Decadal forerunning seismic activity of magnitude Mw ≥ 5.0 is mapped for all 45 mainshocks of Mw 7.7 to 9.1 at subduction zones of the world from 1993 to mid 2020. The zones of high slip in nearly all great earthquakes were nearly quiescent beforehand and are identified as the sites of great asperities and zones of strong seismic coupling. Much forerunning activity occurred at smaller asperities along the peripheries of the rupture zones of many great and giant mainshocks. Those sizes of great asperities as ascertained from forerunning activity generally agree with the areas of high seismic slip as determined by others from geodetic and tide-gauge data and finite-source seismic modeling. Asperities are strong, well-coupled portions of plate interfaces. Different patterns of forerunning activity on time scales of about 5 to 45 years are attributed to either the sizes and spacing of asperities (or lack of). This permits many great asperities to be mapped decades before they rupture in great and giant shocks. Several poorly coupled subduction zones such as Java, Lesser Sunda, Marianas, Tonga and Kermadec are characterized by few great thrust earthquakes and little, in any forerunning activity. Rupture zones of many great and giant earthquakes are bordered either along strike, updip, or downdip by zones of lower plate coupling. Several bordering regions were sites of forerunning activity, aftershocks, and slow-slip events. The detection of forerunning and precursory activities of various kinds should be sought on the peripheries of great asperities as well as within zones of high co-seismic slip.
Mogi, K. (1962) Study of Elastic Shocks Caused by the Fracture of Inhomogeneous Materials and Its Relations to Earthquake Phenomena. Bulletin of the Earthquake Research Institute, 40, 125-173.
Fedotov, S.A. (1965) Regularities of the Distribution of Strong Earthquakes in Kamchatka, the Kurile Islands and Northeastern Japan. Trudy Institute Fizika Zemli Akadimiki Nauk SSSR, 36, 66-93. (In Russian)
Mogi, K. (1969) Relationship between the Occurrence of Great Earthquakes and Tectonic Structures. Bulletin of the Earthquake Research Institute, 47, 429.
Sykes, L.R. (1971) Aftershock Zones of Great Earthquakes, Seismicity Gaps and Earthquake Prediction for Alaska and the Aleutians. Journal of Geophysical Research, 76, 8021-8041. https://doi.org/10.1029/JB076i032p08021
Kelleher, J., Sykes, L. and Oliver, J. (1973) Possible Criteria for Predicting Earthquake Locations and Their Application to Major Plate Boundaries of the Pacific and the Caribbean. Journal of Geophysical Research, 80, 2547-2485. https://doi.org/10.1029/JB078i014p02547
Pérez, O.J. and Scholz, C.H. (1997) Long-Term Seismic Behavior of the Focal and Adjacent Regions of Great Earthquakes during the Time between Two Successive Shocks. Journal of Geophysical Research, 102, 8203-8216. https://doi.org/10.1029/96JB02932
Nishenko, S.P. (1985) Seismic Potential for Large and Great Interplate Earthquakes along the Chilean and Southern Peruvian Margins of South America: A Quantitative Reappraisal. Journal of Geophysical Research, 90, 3589-3615. https://doi.org/10.1029/JB090iB05p03589
Sykes, L.R. (2021) Decadal Seismicity before Great Earthquakes—Strike-Slip Faults and Plate Interiors: Major Asperities and Low-Coupling Zones. International Journal of Geosciences. https://doi.org/10.4236/ijg.2021.129044
Dziewonski, A.M., Chou, T.-A. and Woodhouse, J.H. (1981) Determination of Earthquake Source Parameters from Waveform Data for Studies of Global and Regional Seismicity. Journal of Geophysical Research, 86, 2825-2852. https://doi.org/10.1029/JB086iB04p02825
Ekström, G., Nettles, M. and Dziewonski, A.M. (2012) The Global CMT Project 2004-2010: Centroid-Moment Tensors for 13,017 Earthquakes. Physics of the Earth and Planetary Interiors, 200-201, 1-9. https://doi.org/10.1016/j.pepi.2012.04.002
Pacheco, J.F. and Sykes, L.R. (1992) Seismic Moment Catalog of Large, Shallow Earthquakes, 1900-1989. Bulletin of the Seismological Society of America, 82, 1306-1349. https://doi.org/10.1785/BSSA0820031306
Haxby, W.F. and Ryan, W.B.F. (2019) GeoMapApp. http://www.geomapapp.org
Ekström, G., Tromp, J. and Larson, E.W.F. (1997) Measurements and Global Models of Surface Wave Propagation. Journal of Geophysical Research, 102, 8137-8157. https://doi.org/10.1029/96JB03729
Howe, M.J. (2019) Improving Estimates of Seismic Source Parameters Using Surface-Wave Observations: Applications to Earthquakes and Underground Nuclear Explosions. PhD, Columbia University, New York.
Lay, T., Kanamori, H., Ammon, C.J., Koper, K.D., Hutko, A.R., Ye, L., Yue, H. and Rushing, T. (2012) Depth-Varying Rupture Properties of Subduction Zone Megathrusts Faults. Journal of Geophysical Research, 117, B04311. https://doi.org/10.1029/2011JB009133
Scholz, C.H. (2019) The Mechanics of Earthquakes and Faulting. Third Edition, Cambridge University Press, Cambridge, 493 p.
Yamanaka, Y. and Kikuchi, M. (2004) Asperity Map along the Subduction Zone in Northeastern Japan Inferred from Regional Seismic Data. Journal of Geophysical Research, 55, e21-e24. https://doi.org/10.1029/2003JB002683
Satake, K., Hirata, K., Yamaki and Tanioka, Y. (2006) Re-Estimation of Tsunami Source of the 1952 Tokachioki Earthquake. Earth Planets Space, 58, 535-542. https://doi.org/10.1186/BF03351951
Lay, T. and Rhode, A. (2019) Evaluating the Updip Extent of Large Megathrust Ruptures Using P Coda Levels. Geophysical Research Letters, 46, 1-21. https://doi.org/10.1029/2019GL082774
Gusman, A.R., Murotani, S., Satake, K., Heidarzadeh, M., Gunawan, E., Watab, S. and Schurr, B. (2015) Fault Slip Distribution of the Iquique, Chile, Earthquake Estimated from Ocean-Wide Tsunami Waveforms and GPS Data. Geophysical Research Letters, 42, 1053-1060. https://doi.org/10.1002/2014GL062604
Hayes, G.P., Herman, M.W., Barhart, W.D., Furlong, K.P., Riquelme, S., Benz, H.M., Bergman, E., Barientos, S., Earle, P.S. and Samsonov, S. (2014) Continuing Megathrust Earthquake Potential in Chile after the 2014 Iquique Earthquake. Nature, 512, 295-298. https://doi.org/10.1038/nature13677
Schurr, B., Moreno, M., Tréhu, A.M., Bedford, J., Kummerow, J., Li, S. and Oncken, O. (2020) Forming a Mogi Donut in the Years Prior to and Immediately before the 2014 M8, Chile, Earthquake. Geophysical Research Letters, 47, e2020GL088351. https://doi.org/10.1029/2020GL088351
Mogi, K. (1969) Some Features of Recent Seismic Activity in and near Japan (2) Activity before and after Great Earthquakes. Bulletin of the Earthquake Research Institute, 47, 395-417.
Socquet, A., Valdes, J.P., Jara, J., Cotton, F., Wallpersdorf, A., Cotte, N., Specht, S., Ortega-Culaciati, F., Carrizo, D. and Norabuena, E. (2017) An 8 Month Slow Slip Event Triggers Progressive Nucleation of the 2014 Megathrust. Geophysical Research Letters, 44, 4046-4053. https://doi.org/10.1002/2017GL073023
Kato, A. and Nakagawa, S. (2014) Multiple Slow-Slip Events during a Foreshock Sequence of the 2014 Iquique, Chile Mw 8.1 Earthquake. Geophysical Research Letters, 41, 5420-5427. https://doi.org/10.1002/2014GL061138
Ruiz, S., Metois, M., Fuenzalida, A., Ruiz, J., Leyton, F., Grandin, R., Vigny, C., Madariaga, R. and Campos, J. (2014) Intense Foreshocks and a Slow Slip Event Preceded the 2014 Iquique Mw 8.1 Earthquake. Science, 345, 1165-1169. https://doi.org/10.1126/science.1256074
Aden-Antóniow, F., Satriano, C., Bernard, P., Poiata, N., Aissaoui, E.-M., Vilotte, J.-P. and Frank, W.B. (2020) Statistical Analysis of the Preparatory Phase of the Mw 8.1 Iquique Earthquake, Chile. Journal of Geophysical Research: Solid Earth, 125, e2019JB019337. https://doi.org/10.1029/2019JB019337
Lay, T., Yue, H., Brodsky, E.E. and An, C. (2014) The 1 April 2014 Iquique, Chile, Mw 8.1 Earthquake. Geophysical Research Letters, 41, 3818-3825. https://doi.org/10.1002/2014GL060238
Schurr, B., Asch, G., Hainzl, S., Bedford, J., Hoechner, A., Palo, M., Wang, R., Moreno, M., Bartsch, M., Zhang, Y., Oncken, O., Tilmann, F., Dahm, T., Victor, P., Barrientos, S. and Vilotte, J.-P. (2014) Gradual Unlocking of Plate Boundary-Controlled Initiation of the 2014 Iquique Earthquake. Nature, 512, 299-302. https://doi.org/10.1038/nature13681
Moreno, M., Haberland, C., Oncken, O., Rietbrock, A., Angiboust, S. and Heidbach, O. (2014) Locking of the Chile Subduction Zone Controlled by Fluid Pressure before the 2010 Earthquake. Nature Geoscience, 7, 292-296. https://doi.org/10.1038/ngeo2102
Yue, H., Lay, T., Rivera, L., An, C., Vigny, C., Tong, X. and Soto, C.B. (2014) Localized Slip to the Trench in the 2010 Maule Chile Mw = 8.8 Earthquake from Joint Inversion of High-Rate GPS, Teleseismic Body Waves, InSar, Campaign GPS, and Tsunami Observations. Journal of Geophysical Research, 119, 7786-7804. https://doi.org/10.1002/2014JB011340
Delouis, B., Nocquet, J.-M. and Vallée, M. (2010) Slip Distribution of the February 27, 2010 Mw = 8.8 Maule Earthquake, Central Chile, from Static and High-Rate GPS, InSAR, and Broadband Teleseismic Data. Geophysical Research Letters, 37, L17305. https://doi.org/10.1029/2010GL043899
Métois, M., Vigny, C. and Socquet, A. (2016) Interseismic Coupling, Megathrust Earthquakes and Seismic Swarms along the Chilean Subduction Zone (38°-18°S). Pure and Applied Geophysics, 173, 1431-1440. https://doi.org/10.1007/s00024-016-1280-5
Cifuentes, I. (1989) The 1960 Chilean Earthquakes. Journal of Geophysical Research, 94, 665-680. https://doi.org/10.1029/JB094iB01p00665
Olsen, K.M., Bangs, N.L., Tréhu, A.M., Han, S., Arnulf, A. and Contreras-Reyes, E. (2018) Thick, Strong Sediment Subduction off South-Central Chile and Its Role in Great Earthquakes. Abstract, American Geophysical Union, Washington DC.
Satake, K., Fujii, Y., Harada, T. and Namegaya, Y. (2013) Time and Space Distribution of Coseismic Slip of the 2011 Tohoku Earthquake as Inferred from Tsunami Waveform Data. Bulletin of the Seismological Society of America, 103, 1473-1492. https://doi.org/10.1785/0120120122
Ikuta, R., Satomura, M., Fujita, A., Shimada, S. and Ando, M. (2012) A Small Persistent Locked Area Associated with the 2011 Mw9.0 Tohoku-Oki Earthquake, Deduced from GPS Data. Journal of Geophysical Research, 117, B11408. https://doi.org/10.1029/2012JB009335
Loveless, J.P. and Meade, B.J. (2015) Kinematic Barrier Constraints on the Magnitudes of Additional Great Earthquakes off the East Coast of Japan. Seismological Research Letters, 86, 202-209. https://doi.org/10.1785/0220140083
Sato, M., Fujita, M., Matsumoto, Y., Ishikawa, T., Saito, H., Mochizuki, M. and Asada, A. (2013) Interplate Coupling off Northeastern Japan before the 2011 Tohoku-Oki Earthquake, Inferred from Seafloor Data. Journal of Geophysical Research, 118, 3860-3869. https://doi.org/10.1002/jgrb.50275
Mavrommatis, A.P., Segall, P. and Johnson, K.M. (2014) A Decade Scale Deformation Transient Prior to the 2011 Mw 9.0 Tohoku-Oki Earthquake. Geophysical Research Letters, 41, 4486-4494. https://doi.org/10.1002/2014GL060139
Ohtani, M., Hirahara, K., Hori, T. and Hyodo, M. (2014) Observed Change in Plate Coupling Close to the Rupture Initiation Area before the Occurrence of the 2011 Tohoku Earthquake: Implications from an Earthquake Cycle Model. Geophysical Research Letters, 41, 1899-1906. https://doi.org/10.1002/2013GL058751
Yokota, Y. and Koketsu, K. (2015) A Very Long-Term Transient Event Preceding the 2011 Tohoku Earthquake. Nature Communications, 6, 1-5. https://doi.org/10.1038/ncomms6934
Mavrommatis, A.P., Segall, P., Uchida, N. and Johnson, K.M. (2015) Long-Term Acceleration of Aseismic Slip Preceding the Mw 9 Tohoku-Oki Earthquake, Constraints from Repeating Earthquakes. Geophysical Research Letters, 42, 9717-9725. https://doi.org/10.1002/2015GL066069
Nanjo, K.J., Hiata, N., Obara, K. and Kasahara, K. (2012) Decade-Scale Decrease in b Value Prior to the M9-Class 2011 Tohoku and 2004 Sumatra Quakes. Geophysical Research Letters, 39, L20304. https://doi.org/10.1029/2012GL052997
Nishikawa, T., Matsuzawa, T., Ohta, K., Uchida, N., Nishimura, T. and Ide, S. (2019) The Slow Earthquake Spectrum in the Japan Trench Illuminated by the S-Net Seafloor Observatories. Science, 365, 808-813. https://doi.org/10.1126/science.aax5618
Lay, T., Kanamori, H., Ammon, C.J., Hutko, A.R., Furlong, K. and Rivera, L. (2009) The 2006-2007 Kuril Islands Great Earthquake Sequence. Journal of Geophysical Research, 114, B11308. https://doi.org/10.1029/2008JB006280
Takahashi, H. and Kasahara, M. (2007) Geodetic Constraint on the Slip Distribution of the 2006 Central Kuril Earthquake. Earth Planets Space, 59, 1095-1098. https://doi.org/10.1186/BF03352052
Steblov, G.M., Kogan, M.G., Levin, B.V., Vasilenko, N.F., Prytkov, A.S. and Frolov, D.I. (2008) Spatially Inked Asperities of the 2006-2007 Great Kuril Earthquakes Revealed by GPS. Geophysical Research Letters, 35, L22306. https://doi.org/10.1029/2008GL035572
Fuji, Y. and Satake, K. (2008) Tsunami Sources of the November 2006 and January 2007 Great Kuril Earthquakes. Bulletin of the Seismological Society of America, 98, 1559-1571. https://doi.org/10.1785/0120070221
Abercrombie, R.E., Antolik, M., Felzer, K. and Ekström, G. (2001) The 1994 Java Tsunami: Slip over a Subducting Seamount. Journal of Geophysical Research, 106, 6595-6607. https://doi.org/10.1029/2000JB900403
Ammon, C.J., Kanamori, H., Lay, T. and Velasco, A.A. (2006) The 17 July 2006 Java Tsunami Earthquake. Geophysical Research Letters, 33, L24308. https://doi.org/10.1029/2006GL028005
Fan, W., Bassett, D., Jiang, J., Shearer, P.M. and Chen, J. (2017) Rupture Evolution of the 2006 Java Tsunami Earthquake and Possible Role of Splay Faults. Tectonophysics, 721, 143-150. https://doi.org/10.1016/j.tecto.2017.10.003
Scholz, C.H. and Small, C. (1997) The Effect of Seamount Subduction on Seismic Coupling. Geology, 25, 487-490. https://doi.org/10.1130/0091-7613(1997)025 2.3.CO;2
Yue, H., Lay, T., Schwartz, S.Y., Rivera, L., Protti, M., Dixon, T.H., Owen, S. and Neuman, A.V. (2013) The 5 September Nicoya, Costa Rica Mw 7.6 Earthquake Rupture Process from Joint Inversion of High-Rate GPS, Strong-Motion, and Teleseismic P Wave Data and Its Relationship to Adjacent Plate Boundary Interface Properties. Journal of Geophysical Research, 118, 5453-5466. https://doi.org/10.1002/jgrb.50379
Kyriakopoulos, C. and Neuman, A.V. (2016) Structural Asperity Focusing Locking and Earthquake Slip along the Nicoya Megathrust, Costa Rica. Journal of Geophysical Research, 121, 5461-5476. https://doi.org/10.1002/2016JB012886
Protti, M., González, V., Newman, A.V., Dixon, T.H., Schwartz, S.Y., Marshall, J.S., Feng, L., Walter, J.I., Malservisi, R. and Owen, S.E. (2014) Nicoya Earthquake Rupture Anticipated by Geodetic Measurement of the Locked Plate Interface. Nature Geoscience, 7, 10017-10121. https://doi.org/10.1038/ngeo2038
Yoshimoto, M., Kumagai, H., Acero, W., Ponce, G., Vásconez, F., Arrais, S., Ruiz, M., Alvarado, A., Garcia, P.P., Dionicio, V., Chamorro, O., Maeda, Y. and Nakano, M. (2017) Depth-Dependent Rupture Mode along the Ecuador-Colombia Subduction Zone. Geophysical Research Letters, 109, B07307.
Mothes, P.A., Rolandone, F., Nocquet, J.-M., Jarrin, P.A., Alvarado, A.P., Ruiz, M.C., Cisneros, D., Páez, H.M. and Segovia, M. (2018) Monitoring the Earthquake Cycle in the Northern Andes from the Ecuadorian cGPS Network. Seismological Research Letters, 89, 534-541. https://doi.org/10.1785/0220170243
Collot, J.Y., Sanclemente, E., Nocquet, J.-M., Leprêtre, A., Ribodetti, A., Jarrin, P., Chlieh, M., Graindorge, D. and Charvis, P. (1917) Subducted Oceanic Relief Locks the Shallow Megathrust in Central Eduacdor. Geophysical Research Letters, 122, 3286-3305. https://doi.org/10.1002/2016JB013849
Chlieh, M., Perfettini, H., Tavera, H., Avouac, J.-P., Remy, D., Nocquet, J.-M., Rolandone, F., Bondoux, F., Gabalda, G. and Bonvalot, S. (2011) Interseismic Coupling and Seismic Potential along the Central Andes Subduction Zone. Journal of Geophysical Research, 116, B12405. https://doi.org/10.1029/2010JB008166
Chlieh, M., DeChaballier, J.B., Ruegg, J.C., Armijo, R., Dmowska, R., Campos, J. and Feigi, K.L. (2014) Crustal Deformation and Fault Slip during the Seismic Cycle in the North Chile Subduction Zone, from GPS and InSAR. Geophysical Journal International, 158, 695-711. https://doi.org/10.1111/j.1365-246X.2004.02326.x
Pritchard, M.E. and Simons, M. (2006) An Aseismic Slip Pulse in Northern Chile and Along-Strike Variations in Seismogenic Behavior. Journal of Geophysical Research, 111, B08405. https://doi.org/10.1029/2006JB004258
Ji, C. (2007) Preliminary Result of the Nov 14, 2007 Mw 7.81 ANTOFAGASTA, CHILE Earthquake. http://www.geol.ucsb.edu/faculty/ji/big_earthquakes/2007/11/anto/anto.html
Li, L., Lay, T., Cheung, K.F. and Ye, L. (2016) Joint Modeling of Teleseismic and Tsunami Wave Observations to Constrain the 16 September 2015 Illapel, Chile Mw 8.3 Earthquake Rupture Process. Geophysical Research Letters, 43, 4302-4312. https://doi.org/10.1002/2016GL068674
Barrientos, S.E. and Ward, S. (1990) The 1960 Chile Earthquake: Inversion for Slip Distribution from Surface Deformation. Geophysical Journal International, 103, 589-598. https://doi.org/10.1111/j.1365-246X.1990.tb05673.x
Cifuentes, I. and Silver, P. (1989) Low-Frequency Source Characteristics of the Great Chilean Earthquake. Journal of Geophysical Research, 94, 643-663. https://doi.org/10.1029/JB094iB01p00643
Chlieh, M., Avouac, J.-P., Hjorleifsdottir, V., Song, T.-R., Ji, C., Sieh, K., Sladen, A., Hebert, H., Prawirodirdjo, L., Bock, Y. and Galetzka, J. (2007) Coseismic Slip and Afterslip of the Great Mw 9.15 Sumatra-Andaman Earthquake of 2004. Bulletin of the Seismological Society of America, 97, S152-S173. https://doi.org/10.1785/0120050631
Shao, G. and Ji, C. (2005) Preliminary Result of the Mar 28, 2005 Mw 8.68 Nias Earthquake. https://ji.faculty.geol.ucsb.edu/big_earthquakes/2005/03/smooth/nias.html
Morgan, P.M., Feng, L., Qiu, Q., Melzner, A.J., Tsang, L.L. and Hill, E. (2015) The Diverse Slip Behavior of the Banyak Islands Section of the Sunda Megathrust Offshore Sumatra. American Geophysical Union, Fall Meeting 2015, San Francisco, December 2015, Abstract ID T21D-2858.
Hayes, G.P. (2010) Mw 7.8 Sumatra Earthquake of 6 April 2010. U.S. Geological Survey, Unpublished Document, 1 p.
Feng, L., Hill, E.M., Banerjee, R., Hermawan, I., Tsang, L.H., Natawidjaja, D.H., Suwargadi, B.W. and Sieh, K. (2015) A Unified GPS-Based Earthquake Catalog for the Sumatran Plate Boundary between 2002 and 2013. Journal of Geophysical Research, 120, 3566-3598. https://doi.org/10.1002/2014JB011661
Konca, A.O., Avouac, J.-P., Sladen, A., Meltzner, A.J., Sieh, K., Fang, P., Li, Z., Galetzka, J., Genrich, J., Chlieh, M., Natawidjaja, D.H., Bock, Y., Fielding, E.J., Ji, C. and Helmberger, D.V. (2008) Partial Rupture of a Locked Patch of the Sumatra Megathrust during the 2007 Earthquake Sequence, Nature, 456, 632-635. https://doi.org/10.1038/nature07572
Lentas, K., Ferreira, A.M.G. and Vallée, M. (2013) Assessment of SCARDEC Source Parameters of Global Large (Mw > 7.5) Subduction Earthquakes. Geophysical Journal International, 195, 1989-2004. https://doi.org/10.1093/gji/ggt364
Lay, T., Ammon, C.J., Kanamori, H., Yamazaki, Y., Cheung, K.F. and Hutko, A.R. (2011) The 25 October2010 Mentawai Tsunami Earthquake (Mw7.8) and the Tsunami Hazard Presented by Shallow Megathrust Ruptures. Geophysical Research Letters, 38, L06302. https://doi.org/10.1029/2010GL046552
Das, S. and Henry, C. (2003) Spatial Relation between Main Earthquake Slip and Its Aftershock Distribution. Reviews of Geophysics, 41, 1013-1036. https://doi.org/10.1029/2002RG000119
Furlong, K.P., Lay, T. and Ammon, C.J. (2009) A Great Earthquake Rupture across a Rapidly Evolving Three-Plate Boundary. Science, 324, 226-229. https://doi.org/10.1126/science.1167476
Lay, T., Ye, L., Kanamori, H., Yamazaki, Y., Cheung, K.F. and Ammon, C.J. (2013) The February 6, 2013 Mw 8.0 Santa Cruz Islands Earthquake and Tsunami. Tectonophysics, 608, 1109-1121. https://doi.org/10.1016/j.tecto.2013.07.001
Zhang, Y., Chen, Y.-T. and Xu, L. (2012) Fast and Robust Inversion of Earthquake Source Rupture Process and Its Application to Earthquake Emergency Response. Earthquake Science, 121, 121-128. https://doi.org/10.1007/s11589-012-0838-2
Kikuchi, M. and Kanamori, H. (1995) The Shikotan Earthquake of October 4, 1994: Lithospheric Earthquake. Geophysical Research Letters, 22, 1025-1028. https://doi.org/10.1029/95GL00883
Tanioka, Y., Ruff, L. and Satake, K. (1995) The Great Kurile Earthquake of October 4, 1994 Tore the Slab. Geophysical Research Letters, 22, 1661-1664. https://doi.org/10.1029/95GL01656
Harada, T. and Ishibashi, K. (2007) Two Parallel Trench-Normal Planes within the Pacific Slab Associated with the 1994 and 2000 Kurile Earthquakes as Revealed by Simultaneous Relocation of Their Main Shocks and Aftershocks. Earth Planets Space, 59, e25-228. https://doi.org/10.1186/BF03352025
Schwartz, S. (1999) Noncharacteristic Behavior and Complex Recurrence of Large Subduction Zone Earthquakes. Journal of Geophysical Research, 104, 23111-23125. https://doi.org/10.1029/1999JB900226
Wetzler, N., Lay, T., Brodsky, E.E. and Kanamori, H. (2018) Supplementary Material for Systematic Deficiency of Aftershocks in Areas of High Coseismic Slip for Large Subduction Zone Earthquakes. Science Advances, 4. https://doi.org/10.1126/sciadv.aao3225
Tanioka, Y. and Gonzalez, F.I. (1998) The Aleutian Earthquake of June 10, 1996 (Mw 7.9) Ruptured Parts of Both the Andrdeanof and Delarof Segments. Geophysical Research Letters, 25, 2245-2248. https://doi.org/10.1029/98GL01578
Cross, R.S. and Freymueller, J.T. (2006) Plate Coupling Variation and Block Translation in the Andreanof Segment of the Aleutian Arc Determined by Subduction Zone Modeling Using GPS Data. Geophysical Research Letters, 34, L06304. https://doi.org/10.1029/2006GL028970
Boyd, T.M. and Nábêlek, J.L. (1988) Rupture Process of the Andreanof Islands Earthquake of May 7, 1986, Bulletin of the Seismological Society of America, 78, 1653-1673.
Johnson, J.M., Tanioka, Y., Ruff, L.J., Satake, K., Kanamori, H. and Sykes, L.R. (1994) The 1957 Great Aleutian Earthquake. PAGEOPH, 142, 3-28. https://doi.org/10.1007/BF00875966
Bürgmann, R., Kogan, M.G., Levin, V.E., Scholz, C.H., King, R.W. and Steblov, G.M. (2001) Rapid Aseismic Moment Release Following the 5 December 1997 Kronotsky, Kamchatka, Earthquake. Geophysical Research Letters, 28, 1331-1334. https://doi.org/10.1029/2000GL012350
Bürgmann, R.M., Kogan, M.G., Steblov, G.M., Hilley, G., Levin, V.E. and Apel, T. (2005) Interseismic Coupling and Asperity Distribution along the Kamchatka Subduction Zone. Journal of Geophysical Research, 110, B07405. https://doi.org/10.1029/2005JB003648
Johnson, J.M. and Satake, K. (1999) Asperity Distribution of the 1952 Great Kamchatka Earthquake and Its Relation to Future Earthquake Potential in Kamchatka. Pure and Applied Geophysics, 154, 541-553. https://doi.org/10.1007/978-3-0348-8679-6_8
Zobin, V.M. and Levina, V.I. (2001) The Rupture Process of the Mw 7.8 Cape Kronotsky, Kamchatka, Earthquake of 5 December 1997 and Its Relationship to Foreshocks and Aftershocks. Bulletin of the Seismological Society of America, 91, 1619-1628. https://doi.org/10.1785/0119990116
Sulelimani, E. and Freymueller, J.T. (2020) Near-Field Modeling of the 1964 Alaska Tsunami: The Role of Splay Faults and Horizontal Displacements. Journal of Geophysical Research, 125, e2020JB019620. https://doi.org/10.1029/2020JB019620
Ho, T.-C., Sataki, K., Watada, S. and Fujii, Y. (2019) Source Estimate for the 1960 Chile Earthquake from Joint Inversion of Geodetic and Transoceanic Tsunami Data. Journal of Geophysical Research, 124, 2812-2828. https://doi.org/10.1029/2018JB016996
Christensen, D.H. and Beck, S.L. (1994) The Rupture Process and Tectonic Implications of the Great 1964 Prince William Sound Earthquake. Pageoph, 142, 29-53. https://doi.org/10.1007/BF00875967
Bletery, Q., Sladen, A., Jiang, J. and Simons, M. (2016) A Bayesian Source Model for the 2004 Great Sumatra-Andaman Earthquake. Journal of Geophysical Research, 121, 5116-5135. https://doi.org/10.1002/2016JB012911
Froment, B., McGuire, J.J., van der Hilst, R.D., Gouédard, P., Roland, E.C., Zhang, H. and Collins, J.A. (2014) Imaging Along-Strike Variations in Mechanical Properties of the Gofar Transform Fault, East Pacific Rise. Journal of Geophysical Research, 119, 7175-7194. https://doi.org/10.1002/2014JB011270
Sykes, L.R. and Ekström, G. (2012) Earthquakes along Eltanin Transform System, SE Pacific Ocean: Fault Segments Characterized by Strong and Poor Seismic Coupling and Implications for Long-Term Earthquake Prediction. Geophysical Journal International, 188, 421-434. https://doi.org/10.1111/j.1365-246X.2011.05284.x
Sieh, K. (1978) Central California Foreshocks of the Great 1857 Earthquake. Bulletin of the Seismological Society of America, 68, 1731-1749.
Sykes, L.R. and Jaumé, S. (1990) Seismic Activity on Neighboring Faults as a Long-Term Precursor to Large Earthquakes in the San Francisco Bay Area. Nature, 348, 595-599. https://doi.org/10.1038/348595a0
Roeloffs, E.A. (2006) Evidence for Aseismic Deformation Rate Changes Prior to Earthquakes. Annual Review of Earth and Planetary Sciences, 34, 591-627. https://doi.org/10.1146/annurev.earth.34.031405.124947
Bürgmann, R. (2018) The Geophysics, Geology and Mechanics of Slow Fault Slip. Earth and Planetary Science Letters, 495, 112-134. https://doi.org/10.1016/j.epsl.2018.04.062
Sacks, I.S., Suyehiro, S. and Linde, A.T. (1978) Slow Earthquakes and Stress Distribution. Nature, 275, 599-602. https://doi.org/10.1038/275599a0
Pritchard, M.E., et al. (2020) New Opportunities to Study Earthquake Precursors. Seismological Research Letters, 91, 2444-2447. https://doi.org/10.1785/0220200089