav., 20, S665–S676, (2003). Paper from the 7th Gravitational Wave Data Analysis Workshop, Kyoto, Japan, 17–19 December 2002. | |
| 16 | Astone, P., Borkowski, K.M., Jaranowski, P., and Królak, A., “Data Analysis of gravitational-wave signals from spinning neutron stars. IV. An all-sky search”, Phys. Rev. D, 65, 042003, 1–18, (2002). | |
| 17 | Astone, P., Lobo, J.A., and Schutz, B.F., “Coincidence experiments between interferometric and resonant bar detectors of gravitational waves”, Class. Quantum Grav., 11, 2093–2112, (1994). | |
| 18 | Balasubramanian, R., and Dhurandhar, S.V., “Estimation of parameters of gravitational waves from coalescing binaries”, Phys. Rev. D, 57, 3408–3422, (1998). | |
| 19 | Balasubramanian, R., Sathyaprakash, B.S., and Dhurandhar, S.V., “Gravitational waves from
coalescing binaries: detection strategies and Monte Carlo estimation of parameters”, Phys. Rev.
D, 53, 3033–3055, (1996). Related online version (cited on 8 January 2005):
|
|
| 20 | Bayes, T., “An essay towards solving a problem in doctrine of chances”, Philos. Trans. R. Soc. London, 53, 293–315, (1763). | |
| 21 | Berti, E., Buonanno, A., and Will, C.M., “Estimating spinning binary parameters and testing
alternative theories of gravity with LISA”, Phys. Rev. D, 71, 084025, 1–24, (2005). Related
online version (cited on 23 July 2007):
|
|
| 22 | Blanchet, L., “Gravitational Radiation from Post-Newtonian Sources and Inspiralling Compact
Binaries”, Living Rev. Relativity, 9, lrr-2006-4, (2006). URL (cited on 10 June 2007):
http://www.livingreviews.org/lrr-2006-4. |
|
| 23 | Bonazzola, S., and Gourgoulhon, E., “Gravitational waves from pulsars: Emission by the
magnetic field induced distortion”, Astron. Astrophys., 312, 675–690, (1996). Related online
version (cited on 8 January 2005):
|
|
| 24 | Brady, P.R., Creighton, T., Cutler, C., and Schutz, B.F., “Searching for periodic sources with
LIGO”, Phys. Rev. D, 57, 2101–2116, (1998). Related online version (cited on 8 January 2005):
|
|
| 25 | Brooks, C., Introductory econometrics for finance, (Cambridge University Press, Cambridge, U.K.; New York, U.S.A., 2002). | |
| 26 | Buonanno, A., Chen, Y., and Vallisneri, M., “Detection template families for gravitational
waves from the final stages of binary-black-hole inspirals: Nonspinning case”, Phys. Rev. D,
67, 024016, 1–50, (2003). Related online version (cited on 8 January 2005):
|
|
| 27 | Conover, W.J., Practical Nonparametric Statistics, (Wiley, New York, U.S.A., 1998), 3rd edition. | |
| 28 | Conway, J.H., and Sloane, N.J.A., Sphere Packings, Lattices and Groups, vol. 290 of Grundlehren der mathematischen Wissenschaften, (Springer, New York, U.S.A., 1999), 3rd edition. | |
| 29 | Croce, R.P., Demma, T., Longo, M., Marano, S., Matta, V., Pierro, V., and Pinto, I.M.,
“Correlator bank detection of gravitational wave chirps—False-alarm probability, template
density, and thresholds: Behind and beyond the minimal-match issue”, Phys. Rev. D, 70,
122001, 1–19, (2004). Related online version (cited on 8 January 2005):
|
|
| 30 | Cutler, C., “Angular resolution of the LISA gravitational wave detector”, Phys. Rev. D, 57,
7089–7102, (1998). Related online version (cited on 23 July 2007):
|
|
| 31 | Cutler, C., Apostolatos, T.A., Bildsten, L., Finn, L.S., Flanagan, É.É., Kennefick, D.,
MarkoviÄ, D.M., Ori, A., Poisson, E., and Sussman, G.J., “The Last Three Minutes: Issues
in Gravitational-Wave Measurements of Coalescing Compact Binaries”, Phys. Rev. Lett., 70,
2984–2987, (1993). Related online version (cited on 8 January 2005):
|
|
| 32 | Cutler, C., and Flanagan, É.É., “Gravitational waves from merging compact binaries: How
accurately can one extract the binary’s parameters from the inspiral waveform?”, Phys. Rev.
D, 49, 2658–2697, (1994). Related online version (cited on 8 January 2005):
|
|
| 33 | Cutler, C., and Schutz, B.F., “The generalized F-statistic: multiple detectors and multiple GW
pulsars”, Phys. Rev. D, 72, 063006, (2005). Related online version (cited on 10 June 2007):
|
|
| 34 | Davis, M.H.A., “A Review of Statistical Theory of Signal Detection”, in Schutz, B.F., ed., Gravitational Wave Data Analysis, Proceedings of the NATO Advanced Research Workshop, held at Dyffryn House, St. Nichols, Cardiff, Wales, 6 – 9 July 1987, vol. 253 of NATO ASI Series C, 73–94, (Kluwer, Dordrecht, Netherlands; Boston, U.S.A., 1989). | |
| 35 | Dhurandhar, S.V., and Sathyaprakash, B.S., “Choice of filters for the detection of gravitational waves from coalescing binaries. II. Detection in colored noise”, Phys. Rev. D, 49, 1707–1722, (1994). | |
| 36 | Dhurandhar, S.V., and Schutz, B.F., “Filtering coalescing binary signals: Issues concerning narrow banding, thresholds, and optimal sampling”, Phys. Rev. D, 50, 2390–2405, (1994). | |
| 37 | Estabrook, F.B., and Wahlquist, H.D., “Response of Doppler spacecraft tracking to gravitational radiation”, Gen. Relativ. Gravit., 6, 439–447, (1975). | |
| 38 | Finn, L.S., “Detection, measurement, and gravitational radiation”, Phys. Rev. D, 46,
5236–5249, (1992). Related online version (cited on 23 July 2007):
|
|
| 39 | Finn, L.S., “Aperture synthesis for gravitational-wave data analysis: Deterministic sources”,
Phys. Rev. D, 63, 102001, 1–18, (2001). Related online version (cited on 8 January 2005):
|
|
| 40 | Finn, L.S., and Chernoff, D.F., “Observing binary inspiral in gravitational radiation: One
interferometer”, Phys. Rev. D, 47, 2198–2219, (1993). Related online version (cited on 8
January 2005):
|
|
| 41 | Fisz, M., Probability Theory and Mathematical Statistics, (Wiley, New York, U.S.A., 1963). | |
| 42 | Giampieri, G., “On the antenna pattern of an orbiting interferometer”, Mon. Not. R. Astron. Soc., 289, 185–195, (1997). | |
| 43 | Gürsel, Y., and Tinto, M., “Nearly optimal solution to the inverse problem for gravitational-wave bursts”, Phys. Rev. D, 40, 3884–3938, (1989). | |
| 44 | Helstrom, C.W., Statistical Theory of Signal Detection, vol. 9 of International Series of Monographs in Electronics and Instrumentation, (Pergamon Press, Oxford, U.K.; New York, U.S.A., 1968), 2nd edition. | |
| 45 | Hinich, M.J., “Testing for Gaussianity and linearity of a stationary time series”, J. Time Series Anal., 3, 169–176, (1982). | |
| 46 | Hughes, S.A., “Untangling the merger history of massive black holes with LISA”, Mon. Not.
R. Astron. Soc., 331, 805–816, (2002). Related online version (cited on 23 July 2007):
|
|
| 47 | Hughes, S.A., and Menou, K., “Golden binary gravitational-wave sources: Robust probes of
strong-field gravity”, Astrophys. J., 623, 689–699, (2005). Related online version (cited on 23
July 2007):
|
|
| 48 | Jaranowski, P., and Królak, A., “Optimal solution to the inverse problem for the gravitational wave signal of a coalescing binary”, Phys. Rev. D, 49, 1723–1739, (1994). | |
| 49 | Jaranowski, P., and Królak, A., “Data analysis of gravitational-wave signals from spinning neutron stars. III. Detection statistics and computational requirements”, Phys. Rev. D, 61, 062001, 1–32, (2000). | |
| 50 | Jaranowski, P., Królak, A., and Schutz, B.F., “Data Analysis of gravitational-wave signals from spinning neutron stars: The signal and its detection”, Phys. Rev. D, 58, 063001, 1–24, (1998). | |
| 51 | Judge, G.G., Hill, R.C., Griffiths, W.E., Lutkepohl, H., and Lee, T.-C., The Theory and Practice of Econometrics, (Wiley, New York, U.S.A., 1980). | |
| 52 | Kafka, P., “Optimal Detection of Signals through Linear Devices with Thermal Noise Sources and Application to the Munich-Frascati Weber-Type Gravitational Wave Detectors”, in De Sabbata, V., and Weber, J., eds., Topics in Theoretical and Experimental Gravitation Physics, Proceedings of the International School of Cosmology and Gravitation held in Erice, Trapani, Sicily, March 13 – 25, 1975, vol. 27 of NATO ASI Series B, 161, (Plenum Press, New York, U.S.A., 1977). | |
| 53 | Kassam, S.A., Signal Detection in Non-Gaussian Noise, (Springer, New York, U.S.A., 1988). | |
| 54 | Kendall, M., and Stuart, A., The Advanced Theory of Statistics. Vol. 2: Inference and Relationship, number 2, (C. Griffin, London, 1979). | |
| 55 | Kokkotas, K.D., Królak, A., and Tsegas, G., “Statistical analysis of the estimators of the parameters of the gravitational-wave signal from a coalescing binary”, Class. Quantum Grav., 11, 1901–1918, (1994). | |
| 56 | Kotelnikov, V.A., The theory of optimum noise immunity, (McGraw-Hill, New York, U.S.A., 1959). | |
| 57 | Królak, A., Kokkotas, K.D., and Schäfer, G., “Estimation of the post-Newtonian parameters
in the gravitational-wave emission of a coalescing binary”, Phys. Rev. D, 52, 2089–2111, (1995).
Related online version (cited on 8 January 2005):
|
|
| 58 | Królak, A., Lobo, J.A., and Meers, B.J., “Estimation of the parameters of the gravitational-wave signal of a coalescing binary system”, Phys. Rev. D, 48, 3451–3462, (1993). | |
| 59 | Królak, A., and Schutz, B.F., “Coalescing binaries – probe to the Universe”, Gen. Relativ. Gravit., 19, 1163–1171, (1987). | |
| 60 | Królak, A., Tinto, M., and Vallisneri, M., “Optimal filtering of the LISA data”, Phys. Rev.
D, 70, 022003, 1–24, (2004). Related online version (cited on 8 January 2005):
|
|
| 61 | Lagarias, J.C., Reeds, J.A., Wright, M.H., and Wright, P.E., “Convergence properties of the Nelder–Mead simplex method in low dimensions”, SIAM J. Optimiz., 9, 112–147, (1998). | |
| 62 | Lehmann, E.L., Testing Statistical Hypothesis, (Wiley, New York, U.S.A., 1959). | |
| 63 | Lehmann, E.L., Theory of Point Estimation, (Wiley, New York, U.S.A., 1983). | |
| 64 | Liptser, R.S., and Shiryaev, A.N., Statistics of Random Processes, 2 vols., Applications of Mathematics, (Springer, New York, U.S.A., 1977). | |
| 65 | LISA: Pre-phase A report, December 1998, MPQ 223, (Max-Planck-Institut für Quantenoptik, Garching, Germany, 1998). | |
| 66 | McDonough, R.N., and Whalen, A.D., Detection of signals in noise, (Academic Press, San Diego, U.S.A., 1995), 2nd edition. | |
| 67 | Meyer, C., Matrix Analysis and Applied Linear Algebra, (SIAM, Philadelphia, U.S.A., 2000). | |
| 68 | Mohanty, S.D., “Hierarchical search strategy for the detection of gravitational waves from
coalescing binaries: Extension to post-Newtonian waveforms”, Phys. Rev. D, 57, 630–658,
(1998). Related online version (cited on 8 January 2005):
|
|
| 69 | Mohanty, S.D., “A robust test for detecting non-stationarity in data from gravitational wave
detectors”, Phys. Rev. D, 61, 122002, 1–12, (2000). Related online version (cited on 8 January
2005):
|
|
| 70 | Mohanty, S.D., and Dhurandhar, S.V., “Hierarchical search strategy for the detection of gravitational waves from coalescing binaries”, Phys. Rev. D, 54, 7108–7128, (1996). | |
| 71 | Nicholson, D., Dickson, C.A., Watkins, W.J., Schutz, B.F., Shuttleworth, J., Jones, G.S., Robertson, D.I., MacKenzie, N.L., Strain, K.A., Meers, B.J., Newton, G.P., Ward, H., Cantley, C.A., Robertson, N.A., Hough, J., Danzmann, K., Niebauer, T.M., Rüdiger, A., Schilling, R., Schnupp, L., and Winkler, W., “Results of the first coincident observations by two laser-interferometric gravitational wave detectors”, Phys. Lett. A, 218, 175–180, (1996). | |
| 72 | Nicholson, D., and Vecchio, A., “Bayesian bounds on parameter estimation accuracy for
compact coalescing binary gravitational wave signals”, Phys. Rev. D, 57, 4588–4599, (1998).
Related online version (cited on 8 January 2005):
|
|
| 73 | Niebauer, T.M., Rüdiger, A., Schilling, R., Schnupp, L., Winkler, W., and Danzmann, K., “Pulsar search using data compression with the Garching gravitational wave detector”, Phys. Rev. D, 47, 3106–3123, (1993). | |
| 74 | Owen, B.J., “Search templates for gravitational waves from inspiraling binaries: Choice of
template spacing”, Phys. Rev. D, 53, 6749–6761, (1996). Related online version (cited on 8
January 2005):
|
|
| 75 | Pai, A., Dhurandhar, S.V.,
and Bose, S., “Data-analysis strategy for detecting gravitational-wave signals from inspiraling
compact binaries with a network of laser-interferometric detectors”, Phys. Rev. D, 64, 042004,
1–30, (2001). Related online version (cited on 8 January 2005):
|
|
| 76 | Poisson, E., and Will, C.M., “Gravitational waves from inspiralling compact binaries:
Parameter estimation using second-post-Newtonian waveforms”, Phys. Rev. D, 52, 848–855,
(1995). Related online version (cited on 23 July 2007):
|
|
| 77 | Poor, H.V., An Introduction to Signal Detection and Estimation, (Springer, New York, U.S.A., 1994), 2nd edition. | |
| 78 | Prince, T.A., Tinto, M., Larson, S.L., and Armstrong, J.W., “LISA optimal sensitivity”, Phys. Rev. D, 66, 122002, 1–7, (2002). | |
| 79 | Prix, R., “The search for continuous gravitational waves: metric of the multi-detector
F-statistic”, Phys. Rev. D, 75, 023004, (2007). Related online version (cited on 10 June 2007):
|
|
| 80 | Rajesh Nayak, K., Pai, A., Dhurandhar, S.V., and Vinet, J.-Y., “Improving the sensitivity of LISA”, Class. Quantum Grav., 20, 1217–1231, (2003). | |
| 81 | Rife, D.C., and Boorstyn, R.R., “Single tone parameter estimation from discrete-time observations”, IEEE Trans. Inform. Theory, 20, 591–598, (1974). | |
| 82 | Rowan, S., and Hough, J., “Gravitational Wave Detection by Interferometry (Ground and
Space)”, Living Rev. Relativity, 3, lrr-2000-3, (2000). URL (cited on 8 January 2005):
http://www.livingreviews.org/lrr-2000-3. |
|
| 83 | Rubbo, L.J., Cornish, N.J., and Poujade, O., “Forward modeling of space-borne gravitational
wave detectors”, Phys. Rev. D, 69, 082003, 1–14, (2004). Related online version (cited on 8
January 2005):
|
|
| 84 | Sathyaprakash, B.S., and Dhurandhar, S.V., “Choice of filters for the detection of gravitational waves from coalescing binaries”, Phys. Rev. D, 44, 3819–3834, (1991). | |
| 85 | Schutz, B.F., “Determining the nature of the Hubble constant”, Nature, 323, 310–311, (1986). | |
| 86 | Schutz, B.F., ed., Gravitational Wave Data Analysis, Proceedings of the NATO Advanced Research Workshop held at Dyffryn House, St. Nichols, Cardiff, Wales, 6 – 9 July 1987, vol. 253 of NATO ASI Series C, (Kluwer, Dordrecht, Netherlands; Boston, U.S.A., 1989). | |
| 87 | Schutz, B.F., “Data processing, analysis and storage for interferometric antennas”, in Blair, D.G., ed., The Detection of Gravitational Waves, 406–452, (Cambridge University Press, Cambridge, U.K.; New York, U.S.A., 1991). | |
| 88 | Sengupta, S.A., Dhurandhar, S.V., and Lazzarini, A., “Faster implementation of the hierarchical search algorithm for detection of gravitational waves from inspiraling compact binaries”, Phys. Rev. D, 67, 082004, 1–14, (2003). | |
| 89 | Seto, N., “Effects of finite armlength of LISA on analysis of gravitational waves from
massive-black-holes binaries”, Phys. Rev. D, 66, 122001, 1–7, (2002). Related online version
(cited on 23 July 2007):
|
|
| 90 | Tagoshi, H., Kanda, N., Tanaka, T., Tatsumi, D., Telada, S., Ando, M., Arai, K., Araya,
A., Asada, H., Barton, M.A., Fujimoto, M.-K., Fukushima, M., Futamase, T., Heinzel, G.,
Horikoshi, G., Ishizuka, H., Kamikubota, N., Kawabe, K., Kawamura, S., Kawashima, N.,
Kojima, Y., Kozai, Y., Kuroda, K., Matsuda, N., Matsumura, S., Miki, S., Mio, N., Miyakawa,
O., Miyama, S.M., Miyoki, S., Mizuno, E., Moriwaki, S., Musha, M., Nagano, S., Nakagawa,
K., Nakamura, T., Nakao, K., Numata, K., Ogawa, Y., Ohashi, M., Ohishi, N., Okutomi, A.,
Oohara, K., Otsuka, S., Saito, Y., Sasaki, M., Sato, S., Sekiya, A., Shibata, M., Shirakata, K.,
Somiya, K., Suzuki, T., Takahashi, R., Takamori, A., Taniguchi, S., Tochikubo, K., Tomaru,
T., Tsubono, K., Tsuda, N., Uchiyama, T., Ueda, A., Ueda, K., Waseda, K., Watanabe, Y.,
Yakura, H., Yamamoto, K., and Yamazaki, T. (The TAMA Collaboration), “First search for
gravitational waves from inspiraling compact binaries using TAMA300 data”, Phys. Rev. D,
63, 062001, 1–5, (2001). Related online version (cited on 8 January 2005):
|
|
| 91 | Tanaka, T., and Tagoshi, H., “Use of new coordinates for the template space in hierarchical
search for gravitational waves from inspiraling binaries”, Phys. Rev. D, 62, 082001, 1–8, (2000).
Related online version (cited on 8 January 2005):
|
|
| 92 | Thorne, K.S., “Gravitational radiation”, in Hawking, S.W., and Israel, W., eds., Three Hundred Years of Gravitation, 330–458, (Cambridge University Press, Cambridge, U.K.; New York, U.S.A., 1987). | |
| 93 | Tinto, M., and Armstrong, J.W., “Cancellation of laser noise in an unequal-arm interferometer detector of gravitational radiation”, Phys. Rev. D, 59, 102003, 1–11, (1999). | |
| 94 | Table of Q Functions, RAND Research Memorandum, M-339, (U.S. Air Force, Rand Corporation, Santa Monica, U.S.A., 1950). | |
| 95 | Vallisneri, M., “Use and Abuse of the Fisher Information Matrix in the Assessment of
Gravitational-Wave Parameter-Estimation Prospects”, (2007). URL (cited on 23 July 2007):
|
|
| 96 | Van Trees, H.L., Detection, Estimation and Modulation Theory. Part 1: Detection, Estimation, and Linear Modulation Theory, number 1, (Wiley, New York, U.S.A., 1968). | |
| 97 | Vecchio, A., “LISA observations of rapidly spinning massive black hole binary systems”, Phys.
Rev. D, 70, 042001, 1–17, (2004). Related online version (cited on 23 July 2007):
|
|
| 98 | Wainstein, L.A., and Zubakov, V.D., Extraction of signals from noise, (Prentice-Hall, Englewood Cliffs, U.S.A., 1962). | |
| 99 | Weber, J., “Evidence for Discovery of Gravitational Radiation”, Phys. Rev. Lett., 22, 1320–1324, (1969). | |
| 100 | Wong, E., Introduction to Random Processes, (Springer, New York, U.S.A., 1983). | |
| 101 | Wong, E., and Hajek, B., Stochastic Processes in Engineering Systems, (Springer, New York, U.S.A., 1985). | |
| 102 | Woodward, P.M., Probability and information theory with applications to radar, (Pergamon Press, London, U.K., 1953). | |
| 103 | ZieliĆski, R., “Theory of parameter estimation”, in Królak, A., ed., Mathematics of Gravitation. Part II: Gravitational Wave Detection, Proceedings of the Workshop on Mathematical Aspects of Theories of Gravitation, held in Warsaw, February 29 – March 30, 1996, vol. 41(II) of Banach Center Publications, 209–220, (Institute of Mathematics, Polish Academy of Sciences, Warsaw, Poland, 1997). |
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