Bensen, G. D., Ritzwoller, M. H., Barmin, M. P., et al., 2007. Processing Seismic Ambient Noise Data to Obtain Reliable Broad-Band Surface Wave Dispersion Measurements. Geophysical Journal International, 169(3): 1239–1260 doi: 10.1111/j.1365-246X.2007.03374.x |
Boué, P., Poli, P., Campillo, M., et al., 2013. Teleseismic Correlations of Ambient Seismic Noise for Deep Global Imaging of the Earth. Geophysical Journal International, 194(2): 844–848 doi: 10.1093/gji/ggt160 |
Campillo, M., 2006. Phase and Correlation in 'Random' Seismic Fields and the Reconstruction of the Green Function. Pure and Applied Geophysics, 163: 475–502 doi: 10.1007/s00024-005-0032-8 |
Crotwell, H. P., Owens, T. J., Ritsema, J., 1999. The TauP Toolkit: Flexible Seismic Travel-Time and Ray-Path Utilities. Seismological Research Letters, 70: 154–160 doi: 10.1785/gssrl.70.2.154 |
Cupillard, P., Stehly, L., Romanowicz, B., 2011. The One-Bit Noise Correlation: A Theory Based on the Concepts of Coherent and Incoherent Noise. Geophysical Journal International, 184(3): 1397–1414 doi: 10.1111/j.1365-246X.2010.04923.x |
Draganov, D., Campman, X., Thorbecke, J., et al., 2009. Reflection Images from Ambient Seismic Noise. Geophysics, 74(5): A63–A67 doi: 10.1190/1.3193529 |
Draganov, D., Wapenaar, K., Mulder, W., et al., 2007. Retrieval of Reflections from Seismic Background-Noise Measurements. Geophysical Research Letters, 34: L043054. doi: 10.1029/2006GL028735 |
Fu, Y. V., Li, A., Chen, Y. J., 2010. Crustal and Upper Mantle Structure of Southeast Tibet from Rayleigh Wave Tomography. Journal of Geophysical Research, 115: B12323. doi: 10.1029/2009JB007160 |
Gouédard, P., Stehly, L., Brenguier, F., et al., 2008. Cross-Correlation of Random Fields: Mathematical Approach and Applications. Geophysical Prospecting, 56: 375–393 doi: 10.1111/j.1365-2478.2007.00684.x |
Guo, Z., Gao, X., Wang, W., et al., 2012. Upper- and Mid-Crustal Radial Anisotropy beneath the Central Himalaya and Southern Tibet from Seismic Ambient Noise Tomography. Geophysical Journal International, 189(2): 1169–1182 doi: 10.1111/j.1365-246X.2012.05425.x |
Guo, Z., Gao, X., Yao, H., et al., 2009. Midcrustal Low-Velocity Layer beneath the Central Himalaya and Southern Tibet Revealed by Ambient Noise Array Tomography. Geochemistry, Geophysics, Geosystems, 10: Q05007. doi: 10.1029/2009GC002458 |
Kennett, B. L. N., Engdahl, E. R., Buland, R., 1995. Constraints on Seismic Velocities in the Earth from Travel Times. Geophysical Journal International, 122: 108–124 doi: 10.1111/j.1365-246X.1995.tb03540.x |
Larose, E., Margerin, L., Derode, A., et al., 2006. Correlation of Random Wave-Fields: An Interdisciplinary Review. Geophysics, 71(4): SI11–SI21 doi: 10.1190/1.2213356 |
Li, H., Liu, X., Li, X. F., et al., 2011. Rayleigh Wave Group Velocity Distribution in Ningxia. Journal of Earth Science, 22(1): 117–123 doi: 10.1007/s12583-011-0162-0 |
Li, H., Su, W., Wang, C., et al., 2010. Ambient Noise Love Wave Tomography in the Eastern Margin of the Tibetan Plateau. Tectonophysics, 491(1–4): 194–204 |
Lin, F. C., Ritzwoller, M. H., Townend, J., et al., 2007. Ambient Noise Rayleigh Wave Tomography of New Zealand. Geophysical Journal International, 170(2): 649–666 doi: 10.1111/j.1365-246X.2007.03414.x |
Lin, F. C., Tsai, V. C., Schmandt, B., et al., 2013. Extracting Seismic Core Phases with Array Interferometry. Geophysical Research Letters, 40: 1–5 doi: 10.1029/2012GL054022 |
Lobkis, O. I., Weaver, R. L., 2001. On the Emergence of the Green's Function in the Correlations of a Diffuse Field. Journal of the Acoustical Society of United States, 110(6): 3011–3017 doi: 10.1121/1.1417528 |
Luo, Y., Xu, Y., Yang, Y., 2012. Crustal Structure beneath the Dabie Orogenic Belt from Ambient Noise Tomography. Earth and Planetary Science Letters, 313/314: 12–22 |
Luo, Y., Xu, Y., Yang, Y., 2013. Crustal Radial Anisotropy beneath the Dabie Orogenic Belt from Ambient Noise Tomography. Geophysical Journal International, 195(2): 1149–1164 doi: 10.1093/gji/ggt281 |
Nakata, N., Snieder, R., 2011. Shear Wave Imaging from Traffic Noise Using Seismic. Geophysics, 76(6): SA97–SA106 doi: 10.1190/geo2010-0188.1 |
Nishida, K., 2013. Global Propagation of Body Waves Revealed by Cross-Correlation Analysis of Seismic Hum. Geophysical Research Letters, 40: 1691–1696 doi: 10.1002/grl.50269 |
Poli, P., Campillo, M., Pedersen, H., et al., 2012a. Body-Wave Imaging of Earth's Mantle Discontinuities from Ambient Seismic Noise. Science, 338(6110): 1063–1065 doi: 10.1126/science.1228194 |
Poli, P., Campillo, M., Pedersen, H., et al., 2012b. Emergence of Body Waves from Cross-Correlation of Short Period Seismic Noise. Geophysical Journal International, 188(2): 549–558 doi: 10.1111/j.1365-246X.2011.05271.x |
Prieto, G. A., Denolle, M., Lawrence, J. F., et al., 2011. On the Amplitude Information Carried by Ambient Seismic field. Comptes Rendus Geoscience, 343(8–9): 600–614 |
Roux, P., 2005. P-Waves from Cross-Correlation of Seismic Noise. Geophysical Research Letters, 32(19): L19303. doi: 10.1029/2005GL023803 |
Ruigrok, E., Campman, X., Wapenaar, K., 2012. Basin Delineation with a 40-Hour Passive Seismic Record. Bulletin of the Seismological Society of America, 102(5): 2165–2176 doi: 10.1785/0120110242 |
Shapiro, N. M., Campillo, M., 2005. High Resolution Surface Wave Tomography from Ambient Seismic Noise. Science, 307: 1615–1618 doi: 10.1126/science.1108339 |
Shen, Y., Ren, Y., Gao, H. Y., et al., 2012. An Improved Method to Extract Very-Broadband Empirical Green's Functions from Ambient Seismic Noise. Bulletin of the Seismological Society of America, 102(4): 1872–1877 doi: 10.1785/0120120023 |
Snieder, R., 2004. Extracting the Green's Function from the Correlation of Coda Waves: A Derivation Based on Stationary Phase. Physical Review E, 69: 046610. doi: 10.1103/PhysRevE.69.046610 |
Song, X. D., Richards, P. G., 1996. Seismological Evidence for Differential Rotation of the Earth's Inner Core. Nature, 382: 221–224 doi: 10.1038/382221a0 |
Wapenaar, K., 2004. Retrieving the Elastodynamic Green's Function of an Arbitrary Inhomogeneous Medium by Cross Correlation. Physical Review Letters, 93: 254301. doi: 10.1103/PhysRevLett.93.254301 |
Xu, Z., Juhlin, C., Gudmunsson, O., et al., 2012. Reconstruction of Subsurface Structure from Ambient Seismic Noise: An Example from Ketzin, Germany. Geophysical Journal International, 189(2): 1085–1102 doi: 10.1111/j.1365-246X.2012.05411.x |
Yang, Y., Ritzwoller, M. H., Levshin, A. L., et al., 2007. Ambient Noise Rayleigh Wave Tomography across Europe. Geophysical Journal International, 168(1): 259–274 doi: 10.1111/j.1365-246X.2006.03203.x |
Yang, Y., Zheng, Y., Chen, J., et al., 2010. Rayleigh Wave Phase Velocity Maps of Tibet and the Surrounding Regions from Ambient Seismic Noise Tomography. Geochemistry, Geophysics, Geosystems, 11: Q08010. doi: 10.1029/2010GC003119 |
Yao, H. J., Van der Hilst, R. D., de Hoop, M. V., 2006. Surface-Wave Array Tomography in SE Tibet from Ambient Seismic Noise and Two-Station Analysis—I. Phase Velocity Maps. Geophysical Journal International, 166(2): 732–744 doi: 10.1111/j.1365-246X.2006.03028.x |
Zeng, X. F., Ni, S. D., 2013. Constraining Shear Wave Velocity and Density Contrast at the Inner Core Boundary with PKiKP/P Amplitude Ratio. Journal of Earth Science, 24(4): 716–724 |
Zhan, Z., Ni, S., Helmberger, D. V., et al., 2010. Retrieval of Moho-Reflected Shear Wave Arrivals from Ambient Seismic Noise. Geophysical Journal International, 182: 408–420 |
Zheng, X. F., Yao, Z. X., Liang, J. H., et al., 2010. The Role Played and Opportunities Provided by IGP DMC of China National Seismic Network in Wenchuan Earthquake Disaster Relief and Researches. Bulletin of the Seismological Society of America, 100(5B): 2866–2872 doi: 10.1785/0120090257 |
Zheng, Y., Shen, W., Zhou, L., et al., 2011. Crust and Uppermost Mantle beneath the North China Craton, Northeastern China, and the Sea of Japan from Ambient Noise Tomography. Journal of Geophysical Research, 116: B12312. doi: 10.1029/2011JB008637 |
Zhou, L., Xie, J., Shen, W., et al., 2012. The Structure of the Crust and Uppermost Mantle beneath South China from Ambient Noise and Earthquake Tomography. Geophysical Journal International, 189(3): 1565–1583 doi: 10.1111/j.1365-246X.2012.05423.x |