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References

1
Beghoul, N., M. Barazangi, and B. L. Isacks, Lithospheric structure of Tibet and western North America: Mechanisms of uplift and a comparative study, J. Geophys. Res., 98, 1997-2016, 1993.

2
Bergerat, F., C. Bouroz-Weil, and J. Angelier, Paleostresses inferred from macrofractures, Colorado Plateau, western U.S.A., Tectonophysics, 206, 219-243, 1992.

3
Bird, P., Lateral extrusion of lower crust from under high topography, in the isostatic limit, J. Geophys. Res., 96, 10,275-10,286, 1991.

4
Bird, P., Deformation and uplift of North America in the Cenozoic era, in Scientific Excellence in Supercomputing: the IBM 1990 Contest Prize Papers, 1, edited by K. R. Billingsley, H. U. Brown, III, and E. Derohanes, pp. 67-105, Baldwin Press, Athens, Georgia, 1992a.

5
Bird, P., Computer simulations of tectonics around the Alaskan syntaxis (abstract), Eos Trans. AGU, 73, Fall Meeting Suppl., 504, 1992b.

6
Bird, P., and X. Kong, Computer simulations of California tectonics confirm very low strength of major faults, Geol. Soc. Am. Bull., 106, 159-174, 1994.

7
Bird, P., Isotopic evidence for preservation of Cordilleran lithospheric mantle during the Sevier-Laramide orogeny, western United States: Comment, Geology, 22, 670-671, 1994.

8
Buck, W. R., Effect of lithospheric thickness on the formation of high- and low-angle normal faults, Geology, 21, 933-936, 1993.

9
Burgmann, R., Transpression along the southern San Andreas fault, Durmid Hill, California, Tectonics, 10, 1152-1163, 1991.

10
Byerlee, J., The change in orientation of subsidiary shears near faults containing pore fluid under high pressure, Tectonophysics, 211, 295-303, 1992.

11
Byerlee, J., Model for episodic flow of high-pressure water in fault zones before earthquakes, Geology, 21, 303-306, 1993.

12
Chester, F. M., J. P. Evans, and R. L. Biegel, Internal structure and weakening mechanisms of the San Andreas fault, J. Geophys. Res., 98, 771-786, 1993.

13
Chiu, J.-M., A. C. Johnston, and R. B. Herrmann, A collaborative research: Analysis of PANDA data and continuation of PANDA experiment in the central New Madrid seismic zone, National Earthquake Hazards Reduction Program, Summaries of Technical Reports, 34, U.S. Geol. Surv. Open-File Rep., 93-195, 247-250, 1993.

14
Cordell, L., Y. A. Zorin, and G. R. Keller, The decompensative gravity anomaly and deep structure of the region of the Rio Grande rift, J. Geophys. Res., 96, 6557-6568, 1991.

15
Craddock, J. P., M. Jackson, B. A. van der Pluijm, and R. T. Versical, Regional shortening fabrics in eastern North America: Stress transmission from the Appalachian-Ouachita orogenic belt, Tectonics, 12, 257-264, 1993.

16
Dokka, R. K., Original dip and subsequent modification of a Cordilleran detachment fault, Mojave extensional belt, California, Geology, 21, 711-714, 1993.

17
Estabrook, C. H., and K. H. Jacob, Stress indicators in Alaska, in Neotectonics of North America, edited by D. B. Slemmons, E. R. Engdahl, M. D. Zoback, and D. D. Blackwell, pp. 387-399, Geol. Soc. Am., Boulder, Col., 1991.

18
Furlong, K. P., Thermal-rheologic evolution of the upper mantle and the development of the San Andreas fault system, Tectonophysics, 223, 149-164, 1993.

19
Goldfinger, C., L. D. Kulm, R. S. Yeats, B. Applegate, M. E. MacKay, and G. F. Moore, Transverse structural trends along the Oregon convergent margin: Implications for Cascadia earthquake potential and crustal rotations, Geology, 20, 141-144, 1992.

20
Halderman, T. P., and P. M. Davis, Q beneath the Rio Grande and East African Rift zones, J. Geophys. Res., 96, 10,113-10,128, 1991.

21
Harbert, W., Paleomagnetic database search possible, Eos Trans. AGU, 74, 100-101, 1993.

22
Hauksson, E., State of stress from focal mechanisms before and after the 1992 Landers earthquake sequence, Bull. Seismol. Soc. Am., 84, 917-934, 1994.

23
Hearn, T., N. Beghoul, and M. Barazangi, Tomography of the western United States from regional arrival times, J. Geophys. Res., 96, 16,369-16,381, 1991.

24
Hickman, S. H., Stress in the lithosphere and the strength of active faults, in U.S. National Report to International Union of Geodesy and Geophysics, 1987-1990: Contributions in Tectonophysics, edited by M. A. Shea, pp. 759-775, Am. Geophys. U., Washington, 1991.

25
Hummon, C., C. L. Schneider, R. S. Yeats, J. F. Dolan, K. E. Sieh, and G. J. Huftile, Wilshire fault: Earthquakes in Hollywood?, Geology, 22, 291-294, 1994.

26
Humphreys, E. D., and K. G. Dueker, Western U.S. upper mantle structure, J. Geophys. Res., 99, 9615-9634, 1994.

27
Johnson, R. A., and K. L. Loy, Seismic reflection evidence for seismogenic low-angle faulting in southeastern Arizona, Geology, 20, 597-600, 1992.

28
Lachenbruch, A. H., and J. H. Sass, Heat flow from Cajon Pass, fault strength, and tectonic implications, J. Geophys. Res., 97, 4995-5015, 1992.

29
Li, Y., and E. S. Schweig, Has the Reelfoot rift zone controlled tectonic activity since the Late Cretaceous? (abstract), Eos Trans. AGU, Spring Meeting Suppl., 281, 1993.

30
Liu, L. B., M. D. Zoback, and P. Segall, Rapid intraplate strain accumulation in the New Madrid seismic zone, Science, 257, 1666-1669, 1992.

31
Livaccari, R. F., and F. V. Perry, Isotopic evidence for preservation of Cordilleran lithospheric mantle during the Sevier-Laramide orogeny, western United States, Geology, 21, 719-722, 1993.

32
Livaccari, R. F., and F. V. Perry, Isotopic evidence for preservation of Cordilleran lithospheric mantle during the Sevier-Laramide orogeny, western United States: Reply, Geology, 22, 671-672, 1994.

33
Luyendyk, B. P., A model for Neogene crustal rotations, transtensions, and transpression in southern California, Geol. Soc. Am. Bull., 103, 1528-1536, 1991.

34
McCaffrey, R., Oblique plate convergence, slip vectors, and forearc deformation, J. Geophys. Res., 97, 8905-8915, 1992.

35
McCarthy, J., and T. Parsons, Insights into the kinematic Cenozoic evolution of the Basin and Range-Colorado Plateau transition from coincident seismic refraction and reflection data, Geol. Soc. Am. Bull., 106, 747-759, 1994.

36
Miller, M. G., High-angle origin of the currently low-angle Badwater Turtleback fault, Death Valley, California, Geology, 19, 372-375, 1991.

37
Mount, V. S., and J. Suppe, Present-day stress orientations adjacent to strike-slip faults: California and Sumatra, J. Geophys. Res., 97, 11,995-12,013, 1992.

38
Nicholson, C., C. C. Sorlien, T. Atwater, J. C. Crowell, and B. P. Luyendyk, Microplate capture, rotation of the western Transverse Ranges, and initiation of the San Andreas as a low-angle fault sytem, Geology, 22, 491-495, 1994.

39
Olson, J. A., and M. L. Zoback, Seismic deformation patterns on the San Francisco peninsula (abstract), Eos Trans. AGU, 73, Fall Meeting Suppl., 401, 1992.

40
Page, B. M., and T. M. Brocher, Thrusting of the central California margin over the edge of the Pacific plate during the transform regime, Geology, 21, 635-638, 1993.

41
Parry, W. T., D. Hedderly-Smith, and R. L. Bruhn, Fluid inclusions and hydrothermal alteration on the Dixie Valley fault, Nevada, J. Geophys. Res., 96, 19,733-19,748, 1991.

42
Patton, H. J., and G. Zandt, Seismic moment tensors of western U. S. earthquakes and implications for the tectonic stress field, J. Geophys. Res., 96, 18,245-18,259, 1991.

43
Pierce, K. L., and L. A. Morgan, The track of the Yellowstone hot spot: Volcanism, faulting, and uplift, Geol. Soc. Am. Mem., 179, 1-54, 1992.

44
Rice, J. R., Fault stress states, pore pressure distributions, and the weakness of the San Andreas fault, in Fault Stress States, Pore Pressure Distributions, and Transport Properties of Rocks: A Festschrift in Honor of W. F. Brace, edited by B. Evans and T.-F. Wong, pp. 475-503, Acad. Press, San Diego, 1992.

45
Richardson, R. M., and L. M. Reding, North American plate dynamics, J. Geophys. Res., 96, 12,201-12,223, 1992.

46
Scholz, C. H., N. H. Dawers, J.-Z. Yu, and M. H. Masters, Fault growth and fault scaling laws: Preliminary results, J. Geophys. Res., 98, 21,951-21,961, 1993.

47
Scott, R. J., and G. S. Lister, Detachment faults: Evidence for a low-angle origin, Geology, 20, 833-836, 1992.

48
Shaw, J. H., and J. Suppe, Active faulting and growth folding in the eastern Santa Barbara Channel, California, Geol. Soc. Am. Bull., 106, 607-626, 1994.

49
Sheehan, A. F., G. A. Abers, J. A. Lawrence, Q. Chen, and A. L. Lerner-Lam, Crustal thickness variations across the Rocky Mountain front from teleseismic observations (abstract), Eos Trans. AGU, 73, Fall Meeting Suppl., 372, 1992.

50
Silver, P. G., and W. W. Chan, Shear wave splitting and subcontinental mantle deformation, J. Geophys. Res., 96, 16,429-16,454, 1991.

51
Unruh, J. R., M. L. Davisson, R. E. Criss, and E. M. Moores, Implications of perennial saline springs for abnormally high fluid pressures and active thrusting in western California, Geology, 20, 431-434, 1992.

52
West, M. W., Extensional reactivation of thrust faults accompanied by coseismic surface rupture, southwestern Wyoming and north-central Utah, Geol. Soc. Am. Bull., 105, 1137-1150, 1993.

53
Zoback, M. D., and G. C. Beroza, Evidence for nearly frictionless faulting in the 1989 (M 6.9) Loma Prieta, California, earthquake and its aftershocks, Geology, 21, 181-185, 1993.

54
Zoback, M. D., and J. H. Healy, In situ stress measurements to 3.5 km depth in the Cajon Pass scientific research borehole: Implications for the mechanics of crustal faulting, J. Geophys. Res., 97, 5039-5057, 1992.

55
Zoback, M. D., R. Apel, J. Baumgartner, M. Brudy, R. Emmermann, B. Engeser, K. Fuchs, W. Kessels, H. Rischmuller, F. Rummel, and L. Vernik, Upper-crustal strength inferred from stress measurements to 6 km depth in the KTB borehole, Nature (London), 365, 633-635, 1993.

56
Zoback, M. L., First- and second-order patterns of stress in the lithosphere: The world stress map project, J. Geophys. Res., 97, 11,703-11,728, 1992.


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Rev. Geophys. Vol. 33 Suppl., © 1995 American Geophysical Union