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References

Published online by Cambridge University Press:  05 January 2013

Lawrence R. Walker
Affiliation:
University of Nevada, Las Vegas
Aaron B. Shiels
Affiliation:
USDA National Wildlife Research Center, Hawaii
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Landslide Ecology , pp. 246 - 288
Publisher: Cambridge University Press
Print publication year: 2012

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References

Acevedo-Rodríguez, P. & Strong, M.T. (2005). Monocots and Gymnosperms of Puerto Rico and the Virgin Islands. Contributions from the United States National Herbarium, 52, 1–415.Google Scholar
Achard, F., Stibig, H.-J., Eva, H.D., et al. (2010). Estimating tropical deforestation from Earth observation data. Carbon Management, 1, 271–287.CrossRefGoogle Scholar
Adams, J. (1980). Contemporary uplift and erosion of the Southern Alps, New Zealand. Geological Society of America Bulletin Part II, 91, 1–114.CrossRefGoogle Scholar
Adams, P.W. & Sidle, R.C. (1987). Soil conditions in three recent landslides in southeast Alaska. Forest Ecology and Management, 18, 93–102.CrossRefGoogle Scholar
Alcántara-Ayala, I. & Goudie, A. (2010). Geomorphological Hazards and Disaster Prevention. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Alexander, D. (1993). Natural Disasters. New York: Chapman and Hall.Google Scholar
Alford, D., Cunha, S.F., & Ives, J.D. (2000). Mountain hazards and development assistance: Lake Sarez, Pamir Mountains, Tajikistan. Mountain Research and Development, 20, 20–23.CrossRefGoogle Scholar
Allen, R.B., Bellingham, P.J., & Wiser, S.K. (1999). Immediate damage by an earthquake to a temperate montane forest. Ecology, 80, 708–714.CrossRefGoogle Scholar
Allen, R.B., Bellingham, P.J., & Wiser, S.K. (2003). Forest biodiversity assessment for reporting conservation performance. Science for Conservation, 216, 1–49. Wellington, New Zealand: New Zealand Department of Conservation.Google Scholar
Allison, S.D. & Vitousek, P.M. (2004). Rapid nutrient cycling in leaf litter from invasive plants in Hawaii. Oecologia, 141, 612–619.CrossRefGoogle Scholar
Alonso, E.E., Lloret, A., & Romero, E. (1996). Rainfall induced deformations of road embankments. In Landslides, eds. Chacón, J., Irigaray, C., & Fernández, T. pp. 97–108. Rotterdam: Balkema.Google Scholar
Alvarez, J. & Willig, M.R. (1993). Effects of treefall gaps on the density of land snails in the Luquillo Experimental Forest of Puerto Rico. Biotropica, 25, 100–110.CrossRefGoogle Scholar
Amacher, G.S., Hyde, W.F., & Kanel, K.R. (1996). Household fuelwood demand and supply in Nepal's Tarai and Mid-Hills: choice between cash and outlays and labor opportunities. World Development, 24, 1725–1736.CrossRefGoogle Scholar
Amatangelo, K.L. & Vitousek, P.M. (2009). Contrasting predictors of fern versus angiosperm decomposition in a common garden. Biotropica, 41, 154–161.CrossRefGoogle Scholar
Amezaga, J.M., Santamaría, L., & Green, A.J. (2002). Biotic wetland connectivity  – supporting a new approach for wetland policy. Acta Oecologica, 23, 213–222.CrossRefGoogle Scholar
Aragon, E.L. (1975). Inhibitory effects of substances from residues and extracts of staghorn fern (Dicranopteris linearis). MS Thesis, University of Hawaii, Manoa, Hawaii, U.S.
Arno, S.F. & Hammerly, R.P. (1984). Timberline Mountain and Arctic Forest Frontiers. Seattle, Washington, U.S.: The Mountaineers.Google Scholar
Aronson, J., Floret, C., LeFloc'h, E., Ovalle, C., & Pontanier, R. (1993). Restoration and rehabilitation of degraded ecosystems in arid and semiarid regions. I. A view from the South. Restoration Ecology, 1, 8–17.CrossRefGoogle Scholar
Arunachalam, A. & Upadhyaya, K. (2005). Microbial biomass during revegetation of landslides in the humid tropics. Journal of Tropical Forest Science, 17, 306–311.Google Scholar
Atkinson, I. (1989). Introduced animals and extinctions. In Conservation for the Twenty-first Century, eds. Western, D. & Pearl, M.C.. pp. 54–79. Oxford: Oxford University Press.Google Scholar
Augspurger, C.K. (1984). Seedling survival of tropical tree species: interactions of dispersal distance, light-gaps and pathogens. Ecology, 65, 1705–1712.CrossRefGoogle Scholar
Bansal, R.C. & Mathur, H.N. (1976). Landslides  -- the nightmare of hill roads. Soil Conservation Digest, 4, 36–37.Google Scholar
Bardet, J.-P., Synolakis, C.E., Davies, H.L., Imamura, F., & Okal, E.A. (2003). Landslide tsunamis: recent findings and research directions. Pure and Applied Geophysics, 160, 1793–1809.CrossRefGoogle Scholar
Bardgett, R.D., Bowman, W.D., Kaufmann, R., & Schmidt, S.K. (2005). A temporal approach to linking aboveground and belowground ecology. Trends in Ecology and Evolution, 20, 634–641.CrossRefGoogle ScholarPubMed
Barry, J.P. & Whaling, P.J. (2003). Use of vesicomyrid clams as proxies for ageing submarine landslide events. American Geophysical Union, Fall Meeting, abstract #OS31A-07.
Batanouny, K.H., Stichler, W., & Ziegler, H. (1991). Photosynthetic pathways and ecological distribution of Euphorbia species in Egypt. Oecologia, 87, 565–569.CrossRefGoogle ScholarPubMed
Baur, B. & Baur, A. (1990). Experimental evidence for intra- and interspecific competition in two species of rock-dwelling land snails. Journal of Animal Ecology, 59, 301–315.CrossRefGoogle Scholar
Bea, R.G. (1971). How sea floor slides affect offshore structures. Oil Gas Journal, 69, 88–91.Google Scholar
Bea, R.G., Wright, S.G., Sircar, P., & Niedoroda, A.W. (1983). Wave-induced slides in South Pass Block 70, Mississippi Delta. Journal of Geotechnical Engineering, ASCE, 109, 619–644.CrossRefGoogle Scholar
Bell, F.G. (1998). Environmental Geology: Principles and Practice. Oxford: Blackwell.Google Scholar
Bell, R. & Glade, T. (2004). Quantitative risk analysis for landslides  -- examples from Bíldudalur, NW-Iceland. Natural Hazards and Earth System Sciences, 4, 117–131.CrossRefGoogle Scholar
Bellingham, P.J. & Lee, W.G. (2006). Distinguishing natural processes from impacts of invasive mammalian herbivores. In Biological Invasions in New Zealand, eds. Allen, R.B. & Lee, W.G.. pp. 323–336. New York: Springer.CrossRefGoogle Scholar
Bellingham, P.J., Walker, L.R., & Wardle, D.A. (2001). Differential facilitation by a nitrogen-fixing shrub during primary succession influences relative performance of canopy tree species. Journal of Ecology, 89, 861–875.CrossRefGoogle Scholar
Bellingham, P.J., Tanner, E.V.J., & Healey, J.R. (2005). Hurricane disturbance accelerates invasion by the alien tree species Pittosporum ungulatum in Jamaican montane rain forests. Journal of Vegetation Science, 16, 675–684.Google Scholar
Benko, B. & Stead, D. (1998). The Frank Slide: a reexamination of the failure mechanism. Canadian Geotechnical Journal, 35, 299–311.CrossRefGoogle Scholar
Bergman, B., Johansson, C., & Soderback, E. (1992). The Nostoc –Gunnera symbiosis. New Phytologist, 122, 379–400.CrossRefGoogle Scholar
Bhatt, B.P. & Sachan, W.S. (2004). Firewood consumption along an altitudinal gradient in mountain villages in India. Biomass & Bioenergy, 27, 69–75.CrossRefGoogle Scholar
Bird, G., Brewer, P.A., Macklin, M.G., et al. (2008) River system recovery following the Novat-Rosu tailings dam failure, Maramures County, Romania. Applied Geochemistry, 23, 3498–3518.CrossRefGoogle Scholar
Boadu, F.K. & Owusu-Nimo, F. (2011). Exploring the linkages between geotechnical properties and electrical responses of sand-clay mixtures under varying effective stress levels. Journal of Environmental and Engineering Geophysics, 16, 73–83.CrossRefGoogle Scholar
Bonikowsky, L.N. (ed.) (2012). The Canadian Encyclopedia. . Accessed 15 February 2012.
Bonuccelli, T., Luzia de Souza, M., & Zuquette, L.V. (1996). Landslides in urban areas: the triggering factors in the historical city, Ouro Preto, Brazil. In Landslides, eds. Chacón, J., Irigaray, C., & Fernández, T.. pp. 117–124. Rotterdam: Balkema.Google Scholar
Borgatti, L. & Soldati, M. (2010). Landslides and climate change. In Geomorphological Hazards and Disaster Prevention, eds. Alcantara-Ayala, I. & Goudie, A., pp. 87–95. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Bovis, M.J. & Jones, P. (1992). Holocene history of earthflow mass movements in south-central British Columbia: the influence of hydroclimatic changes. Canadian Journal of Earth Sciences, 29, 1746–1754.CrossRefGoogle Scholar
Brabb, E.E. (1991). The world landslide problem. Episodes, 14, 52–61.Google Scholar
Bradshaw, A.D. (1987). Restoration: an acid test for ecology. In Restoration Ecology: A Synthetic Approach to Ecological Research, eds. Jordan, W.R., Gilpin, M.E., & Aber, J.D., pp. 23–29. Cambridge: Cambridge University Press.Google Scholar
Brenning, A. (2005). Spatial prediction models for landslide hazards: review, comparison and evaluation. Natural Hazards and Earth System Sciences, 5, 853–862.CrossRefGoogle Scholar
Brokaw, N.V.L. (1998). Cecropia schreberiana in the Luquillo Mountains of Puerto Rico. The Botanical Review, 64, 91–120.CrossRefGoogle Scholar
Bromhead, E.N. & Ibsen, M.L. (1997). Land-use and climate-change impacts on landslide hazards in SE Britain. In Landslide Risk Assessment, eds. Cruden, D. & Fell, R.. pp. 165–175. Rotterdam: Balkema.Google Scholar
Brown, V.K. & Gange, A.C. (1992). Secondary plant succession: how is it modified by insect herbivory? Vegetatio, 101, 3–13.CrossRefGoogle Scholar
Bründl, M., Bartelt, P., Schweizer, J., Keiler, M., & Glade, T. (2010). Review and future challenges in snow avalanche risk analysis. In Geomorphological Hazards and Disaster Prevention, eds. Alcantara-Ayala, I. & Goudie, A., pp. 49–61. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Brunsden, D. (1984). Mudslides. In Slope Instability, eds. Brunsden, D. & Prior, D.B., pp. 363–418. New York: Wiley.Google Scholar
Brunsden, D. (2002). Geomorphological roulette for engineers and planners: some insights into an old game. Quarterly Journal of Engineering Geology and Hydrogeology, 35, 101–142.CrossRefGoogle Scholar
Brunsden, D. & Jones, D.K.C. (1980). Relative time-scales and formative events in coastal landslide systems. Zeitschrift für Geomorphologie Supplement, 34, 1–19.Google Scholar
Bryant, J.P. & Chapin, F.S. III. (1986). Browsing-woody plant interactions during a boreal forest plant succession. In Forest Ecosystems in the Alaska Taiga, a Synthesis of Structure and Function, eds. Cleve, K. Van, Chapin, F.S., Flanagan, P.W., Viereck, L.A., & Dyrness, C.T., pp. 213–215. New York: Springer.CrossRefGoogle Scholar
Bryne, M.M. & Levey, D.J. (1993). Removal of seeds from frugivore defecations by ants in a Costa Rican rain forest. Vegetatio, 107/108, 363–374.Google Scholar
Budetta, P. (2004). Assessment of rockfall risk along roads. Natural Hazards and Earth System Sciences, 4, 71–81.CrossRefGoogle Scholar
Bull, W.B. (2010). Regional seismic shaking hazards in mountains. In Geomorphological Hazards and Disaster Prevention, eds Alcántara-Ayala, I. & Goudie, A.S., pp. 5–12. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Bull, W.B. & Brandon, M.T. (1998). Lichen dating of earthquake-generated regional rockfall events, Southern Alps, New Zealand. Geological Society of America Bulletin, 110, 60–84.2.3.CO;2>CrossRefGoogle Scholar
Bulmer, M.H., Petley, D.N., Murphy, W., & Mantovani, F. (2006). Detecting slope deformation using two-pass differential interferometry: implications for landslide studies on Earth and other planetary bodies. Journal of Geophysical Research, 111, E06S16 (10 pp.).CrossRefGoogle Scholar
Bunce, M., Szulkin, M., Lerner, H.R.L., et al. (2005). Ancient DNA provides new insights into evolutionary history of New Zealand's extinct giant eagle. PLOS Biology, 3, 1–3.CrossRefGoogle ScholarPubMed
Bush, D.M., Neal, W.J., & Jackson, C.W. (2009). Summary of Puerto Rico's vulnerability to coastal hazards: risk, mitigation, and management with examples. Geological Society of America Special Papers, 460, 149–165.CrossRefGoogle Scholar
Butler, D.R. (2001). Geomorphic process-disturbance corridors: a variation on a principle of landscape ecology. Progress in Physical Geography, 25, 237–248.Google Scholar
By, T., Forsberg, C.F., & Norem, H. (1990). Submarine slides: full scale experiment at Storglomvatn, Norway. Norwegian Geotechnical Institute, Report 522090–4. Cited in Locat & Lee (2002).
Caine, N. (1980). The rainfall intensity-duration control of shallow landslides and debris flows. Geographical Annals Series A, 62, 23–27.Google Scholar
Callaway, R.M. (2007). Positive Interactions and Interdependence of Plant Communities. Springer: New York.Google Scholar
Callaway, R.M. & Walker, L.R. (1997). Competition and facilitation: a synthetic approach to interactions in plant communities. Ecology, 78, 1958–1965.CrossRefGoogle Scholar
Cammeraat, E., van Beek, R., & Kooijman, A. (2005). Vegetation succession and its consequences for slope stability in SE Spain. Plant and Soil, 278, 135–147.CrossRefGoogle Scholar
Camp, R.J. & Knight, R.L. (1998). Effects of rock climbing on cliff plant communities at Joshua Tree National Park, California. Conservation Biology, 12, 1302–1306.CrossRefGoogle Scholar
Campanello, P.I., Gatti, M.G., Ares, A., Montti, L., & Goldstein, G. (2007). Tree regeneration and microclimate in a liana and bamboo-dominated semideciduous Atlantic Forest. Forest Ecology and Management, 252, 108–117.CrossRefGoogle Scholar
Cannon, S.H. (2001). Debris-flow generation from recently burned watersheds. Environmental and Engineering Geoscience, 7, 321–341.CrossRefGoogle Scholar
Cannon, S.H., Kirkham, R.M., & Parise, M. (2001). Wildfire-related debris-flow initiation processes, Storm King Mountain, Colorado. Geomorphology, 29, 171–188.CrossRefGoogle Scholar
Cannone, N., Lewkowicz, A.G., & Guglielmin, M. (2010). Vegetation colonization of permafrost-related landslides, Ellesmere Island, Canadian High Arctic. Journal of Geophysical Research  – Biogeosciences, 115, article number G04020. Google Scholar
Carlton, G.C. & Bazzaz, F.A. (1998). Regeneration of three sympatric birch species on experimental hurricane blowdown microsites. Ecological Monographs, 68, 99–120.CrossRefGoogle Scholar
Carnevale, N.J. & Montagnini, F. (2002). Facilitating regeneration of secondary forests with the use of mixed and pure plantations of indigenous tree species. Forest Ecology and Management, 163, 217–227.CrossRefGoogle Scholar
Carpenter, F.L. (1976). Plant-pollinator interactions in Hawaii: pollination energetic of Metrosideros collina (Myrtaceae). Ecology, 57, 1125–1144.CrossRefGoogle Scholar
Carrara, A., Cardinali, M., Detti, R., et al. (1991). GIS techniques and statistical models in evaluating landslide hazard. Earth Surface Processes and Landforms, 16, 427–445.CrossRefGoogle Scholar
Carreiro, M.M. & Zipperer, W.C. (2011). Co-adapting society and ecological interactions following large disturbances in urban park woodlands. Austral Ecology, 36, 904–915.CrossRefGoogle Scholar
Casadei, M., Dietrich, W.E., & Miller, N.L. (2003). Testing a model for predicting the timing and location of shallow landslide initiation in soil-mantled landscapes. Earth Surface Processes and Landforms, 28, 925–950.CrossRefGoogle Scholar
Cavallo, A. & Giannoni, F. (2006). Natural risk warning: comparison of two methodologies. Advances in Geosciences, 2, 335–338.CrossRefGoogle Scholar
Cázares, E. & Trappe, J.M. (1994). Spore dispersal of ectomycorrhizal fungi on a glacier forefront by mammal mycophagy. Mycologia, 86, 507–510.CrossRefGoogle Scholar
Cazzuffi, D., Corneo, A., & Crippa, E. (2007). Slope stabilisation by perennial ‘gramineae’ in Southern Italy: plant growth and temporal performance. In Eco- and Ground Bio-Engineering: The Use of Vegetation to Improve Slope Stability, eds. Stokes, A., Spanos, I., & Norris, J.E., pp. 111–126. Proceedings of the First International Conference on Eco-Engineering, 13–17 September 2004. Dordrecht: Springer.Google Scholar
Chadwick, J., Dorsch, S., Glenn, N., Thackray, G., & Shilling, K. (2005). Application of multi-temporal high-resolution imagery and GPS in a study of the motion of a canyon rim landslide. Journal of Photogrammetry & Remote Sensing, 59, 212–221.CrossRefGoogle Scholar
Chapin, F.S. III, Matson, P.A., & Mooney, H.A. (2003) Principles of Terrestrial Ecosystem Ecology. New York: Springer.Google Scholar
Chau, K.T. & Lo, K.H. (2004). Hazard assessment of debris flows for Leung King Estate of Hong Kong by incorporating GIS with numerical simulations. Natural Hazards and Earth System Sciences, 4, 103–116.CrossRefGoogle Scholar
Chau, M.M., Walker, L.R., & Mehltreter, K. (In press). An invasive tree fern alters soil and plant nutrient dynamics in Hawaii. Biological Invasions, .
Chaudhry, S., Singh, S.P., & Singh, J.S. (1996). Performance of seedlings of various life forms on landslide-damaged forest sites in Central Himalaya. Journal of Applied Ecology, 33, 109–117.CrossRefGoogle Scholar
Chaytor, J.D., ten Brink, U.S., Solow, A.R., & Andrews, B.D. (2009). Size distribution of submarine landslides along the US Atlantic margin. Marine Geology, 264, 16–27.CrossRefGoogle Scholar
Chazdon, R.L. & Fetcher, N. (1984). Photosynthetic light environments in a lowland tropical rain forest in Costa Rica. Journal of Ecology, 72, 553–564.CrossRefGoogle Scholar
Chen, H. (2006). Controlling factors of hazardous debris flow in Taiwan. Quaternary International, 147, 3–15.CrossRefGoogle Scholar
Chen, H., Chen, R.H., & Lin, M.L. (1999). Initiation of the Tungmen debris flow, eastern Taiwan. Environmental & Engineering Geoscience, 4, 459–473.CrossRefGoogle Scholar
Chester, D.K., Duncan, A.M., & James, P.A. (2010). Mount Etna, Sicily: landscape evolution and hazard responses in the pre-industrial era. In Landscapes and Societies, eds. Martini, I.P. & Chesworth, W., pp. 235–253. New York: Springer.Google Scholar
Chien, H-C. (2007). Landslide alter orbatid mite communities in litter layers of a monsoon forest in southern Taiwan. MS Thesis, Institute of Life Sciences, National Cheng Kung University, Taiwan.Google Scholar
Chigira, M. & Oyama, T. (1999). Mechanism and effect of chemical weathering on sedimentary rock. Engineering Geology, 55, 3–14.CrossRefGoogle Scholar
Chigira, M. & Yokoyama, O. (2005). Weathering profile of non-welded ignimbrite and the water infiltration behavior within it in relation to the generation of shallow landslides. Engineering Geology, 78, 187–207.CrossRefGoogle Scholar
Chou, W.C., Lin, W.T., & Lin, C.Y. (2007). Application of fuzzy set theory and PROMETHEE technique to evaluate suitable ecotechnology method: a case study in Shihmen Reservoir Watershed, Taiwan. Ecological Engineering, 31, 269–280.CrossRefGoogle Scholar
Claessens, L., Verburg, P.H., Schoorl, J.M., & Veldkamp, A. (2006). Contribution of topographically based landslide hazard modeling to the analysis of the spatial distribution and ecology of kauri (Agathis australis). Landscape Ecology, 21, 63–76.CrossRefGoogle Scholar
Claessens, L., Schoorl, J.M., & Veldkamp, A. (2007). Modelling the location of shallow landslides and their effects on landscape dynamics in large watersheds: an application for Northern New Zealand. Geomorphology, 87, 16–27.CrossRefGoogle Scholar
Clarke, M.A. & Walsh, R.P.D. (2006). Long-term erosion and surface roughness change of rain-forest terrain following selective logging, Danum Valley, Sabbah, Malaysia. Catena, 68, 109–123.CrossRefGoogle Scholar
Clarkson, B.R. & Clarkson, B.D. (1995). Recent vegetation changes on Mount Tarawera, Rotorua, New Zealand. New Zealand Journal of Botany, 33, 339–354.CrossRefGoogle Scholar
Clements, F.E. (1916). Plant Succession: An Analysis of the Development of Vegetation. Publication 242, Washington, D.C.: Carnegie Institution of Washington.CrossRefGoogle Scholar
Clements, F.E. (1928). Plant Succession and Indicators. New York: H.W. Wilson.Google Scholar
Close, U. & McCormick, E. (1922). Where the mountains walked. National Geographic Magazine, 41, 445–464.Google Scholar
Coates, D.R. (1977). Landslide perspectives. In Landslides, ed. Coates, D.R., pp. 3–28. Washington, DC: Geological Society of America.Google Scholar
Coelho, C.O.A. (2006). Portugal. In Soil Erosion in Europe, eds. Boardman, J. & Poesen, J.. pp. 359–367. Chichester: Wiley.CrossRefGoogle Scholar
Coleman, D.C., CrossleyJr., D.A., & Hendrix, P.F. (2004). Fundamentals of Soil Ecology, 2 Edition. San Diego, California, CA, U.S.: Elsevier.Google Scholar
Colesant, C. & Wasowski, J. (2006). Investigating landslides with space-borne Synthetic Aperture Radar (SAR) interferometry. Engineering Geology, 88, 173–199.CrossRefGoogle Scholar
Compton, S.G., Ross, S.J., & Thornton, I.W. B. (1994). Pollinator limitation of fig tree reproduction on the island of Anak Krakatau (Indonesia). Biotropica, 26, 180–186.CrossRefGoogle Scholar
Conant, D.S. (1976). Ecogeographic and systematic studies in American Cyatheaceae. PhD Dissertation, Harvard University, Boston, Massachusetts, U.S.
Connell, J.H. & Slatyer, R.O. (1977). Mechanisms of succession in natural communities and their roles in community stability and organization. The American Naturalist, 111, 1119–1144.CrossRefGoogle Scholar
Cooper, M.R., Bromhead, E.N., Petley, D.J., & Grant, D.I. (1998). The Selborne cutting stability experiment. Géotechnique, 48, 83–101.CrossRefGoogle Scholar
Costa, J.E. & Schuster, R.L. (1991). Documented historical landslide dams from around the world. U.S. Geological Survey Open-File Report, 91–239.Google Scholar
Coulter, H.W. & Migliaccio, R.R. (1966). Effects of the earthquake of March 17, 1964, at Valdez, Alaska. U.S. Geological Survey Professional Paper, 542-C, 1–36.Google Scholar
Courchamp, F. & Caut, S. (2005). Use of biological invasions and their control to study the dynamics of interacting populations. In Conceptual Ecology and Invasions Biology, eds. Cadotte, M.W., McMahon, S.M., & Fukami, T., pp. 253–279. New York: Springer.Google Scholar
Courtney, R. & Mullen, G. (2009). Use of germination and seedling performance bioassays for assessing revegetation strategies on bauxite residue. Water, Air and Soil Pollution, 197, 15–22.CrossRefGoogle Scholar
Couture, R., Konrad, J.-M., & Locat, J. (1995). Analyse de la liquéfaction et du comportement non drainé des sables du delta de Kenamu (Project ADFEX). Canadian Geotechnical Journal, 32, 137–155.CrossRefGoogle Scholar
Cover, M.R., de la Fuente, J.A., & Resh, V.H. (2010). Catastrophic disturbances in headwater streams: the long-term ecological effects of debris flows and debris floods in the Klamath Mountains, northern California. Canadian Journal of Fisheries and Aquatic Sciences, 67, 1596–1610.CrossRefGoogle Scholar
Cowles, H.C. (1901). The physiographic ecology of Chicago and vicinity: A study of the origin, development, and classification of plant societies. Botanical Gazette, 31, 73–108, 145–182.CrossRefGoogle Scholar
Cox, P.A. & Elmquist, T. (2000). Pollinator extinction in the Pacific Islands. Conservation Biology, 14, 1237–1239.CrossRefGoogle Scholar
Crisafulli, C.M., Swanson, F.J., & Dale, V.H. (2005). Overview of ecological responses to the eruption of Mount St. Helens: 1980–2005. In Ecological Responses to the 1980 Eruption of Mount St. Helens, eds. Dale, V.H, Swanson, F.J., & Crisafulli, C.M., pp. 287–299. New York: Springer.CrossRefGoogle Scholar
Cronin, V.S. (1992). Compound landslides: nature and hazard potential of secondary landslides within host landslides. Reviews in Engineering Geology, 9, 1–9.CrossRefGoogle Scholar
Crozier, M.J. (1984). Field assessment of slope instability. In Slope Instability, eds. Brunsden, D. & Prior, D.B., pp. 103–142. Chichester: John Wiley.Google Scholar
Crozier, M.J. (1986). Landslides: Causes, Consequences and Environment. London: Croom-Helm.Google Scholar
Crozier, M.J., Howorth, R., & Grant, I.J. (1981). Landslide activity during Cyclone Wally, Fiji: A case study of Wainitubatalu catchment. Pacific Viewpoint, 22, 69–88.Google Scholar
Cruden, D.M. (1991). A simple definition of a landslide. Bulletin of the International Association of Engineering Geology, 43, 27–29.CrossRefGoogle Scholar
Cruden, D.M. & Fell, R. (1997). Landslide Risk Assessment. Rotterdam: Balkema.Google Scholar
Cruden, D.M. & Varnes, D.J. (1996). Landslide types and processes. In Landslides: Investigation and Mitigation, eds. Turner, A.K. & Schuster, R.L., pp. 36–75. Special Report 247, Transportation Research Board, National Research Council. Washington, DC: National Academy Press.Google Scholar
Cruden, D.M., Keegan, T.R., & Thomson, S. (1993). The landslide dam on the Saddle River near Rycroft, Alberta. Canadian Geotechnical Journal, 30, 1003–1015.CrossRefGoogle Scholar
Crutchley, G.J., Gorman, A.R., & Fohrmann, M. (2007). Investigation of the role of gas hydrates in continental slope stability west of Fiordland, New Zealand. New Zealand Journal of Geology and Geophysics, 50, 357–364.CrossRefGoogle Scholar
Cumberland, K.B. (1944). Soil Erosion in New Zealand: A Geographic Reconnaissance. Wellington: Soil Conservation and Rivers Control Council.Google Scholar
Cumberland, K.B. & Cumberland, G. (2008). Poor land management. A letter to The Press, 24 September 2008, Christchurch, New Zealand.
Dadson, S.J., Hovius, N., Chen, H., et al. (2003). Links between erosion, runoff variability and seismicity in the Taiwan orogen. Nature, 426, 648–651.CrossRefGoogle ScholarPubMed
Dai, E.C. & Lee, C.F. (2002). Landslide characteristics and slope instability modeling using GIS, Lantau Island, Hong Kong. Geomorphology, 42, 213–228.CrossRefGoogle Scholar
Dai, E.C., Lee, C.F., & Nagi, Y.Y. (2002). Landslide risk assessment and management: an overview. Engineering Geology, 64, 65–87.CrossRefGoogle Scholar
Dale, V.H. (1986). Plant recovery on the debris avalanche at Mount St. Helens. In Mount St. Helens: Five Years Later, ed. Keller, S.A.C., pp. 208–214. Cheney, Washington, U.S.: Eastern Washington Press.Google Scholar
Dale, V.H., Joyce, L.A., McNultry, S., et al. (2001). Climate change and forest disturbance. BioScience, 51, 723–734.CrossRefGoogle Scholar
Dale, V.H., Swanson, F.J., & Crisafulli, C.M. (eds.) (2005). Ecological Responses to the 1980 Eruption of Mount St. Helens. New York: Springer.CrossRefGoogle Scholar
Dalling, J.W. (1994). Vegetation colonization of landslides in the Blue Mountains, Jamaica. Biotropica, 26, 392–399.CrossRefGoogle Scholar
Dalling, J.W. & Iremonger, S. (1994). Preliminary estimate of landslide disturbance in the Blue Mountains, Jamaica. Caribbean Journal of Science, 30, 290–292.Google Scholar
Dalling, J.W. & Tanner, E.V.J. (1995). An experimental study of regeneration on landslides in montane rain forest in Jamaica. Journal of Ecology, 83, 55–64.CrossRefGoogle Scholar
D’Antonio, C.M. & Vitousek, P.M. (1992). Biological invasions by exotic grasses, the grass/fire cycle, and global change. Annual Review of Ecology and Systematics, 23, 63–87.CrossRefGoogle Scholar
Davis, T.J., Klinkenberg, B., & Keller, C.P. (2004). Evaluating restoration success on Lyell Island, British Columbia using oblique videogrammetry. Restoration Ecology, 12, 447–455.CrossRefGoogle Scholar
Davis, W.M. (1909). The geographical cycle. In Geographical Essays, ed. Johnson, D.W., pp. 254–256. Oxford: Ginn & Co.Google Scholar
Dawson, B. (1995). Crowsnest: An Illustrated History and Guide to the Crowsnest Pass. Canmore, Alberta, Canada: Altitude Publishing.Google Scholar
DeBano, L.F. (2000). The role of fire and soil heating on water repellency in wildland environments: a review. Journal of Hydrology, 231, 195–206.CrossRefGoogle Scholar
DeBiase, R.A., Whipple, K.X., Heimsath, A.M., & Ouimet, W.B. (2010). Landscape form and millennial erosion rates in the San Gabriel Mountains, CA. Earth and Planetary Science Letters, 289, 134–144.CrossRefGoogle Scholar
de Boer, D.H. (1992). Hierarchies and spatial scale in process geomorphology: a review. Geomorphology, 4, 303–318.CrossRefGoogle Scholar
de la Cruz, M. & Dirzo, R. (1987). A survey of the standing levels of herbivory in seedlings from a Mexican rain forest. Biotropica, 19, 98–106.CrossRefGoogle Scholar
del Moral, R. (1993). Mechanisms of primary succession on volcanoes: a view from Mount St. Helens. In Primary Succession on Land, eds. Miles, J. & Walton, D.H., pp. 79–100. Oxford: Blackwell.Google Scholar
del Moral, R. (2011). The importance of long-term studies of ecosystem reassembly after the eruption of the Kasatochi Island Volcano. Arctic, Antarctic, and Alpine Research, 42, 335–341.CrossRefGoogle Scholar
del Moral, R. & Walker, L.R. (2007). Environmental Disasters, Natural Recovery and Human Responses. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
del Moral, R. & Wood, D.M. (1993). Early primary succession on a barren volcanic plain at Mount St. Helens, Washington. American Journal of Botany, 80, 981–992.CrossRefGoogle Scholar
del Moral, R., Walker, L.R., & Bakker, J.P. (2007). Insights gained from succession for the restoration of landscape structure and function. In Linking Restoration and Ecological Succession, eds. Walker, L.R., Walker, J., & Hobbs, R.J., pp. 19–55. New York: Springer.CrossRefGoogle Scholar
DeLong, H.B., Lieffers, V.J., & Blenis, P.V. (1997). Microsite effects on first-year establishment and overwinter survival of white spruce in aspen-dominated boreal mixedwoods. Canadian Journal of Forest Research, 27, 1452–1457.CrossRefGoogle Scholar
Dengler, N.G., Dengler, R.E., Donnelley, P.M., & Hattersley, P.W. (1994). Quantitative leaf anatomy of C3 and C4 grasses (Poaceae): Bundle sheath and mesophyll surface area relationships. Annals of Botany, 73, 241–255.CrossRefGoogle Scholar
Denslow, J.S. (1980). Gap partitioning among tropical rainforest trees. Biotropica, 12, 47–55.CrossRefGoogle Scholar
Denslow, J.S., Schultz, J.C., Vitousek, P.M., & Strain, B.R. (1990). Growth responses of tropical shrubs to treefall gap environments. Ecology, 71, 165–179.CrossRefGoogle Scholar
Denslow, J.S., Space, J.C., & Thomas, P.A. (2009). Invasive exotic plants in the tropical Pacific Islands: patterns of diversity. Biotropica, 41, 162–170.CrossRefGoogle Scholar
Derose, R.C., Gomez, B., Marden, M., & Trustrum, N.A. (1998). Gully erosion in Mangatu Forest, New Zealand, estimated from digital elevation models. Earth Surface Processes and Landforms, 23, 1045–1053.3.0.CO;2-T>CrossRefGoogle Scholar
Devkota, B.D., Omura, H., Kubota, T., Paudel, P., & Acharya, K.P. (2006a). Vegetation restoration and root morphological features of colonized plants observed at a landslide scar, Matatirtha, Kathmandu, Nepal. Banko Janakari, 16, 71–78.Google Scholar
Devkota, B.D., Paudel, P., Omura, H., Kubota, T., & Morita, K. (2006b). Uses of vegetative measures for erosion mitigation in mid hill areas of Nepal. Kyushu Journal of Forest Research, 59, 265–268.Google Scholar
Devoe, N.N. (1989). Differential seeding and regeneration in openings and beneath closed canopy in sub-tropical wet forest. PhD Dissertation, School of Forestry and Environmental Studies, Yale University, New Haven, Connecticut, U.S.
Dhakal, A.S. & Sidle, R.C. (2003). Long-term modeling of landslides for different forest management practices. Earth Surface Processes and Landforms, 28, 853–868.CrossRefGoogle Scholar
Dhakal, A.S. & Sidle, R.C. (2004). Distributed simulations of landslides for different rainfall conditions. Hydrological Processes, 18, 757–776.CrossRefGoogle Scholar
Diaz, R.J., Cutter, G.R., & Rhoads, D.C. (1994). The importance of bioturbation to continental slope sediment structure and benthic processes off Cape Hatteras, North Carolina. Deep-Sea Research II, 41, 719–734.CrossRefGoogle Scholar
Diamond, J., Bishop, K.D., & Gilardi, J.D. (1999). Geophagy in New Guinea birds. Ibis, 141, 181–193.CrossRefGoogle Scholar
Dominik, T. (1956). Mycotrophy of poplars in their natural associations in Poland. Roczniki Nauk Lesnych, 14, 247–266 (in English Translation, U.S. Dept. of Commerce Office of Technical Services Translation OTS 60–21382, 1961).Google Scholar
Douglas, I., Bidin, K., Balamurugan, G., et al. (1999). The role of extreme events in the impacts of selective tropical forestry on erosion during harvesting and recovery phases at Danum Valley, Sabbah. Philosophical Transactions of the Royal Society London, 354, 1749–1761.CrossRefGoogle Scholar
D’Souza, L.E., Reiter, M., Six, L.J., & Bilby, R.E. (2011). Response of vegetation, shade and stream temperature to debris torrents in two western Oregon watersheds. Forest Ecology and Management, 261, 2157–2167.CrossRefGoogle Scholar
Dung, B.X., Miyata, S., & Gomi, T. (2011). Effect of forest thinning on overland flow generation on hillslopes covered by Japanese cypress. Ecohydrology and Hydrobiology, 4, 367–378.CrossRefGoogle Scholar
Durand, L.Z. & Goldstein, G. (2001a). Growth, leaf characteristics, and spore production in native and invasive tree ferns in Hawaii. American Fern Journal, 91, 25–35.CrossRefGoogle Scholar
Durand, L.Z. & Goldstein, G. (2001b). Photosynthesis, photoinhibition, and nitrogen use efficiency in native and invasive tree ferns in Hawaii. Oecologia, 126, 345–354.CrossRefGoogle ScholarPubMed
Edwards, E.J. & Still, C.J. (2008). Climate, phylogeny and the ecological distribution of C4 grasses. Ecology Letters, 11, 266–276.CrossRefGoogle ScholarPubMed
Egler, F.E. (1954). Vegetation science concepts I. Initial floristics composition, a factor in old-field vegetation development. Vegetatio, 4, 412–417.CrossRefGoogle Scholar
Ehley, P.L. (1986). The Portuguese Bend landslide: its mechanics and a plan for its stabilization. In Landslides and Landslide Mitigation in Southern California, ed. Ehley, P.L., pp. 181–190. Guidebook for field trip, Los Angeles, California: Cordilleran Section of the Geological Society of America.Google Scholar
Elias, R.B. & Dias, E. (2004). Primary succession on lava domes on Terceira (Azores). Journal of Vegetation Science, 15, 331–338.CrossRefGoogle Scholar
Elias, R.B. & Dias, E. (2009). Effects of landslides on the mountain vegetation of Flores Island, Azores. Journal of Vegetation Science, 20, 706–717.CrossRefGoogle Scholar
Elverhoi, A., Breien, H., De Blasio, F.V., Harbitz, C.B., & Pagliardi, M. (2010). Submarine landslides and the importance of the initial sediment composition for run-out length and final deposit. Ocean Dynamics, 60, 1027–1046.CrossRefGoogle Scholar
Enright, N.J., Ogden, J., & Rigg, L.S. (1999). Dynamics of forests with Araucariaceae in the western Pacific. Journal of Vegetation Science, 10, 793–804.CrossRefGoogle Scholar
Evans, S.G. & Bent, A.L. (2004). The Las Colinas landslide, Santa Tecla: a highly destructive flowside triggered by the January 13, 2001, El Salvador earthquake. Geological Society of America Special Paper, 375, 25–38.Google Scholar
Evans, S.G., Couture, R., & Raymond, E.L. (2002). Catastrophic landslides and related processes in the southeastern Cordillera: analysis of impact on lifelines and communities. Geological Survey Canada, Natural Resources Canada.Google Scholar
Evans, S.G., Guthrie, R.H., Roberts, N.J., & Bishop, N.F. (2007). The disastrous 17 February 2006 rockslide-debris avalanche on Leyte Island, Philippines: a catastrophic landslide in tropical mountain terrain. Natural Hazards and Earth System Sciences, 7, 89–101.CrossRefGoogle Scholar
Fabbri, A.G., Chung, C.-J.F., Cendrero, A., & Remondo, J. (2003). Is prediction of future landslides possible with a GIS? Natural Hazards, 30, 487–499.CrossRefGoogle Scholar
Fagan, W.F. & Bishop, J.G. (2000). Trophic interactions during primary succession: herbivores slow a plant reinvasion at Mount St. Helens. The American Naturalist, 155, 238–251.CrossRefGoogle ScholarPubMed
Farris, M.A. (1998). The effects of rock climbing on the vegetation of three Minnesota cliff systems. Canadian Journal of Botany, 76, 1982–1990.CrossRefGoogle Scholar
Fastie, C.L. (1995). Causes and ecosystem consequences of multiple pathways on primary succession at Glacier Bay, Alaska. Ecology, 76, 1899–1916.CrossRefGoogle Scholar
Fenner, M. & Thompson, K. (2005). The Ecology of Seeds. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Fernandes, N.F., Guimãraes, R.F., Gomes, R.A.T., et al. (2004). Topographic controls of landslides in Rio de Janeiro: field evidence and modeling. Catena, 55, 163–181.CrossRefGoogle Scholar
Fernández, D.S. & Fetcher, N. (1991). Changes in light availability following Hurricane Hugo in a subtropical montane forest in Puerto Rico. Biotropica, 23, 393–399.CrossRefGoogle Scholar
Fernández, D.S. & Myster, R.W. (1995). Temporal variation and frequency distribution of photosynthetic photon flux densities on landslides in Puerto Rico. Tropical Ecology, 36, 73–87.Google Scholar
Ferreira, A.B., Zêzere, J.L., & Rodrigues, M.L. (1996). The Calhandriz landslide (Metropolitan area of Lisbon). In Landslides, eds. Chacón, J., Irigaray, C., & Fernández, T., pp. 31–38. Rotterdam: Balkema.Google Scholar
Ferrer, M. & Ayala, F. (1996). Landslides climatic susceptibility map of Spain. In Landslides, eds. Chacón, J., Irigaray, C., & Fernández, T, pp. 323–333. Rotterdam: Balkema.Google Scholar
Fetcher, N., Haines, B.L., Cordero, R.A., et al. (1996). Responses of tropical plants to nutrients and light on a landslide in Puerto Rico. Journal of Ecology, 84, 331–341.CrossRefGoogle Scholar
Fine, I.V., Rabinovich, A.B., Bornhold, B.D., Thomson, R.E., & Kulikov, E.A. (2005). The Grand Banks landslide-generated tsunami of November 18, 1929: preliminary analysis and numerical modeling. Marine Geology, 215, 45–57.CrossRefGoogle Scholar
Fischer, L., Kääb, A., Huggel, C., & Noetzli, J. (2006). Geology, glacier retreat and permafrost degradation as controlling factors of slope instabilities in a high-mountain rock wall: the Monte Rosa east face. Natural Hazards and Earth System Sciences, 6, 761–772.CrossRefGoogle Scholar
Flaccus, E. (1959). Revegetation of landslides in the White Mountains of New Hampshire. Ecology, 40, 692–703.CrossRefGoogle Scholar
Forman, R.T.T., Sperling, D., Bissonette, J.A., et al. (2003). Road Ecology: Science and Solutions. Washington, D.C.:Island Press.Google Scholar
Fort, M., Cossart, E., & Arnaud-Fassetta, G. (2010). Catastrophic landslides and sedimentary budgets. In Geomorphological Hazards and Disaster Prevention, eds. Alcantara-Ayala, I. & Goudie, A, pp. 75–85. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Fosberg, F.R. (1942). Uses of Hawaiian ferns. American Fern Journal, 32, 15–23.CrossRefGoogle Scholar
Foster, D.R., Knight, D.H., & Franklin, J.F. (1998). Landscape patterns and legacies resulting from large, infrequent forest disturbances. Ecosystems, 1, 497–510.CrossRefGoogle Scholar
Francescato, V. & Scotton, M. (1999). Analisi di vegetazioni colonizzatrici di frane su flysch e morena calcarea del bellunese. L’Italia Forestale e Montana, 6, 324–349.Google Scholar
Francescato, V., Scotton, M., Zarin, D.J., Innes, J.C., & Bryant, D.M. (2001). Fifty years of natural revegetation on a landslide in Franconia Notch, New Hampshire, U.S. Canadian Journal of Botany, 79, 1477–1485.CrossRefGoogle Scholar
García-Fayos, P., García-Ventoso, B., & Cerdà, A. (2000). Limitations to plant establishment on eroded slopes in southeastern Spain. Journal of Vegetation Science, 11, 77–86.CrossRefGoogle Scholar
Garwood, N.C. (1985). Earthquake caused landslides in Panama: recovery of vegetation. National Geographic Society Research Reports, 21, 181–183.Google Scholar
Garwood, N.C., Janos, D.J., & Brokaw, N. (1979). Earthquake-caused landslides: a major disturbance to tropical forests. Science, 205, 997–999.CrossRefGoogle Scholar
Gasiev, E. (1984). Study of the Usoy landslide in Pamir. Proceedings of the Fourth International Symposium on Landslides, 1, 511–515.Google Scholar
Geertsema, M. (1998). Flowslides in waterlain muds of northwestern British Columbia, Canada. Proceedings of the 8th Congress of the International Association of Engineering Geology and the Environment, 3, 1913–1921.Google Scholar
Geertsema, M. & Pojar, J.J. (2007). Influence of landslides on biophysical diversity – a perspective from British Columbia. Geomorphology, 89, 55–69.CrossRefGoogle Scholar
Geertsema, M. & Schwab, J.W. (1995). The Mink Creek earthflow, Terrace, British Columbia. Proceedings of the 48th Canadian Geotechnical Conference, Vancouver, B.C., 2, 625–634.Google Scholar
Geist, H.J. & Lambin, E.F. (2002). Proximate causes and underlying driving forces of tropical deforestation. BioScience, 52, 143–150.CrossRefGoogle Scholar
Geist, V. (1971). Mountain Sheep. Chicago: Chicago University Press.Google Scholar
Gers, E., Florin, N., Gartner, H., et al. (2001). Application of shrubs for dendrogeomorphological analysis to reconstruct spatial and temporal landslide movement patterns. A preliminary study. Zeitschrift für Geomorphologie N.F., 125, 163–175.Google Scholar
Ghahramani, A., Ishikawa, Y., Gomi, T., & Miyata, S. (2011). Downslope soil detachment-transport on steep slopes via rain splash. Hydrological Processes, 25, 2471–2480.CrossRefGoogle Scholar
Ghestem, M., Sidle, R.C., & Stokes, A. (2011). The influence of plant root systems on subsurface flow: implications for slope stability. BioScience, 61, 869–879.CrossRefGoogle Scholar
Giampietro, M. (1999). Economic growth, human disturbance to ecological systems, and sustainability. In Ecosystems of Disturbed Ground, Ecosystems of the World 16, ed. Walker, L.R., pp. 723–746. Amsterdam: Elsevier.Google Scholar
Giannecchini, R. (2005). Rainfall triggering soil slips in the southern Apuan Alps (Tuscany, Italy). Advances in Geosciences, 2, 21–24.CrossRefGoogle Scholar
Glade, T. (2003). Landslide occurrence as a response to land use change: a review of evidence from New Zealand. Catena, 51, 297–314.CrossRefGoogle Scholar
Glenn-Lewin, D.C., Peet, R.K., & Veblen, T.T., eds. (1992). Plant Succession: Theory and Prediction. London: Chapman and Hall.Google Scholar
Glynn, P.W. (1997). Bioerosion and coral reef growth: a dynamic balance. In Life and Death of Coral Reefs, ed. Birkeland, C., pp. 68–95. London: Chapman and Hall.CrossRefGoogle Scholar
Goetz, J.N., Guthrie, R.H., & Brenning, A. (2011). Integrating physical and empirical landslide susceptibility models using generalized additive models. Geomorphology, 129, 376–386.CrossRefGoogle Scholar
Goh, C.J., Avadhani, P.N., Loh, C.S., Hanegraaf, C., & Arditti, J. (1977). Diurnal stomata and acidity rhythms in orchid leaves. New Phytologist, 78, 365–372.CrossRefGoogle Scholar
Gómez-Aparicio, L. (2009). The role of plant interactions in the restoration of degraded ecosystems: a meta-analysis across life-forms and ecosystems. Journal of Ecology, 97, 1202–1214.CrossRefGoogle Scholar
Gomi, T., Sidle, R.C., & Richardson, J.S. (2002). Understanding processes and downstream linkages of headwater systems. BioScience, 52, 905–916.CrossRefGoogle Scholar
González-Diez, A.G., Salas, L., de Teran, J.R.D., & Cendreno, A. (1996). Late Quaternary climate changes and mass movement frequency and magnitude in the Cantabrian region, Spain. Geomorphology, 15, 291–309.CrossRefGoogle Scholar
Gori, P.L., Jeer, S.P., & Highland, L.M. (2003). Enlisting the support of land-use planners to reduce debris-flow hazards in the United States. In Debris-flow Hazards Mitigation: Mechanics, Prediction and Assessment, eds. Rickenmann, D. & Chen, C., pp. 1119–1127. Rotterdam: Millpress.Google Scholar
Goudelis, G., Ganatsas, P.P., Spanos, I., & Karpi, A. (2007). Effect of repeated fire on plant community recovery in Penteli, central Greece. In Eco- and Ground Bio-Engineering: The Use of Vegetation to Improve Slope Stability, eds. Stokes, A., Spanos, I., & Norris, J.E., pp. 337–344. Proceedings of the First International Conference on Eco-Engineering, 13–17 September 2004. Dordrecht: Springer.CrossRefGoogle Scholar
Goudie, A.S. (2010). Geomorphological hazards and global climate change. In Geomorphological Hazards and Disaster Prevention, eds. Alcantara-Ayala, I. & Goudie, A., pp. 245–255. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Goudie, A.S. & Boardman, J. (2010). Soil erosion. In Geomorphological Hazards and Disaster Prevention, eds. Alcantara-Ayala, I. & Goudie, A., pp. 177–188. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Graettinger, A.H., Manville, V., & Briggs, R.M. (2010). Deposition record of historic lahars in the upper Whangaehu Valley, Mt. Ruapehu, New Zealand: implications for trigger mechanisms, flow dynamics and lahar hazards. Bulletin of Volcanology, 72, 279–296.CrossRefGoogle Scholar
Grant, F. (2012). . Accessed 25 February 2012.
Grau, H.R., Aide, T.M., Zimmerman, J.K., et al. (2003). The ecological consequences of socioeconomic land-use changes in postagriculture Puerto Rico. BioScience, 53, 1159–1168.CrossRefGoogle Scholar
Greene, H.G., Murai, L.Y., Watts, P., et al. (2006). Submarine landslides in the Santa Barbara Channel as potential tsunami sources. Natural Hazards and Earth System Sciences, 6, 63–88.CrossRefGoogle Scholar
Gryta, J.J. & Bartolomew, M.J. (1989). Factors influencing the distribution of debris avalanches associated with the 1969 Hurricane Camille in Nelson County, Virginia. Geological Society of America Special Paper, 236, 15–27.CrossRefGoogle Scholar
Guariguata, M.R. (1990). Landslide disturbance and forest regeneration in the Upper Luquillo Mountains of Puerto Rico. Journal of Ecology, 78, 814–832.CrossRefGoogle Scholar
Guariguata, M.R. & Larsen, M.C. (1990). Preliminary map showing location of landslides in El Yunque Quadrangle, Puerto Rico. U.S. Geological Survey Open File Report89–257.Google Scholar
Günther, A., Carstensen, A., & Pohl, W. (2004). Automated sliding susceptibility mapping of rock slopes. Natural Hazards and Earth System Sciences, 4, 95–102.CrossRefGoogle Scholar
Gupta, R.P. & Joshi, B.C. (1990). Landslide hazard zoning using the GIS approach – a case study from the Ramganga Catchment, Himalayas. Engineering Geology, 28, 119–131.CrossRefGoogle Scholar
Guzmán-Grajales, S.M., & Walker, L.R. (1991). Differential seedling responses to litter after Hurricane Hugo in the Luquillo Experimental Forest, Puerto Rico. Biotropica, 23, 407–413.CrossRefGoogle Scholar
Guzzetti, F. (2000). Landslide fatalities and the evaluation of landslide risk in Italy. Engineering Geology, 58, 89–107.CrossRefGoogle Scholar
Guzzetti, F., Carrara, A., Cardinali, M., & Reichenbach, P. (1999). Landslide hazard evaluation: a review of current techniques and their application in a multi-scale study, Central Italy. Geomorphology, 31, 181–216.CrossRefGoogle Scholar
Habu, J. (2004). Ancient Jomon of Japan. Cambridge: Cambridge University Press.Google Scholar
Haeussler, S., Tappeiner, J.C., II, & Greber, B.J. (1995). Germination, survival, and early growth of red alder seedlings in the central Coast Range of Oregon. Canadian Journal of Forest Research, 25, 1639–1651.CrossRefGoogle Scholar
Haflidason, H., Sejrup, H.P., Nygård, A., et al. (2004). The Storegga Slide: architecture, geometry and slide development. Marine Geology, 213, 201–234.CrossRefGoogle Scholar
Hafner, D.J. (1993). North American Pika (Ochotona princeps) as a Late Quaternary biogeographic indicator species. Quaternary Research, 39, 373–380.CrossRefGoogle Scholar
Haigh, M.J., Rawat, J.S., & Baraya, S.K. (1988). Environmental correlations of landslide frequency along new highways in the Himalaya  – preliminary results. Catena, 15, 539–553.CrossRefGoogle Scholar
Haigh, M.J., Rawat, J.S., Bartarya, S.K., & Rawat, M.S. (1993). Environmental influences on landslide activity: Almora Bypass, Kumaun Lesser Himalaya. Natural Hazards, 8, 153–170.CrossRefGoogle Scholar
Halvorson, J.J., Smith, J.L., & Kennedy, A.C. (2005). Lupine effects on soil development and function during early primary succession at Mount St. Helens. In Ecological Responses to the 1980 Eruption of Mount St. Helens, eds. Dale, V.H., Swanson, F.J., & Crisafulli, C.M., pp. 243–254. New York: Rotterdam.CrossRefGoogle Scholar
Hamdouni, R.El, Irigaray, C., & Chacón, J. (1996). Landslides inventory and determining factors in the Albuñuelas river basin (Granada, Spain). In Landslides, eds. Chacón, J., Irigaray, C., & Fernández, T., pp. 21–30. Rotterdam: Balkema.Google Scholar
Hampton, M.A., Lee, H.J., & Locat, J. (1996). Submarine landslides. Reviews of Geophysics, 34, 33–59.CrossRefGoogle Scholar
Hancox, G.T., Perrin, N.D., & Dellow, G.D. (2002). Recent studies of historical earthquake-induced landsliding, ground damage and MM intensity in New Zealand. Bulletin of New Zealand Society of Earthquake Engineering, 35, 59–94.Google Scholar
Hansen, A. (1984a). Landslide hazard analysis. In Slope Instability, eds. Brunsden, D. & Prior, D.B., pp. 523–602. New York: Wiley.Google Scholar
Hansen, M.J. (1984b). Strategies for classification of landslides. In Slope Instability, eds. Brunsden, D. & Prior, D.B., pp. 1–25. New York: Wiley.Google Scholar
Havlick, D.G. (2002). No Place Distant. Washington, D.C.: Island Press.Google Scholar
Heezen, B.C., Ewing, M., & Ericson, D.B. (1955a). Reconnaissance survey of the abyssal plain south of Newfoundland. Deep-Sea Research, 2, 122–133.CrossRefGoogle Scholar
Heezen, B.C., Ewing, M., & Menzies, R.J. (1955b). The influence of submarine turbidity currents on abyssal productivity. Oikos, 6, 170–182.CrossRefGoogle Scholar
Henkel, D.J. (1970). The role of waves in causing submarine landslides. Geotechnique, 20, 75–80.CrossRefGoogle Scholar
Herrington, R.E. (1988). Talus use by amphibians and reptiles in the Pacific Northwest. In Management of Amphibians, Reptiles and Small Mammals in North America, USDA Forest Service General Technical Report RM-166, eds. Szaro, R.C., Severson, K.E., & Patton, D.R., pp. 216–221. Flagstaff, Arizona: USDA Forest Service.Google Scholar
Heshmati, M., Arifin, A., Shamshuddin, J., Majid, N.M., & Ghaituri, M. (2011). Factors affecting landslides occurrence in agro-ecological zones in the Merek catchment, Iran. Journal of Arid Environments, 75, 1072–1082.CrossRefGoogle Scholar
Hewitt, K. (1997). Regions of Risk: A Geographical Introduction to Disasters. Harlow, U.K.: Addison-Wesley Longman.Google Scholar
Hewitt, K. (2006). Disturbance regime landscapes: mountain drainage systems interrupted by large rockslides. Progress in Physical Geography, 30, 365–393.CrossRefGoogle Scholar
Hewitt, K. (2009). Rock avalanches that travel onto glaciers and related developments, Karakoram Himalaya, Inner Asia. Geomorphology, 103, 66–79.CrossRefGoogle Scholar
Highland, L.M. (1997). Landslide hazard and risk: current and future directions for the United States Geological Survey's landslide program. In Landslide Risk Assessment, eds. Cruden, D. & Fell, R., pp. 207–213. Rotterdam: Balkema.Google Scholar
Hilton, R.G., Galy, A., Hovius, N., Horng, M.-J., & Chen, H. (2011). Efficient transport of fossil organic carbon to the ocean by steep mountain rivers: an orogenic carbon sequestration mechanism. Geology, 39, 71–74.CrossRefGoogle Scholar
Hobbs, R.J., Jentsch, A., & Temperton, V.M. (2007a). Restoration as a process of assembly and succession mediated by disturbance. In Linking Restoration and Ecological Succession, eds. Walker, L.R., Walker, J, & Hobbs, R.J., pp. 150–167. New York: Springer.CrossRefGoogle Scholar
Hobbs, R.J., Walker, L.R., & Walker, J. (2007b). Integrating restoration and succession. In Linking Restoration and Ecological Succession, eds. Walker, L.R., Walker, J, & Hobbs, R.J., pp. 168–179. New York: Springer.CrossRefGoogle Scholar
Hobbs, R.J., Higgs, E., & Harris, J.A. (2009). Novel ecosystems: implications for conservation and restoration. Trends in Ecology and Evolution, 24, 599–605.CrossRefGoogle ScholarPubMed
Hodge, A., Robinson, D., & Fitter, A. (2000). Are microorganisms more effective than plants at competing for nitrogen? Trends in Plant Science, 5, 304–308.CrossRefGoogle ScholarPubMed
Hodkinson, I.D., Webb, N.R., & Coulson, S.J. (2002). Primary community assembly on land  – the missing stages: why are the heterotrophic organisms always there first? Journal of Ecology, 90, 569–577.CrossRefGoogle Scholar
Holl, K.D. (1998). Do perching structures elevate seed rain and seedling establishment in abandoned tropical pasture? Restoration Ecology, 6, 253–261.CrossRefGoogle Scholar
Holm, H., Bovis, M., & Jakob, M. (2004). The landslide response of alpine basins to post-Little Ice Age glacial thinning and retreat in southwestern British Columbia. Geomorphology, 57, 201–216.CrossRefGoogle Scholar
Holtz, R.D. & Schuster, R.L. (1996). Stabilization of soil slopes. In Landslides: Investigation and Mitigation, eds. Turner, A.K. & Schuster, R.S., pp. 439–473. Special Report 247, Transport Research Board, Washington, D.C.: National Academic Press.Google Scholar
Hong, Y., Adler, R.F., & Huffman, G.J. (2007). Satellite remote sensing for global landslide monitoring. EOS, Transactions of the American Geophysical Union, 88, 357–358.CrossRefGoogle Scholar
Hou, J.-J., Han, M.-K., Chai, B.-L., & Han, H.-Y. (1998). Geomorphological observations of active faults in the epicentral region of the Huaxian large earthquake in 1556 in Shaanxi Province, China. Journal of Structural Geology, 20, 549–557.CrossRefGoogle Scholar
Hou, P.-C.L, Zou, X., Huang, C.-Y., & Chien, H.-J. (2005). Plant litter decomposition influenced by soil animals and disturbance in a subtropical rainforest of Taiwan. Pedobiology, 49, 539–547.CrossRefGoogle Scholar
Huggett, R.J. (1998). Soil chronosequences, soil development, and soil evolution. Catena, 32, 155–172.CrossRefGoogle Scholar
Hughes, F., Vitousek, P.M., & Tunison, T. (1991). Alien grass invasion and fire in the seasonal submontane zone of Hawaii. Ecology, 72, 743–746.CrossRefGoogle Scholar
Hühnerbach, V. & Masson, D.G. (2004). Landslides in the North Atlantic and its adjacent seas: an analysis of their morphology, setting and behavior. Marine Geology, 213, 343–362.CrossRefGoogle Scholar
Hull, J.C. & Scott, R.C. (1982). Plant succession on debris avalanches of Nelson County, Virginia. Castanea, 47, 158–176.Google Scholar
Hupp, C.R. (1983). Seedling establishment on a landslide site. Castanea, 48, 89–98.Google Scholar
IAEG Commission on Landslides (1990). Suggested nomenclature for landslides. Bulletin of the International Association of Engineering Geology, 41, 13–16.CrossRefGoogle Scholar
Ibetsberger, H.J. (1996). The Tsergo Ri landslide: an uncommon area of high morphological activity in the Langthang valley, Nepal. Tectonophysics, 260, 85–93.CrossRefGoogle Scholar
Ikeya, H. (1989). Debris flow and its countermeasures in Japan. Bulletin of The International Association of Engineering Geology, 40, 15–33.CrossRefGoogle Scholar
Imaizumi, F., Sidle, R.C., & Kamei, R. (2008). Effects of forest harvesting on the occurrence of landslides and debris flows in steep terrain of central Japan. Earth Surface Processes and Landforms, 33, 827–840.CrossRefGoogle Scholar
Innes, J.L. (1985). Lichenometric dating of debris-flow deposits on alpine colluvial fans in southwest Norway. Earth Surface Processes, 19, 519–524.CrossRefGoogle Scholar
IPCC (2007). Climate Change 2007: The Physical Science Basis. Contribution of Working Group I to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change, eds. Solomon, S., Qin, D., Manning, M., et al. Cambridge: Cambridge University Press.Google Scholar
Iverson, R.M. (2005). Regulation of landslide motion by dilatancy and pore pressure feedback. Journal of Geophysics Research, 110, F02015, .CrossRefGoogle Scholar
James, I.L. (1973). Mass movements in the upper Pohangina Catchment, Ruahine Range. Journal of Hydrology (New Zealand), 12, 92–102.Google Scholar
Jane, G.T. & Green, T.G.A. (1983). Morphology and incidence of landslides in the Kaimai Range, North Island, New Zealand. New Zealand Journal of Geology and Geophysics, 26, 71–84.CrossRefGoogle Scholar
Janos, D.P., Sahley, C.T., & Emmons, L.H. (1995). Rodent dispersal of vesicular-arbuscular mycorrhizal fungi in Amazonian Peru. Ecology, 76, 1852–1858.CrossRefGoogle Scholar
Janzen, D.H. (1973). Sweep samples of tropical foliar insects: effects of season, vegetation types, elevation, time of day and insularity. Ecology, 54, 687–701.CrossRefGoogle Scholar
Jenny, H. (1941). Factors of Soil Formation. New York: McGraw-Hill.Google Scholar
Jenny, H. (1980). The Soil Resource: Origin and Behavior. New York: Springer.CrossRefGoogle Scholar
Jibson, R.W. (1989). Debris flows in southern Puerto Rico. Geological Society of America Special Paper 236, 29–55.CrossRefGoogle Scholar
Jibson, R.W. & Keefer, D.K. (1989). Statistical analysis of factors affecting landslide distribution in the New Madrid seismic zone, Tennessee and Kentucky. Engineering Geology, 27, 509–542.CrossRefGoogle Scholar
Johnson, A.M. & Rodine, J.R. (1984). Debris flow. In Slope Instability, eds. Brunsden, D. & Prior, D.B., pp. 257–361. Chichester: Wiley.Google Scholar
Johnson, E.A. & Miyanishi, K. (2008). Testing the assumptions of chronosequences in succession. Ecology Letters, 11, 419–431.CrossRefGoogle ScholarPubMed
Johnson, P.N. (1976). Changes in landslide vegetation at Lake Thomson, Fiordland, New Zealand. New Zealand Journal of Botany, 14, 197–198.CrossRefGoogle Scholar
Jones, F.O. (1973). Landslides of Rio de Janeiro and the Sierra das Araras Escarpment, Brazil. U.S. Geological Survey Professional Paper 697.
Kamai, T.Shuzui, H., Kasahara, R., & Kobayashi, Y. (2004). Earthquake risk assessments of large residential fill-slope in urban areas. Journal of Japanese Landslide Society, 40, 389–399.CrossRefGoogle Scholar
Kaplan, B.A. & Moermond, T.C. (2000). Foraging ecology of the mountain monkey (Cercopithecus l'hoesti): implications for its evolutionary history and use of disturbed forest. American Journal of Primatology, 50, 227–246.3.0.CO;2-S>CrossRefGoogle Scholar
Kappelle, M., Avertin, G., Juárez, M.E., & Zamora, N. (2000). Useful plants within a campesino community in a Costa Rican montane cloud forest. Mountain Research and Development, 20, 162–171.CrossRefGoogle Scholar
Kay, E.A. (ed.) (1994). A Natural History of the Hawaiian Islands. Honolulu: University of Hawaii Press.Google Scholar
Kayen, R.E. & Lee, H.J. (1991). Pleistocene slope instability of gas hydrate-laden sediment on the Beaufort Sea margin. Marine Geotechnology, 10, 125–142.CrossRefGoogle Scholar
Keefer, D.K. (1984). Landslides caused by earthquakes. Geological Society of America Bulletin, 95, 406–421.2.0.CO;2>CrossRefGoogle Scholar
Keefer, D.K. (1994). The importance of earthquake-induced landslides to long-term slope erosion and slope-failure hazards in seismically active regions. Geomorphology, 10, 265–284.CrossRefGoogle Scholar
Keefer, D.K. (2000). Statistical analysis of an earthquake-induced landslide distribution  – the 1989 Loma Prieta, California event. Engineering Geology, 58, 231–249.CrossRefGoogle Scholar
Keefer, D.K. & Larsen, M.C. (2007). Assessing landslide hazards. Science, 316, 1136–1139.CrossRefGoogle ScholarPubMed
Keefer, D.K. & Wilson, R.C. (1989). Predicting earthquake-induced landslides, with emphasis on arid and semi-arid environments, In: Landslides in Arid and Semi-arid Environments, eds. Sadler, P.M. & Morton, D.M., Vol. 2, Part 1, pp. 118–149. Riverside, California, U.S.: Inland Geological Society Southern California Publishing.Google Scholar
Keefer, D.K., Wilson, R.C., Mark, R.K., et al. (1987). Realtime landslide warning during heavy rainfall. Science, 238, 921–925.CrossRefGoogle Scholar
Keim, R.F. & Skaugset, A.E. (2003). Modelling effects of forest canopies on slope stability. Hydrological Processes, 17, 1457–1467.CrossRefGoogle Scholar
Keller, E.A. (1996). Environmental Geology, 7th Edition. Upper Saddle River, New Jersey: Prentice Hall.Google Scholar
Kelsey, H.M. (1978). Earthflows in Franciscan melange, Van Duzen River basin, California. Geology, 6, 361–364.2.0.CO;2>CrossRefGoogle Scholar
Kerr, G.H. (2000). Okinawa: The History of an Island People. Tokyo: Tuttle Publishing.Google Scholar
Kessler, M. (1999). Plant species richness and endemism during natural landslide succession in a perhumid montane forest in the Bolivian Andes. Ecotropica, 4, 123–136.Google Scholar
Kessler, M. (2010). Biogeography of ferns. In Fern Ecology, eds. Mehltreter, K., Walker, L.R, & Sharpe, J.M., pp. 22–60. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Keys, D. (2000). Catastrophe: An Investigation into the Origins of the Modern World. New York: Ballantine Books.Google Scholar
Khan, B., Abdukadiri, A., Qureshi, R., & Mustaf, G. (2011). Medicinal uses of plants by the inhabitants of Khunjerab National Park, Gilgit, Pakistan. Pakistan Journal of Botany, 43, 2301–2310.Google Scholar
Khazai, B. & Sitar, N. (2003). Evaluation of factors controlling earthquake-induced landslides caused by Chi-Chi earthquake and comparison with the Northridge and Loma Prieta events. Engineering Geology, 71, 79–95.CrossRefGoogle Scholar
Klink, C.A. & Joly, C.A. (1989). Identification and distribution of C3 and C4 grasses in open and shaded habitats in Sao Paulo State, Brazil. Biotropica, 21, 30–34.CrossRefGoogle Scholar
Kobayashi, S., Gomi, T., Sidle, R.C., & Takemon, Y. (2010). Disturbances structuring macroinvertebrate communities in steep headwater streams: relative importance of forest clearcutting and debris flow occurrence. Canadian Journal of Fisheries and Aquatic Sciences, 67, 427–444.CrossRefGoogle Scholar
Kojan, E. & Hutchinson, J.N. (1978). Mayunmarca rockslide and debris flow, Peru. In Rockslides and Avalanches, 1, Natural Phenomena, ed. Voight, B, pp. 316–361. Amsterdam: Elsevier.Google Scholar
Kondratyev, K.Y., Grigoryev, A.A., & Varotsos, C.A. (2002). Environmental Disasters: Anthropogenic and Natural. New York: Springer.Google Scholar
Koner, R. & Chakravarty, D. (2011). Earthquake response of external mine overburden dumps: a micromechanical approach. Natural Hazards, 56, 941–959.CrossRefGoogle Scholar
Korup, O., McSaveney, M.J., & Davies, T.R.H. (2004). Sediment generation and delivery from large historic landslides in the Southern Alps, New Zealand. Geomorphology, 61, 189–207.CrossRefGoogle Scholar
Krajick, K. (1999). Scientists and climbers discover cliff ecosystems. Science, 283, 1623–1625.CrossRefGoogle Scholar
Kristiansen, J. (1986). Blast-induced liquefaction of soils, a reference search. Norwegian Geotechnical Institute, Report 52209–1. Cited in Locat & Lee (2002).
Krohn, J.P. (1992). Landslide mitigation using horizontal drains, Pacific Palisades area, Los Angeles, California. Reviews in Engineering Geology, 9, 63–68.CrossRefGoogle Scholar
Kronfeld-Schor, N. & Dayan, T. (2003). Partitioning of time as an ecological resource. Annual Review of Ecology, Evolution & Systematics, 34, 153–181.CrossRefGoogle Scholar
Krümmelbein, J., Peth, S., Zhao, Y., & Horn, R. (2009). Grazing-induced alterations of soil hydraulic properties and functions in Inner Mongolia, PR China. Journal of Plant Nutrition and Soil Science, 172, 769–776.CrossRefGoogle Scholar
Kubešová, S. & Chytrý, M. (2005). Diversity of bryophytes on treeless cliffs and talus slopes in a forested central European landscape. Journal of Bryology, 27, 35–46.CrossRefGoogle Scholar
Kull, C.A. & Magilligan, F.J. (1994). Controls over landslide distribution in the White Mountains, New Hampshire. Physical Geography, 14, 325–341.Google Scholar
Kurtaslan, B.O. & Demirel, Ö. (2011). Pollution caused by people's use for socio-economic purposes (agricultural, recreation and tourism) in the Gölcük Plain Settlement at Bozdağ Plateau (Ödemis-Izmir/Turkey): a case study. Environmental Monitoring and Assessment, 175, 419–430.CrossRefGoogle Scholar
Lajczak, A. (2002). Slope remodelling in areas exploited by skiers: case study of the northern flysch slope of Pilsko Mountain, Polish Carpathian Mountains. In Applied Geomorphology: Theory and Practice, ed. Allison, R.J., pp. 92–100. Chichester: Wiley.
Lambers, H., Chapin, F.S., III, & Pons, T.L. (1998). Plant Physiological Ecology. New York: Springer.CrossRefGoogle Scholar
Lambert, J.D.H. (1972). Plant succession on tundra mudflows: preliminary observations. Arctic, 25, 99–106.CrossRefGoogle Scholar
Langenheim, J.H. (1956). Plant succession on a sub-alpine earthflow in Colorado. Ecology, 37, 301–317.CrossRefGoogle Scholar
Large, M.F. & Braggins, J.E. (2004). Tree Ferns. Portland: Timber Press.Google Scholar
Larsen, M.C. (2008). Rainfall-triggered landslides, anthropogenic hazards, and mitigation strategies. Advances in Geosciences, 14, 147–153.CrossRefGoogle Scholar
Larsen, M.C. & Parks, J.E. (1997). How wide is a road? The association of roads and mass-wasting in a forested montane environment. Earth Surface Processes and Landforms, 22, 835–848.3.0.CO;2-C>CrossRefGoogle Scholar
Larsen, M.C. & Santiago Román, A. (2001). Mass wasting and sediment storage in a small montane watershed: an extreme case of anthropogenic disturbance in the humid tropics. In Geomorphic Processes and Riverine Habitat, Water Science and Application, Volume 4, eds. Dorava, J.M., Fitzpatrick, F., Palcsak, B.B., & Montgomery, D.R., pp. 119–138. Washington, D.C.: American Geophysical Union Monograph.CrossRefGoogle Scholar
Larsen, M.C. & Simon, A. (1993). A rainfall intensity-duration threshold for landslides in a humid-tropical environment, Puerto Rico. Geografiska Annaler, 75A, 13–23.CrossRefGoogle Scholar
Larsen, M.C. & Torres-Sánchez, A.J. (1990). Rainfall –soil moisture relations in landslide-prone areas of a tropical rain forest, Puerto Rico. International Symposium on Tropical Hydrology, 4th Caribbean Island Water Resources Congress, San Juan, Puerto Rico.Google Scholar
Larsen, M.C. & Torres-Sánchez, A.J. (1992). Landslides triggered by Hurricane Hugo in eastern Puerto Rico, September 1989. Caribbean Journal of Science, 28, 113–125.Google Scholar
Larsen, M.C. & Torres-Sánchez, A.J. (1996). Geographic relations of landslide distributions and assessment of landslide hazards in the Blanco, Cibuco, and Coamo Basins, Puerto Rico. U.S. Geological Survey Water Resources Investigations Report95–4029. San Juan, Puerto Rico.Google Scholar
Larsen, M.C. & Torres-Sánchez, A.J. (1998). The frequency and distribution of recent landslides in three montane tropical regions of Puerto Rico. Geomorphology, 24, 309–331.CrossRefGoogle Scholar
Larsen, M.C. & Wieczorek, G.F. (2006). Geomorphic effects of large debris flows and flash floods, northern Venezuela, 1999. Zeitschrift für Geomorphologie, 145, 147–175.Google Scholar
Larsen, M.C., Torres-Sánchez, A.J., & Concepción, I.M. (1999). Slopewash, surface runoff, and fine-litter transport in forest and landslide scars in humid-tropical steeplands, Luquillo Experimental Forest, Puerto Rico. Earth Surface Processes and Landforms, 24, 481–502.3.0.CO;2-G>CrossRefGoogle Scholar
Larson, D.W., Matthes, U., & Kelly, P.E. (2000). Cliff Ecology: Pattern and Process in Cliff Ecosystems. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Lateltin, O., Beer, C., Raetzo, H., & Caron, C. (1997). Landslides in flysch terranes of Switzerland: causal factors and climate change. Eclogae Geologicae Helvetiae, 90, 401–406.Google Scholar
Lavelle, P. & Spain, A.V. (2001). Soil Ecology. Dordrecht: Kluwer Academic Publishers.CrossRefGoogle Scholar
Lawrey, J.D. (1980). Correlations between lichen secondary chemistry and grazing activity by Pallifera varia. Bryologist, 83, 328–334.CrossRefGoogle Scholar
Lecointre, J., Hodgson, K., Neall, V., & Cronin, S. (2004). Lahar-triggering mechanisms and hazard at Ruapehu Volcano, New Zealand. Natural Hazards, 31, 85–109.CrossRefGoogle Scholar
Lee, H., Ryan, H., Kayen, R.E., et al. (2006). Varieties of submarine failure morphologies of seismically-induced landslides in Alaskan fjords. Norwegian Journal of Geology, 86, 221–230.Google Scholar
Lerol, E., Rouzeal, O., Scanyic, J.-Y., Weber, C.C., & Vargas, C.G. (1992). Remote sensing and GIS technology in landslide hazard mapping in the Colombian Andes. Episodes, 15, 32–35.Google Scholar
Levey, D. J. (1988). Tropical wet forest treefall gaps and distributions of understory birds and plants. Ecology, 69, 1076–1089.CrossRefGoogle Scholar
Lewis, N.K. (1998). Landslide-driven distribution of aspen and steppe on Kathul Mountain, Alaska. Journal of Arid Environments, 38, 421–435.CrossRefGoogle Scholar
Li, T. (1989). Landslides: extent and economic significance in China. In Landslides: Extent and Economic Significance, eds. Brabb, E.E. & Harrod, B.L., pp. 271–287. Washington, DC: Proceedings of the 28th International Geological Congress, Symposium on Landslides.Google Scholar
Li, Y., Ruan, H., Zou, X., & Myster, R.W. (2005). Response of major soil decomposers to landslide disturbance in a Puerto Rican rainforest. Soil Science, 170, 202–211.CrossRefGoogle Scholar
Liddle, M. (1997). Recreation Ecology: The Ecological Impact of Outdoor Recreation and Ecotourism. New York: Chapman and Hall.Google Scholar
Ließ, M., Glaser, B., & Huwe, B. (2011). Functional soil-landscape modeling to estimate slope stability in a steep Andean mountain forest region. Geomorphology, 299, 287–299.CrossRefGoogle Scholar
Lin, W.-T., Lin, C.-Y., & Chou, W.-C. (2006). Assessment of vegetation recovery and soil erosion at landslides caused by a catastrophic earthquake: a case study in central Taiwan. Ecological Engineering, 28, 79–89.CrossRefGoogle Scholar
Lipman, P.W., Lockwood, J.P., Okamura, R.T., Swanson, D.A., & Yamashita, K.M. (1985). Ground deformation associated with the 1975 magnitude-7.2 earthquake and resulting changes in activity of Kilauea Volcano, Hawaii. U.S. Geological Survey, Professional Paper 1276.
Lipman, P.W., Normark, W.R., Moore, J.G., Wilson, J.B., & Gutmacher, C.E. (1988). The giant submarine Alika debris slide, Mauna Loa, Hawaii. Journal of Geophysical Research, 93, 4279–4299.CrossRefGoogle Scholar
Locat, J. & Lee, H.J. (2002). Submarine landslides: advances and challenges. Canadian Geotechnical Journal, 39, 193–212.CrossRefGoogle Scholar
Long, C.A. (2008). The Wild Mammals of Wisconsin. Sophia, Bulgaria: Pensoft Publishers.Google Scholar
Long, D., Smith, D.E., & Dawson, A.G. (1989). A Holocene tsunami deposit in eastern Scotland. Journal of Quaternary Science, 4, 61–66.CrossRefGoogle Scholar
López-Pamo, E., Barettino, D., Antón-Pacheco, G., et al. (1999). The extent of the Aznalcóllar pyritic sludge spill and its effects on soils. Science of the Total Environment, 242, 57–88.CrossRefGoogle ScholarPubMed
López-Rodríguez, S.R. & Blanco-Libreros, J.F. (2008). Illicit crops in tropical America: deforestation, landslides, and the terrestrial carbon stocks. Ambio, 37, 1–3.CrossRefGoogle ScholarPubMed
Lourens, S. & Nel, J.A.J. (1990). Winter activity of bat-eared foxes Otocyon megalotis in the Cape West Coast. South African Journal of Zoology, 25, 124–132.CrossRefGoogle Scholar
Lowe, S., Brown, M., Boudjelas, S., & De Poorter, M. (2000). 100 of the world's worst invasive alien species: a selection from the global invasive species database. The Invasive Species Specialist Group of the Species Survival Commission of the World Conservation Union. First published in Aliens 12, December 2000. Reprinted Nov. 2004. Auckland, New Zealand: Hollands Printing.Google Scholar
Lucchitta, B.K. (1978). A large landslide on Mars. Geological Society of America Bulletin, 89, 1601–1609.2.0.CO;2>CrossRefGoogle Scholar
Lundgren, L. (1978). Studies of soil and vegetation development on fresh landslide scars in the Mgeta Valley, Western Ulugura Mountains, Tanzania. Geografiska Annaler, 60A, 91–127.CrossRefGoogle Scholar
Lundgren, L. (1980). Comparison of surface runoff and soil loss from runoff plots in forest and small-scale agriculture in the Usambara Mts., Tanzania. Geografiska Annaler, 62A, 113–148.CrossRefGoogle Scholar
Mackey, B.H., Roering, J.J., & Lamb, M.P. (2011). Landslide-dammed paleolake perturbs marine sedimentation and drives genetic change in anadromous fish. Proceedings of the National Academy of Sciences (U.S.), 108, 18905–18909.CrossRefGoogle ScholarPubMed
Madej, M.A. (2001). Erosion and sediment delivery following removal of forest roads. Earth Surface Processes and Landforms, 26, 175–190.3.0.CO;2-N>CrossRefGoogle Scholar
Magnússon, B., Magnússon, S.H., & Fridriksson, S. (2009). Developments in plant colonization and succession on Surtsey during 1999–2008. Surtsey Research, 12, 57–76.Google Scholar
Maheswaran, J. & Gunatilleke, I.A.U.N. (1988). Litter decomposition in a lowland rain forest and a deforested area in Sri Lanka. Biotropica, 20, 90–99.CrossRefGoogle Scholar
Malanson, G.P. & Butler, D.R. (1984). Transverse pattern of vegetation on avalanche paths in the northern Rocky Mountains, Montana. Great Basin Naturalist, 44, 453–458.Google Scholar
Malanson, G.P. & Cairnes, D.M. (1997). Effects of dispersal, population delays, and forest fragmentation on tree migration rates. Plant Ecology, 131, 67–79.CrossRefGoogle Scholar
Malouta, D.N., Gorsline, D.S., & Thornton, S.E. (1981). Processes and rates of recent (Holocene) basin filling in an active transform margin: Santa Monica Basin, California continental borderland. Journal of Sedimentary Petrology, 51, 1077–1095.Google Scholar
Mangan, S.A. & Adler, G.H. (1999). Consumption of arbuscular mycorrhizal fungi by spiny rats (Proechimys semispinosus) in eight isolated populations. Journal of Tropical Ecology, 15, 779–790.CrossRefGoogle Scholar
Mark, A.F. & Dickinson, K.J.M. (2001). Deschampsia cespitosa subalpine tussockland on the Green Lake landslide, Hunter Mountains, Fiord Ecological Region, New Zealand. New Zealand Journal of Botany, 39, 577–585.CrossRefGoogle Scholar
Mark, A.F., Scott, G.A.M., Sanderson, F.R., & James, P.W. (1964). Forest succession on landslides above Lake Thomson, Fiordland. New Zealand Journal of Botany, 2, 60–89.CrossRefGoogle Scholar
Mark, A.F., Dickinson, K.J.M., & Fife, A.J. (1989). Forest succession on landslides in the Fiord Ecological Region, southwestern New Zealand. New Zealand Journal of Botany, 27, 369–390.CrossRefGoogle Scholar
Maser, C., Rodiek, J.E., & Thomas, J.W. (1979). Cliffs, talus, and caves. In Wildlife Habitats in Managed Forests of the Blue Mountains of Oregon and Washington, USDA Handbook 553, ed. Thomas, J.W., pp. 96–103. Washington, D.C: United States Department of Agriculture.Google Scholar
Masson, D.G., Harbitz, C.B., Wynn, R.B., Pedersen, G., & Løvholt, F. (2006). Submarine landslides: processes, triggers and hazard prediction. Philosophical Transactions of the Royal Society A, 364, 2009–2039.CrossRefGoogle ScholarPubMed
Matheson, J. (1995). Organization of forest bird and small mammal communities of the Niagara Escarpment, Canada. MS Thesis, University of Guelph, Canada.
Matsuoka, N. (2001). Solifluction rates, processes and landforms: a global review. Earth-Science Reviews, 55, 107–134.CrossRefGoogle Scholar
Matt, F., Almeida, K., Arguero, A., & Reudenbach, C. (2008). Seed dispersal by birds, bats and wind. In Gradients in a Tropical Mountain Ecosystem of Ecuador: Ecological Studies, eds. Beck, E., Bendix, J., Kottke, I., Makeschin, F., & Monsandl, R.. Ecological Studies volume 198, pp. 157–165, The Netherlands: Springer Press.CrossRefGoogle Scholar
Matthews, J.A. (1992). The Ecology of Recently-Deglaciated Terrain: A Geoecological Approach to Glacier Forelands and Primary Succession. Cambridge: Cambridge University Press.Google Scholar
May, C.L. & Gresswell, R.E. (2004). Spatial and temporal patterns of debris-flow deposition in the Oregon Coast Range, U.S. Geomorphology, 57, 135–149.CrossRefGoogle Scholar
McClanahan, T.R. & Wolfe, R.W. (1993). Accelerating forest succession in fragmented landscapes: the role of birds and perches. Conservation Biology, 7, 279–288.CrossRefGoogle Scholar
McDonnell, M.J. & Stiles, E.W. (1983). The structural complexity of old field vegetation and the recruitment of bird-dispersed plant species. Oecologia, 56, 109–116.CrossRefGoogle Scholar
McDowell, W.M. & Asbury, C.E. (1994). Export of carbon, nitrogen and major cations from three tropical montane watersheds. Limnology and Oceanography, 39, 111–125.CrossRefGoogle Scholar
McDowell, W.M., Sánchez, C.G., Asbury, C.E., & Ramos Pérez, C.R. (1990). Influence of sea salt aerosols and long range transport on precipitation chemistry at El Verde, Puerto Rico. Atmospheric Environment, 24A, 2813–2821.CrossRefGoogle Scholar
McIlveen, W.D. & Cole, Jr., H. (1976). Spore dispersal of Endogonaceae by worms, ants, wasps, and birds. Canadian Journal of Botany, 54, 1486–1489.CrossRefGoogle Scholar
McIntosh, R.P. (1985). The Background of Ecology. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
McKean, J. & Roering, J. (2004). Objective landslide detection and surface morphology mapping using high-resolution airborne laser altimetry. Geomorphology, 57, 331–351.CrossRefGoogle Scholar
McMillian, M.A. & Larson, D.W. (2002). Effects of rock climbing on the vegetation of the Niagara Escarpment in southern Ontario, Canada. Conservation Biology, 16, 389–398.CrossRefGoogle Scholar
Meadows, A., Meadows, P.S., Wood, D.M., & Murray, J.M.H. (1994). Microbiological effects on slope stability: an experimental analysis. Sedimentology, 41, 423–435.CrossRefGoogle Scholar
Medellin, R.A. (1994). Seed dispersal of Cecropia obtusifolia by two species of opposums in the Selva Lacandona, Chiapas, Mexico. Biotropica, 26, 400–407.CrossRefGoogle Scholar
Mehltreter, K. (2010). Fern conservation. In Fern Ecology, eds. Mehltreter, K., Walker, L.R., & Sharpe, J.M., pp. 323–359. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Mehltreter, K., Walker, L.R., & Sharpe, J.M. (eds.) (2010). Fern Ecology. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Meiners, S.J., Rye, T.A., & Klass, J.R. (2007). On a level field: the utility of studying native and non-native species in successional systems. Applied Vegetation Science, 12, 45–53.CrossRefGoogle Scholar
Melick, D.R. & Ashton, D.H. (1991). The effects of natural disturbances on warm temperate rainforests in south-eastern Australia. Australian Journal of Botany, 39, 1–30.CrossRefGoogle Scholar
Menéndez-Duarte, R., Marquínez, J., & Devolli, G. (2003). Slope instability in Nicaragua triggered by Hurricane Mitch: distribution of shallow mass movements. Environmental Geology, 44, 290–300.Google Scholar
Metcalfe, D.J., Grubb, P.J., & Turner, I.M. (1998). The ecology of very small-seeded shade-tolerant trees and shrubs in lowland rain forest in Singapore. Plant Ecology, 134, 131–149.CrossRefGoogle Scholar
Metternich, G., Hurni, L., & Gogu, R. (2005). Remote sensing of landslides: an analysis of the potential contribution to geo-spatial systems for hazard assessment in mountainous environments. Remote Sensing of Environment, 98, 284–303.CrossRefGoogle Scholar
Meyer, D.F. & Martinson, H.A. (1989). Rates and processes of channel development and recovery following the 1980 eruption of Mount St. Helens, Washington. Hydrological Sciences Journal, 34, 115–127.CrossRefGoogle Scholar
Meyer, J.-Y. (1996). Status of Miconia calvescens (Melastomataceae), a dominant invasive tree in the Society Islands (French Polynesia). Pacific Science, 50, 66–76.Google Scholar
Meyer, J.-Y. & Florence, J. (1996). Tahiti's native flora endangered by the invasion of Miconia calvescens DC. (Melastomataceae). Journal of Biogeography, 23, 775–781.CrossRefGoogle Scholar
Miles, D.W.R. & Swanson, F.J. (1986). Vegetation composition on recent landslides in the Cascade Mountains of western Oregon. Canadian Journal of Forest Research, 16, 739–744.CrossRefGoogle Scholar
Miles, D.W.R., Swanson, F.J., & Youngberg, C.T. (1984). Effect of landslide erosion on subsequent Douglas-fir growth and stocking levels in the Western Cascades, Oregon. Soil Science Society of American Journal, 48, 667–671.CrossRefGoogle Scholar
Millar, C.I. & Westfall, R.D. (2010). Distribution and climatic relationships of the American pika (Ochotona princeps) in the Sierra Nevada and western Great Basin; periglacial landforms as refugia in warming climates. Arctic, Antarctic, and Alpine Research, 42, 76–88.CrossRefGoogle Scholar
Millard, T. (2000). Channel disturbances and logging slash in S5 and S6 streams: an examination of streams in the Nitinat Lake area, southwest Vancouver Island. Forest Research Technical Report TR-005, Nanaimo, Canada: British Columbia Forest Service.Google Scholar
Mitton, J.B. & Grant, M.C. (1980). Observations on the ecology and evolution of quaking aspen, Populus tremuloides, in the Colorado Front Range. American Journal of Botany, 67, 202–209.CrossRefGoogle Scholar
Moles, A.T., Flores-Moreno, H., Bonser, S.P., et al. (2012). Invasions: the trail behind, the path ahead, and a test of a disturbing idea. Journal of Ecology, 100, 116–127.CrossRefGoogle Scholar
Monroe, W.H. (1964). Large retrogressive landslides in North-Central Puerto Rico. U.S. Geological Survey Professional Paper 501-B, pp. B123–125.
Montagnini, F. (2001). Strategies for the recovery of degraded ecosystems: experiences from Latin America. Interciencia, 26, 498–503.Google Scholar
Montgomery, D.R. (1994). Road surface drainage, channel initiation, and slope stability. Water Resources Research, 30, 1925–1932.CrossRefGoogle Scholar
Moore, I.D., Norton, T.W., & Williams, J.E. (1993). Modeling environmental heterogeneity in forested landscapes. Journal of Hydrology, 150, 717–747.CrossRefGoogle Scholar
Moore, J.G. & Moore, G.W. (1984). Deposit from a giant wave on the Island of Lanai, Hawaii. Science, 226, 1312–1315.CrossRefGoogle ScholarPubMed
Moore, J.G., Clague, D.A., Holcomb, R.T., et al. (1989). Prodigious submarine landslides on the Hawaiian Ridge. Journal of Geophysical Research, 94, 17645–17684.CrossRefGoogle Scholar
Mora, S., Madrigal, C., Estrada, J., & Schuster, R.L. (1993). The 1992 Rio Toro landslide dam, Costa Rica. Landslide News, Japan Landslide Society, 7, 19–22.Google Scholar
Moreiras, S.M. (2004). Landslide susceptibility zonation in the Rio Mendoza Valley, Argentina. Geomorphology, 66, 345–357.CrossRefGoogle Scholar
Morgan, R.P.C. (2007). Vegetative-based technologies for erosion control. In Eco- and Ground Bio-Engineering: The Use of Vegetation to Improve Slope Stability, eds. Stokes, A., Spanos, I., & Norris, J.E., pp. 265–272. Dordrecht: Springer.CrossRefGoogle Scholar
Mortality Statistics (2011). . Accessed 17 January 2011.
Morton, D.M. & Streitz, R. (1975). Mass movement. In Man and His Physical Environment, eds. McKenzie, G.D. & Utgard, R.O., pp. 61–70. Minneapolis, MN, U.S.: Burgess.Google Scholar
Moss, M.R. & Rosenfeld, C.L. (1978). Morphology, mass wasting and forest ecology of a post-glacial re-entrant valley in the Niagara Escarpment. Geografiska Annaler, 60A, 161–174.CrossRefGoogle Scholar
Murphy, H.T., Metcalfe, D.J., Bradford, M.G., et al. (2008). Recruitment dynamics of invasive species in rainforest habitats following Cyclone Larry. Austral Ecology, 33, 495–502.CrossRefGoogle Scholar
Myster, R.W. (1993). Spatial heterogeneity of seed rain, seed pool, and vegetative cover on two Monteverde landslides, Costa Rica. Brenesia, 39–40, 137–145.Google Scholar
Myster, R.W. (1994). Landslide insects show small differences between an island (Puerto Rico) and the mainland (Costa Rica). Acta Científica, 8, 105–113.Google Scholar
Myster, R.W. (1997). Seed predation, disease and germination on landslides in Neotropical lower montane wet forest. Journal of Vegetation Science, 8, 55–64.CrossRefGoogle Scholar
Myster, R.W. (2002). Foliar pathogen and insect herbivore effects on two landslide tree species in Puerto Rico. Forest Ecology and Management, 169, 231–242.CrossRefGoogle Scholar
Myster, R.W. & Fernández, D.S. (1995). Spatial gradients and patch structure on two Puerto Rican landslides. Biotropica, 27, 149–159.CrossRefGoogle Scholar
Myster, R.W. & Sarmiento, F.O. (1998). Seed inputs to microsite patch recovery on two tropandean landslides in Ecuador. Restoration Ecology, 6, 35–43.CrossRefGoogle Scholar
Myster, R.W. & Schaefer, D.A. (2003). Species and microsite effects on litter decomposition in a Puerto Rican landslide. Community Ecology, 4, 157–162.CrossRefGoogle Scholar
Myster, R.W. & Walker, L.R. (1997). Plant successional pathways on Puerto Rican landslides. Journal of Tropical Ecology, 13, 165–173.CrossRefGoogle Scholar
Myster, R.W., Thomlinson, J.R., & Larsen, M.C. (1997). Predicting landslide vegetation in patches on landscape gradients in Puerto Rico. Landscape Ecology, 12, 299–307.CrossRefGoogle Scholar
Naiman, R.J., Melillo, J.M., & Hobbie, J.H. (1986). Ecosystem alteration of boreal forest streams by beaver (Castor canadensis). Ecology, 67, 1254–1269.CrossRefGoogle Scholar
Nakamura, T. (1984). Vegetational recovery of landslide scars in the upper reaches of the Oi River, Central Japan. Journal of the Japanese Forestry Society, 66, 328–332.Google Scholar
Nakashizuka, T., Iida, S., Suzuki, W., & Tanimoto, T. (1993). Seed dispersal and vegetation development on a debris avalanche on the Ontake volcano, Central Japan. Journal of Vegetation Science, 4, 537–542.CrossRefGoogle Scholar
Negishi, J.N., Sidle, R.C., Noguchi, S., Nik, A.R., & Stanforth, R. (2006). Ecological roles of roadside fern (Dicranopteris curranii) on logging road recovery in Peninsular Malaysia: Preliminary results. Forest Ecology and Management, 224, 176–186.CrossRefGoogle Scholar
Newton, A.C. & Healey, J.R. (1989). Establishment of Clethra occidentalis on stems of the tree-fern Cyathea pubescens in a Jamaican montane rain forest. Journal of Tropical Ecology, 5, 441–445.CrossRefGoogle Scholar
Nieto, A.S. & Schuster, R.L. (1991). Mass wasting and flooding induced by the 5 March 1987 Ecuador earthquakes. In Landslides of the World, ed. Sassa, K., pp. 220–223. Kyoto: Kyoto University Press.Google Scholar
Nieto, A.S., Schuster, R.L., & Plaza-Nieto, G. (1991). Mass wasting and flooding. Natural Disaster Studies, 5, 51–82.Google Scholar
Nisbet, E.G. & Piper, D.J.W. (1998). Giant submarine landslides. Nature, 392, 329–330.CrossRefGoogle Scholar
Noguchi, S., Abdul Rahim, N., Baharuddin, K., et al. (1997). Soil physical properties and preferential flow pathways in a tropical rain forest, Bukit Tarek, Peninusular Malaysia. Journal of Forest Research, 2, 115–120.CrossRefGoogle Scholar
Norkko, A., Thrush, S.F., Hewitt, J.E., et al. (2002). Smothering of estuarine sandflats by terrigenous clay: the role of wind-wave disturbance and bioturbation in site-dependent macrofaunal recovery. Marine Ecology Progress Series, 234, 23–41.CrossRefGoogle Scholar
Nott, J. (2006). Extreme Events: A Physical Reconstruction and Risk Assessment. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Oaks, S.D. & Dexter, L. (1987). Avalanche hazard zoning in Vail, Colorado: the use of scientific information in the implementation of hazard reduction strategies. Mountain Research and Development, 7, 157–168.CrossRefGoogle Scholar
Odum, E.P. (1959). Fundamentals of Ecology, 2 Edition. Philadelphia, PA, U.S.: Saunders.Google Scholar
Oh, H.-J., Ahn, S.-C., Choi, J.-K., & Lee, S. (2011). Sensitivity analysis for the GIS-based mapping of the ground subsidence hazard near abandoned underground coal mines. Environmental Earth Sciences, 64, 347–358.CrossRefGoogle Scholar
Ohl, C. & Bussman, R. (2004). Recolonisation of natural landslides in tropical mountain forests of Southern Ecuador. Feddes Repertorium, 115, 248–264.CrossRefGoogle Scholar
Oliver, C.D., Adams, A.B., & Zasoki, R.J. (1985). Disturbance patterns and forest development in a recently deglaciated valley in the northwestern Cascade Range of Washington, U.S. Canadian Journal of Forest Research, 15, 221–232.CrossRefGoogle Scholar
Oliver-Smith, A. & Hoffman, S.M. (eds.) (1999). The Angry Earth. New York: Routledge.Google Scholar
O’Loughlin, C.L. & Pearce, A.J. (1976). Influence of Cenozoic geology on mass movement and sediment yield response to forest removal, North Westland, New Zealand. Bulletin of the International Association of Engineering Geology, 14, 41–46.CrossRefGoogle Scholar
O’Neill, R.V., DeAngelis, D.L., Waide, J.B., & Allen, T.F.H. (1986). A Hierarchical Concept of Ecosystems. Princeton, New Jersey: Princeton University Press.Google Scholar
Oyagi, N., Makino, H., & Mori, S. (1996). Landslide structure and control works at Nishitani landslide, Wakayama Prefecture, Japan. In Landslides, eds. Chacón, J., Irigaray, C., & Fernández, T., pp. 247–254. Rotterdam: Balkema.Google Scholar
Pabst, R.J. & Spies, T.A. (2001). Ten years of vegetation succession on a debris-flow deposit in Oregon. Journal of the American Water Resources Association, 37, 1693–1708.CrossRefGoogle Scholar
Pain, C.F. & Bowler, J.M. (1973). Denudation following the November 1970 earthquake at Madang, Papua New Guinea. Zeitschrift für Geomorphologie, Supplement Bd 18, 91–104. Cited in Pearce & Watson (1986) and Restrepo et al. (2009).
Pakeman, R.J., Attwood, J.P., & Engelen, J. (1998). Sources of plants colonizing experimentally disturbed patches in an acidic grassland, in eastern England. Journal of Ecology, 86, 1032–1041.CrossRefGoogle Scholar
Palkovic, L.A. (1978). A hybrid of Gunnera from Costa Rica. Systematic Botany, 3, 226–235.CrossRefGoogle Scholar
Pandey, A.N. & Singh, J.S. (1985). Mechanisms of ecosystem recovery: A case study from Kumaun Himalaya. Recreation and Revegetation Research, 3, 271–292.Google Scholar
Parendes, L.A. & Jones, J.A. (2000). Role of light availability and dispersal in exotic plant invasion along roads and streams in the H.J. Andrews Experimental Forest, Oregon. Conservation Biology, 14, 64–75.CrossRefGoogle Scholar
Pareschi, M.T., Boschi, E., Mazzarini, F., & Favalli, M. (2006). Large submarine landslides offshore Mt. Etna. Geophysical Research Letters, 33, L13302, .CrossRefGoogle Scholar
Parise, M. & Jibson, R.W. (2000). A seismic landslide susceptibility rating of geologic units based on analysis of characteristics of landslides triggered by the 17 January, 1994 Northridge, California earthquake. Engineering Geology, 58, 251–270.CrossRefGoogle Scholar
Paull, C.K., Ussler, W., Greene, H.G., Barry, J., & Keaten, R. (2005). Bioerosion by chemosynthetic biological communities on Holocene submarine slide scars. Geo-Marine Letters, 25, 11–19.CrossRefGoogle Scholar
Pearce, A.J. & O’Loughlin, C.L. (1985). Landsliding during a M 7.7 earthquake: influence of geology and topography. Geology, 13, 855–858.2.0.CO;2>CrossRefGoogle Scholar
Pearce, A.J. & Watson, A. (1983). Medium-term effects of two landsliding episodes on channel storage of sediment. Earth Surface Processes and Landforms, 8, 29–39.CrossRefGoogle Scholar
Pearce, A.J. & Watson, A. (1986). Effects of earthquake-induced landslides on sediment budget and transport over a 50-yr period. Geology, 14, 52–55.2.0.CO;2>CrossRefGoogle Scholar
Pederson, N., Everham, E.M., III, & Sahm, J. (1991). Natural disturbance simulation in the Luquillo Experimental Forest, Puerto Rico. In Toward Understanding Our Environment, ed. J. McLeod, pp. 95–100. San Diego: The Society for Computer Simulation.Google Scholar
Peh, K.S.-H., Soh, M.C.K., Sodhi, N.S., et al. (2011). Up in the clouds: is sustainable use of tropical montane cloud forests possible in Malaysia? BioScience, 61, 27–38.CrossRefGoogle Scholar
Peltzer, D.A., Wardle, D.A., Allison, V.J., et al. (2010). Understanding ecosystem retrogression. Ecological Monographs, 80, 509–529.CrossRefGoogle Scholar
Perla, R.I. & Martinelli, M., Jr. (1976). Avalanche Handbook. U.S. Department of Agriculture, Forest Service, Agriculture Handbook 489, Washington, D.C.Google Scholar
Perotto-Baldiezo, H.L., Thurow, T.L., Smith, C.T., Fisher, R.F. & Wu, X.B. (2004). GIS-based spatial analysis and modeling for landslide hazard assessment in steeplands, southern Honduras. Agriculture, Ecosystems and Environment, 103, 165–176.CrossRefGoogle Scholar
Peruvian Times (2009). Accessed 23 February 2012.
Peterson, D.M., Ellen, S.D., & Knifong, D.L. (1993). Distribution of past debris flows and other rapid slope movements from natural hillslopes in the Honolulu District of Oahu, Hawaii. Open File Report 93–514, pp. 1–34. U.S. Geological Survey, U.S. Department of the Interior, Honolulu, Hawaii.
Petley, D. (2010). Landslide hazards. In Geomorphological Hazards and Disaster Prevention, eds. I. Alcantara-Ayala & A. Goudie, pp. 63–73. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Petley, D., Hearn, G.J., Hart, A., et al. (2007). Trends in landslide occurrence in Nepal. Natural Hazards, 43, 23–44.CrossRefGoogle Scholar
Pickett, S.T.A. (1989). Space-for-time substitutions as an alternative to long-term studies. In Long Term Studies in Ecology, ed. Likens, G.E., pp. 110–135. New York: Springer.CrossRefGoogle Scholar
Pickett, S.T.A. & Cadenasso, M.L. (1995). Landscape ecology: spatial heterogeneity in ecological systems. Science, 269, 331–334.CrossRefGoogle ScholarPubMed
Pickett, S.T.A. & White, P.S. (eds.) (1985). The Ecology of Natural Disturbance and Patch Dynamics. New York: Academic Press.Google Scholar
Pickett, S.T.A., Collins, S.L., & Armesto, J.J. (1987). A hierarchical consideration of causes and mechanisms of succession. Vegetatio, 69, 109–114.CrossRefGoogle Scholar
Piehl, B.T., Beschta, R.L., & Pyles, M.R. (1988). Ditch-relief culverts and low-volume forest roads in the Oregon Coast Range. Northwest Science, 62, 91–98.Google Scholar
Piper, D.J.W., Farre, J.A., & Shor, A.N. (1985). Late Quaternary slumps and debris flows on the Scotian Slope. Geological Society of America Bulletin, 96, 1508–1517.2.0.CO;2>CrossRefGoogle Scholar
Pizano, C., Mangan, S.A., Herre, E.A., Eom, A.-H., & Dalling, J.W. (2011). Above- and belowground interactions drive segregation between two cryptic species of tropical trees. Ecology, 92, 47–56.CrossRefGoogle ScholarPubMed
Pla Sentís, I. (1997). A soil water balance model for monitoring soil erosion processes and effects on steep lands in the tropics. Soil Technology, 11, 17–30.CrossRefGoogle Scholar
Potts, D.F. & Anderson, B.K.M. (1990). Organic debris and the management of small channels. Western Journal of Applied Forestry, 5, 25–28.Google Scholar
Prach, K. & Walker, L.R. (2011). Four opportunities for studies of ecological succession. Trends in Ecology and Evolution, 26, 119–123.CrossRefGoogle ScholarPubMed
Prach, K., Marrs, R., Pyšek, P., & van Diggelen, R. (2007). Manipulation of succession. In Linking Restoration and Ecological Succession, eds. Walker, L.R., Walker, J., & Hobbs, R.J, pp. 121–149. New York: Springer.CrossRefGoogle Scholar
Prior, D.B. & Coleman, J.M. (1980). Sonograph mosaics of submarine slope instabilities, Mississippi River delta. Marine Geology, 36, 227–239.CrossRefGoogle Scholar
Prior, D.B. & Coleman, J.M. (1982). Submarine landslides  – geometry and nomenclature. Zeitschrift fur Geomorphologie, 4, 21–33.Google Scholar
Prior, D.B. & Coleman, J.M. (1984). Submarine slope instability. In Slope Instability, eds. Brunsden, D. & Prior, D.B., pp. 419–455. New York: Wiley.Google Scholar
Prior, D.B., Coleman, J.M., & Bornhold, B.D. (1982). Results of a known sea floor instability event. Geo-Marine Letters, 2, 117–122.CrossRefGoogle Scholar
Prior, D.B., Yang, Z.-S., Bornhold, B.D., et al. (1986). Active slope failure, sediment collapse, and silt flows of the modern subaqueous Huanghe (Yellow River) delta. Geo-Marine Letters, 6, 85–95.CrossRefGoogle Scholar
Punetha, N. (1991). Studies on atmospheric fern spores at Pithogarh (northwest Himalaya) with particular reference to distribution of ferns in the Himalayas. Annual Review of Plant Science, 13, 146–161.Google Scholar
Putz, F.E. & Holbrook, N.M. (1988). Further observations on the dissolution of mutualism between Cecropia and its ants: the Malaysian case. Oikos, 53, 121–125.CrossRefGoogle Scholar
Rahman, A.-U., Nawaz Khan, A., Colllins, A.E., & Qazi, F. (2011). Causes and extent of environmental impacts of landslide hazard in the Himalayan region: a case study of Murree, Pakistan. Natural Hazards, 57, 413–434.CrossRefGoogle Scholar
Raven, P.H., Evert, R.F., & Eichhorn, S.E. (2005). Biology of Plants, 7 Edition. New York: W.H. Freeman.Google Scholar
Ravikiran, G., Raju, A.B., & Venugopal, Y. (2011). Phytolacca americana: A review. International Journal of Research in Pharmaceutical and Biomedical Sciences, 2, 942–946.Google Scholar
Read, D.J. (1996). The structure and function of the ericoid mycorrhizal root. Annals of Botany, 77, 365–374.CrossRefGoogle Scholar
Reagan, D.P. & Waide, R.B. (eds.) (1996). The Food Web of a Tropical Rain Forest. Chicago: The University of Chicago Press.Google Scholar
Reddy, V.S. & Singh, J.S. (1993). Changes in vegetation and soil during succession following landslide disturbance in the central Himalaya. Journal of Environmental Management, 39, 235–250.CrossRefGoogle Scholar
Reice, S.R. (2001). The Silver Lining: The Benefits of Natural Disasters. Princeton, New Jersey: Princeton University Press.Google Scholar
Reid, L.M. & Dunne, T. (1984). Sediment production from forest road surfaces. Water Resources Research, 20, 1753–1761.CrossRefGoogle Scholar
Restrepo, C. & Alvarez, N. (2006). Landslides and their contribution to land-cover change in the mountains of Mexico and Central America. Biotropica, 38, 446–457.CrossRefGoogle Scholar
Restrepo, C. & Vitousek, P.M. (2001). Landslides, alien species, and the diversity of a Hawaiian montane mesic ecosystem. Biotropica, 33, 409–420.CrossRefGoogle Scholar
Restrepo, C., Vitousek, P., & Neville, P. (2003). Landslides significantly alter land cover and the distribution of biomass: an example from the Ninole ridges of Hawai'i. Plant Ecology, 166, 131–143.CrossRefGoogle Scholar
Restrepo, C., Walker, L.R., Shiels, A.B., et al. (2009). Landsliding and its multiscale influence on mountainscapes. BioScience, 59, 685–698.CrossRefGoogle Scholar
Rice, R.M., Corbett, E.S., & Bailey, R.G. (1969). Soil slips related to vegetation, topography, and soil in southern California. Water Resources Research, 5, 647–659.CrossRefGoogle Scholar
Rice, R.M., Ziemer, R.R., & Hankin, S.C. (1982). Slope stability effects of fuel management strategies: inferences from Monte Carlo simulations. General Technical Report PSW-58, pp. 365–371. Forest Service. Berkeley, CA: U.S. Department of Agriculture.Google Scholar
Richards, K. (2006). Sky view and weather controls on nocturnal surface moisture deposition on grass at urban sites. Physical Geography, 27, 70–85.CrossRefGoogle Scholar
Ricklefs, R., Kalin-Arroyo, M.T., Latham, R.E., et al. (1995). The distribution of global biodiversity. In UNEP Global Biodiversity Assessment, ed. Heywood, V., pp. 139–173. Cambridge: Cambridge University Press for the United Nations Environmental Program.Google Scholar
Riley, P.B. & Read, S.A.L. (1992). Lake Waikaremoana  – present day stability of landslide barrier. In Proceedings of the Sixth International Symposium on Landslides, 2, 1249–1255.Google Scholar
Robb, J.M. (1984). Spring sapping on the lower continental slope, offshore New Jersey. Geology, 12, 278–282.2.0.CO;2>CrossRefGoogle Scholar
Roberts, B., Ward, B., & Rollerson, T. (2005). A comparison of landslide rates following helicopter and conventional cable-based clear-cut logging operations in the Southwest Coast Mountains of British Columbia. Geomorphology, 61, 337–346.CrossRefGoogle Scholar
Robinson, R.C., Sheffield, E., & Sharpe, J.M. (2010). Problem ferns: their impact and management. In Fern Ecology, eds. Mehltreter, K., Walker, L.R., & Sharpe, J.M., pp. 255–322. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Roering, J.J., Schmidt, K.M., Stock, J.D., Dietrich, W.E., & Montgomery, D.R. (2003). Shallow landsliding, root reinforcement, and the spatial distribution of trees in the Oregon Coast Range. Canadian Geotechnical Journal, 40, 237–253.CrossRefGoogle Scholar
Rogers, H.H., Runion, G.B., & Krupa, S.V. (1994). Plant responses to atmospheric CO2 enrichment with emphasis on roots and the rhizosphere. Environmental Pollution, 83, 155–189.CrossRefGoogle ScholarPubMed
Rollins, K.M. & Rollins, R.L. (1992). Case histories of landslide stabilization using drilled-shaft walls. Transportation Research Record No. 1343, Rockfall Prediction and Control and Landslide Case Histories, pp. 114–122. Washington, D.C.: National Academy Press.Google Scholar
Rose, A.B., Pekelharing, C.J., & Platt, K.H. (1992). Magnitude of canopy dieback and implications for conservation of southern rata-kamahi (Metrosideros umbellata – Weinmannia racemosa) forests, Central Westland, New Zealand. New Zealand Journal of Ecology, 16, 23–32.Google Scholar
Rouse, W.C. (1984). Flowslides. In Slope Instability, eds. Brunsden, D. & Prior, D.B., pp. 491–522. Chichester: Wiley.Google Scholar
Rozell, N. (1998). Avalanches, landslides, good for some. Alaska Science Forum, Fairbanks, Geophysical Institute, University of Alaska, 16 June, 1998.
Rudel, T.K., Perez-Lugo, M., & Zichal, H. (2000). When fields revert to forest: development and spontaneous reforestation in post-war Puerto Rico. The Professional Geographer, 52, 386–397.CrossRefGoogle Scholar
Russell, A.E., Raich, J.W., & Vitousek, P.M. (1998). The ecology of the climbing fern Dicranopteris linearis on windward Mauna Loa, Hawaii. Journal of Ecology, 86, 765–779.CrossRefGoogle Scholar
Russo, R.O. (2005). Nitrogen-fixing trees with actinorrhiza in forestry and agroforestry. In Nitrogen Fixation in Agriculture, Forestry, Ecology, and the Environment, eds.Werner, D. & Newton, W.E., pp. 143–171. The Netherlands: Springer Press.CrossRefGoogle Scholar
Růžička, V. & Zacharda, M. (1994). Arthropods of stony debris in the Krkonose Mountains, Czech Republic. Arctic and Alpine Research, 26, 332–338.CrossRefGoogle Scholar
Rydin, H. & Borgegård, S.-O. (1991). Plant characteristics over a century of primary succession on islands, Lake Hjälmaren. Ecology, 72, 1089–1101.CrossRefGoogle Scholar
Sage, R.F., Li, M., & Monson, R.K. (1999). The taxonomic distribution of C4 photosynthesis. In C4 Plant Biology, eds. Sage, R.F. & Monson, R.K.. San Diego, CA: Academic Press.Google Scholar
Sakai, A. & Ohsawa, M. (1993). Vegetation pattern and microtopography on a landslide scar of Mt Kiyosumi, central Japan. Ecological Research, 8, 47–56.CrossRefGoogle Scholar
Sakio, H. (1997). Effects of natural disturbance on the regeneration of riparian forests in Chibichu Mountains, central Japan. Plant Ecology, 132, 181–185.CrossRefGoogle Scholar
Samaniego-Herrera, A. (2003). Deslaves y sus effectos de borde sobre la communidad de roedores en un bosque mesófilo de montaña. MS Thesis, Instituto de Ecología, A.C., Jalapa, Veracruz, Mexico.
Sappington, J.M., Longshore, K.M., & Thompson, D.B. (2007). Quantifying landscape ruggedness for animal habitat analysis: A case study using bighorn sheep in the Mojave Desert. The Journal of Wildlife Management, 71, 1419–1426.CrossRefGoogle Scholar
Sassa, K., Fukuoka, H., Wang, F., & Wang, G. (eds.) (2007). Progress in Landslide Science. New York: Springer.CrossRefGoogle Scholar
Scatena, F.N. & Larsen, M.C. (1991). Physical aspects of Hurricane Hugo in Puerto Rico. Biotropica, 23, 317–323.CrossRefGoogle Scholar
Schlesinger, W.H. (1991). Biogeochemistry: An Analysis of Global Change. New York: Academic Press.Google Scholar
Schmidt, J. & Dikau, R. (2004). Modelling historical climate variability and slope stability. Geomorphology, 60, 433–447.CrossRefGoogle Scholar
Schmidt, K.M., Roering, J.J., Stock, J.D., et al. (2001). The variability of root cohesion as an influence on shallow landslide susceptibility in the Oregon Coast Range. Canadian Geotechnical Journal, 38, 995–1024.CrossRefGoogle Scholar
Schowalter, T.D., Webb, J.W., & Crossley, Jr., D.A. (1981). Community structure and nutrient content of canopy arthropods in a clearcut and uncut forest ecosystem. Ecology, 62, 1010–1019.CrossRefGoogle Scholar
Schubert, K.R. (1986). Products of biological nitrogen fixation in higher plants: synthesis, transport, and metabolism. Annual Review of Plant Physiology, 37, 539–574.CrossRefGoogle Scholar
Schuster, R.L. (1995). Landslides and dams  – a worldwide phenomenon. Journal of the Japanese Landslide Society, 31, 38–49.CrossRefGoogle Scholar
Schuster, R.L. (1996a). The 25 most catastrophic landslides of the 20th century. In Landslides, eds. Chacón, J., Irigaray, C., & Fernández, T., pp. 53–62. Rotterdam: Balkema.Google Scholar
Schuster, R.L. (1996b). Socioeconomic significance of landslides. In Landslides: Investigation and Mitigation, eds. Turner, A.K. & Schuster, R.L., pp. 12–35. Special Report 247, Transportation Research Board, National Research Council. Washington, D.C.: National Academy Press.Google Scholar
Schuster, R.L. (2000). Outburst debris-flows from failure of natural dams. In Debris-Flow Hazards Mitigation: Mechanics, Prediction, and Assessment, eds. Wieczorek, G.F. & Naeser, N.D., pp. 29–42. Rotterdam: Balkema.Google Scholar
Schuster, R.L. (2001). Landslides: effects on the natural environment. In: Engineering Geology and the Environment, eds. Marinos, P.G., Koukis, G.C., Tsiambaos, G.C., & Stournaras, G.C., pp. 3371–3387. Lisse: Swets & Zeitlinger.Google Scholar
Schuster, R.L. (2002). Usoi landslide dam, southeastern Tajikistan. International Symposium on Landslide Risk Mitigation and Protection of Cultural and Natural Heritage, pp. 489–505. Kyoto: Kyoto University Press.Google Scholar
Schuster, R.L. & Highland, L.M. (2007). Overview of the effects of mass wasting on the natural environment. Environmental and Engineering Geoscience, 13, 25–44.CrossRefGoogle Scholar
Schuster, R.L. & Kockelman, W.J. (1996). Principles of landslide hazard reduction. In Landslides: Investigation and Mitigation, eds. Turner, A.K. & Schuster, R.L., pp. 91–105. Special Report 247, Transportation Research Board, National Research Council. Washington, D.C.: National Academy Press.Google Scholar
Schuster, R.L., Nieto, A.S., O’Rourke, E., et al. (1996). Mass wasting triggered by the 5 March 1987 Ecuador earthquakes. Engineering Geology, 42, 1–23.CrossRefGoogle Scholar
Schuster, R.L., Salcedo, D.A., & Valenzuela, L. (2002). Overview of catastrophic landslides of South America in the twentieth century. In Catastrophic Landslides: Effects, Occurrence and Mechanisms, eds. Evans, S.G. & DeGraff, J.V., pp. 1–34. Boulder, CO, U.S.: Geological Society of American Reviews in Engineering Geology Volume 15.CrossRefGoogle Scholar
Schwab, J.W. (1983). Mass wasting: October-November 1978 Storm, Rennel Sound, Queen Charlotte Islands, British Columbia. British Columbia Ministry of Forests Research Note, 91, 1–23.Google Scholar
Scott, G.A.J. & Street, J.M. (1976). The role of chemical weathering in the formation of Hawaiian amphitheatre-headed valleys. Zeitschrift für Geomorphologie, 20, 171–189.Google Scholar
Sedell, J.R., Reeves, G.H., Hauer, F.R., Stanford, J.A., & Hawkins, C.P. (1990). Role of refugia in recovery from disturbances: modern fragmented and disconnected river systems. Environmental Management, 14, 711–724.CrossRefGoogle Scholar
Senneset, K., (ed.) (1996). Landslides. Proceedings of the Seventh International Symposium on Landslides, 17–21 June 1996, Trondheim, Norway, Volume 3, pp. 1489–1992. Rotterdam: Balkema.Google Scholar
Sharma, E. & Ambasht, R.S. (1985). Chemical soil properties under five age series of Alnus nepalensis plantations in the Eastern Himalayas. Plant and Soil, 84, 105–113.CrossRefGoogle Scholar
Sharpe, C.F.S. (1960). Landslides and Related Phenomena: A Study of Mass-movements of Soil and Rock. New Jersey: Pageant Books.Google Scholar
Shaw, C.G., III & Sidle, R.C. (1983). Evaluation of planting sites common to a southeast Alaska clearcut II. Available inoculum of the ectomycorrhizal fungusCannococcum geophilum. Canadian Journal of Forest Research, 13, 9–11.CrossRefGoogle Scholar
Sheets, P.D. (1999). The effects of explosive volcanism on ancient egalitarian, ranked, and stratified societies in Middle America. In The Angry Earth, ed. Oliver-Smith, A. & Hoffman, S.M., pp. 36–58. New York: Routledge.Google Scholar
Sheffield, L.M., Gall, A.E., Roby, D.D., Irons, D.B., & Dugger, K.M. (2006). Monitoring planktivorous seabird populations: validating surface counts of crevice-nesting auklets using mark-resight techniques. Canadian Journal of Zoology, 84, 846–854.CrossRefGoogle Scholar
Sheridan, R.P. (1991). Nitrogenase activity by Hapalosiphon flexuosus associated with Sphagnum erythrocalyx in cloud forest on the volcano La Soufrière, French West Indies. Biotropica, 23, 134–140.CrossRefGoogle Scholar
Shiels, A.B. (2002). Bird perches and soil amendments as revegetation techniques for landslides in Puerto Rico. MS Thesis, Department of Biological Sciences, University of Nevada, Las Vegas, Nevada, U.S.
Shiels, A.B. (2006) Leaf litter decomposition and substrate chemistry of early successional species on landslides in Puerto Rico. Biotropica, 38, 348–353.CrossRefGoogle Scholar
Shiels, A.B. (2011). Frugivory by introduced black rats (Rattus rattus) promotes dispersal of invasive plant seeds. Biological Invasions, 13, 781–792.CrossRefGoogle Scholar
Shiels, A.B. & Drake, D.R. (2011). Are introduced rats (Rattus rattus) both seed predators and dispersers in Hawaii? Biological Invasions, 13, 883–894.CrossRefGoogle Scholar
Shiels, A.B. & Walker, L.R. (2003). Bird perches increase forest seeds on Puerto Rican landslides. Restoration Ecology, 11, 457–465.CrossRefGoogle Scholar
Shiels, A.B. & Walker, L.R. (In press). Landslides cause spatial and temporal gradients at multiple scales in the Luquillo Mountains, Puerto Rico. In: Ecological Gradient Analyses in Tropical Ecosystems, 54, eds. González, G., Willig, M., & Waide, R.. Ecological Bulletins.
Shiels, A.B., Walker, L.R., & Thompson, D.B. (2006). Organic matter inputs create variable resource patches on Puerto Rican landslides. Plant Ecology, 184, 223–236.CrossRefGoogle Scholar
Shiels, A.B., West, C.A., Weiss, L., Klawinski, P.D., & Walker, L.R. (2008). Soil factors predict initial plant colonization on Puerto Rican landslides. Plant Ecology, 195, 165–178.CrossRefGoogle Scholar
Shiels, A.B., Zimmerman, J.K., García-Montiel, D.C., et al. (2010). Plant responses to simulated hurricane impacts in a subtropical wet forest, Puerto Rico. Journal of Ecology, 98, 659–673.CrossRefGoogle Scholar
Shimokawa, E. (1984). A natural process of recovery of vegetation on landslide scars and landslide periodicity in forested drainage basins. In Symposium on Effects of Forest Land Use on Erosion and Slope Stability, eds. O’Laughlin, C.L. & Pierce, A.J., pp. 99–107. East –West Center Honolulu: University of Hawaii.Google Scholar
Shresta, D.P., Zinck, J.A., & Van Ranst, E. (2004). Modelling land degradation in the Nepalese Himalaya. Catena, 57, 135–156.CrossRefGoogle Scholar
Sidle, R.C. (1984). Relative importance of factors influencing landsliding in coastal Alaska. Proceedings of the 21st Annual Engineering, Geology, and Soils Engineering Symposium, pp. 311–325. Moscow, ID, U.S.: University of Idaho.Google Scholar
Sidle, R.C. (1992). A theoretical model of the effects of timber harvesting on slope stability. Water Resources Research, 28, 1897–1910.CrossRefGoogle Scholar
Sidle, R.C. (2007). Using weather and climate information for landslide prevention and mitigation. In Climate and Land Degradation, eds. Sivakumar, M.V.K & Ndiang'ui, N., pp. 285–307. Berlin: Springer.CrossRefGoogle Scholar
Sidle, R.C. (2010). Hydrogeomorphic processes in temperate and tropical forests: effects of land use and scale. Geography Compass, 4, 1115–1132.CrossRefGoogle Scholar
Sidle, R.C. & Ochiai, H. (2006). Landslides: Processes, Prediction, and Land Use. Water Resources Monograph Series, volume 18. Washington, D.C.: American GeophysicalUnion.CrossRefGoogle Scholar
Sidle, R.C. & Sharma, A. (1996). Stream channel changes associated with mining and grazing in the Great Basin. Journal of Environmental Quality, 25, 1111–1121.CrossRefGoogle Scholar
Sidle, R.C. & Swanston, D.N. (1982). Analysis of a small debris flow in coastal Alaska. Canadian Geotechnical Journal, 19, 167–174.CrossRefGoogle Scholar
Sidle, R.C. & Wu, W. (1999). Simulating effects of timber harvesting on the temporal and spatial distribution of shallow landslides. Zeitschrift für Geomorphologie, N.F., 43, 185–201.Google Scholar
Sidle, R.C., Pearce, A.J., & O’Loughlin, C.L. (1985). Hillslope Stability and Land Use, Water Resources Monograph, volume 11. Washington, D.C.: American Geophysical Union.CrossRefGoogle Scholar
Sidle, R.C., Noguchi, S., Tsuboyama, Y., & Laursen, K. (2001). A conceptual model of preferential flow systems in forested hillslopes: evidence of self-organization. Hydrological Processes, 15, 1675–1692.CrossRefGoogle Scholar
Sidle, R.C., Taylor, D., Lu, X.X., et al. (2004). Interactions of natural hazards and humans: evidence in historical and recent records. Quaternary International, 118–119, 181–203.Google Scholar
Sidle, R.C., Ziegler, A.D., Negishi, J.N., et al. (2006). Erosion processes in steep terrain  – truths, myths, and uncertainties related to forest management in Southeast Asia. Forest Ecology and Management, 224, 199–225.CrossRefGoogle Scholar
Sikes, D.S. & Slowik, J. (2010). Terrestrial arthropods of pre- and post-eruption Kasatochi Island, Alaska, 2008–2009: a shift from a plant-based to a necromass-based food web. Arctic, Antarctic, and Alpine Research, 42, 297–305.CrossRefGoogle Scholar
Silvera, K., Skillman, J.B., & Dalling, J.W. (2003). Seed germination, seedling growth and habitat partitioning in two morphotypes of the tropical pioneer tree Trema micrantha in a seasonal forest in Panama. Journal of Tropical Ecology, 19, 27–34.CrossRefGoogle Scholar
Sims, R.W. & Gerard, B.M. (1985). Earthworms. Bath: The Pitman Press.Google Scholar
Singh, J.S., Rawat, Y.S., & Chaturvedi, O.P. (1984). Replacement of oak forest with pine in the Himalaya affects the nitrogen cycle. Nature, 311, 54–56.CrossRefGoogle Scholar
Singh, R.B. & Pandey, B.W. (1996). Landslide hazard in Indian Himalaya and Canadian Rockies: a comparative analysis. In Landslides, eds. Chacón, J., Irigaray, C., & Fernández, T., pp. 63–69. Rotterdam: Balkema.Google Scholar
Singhroy, V. & Molch, K. (2004). Geological case studies related to RADARSAT-2. Canadian Journal of Remote Sensing, 30, 893–902.CrossRefGoogle Scholar
Slaymaker, O. (2010). Mountain hazards. In Geomorphological Hazards and Disaster Prevention, eds. Alcantara-Ayala, I. & Goudie, A.S., pp. 33–47. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Slocum, M.G., Aide, T.M., Zimmerman, J.K., & Navarro, L. (2004). Natural regeneration of subtropical montane forest after clearing fern thickets in the Dominican Republic. Journal of Tropical Ecology, 20, 483–486.CrossRefGoogle Scholar
Slocum, M.G., Aide, T.M., Zimmerman, J.K., & Navarro, L. (2006). A strategy for restoration of montane forest in anthropogenic fern thickets in the Dominican Republic. Restoration Ecology, 14: 526–536.CrossRefGoogle Scholar
Smale, M.C., McLeod, M., & Smale, P.N. (1997). Vegetation and soil recovery on shallow landslide scars in Tertiary hill country, East Cape region, New Zealand. New Zealand Journal of Ecology, 21, 31–41.Google Scholar
Smith, K. (2001). Environmental Hazards: Assessing the Risk and Reducing Disaster, 3rd Edition. London: Routledge.Google Scholar
Smith, R.B., Commandeur, P.R., & Ryan, M.W. (1986). Soils, vegetation, and forest growth on landslides and surrounding logged and old-growth areas on the Queen Charlotte Islands. British Columbia Ministry of Forests, Land Management Report 41.Google Scholar
Smith, S.D., Huxman, T.E., Zitzer, S.F., et al. (2000). Elevated CO2 increases productivity and invasive species success in an arid ecosystem. Nature, 408, 79–82.CrossRefGoogle Scholar
Smyth, C.G. & Royle, S.A. (2000). Urban landslide hazards: incidence and causative factors in Niterói, Rio de Janeiro State, Brazil. Applied Geography, 20, 95–117.CrossRefGoogle Scholar
Soltis, D.E., Soltis, P.S., Morgan, D.R., et al. (1995). Chloroplast gene sequence data suggests a single origin of the predisposition for symbiotic nitrogen fixation in angiosperms. Proceedings of the National Academy of Sciences, USA, 92, 2647–2651.CrossRefGoogle Scholar
Spanos, I., Raftoyannis, Y., Goudelis, G., et al. (2007). Effecs of postfire logging on soil and vegetation recovery in a Pinus halepensis Mill. forest of Greece. In Eco- and Ground Bio-Engineering: The Use of Vegetation to Improve Slope Stability, eds. Stokes, A., Spanos, I., & Norris, J.E., pp. 345–352. Proceedings of the First International Conference on Eco-Engineering 13–17 September 2004. Dordrecht: Springer.CrossRefGoogle Scholar
Spicer, R.A., Burnham, R.J., Grant, P., & Glicken, H. (1985). Pityrogramma calomelanos, the primary, post-eruption colonizer of Volcán Chichonal, Chiapas, Mexico. American Fern Journal, 75, 1–5.CrossRefGoogle Scholar
Stark, C.P. & Hovius, N. (2001). The characterization of landslide size distributions. Geophysical Research Letters, 28, 1091–1094.CrossRefGoogle Scholar
Staudacher, K. & Füreder, L. (2007). Habitat complexity and invertebrates in selected alpine springs (Schütt, Carinthia, Austria). International Review of Hydrobiology, 92, 465–479.CrossRefGoogle Scholar
Steiakakis, E., Kavouridis, K., & Monopolis, D. (2009). Large scale failure of the external waste dump at the “South Field” lignite mine, Northern Greece. Engineering Geology, 104, 269–279.CrossRefGoogle Scholar
Stern, M.J. (1995a). Vegetation recovery on earthquake-triggered landslides sites in the Ecuadorian Andes. In Biodiversity and Conservation of Neotropical Montane Forests, eds. Churchill, S.P., Balslev, H., Forero, E., & Luteyn, J.L., pp. 207–220. Bronx, New York, U.S.: The New York Botanical Garden.Google Scholar
Stern, M.J. (1995b). An inter-Andean forest relict: vegetation change on Pasochoa Volcano, Ecuador. Mountain Research and Development, 15, 339–348.CrossRefGoogle Scholar
Stewart, G. (2004). The Tangiwai Disaster: A Christmas Eve Tragedy. Wellington, New Zealand: Grantham House Publishing.Google Scholar
Stewart, G.H. (1986). Forest dynamics and disturbance in a beech/hardwood forest, Fiordland, New Zealand. Vegetatio, 68, 115–126.Google Scholar
Stewart, M.M. & Woolbright, L.L. (1996). Amphibians. In The Food Web of a Tropical Rain Forest, eds. Reagan, D.P. & Waide, R.B., pp. 274–320. Chicago: The University of Chicago Press.Google Scholar
Stokes, A., Spanos, I., & Norris, J.E. (eds.) (2007a). Eco- and Ground Bio-Engineering: The Use of Vegetation to Improve Slope Stability. Proceedings of the First International Conference on Eco-Engineering 13–17 September 2004. Dordrecht: Springer.CrossRefGoogle Scholar
Stokes, A., Salin, F., Dzifa Kokutse, A., et al. (2007b). Mechanical resistance of different tree species to rockfall in the French Alps. In Eco- and Ground Bio-Engineering: The Use of Vegetation to Improve Slope Stability, eds. Stokes, A., Spanos, I., & Norris, J.E., pp. 155–164. Proceedings of the First International Conference on Eco-Engineering, 13–17 September 2004. Dordrecht: Springer.CrossRefGoogle Scholar
Stokes, A., Atger, C., Bengough, A.G., Fourcaud, T., & Sidle, R.C. (2009). Desirable plant root traits for protecting natural and engineered slopes against landslides. Plant and Soil, 324, 1–30.CrossRefGoogle Scholar
Stringer, C. (2006). Homo Britannicus: The Incredible Story of Human Life in Britain. London: Penguin Group.Google Scholar
Suding, K.N. & Hobbs, R.J. (2009a). Threshold models in restoration and conservation: a developing framework. Trends in Ecology and Evolution, 24, 271–279.CrossRefGoogle ScholarPubMed
Suding, K.N. & Hobbs, R.J. (2009b). Models of ecosystem dynamics as frameworks for restoration ecology. In New Models for Ecosystem Dynamics and Restoration, eds. Hobbs, R.J. & Suding, K.N., pp. 3–21. Washington, D.C.: Island Press.Google ScholarPubMed
Sultan, N., Cochonat, P., Foucher, J.-P., & Mienert, J. (2004). Effect of gas hydrate melting on seafloor slope instability. Marine Geology, 213, 379–401.CrossRefGoogle Scholar
Swanson, F.J. (1981). Fire and geomorphic processes. In Proceedings of the Conference on Fire Regimes and Ecosystems, ed. Mooney, H.A., pp 401–420. General Technical Report WO-26. Washington, D.C.: U.S. Department of Agriculture, Forest Service.Google Scholar
Swanson, F.J. & Dyrness, C.T. (1975). Impact of clear-cutting and road construction on soil erosion by landslides in the Western Cascade Range, Oregon. Geology, 7, 393–396.2.0.CO;2>CrossRefGoogle Scholar
Swanson, F.J. & Franklin, J.F. (1992). New forestry principles from ecosystem analysis of Pacific Northwest forests. Ecological Applications, 2, 262–274.CrossRefGoogle ScholarPubMed
Swanson, F.J. & Major, J.J. (2005). Physical events, environments, and geological – ecological interactions at Mount St. Helens: March 1980–2004. In Ecological Responses to the 1980 Eruption of Mount St. Helens, eds. Dale, V.H., Swanson, F.J., & Crisafulli, C.M., pp. 27–44. New York: Springer.CrossRefGoogle Scholar
Swanson, F.J., Kratz, T.K., Caine, N., & Woodmansee, R.G. (1988). Landform effects on ecosystem patterns and processes. BioScience, 38, 92–98.CrossRefGoogle Scholar
Swanston, D.N. (1991). Natural processes. In Influences of Forest and Rangeland Management on Salmonid Fishes and their Habitats, ed. Meehan, W.R.. American Fisheries Society Special Publication, 19, 139–179.Google Scholar
Takahashi, T. (2007). Debris Flow: Mechanics, Prediction, and Countermeasures. London: Taylor and Francis.CrossRefGoogle Scholar
Talbot, S.S., Talbot, S.L., & Walker, L.R. (2010). Post-eruption legacy effects and their implications for long-term recovery of the vegetation on Kasatochi Island, Alaska. Arctic, Antarctic, and Alpine Research, 42, 285–296.CrossRefGoogle Scholar
Tanner, E.U.J. (1983). Leaf demography and growth of the tree fern Cyathea pubescens Mett. Ex Kuhn in Jamaica. Botanical Journal of the Linnean Society, 87, 213–227.CrossRefGoogle Scholar
Tilman, D. (1985). The resource-ratio hypothesis of plant succession. The American Naturalist, 125, 827–852.CrossRefGoogle Scholar
Ting, I.P., Hann, J., Holbrook, N.M., et al. (1987). Photosynthesis in hemiepiphytic species of Clusia and Ficus. Oecologia, 74, 339–346.CrossRefGoogle ScholarPubMed
Tiwari, A.K., Mehta, J.S., Goel, O.P., & Singh, J.S. (1986). Geo-forestry of landslide-affected areas in a part of Central Himalaya. Environmental Conservation, 13, 299–309.CrossRefGoogle Scholar
Towhata, I. (2007). On failure of municipal waste landfill. In Progress in Landslide Science, eds. Sassa, K., Fukuoka, H., Wang, F., & Wang, G., pp. 147–149. New York: Springer.CrossRefGoogle Scholar
Towns, D.R., Atkinson, I.A.E., & Daugherty, C.H. (2006). Have the harmful effects of rats on islands been exaggerated? Biological Invasions, 8, 863–891.CrossRefGoogle Scholar
Townsend, C.R., Begon, M., & Harper, J.L. (2008). Essentials of Ecology, 3rd Edition. Oxford, UK: Blackwell Publishing.Google Scholar
Trauth, M.H. & Strecker, M.R. (1999). Formation of landslide-dammed lakes during a wet period between 40,000 and 25,000 yr B.P. in northwestern Argentina. Palaeogrography, Palaeoclimatology, Palaeoecology, 153, 277–287.CrossRefGoogle Scholar
Trauth, M.H., Bookhagen, B., Marwan, N., & Strecker, M.R. (2003). Multiple landslide clusters record Quaternary climate changes in the northwestern Argentine Andes. Palaeogeography, Palaeoclimatology, Palaeoecology, 194, 109–121.CrossRefGoogle Scholar
Tremper, B. (2008). Staying Alive in Avalanche Terrain. Seattle, WA: The Mountaineers Club.Google Scholar
Tryon, R.M. & Tryon, A.F.. (1982). Ferns and Allied Plants with Special Reference to Tropical America. New York: Springer.CrossRefGoogle Scholar
Tuba, Z., Slack, N., & Stark, L.R. (eds.) (2011). Bryophyte Ecology and Climate Change. Cambridge: Cambridge University Press.Google Scholar
Turner, T.R., Duke, S.D., Fransen, B.R., et al. (2010). Landslide densities associated with rainfall, stand age, and topography on forested landscaped, southwestern Washington, U.S. Forest Ecology and Management, 259, 2233–2247.CrossRefGoogle Scholar
Uniyal, S.K.Awasthi, A., & Rawat, G.S. (2000). Current status and distribution of commercially exploited medicinal and aromatic plants in upper Gori Valley, Kumaon Himalaya, Uttaranchal. Current Science, 82, 1246–1252.Google Scholar
Usher, M.B. (1993). Primary succession on land: community development and wildlife conservation. In Primary Succession on Land, eds. Miles, J. & Walton, D.W.H., pp. 283–293. Oxford: Blackwell.Google Scholar
Usher, M.B. & Jefferson, R.G. (1991). Creating new and successional habitats for arthropods. In Conservation of Insects and their Habitats, eds. Collins, N.M. & Thomas, J.A., pp. 263–291. London: Academic Press.CrossRefGoogle Scholar
Van der Burght, L., Stoffel, M., & Bigler, C. (2012). Analysis and modeling of tree succession on a recent rockslide deposit. Plant Ecology, 213, 35–46.CrossRefGoogle Scholar
Varnes, D.J. (1958). Special Report 29: Landslides and Engineering Practice. Washington, D.C.: National Academy of Sciences, Transportation Research Board.Google Scholar
Varnes, D.J. (1978). Slope movement types and processes. In Landslides: Analysis and Control, eds. Schuster, R.L. & Krizek, R.J., pp. 11–33. Special Report 176. Washington, D.C.: National Academy of Sciences, Transportation Research Board.Google Scholar
Vázquez-Yanes, C. (1998). Trema micrantha (L.) Blume (Ulmaceae): a promising neotropical tree for site amelioration of deforested land. Agroforestry Systems, 40, 97–104.CrossRefGoogle Scholar
Vázquez-Yanes, C. & Smith, H. (1982). Phytochrome control of seed germination in the tropical rain forest pioneer trees Cecropia obtusifolia and Piper auritum and its ecological significance. New Phytologist, 92, 477–485.CrossRefGoogle Scholar
Veblen, T.T. & Ashton, D.H. (1978). Catastrophic influences on the vegetation of the Valdivian Andes, Chile. Vegetatio, 36, 149–167.CrossRefGoogle Scholar
Veblen, T.T. & Stewart, G.H. (1982). The effects of introduced wild animals on New Zealand forests. Annals of the Association of American Geographers, 72, 372–397.CrossRefGoogle Scholar
Veblen, T.T., Schlegel, F.M., & Escobar, R.B. (1980). Structure and dynamics of old-growth Nothofagus forests in the Valdivian Andes, Chile. Journal of Ecology, 68, 1–31.CrossRefGoogle Scholar
Veblen, T.T., Kitzberger, T., & Lara, A. (1992). Disturbance and forest dynamics along a transect from Andean rain forest to Patagonian shrubland. Journal of Vegetation Science, 3, 507–520.CrossRefGoogle Scholar
Veblen, T.T., Hadley, K.S., Nel, E.M., et al. (1994). Disturbance regime and disturbance interactions in a Rocky Mountain subalpine forest. Journal of Ecology, 82, 125–135.CrossRefGoogle Scholar
Veblen, T.T., Kitzberger, T., Raffaele, E., & Lorenz, D.C. (2003). Fire history and vegetation changes in northern Patagonia, Argentina. In Fire and Climatic Change in Temperate Ecosystems of the Western Americas, eds. Veblen, T.T., Baker, W.L., Montenegro, & G.Swetnam, T.W., pp. 265–295. New York: Springer.CrossRefGoogle Scholar
Velázquez, E. (2007). Sucesión ecológica temprana en un deslizamiento de ladera de grandes dimensiones en ambiente tropical seco, Volcán Casita, Nicaragua. PhD Dissertation, Universidad de Alcalá, Alcalá de Henares, Spain.
Velázquez, E. & Gómez-Sal, A. (2007). Environmental control of early succession in a landslide on a dry tropical ecosystem (Casita Volcano, Nicaragua). Biotropica, 35, 601–609.CrossRefGoogle Scholar
Velázquez, E. & Gómez-Sal, A. (2008). Landslide early succession in a neotropical dry forest. Plant Ecology, 199, 295–308.CrossRefGoogle Scholar
Velázquez, E. & Gómez-Sal, A. (2009a). Different growth strategies in the tropical pioneer tree Trema micrantha during succession on a large landslide on Casita Volcano, Nicaragua. Journal of Tropical Ecology, 25, 249–260.CrossRefGoogle Scholar
Velázquez, E. & Gómez-Sal, A. (2009b). Changes in the herbaceous communities on the landslide of the Casita Volcano, Nicaragua, during early succession. Folia Geobotanica, 44, 1–18.CrossRefGoogle Scholar
Versfeld, D.B. & van Wilgen, B.W. (1986). Impact of woody aliens on ecosystem properties. In The Ecology and Management of Biological Invasions in Southern Africa, eds. Macdonald, I.A.W., Kruger, F.J.,& Ferrar, A.A., pp. 239–246. Oxford: Oxford University Press.Google Scholar
Vincent, K.R., Friedman, J.M., & Griffin, E.R. (2009). Erosional consequence of saltcedar control. Environmental Management, 44, 218–227.CrossRefGoogle ScholarPubMed
Vitousek, P.M. (1994). Potential nitrogen fixation during primary succession in Hawai‘i Volcanoes National Park. Biotropica, 26, 234–240.CrossRefGoogle Scholar
Vitousek, P.M. & Walker, L.R. (1987). Colonization, succession and resource availability: ecosystem-level interactions. In Colonization, Succession and Stability, eds. Gray, A.J., Crawley, M.J., & Edwards, P.J, pp. 207–224. Symposium of the British Ecological Society, vol. 26. Oxford: Blackwell.Google Scholar
Vitousek, P.M. & Walker, L.R. (1989). Biological invasion by Myrica faya in Hawai‘i: plant demography, nitrogen fixation, ecosystem effects. Ecological Monographs, 59, 247–265.CrossRefGoogle Scholar
Vitousek, P.M., Asner, G.P., Chadwick, O.A., & Hotchkiss, S. (2009). Landscape-level variation in forest structure and biogeochemistry across a substrate age gradient in Hawaii. Ecology, 90: 3074–3086.CrossRefGoogle ScholarPubMed
Vitousek, P.M., Gerrish, G., Turner, D.R., Walker, L.R., & Mueller-Dombois, D. (1995). Litterfall and nutrient cycling in four Hawaiian montane rainforests. Journal of Tropical Ecology, 11, 189–203.CrossRefGoogle Scholar
Vittoz, J.A. & Hacskaylo, E. (1974). Endo- and ectomycorrhizal associations in five Populus species. Bulletin of the Torrey Botanical Club, 101, 182–186.Google Scholar
Vittoz, P., Stewart, G.H., & Duncan, R.P. (2001). Earthquake impacts in old-growth Nothofagus forest in New Zealand. Journal of Vegetation Science, 12, 417–426.CrossRefGoogle Scholar
Vorpahl, P., Elsenbeer, H., Märker, M., & Schröder, B. (2012). How can statistical models help to determine driving factors of landslides? Ecological Modelling, 293, 27–39.
Wagner, W.L., Herbst, D.R., & Sohmer, S.H. (1999). Manual of the Flowering Plants of Hawaii, Volumes 1 and 2, revised edition. Honolulu, Hawaii, U.S.: University of Hawaii Press.
Waide, R.B. (1996). Birds. In The Food Web of a Tropical Rain Forest, eds. Reagan, D.P. & Waide, R.B., pp. 363–398. Chicago: The University of Chicago Press.Google Scholar
Wakatsuki, T., Tanaka, Y., & Matsukura, Y. (2005). Soil slips on weathering-limited slopes underlain by coarse-grained granite or fine-grained gneiss near Seoul, Republic of Korea. Catena, 60, 181–203.CrossRefGoogle Scholar
Walker, L.R. (1993). Nitrogen fixers and species replacements in primary succession. In Primary Succession on Land, eds. Miles, J. & Walton, D.W.H., pp. 249–272. Oxford: Blackwell.Google Scholar
Walker, L.R. (1994). Effects of fern thickets on woodland development on landslides in Puerto Rico. Journal of Vegetation Science, 5, 525–532.CrossRefGoogle Scholar
Walker, L.R. (1999). Patterns and processes in primary succession. In Ecosystems of Disturbed Ground, Ecosystems of the World 16, ed. Walker, L.R., pp. 585–610. Amsterdam: Elsevier.Google Scholar
Walker, L.R. (2000). Seedling and sapling dynamics of treefall pits in Puerto Rico. Biotropica, 32, 262–275.CrossRefGoogle Scholar
Walker, L.R. (2011). Integration of the study of natural and anthropogenic disturbances using severity gradients. Austral Ecology, 36, 916–922.CrossRefGoogle Scholar
Walker, L.R. (2012). Biology of Disturbed Habitats. Oxford: Oxford University Press.Google Scholar
Walker, L.R. & Aplet, G.H. (1994). Growth and fertilization of Hawaiian tree ferns. Biotropica, 26, 378–383.CrossRefGoogle Scholar
Walker, L.R. & Bellingham, P.J. (2011). Island Environments in a Changing World. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Walker, L.R. & Boneta, W. (1995). Plant and soil responses to fire on a fern-covered landslide in Puerto Rico. Journal of Tropical Ecology, 11, 473–479.CrossRefGoogle Scholar
Walker, L.R. & Chapin, F.S. III. (1987). Interactions among processes controlling successional change. Oikos, 50, 131–135.CrossRefGoogle Scholar
Walker, L.R. & del Moral, R. (2003). Primary Succession and Ecosystem Rehabilitation. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Walker, L.R. & del Moral, R. (2008). Transition dynamics in succession: implications for rates, trajectories, and restoration. In New Models for Ecosystem Dynamics and Restoration, eds. Hobbs, R.J. & Suding, K.N., pp. 33–49. Washington, D.C.: Island Press.Google Scholar
Walker, L.R. & del Moral, R. (2009). Lessons from primary succession for restoration of severely damaged habitats. Applied Vegetation Science, 12, 55–67.CrossRefGoogle Scholar
Walker, L.R. & Neris, L.E. (1993). Posthurricane seed rain dynamics in Puerto Rico. Biotropica, 25, 408–418.CrossRefGoogle Scholar
Walker, L.R. & Powell, E.A. (1999). Regeneration of the Mauna Kea silversword Argyroxiphium sandwicense (Asteraceae) in Hawaii. Biological Conservation, 89, 61–70.CrossRefGoogle Scholar
Walker, L.R. & Sharpe, J.M. (2010). Ferns, disturbance and succession. In Fern Ecology, eds. Mehltreter, K., Walker, L.R., &Sharpe, J.M., pp. 177–219. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Walker, L.R. & Shiels, A.B. (2008). Post-disturbance erosion impacts carbon fluxes and plant succession on recent tropical landslides. Plant and Soil, 313, 205–216.CrossRefGoogle Scholar
Walker, L.R. & Smith, S.D. (1997). Impacts of invasive plants on community and ecosystem properties. In Assessment and Management of Plant Invasions, eds. Luken, J.O. & Thieret, J.W., pp. 69–86. New York: Springer.CrossRefGoogle Scholar
Walker, L.R. & Willig, M.R. (1999). An introduction to terrestrial disturbances. In Ecosystems of Disturbed Ground, Ecosystems of the World 16, ed. Walker, L.R., pp. 1–16. Amsterdam: Elsevier.Google Scholar
Walker, L.R., Zarin, D.J., Fetcher, N., Myster, R.W., & Johnson, A.H. (1996). Ecosystem development and plant succession on landslides in the Caribbean. Biotropica, 28, 566–576.CrossRefGoogle Scholar
Walker, L.R., Clarkson, B.D., Silvester, W., & Clarkson, B.R. (2003). Facilitation outweighs inhibition in post-volcanic primary succession in New Zealand. Journal of Vegetation Science, 14, 277–290.CrossRefGoogle Scholar
Walker, L.R., Velázquez, E., & Shiels, A.B. (2009). Applying lessons from ecological succession to the restoration of landslides. Plant and Soil, 324, 157–168.CrossRefGoogle Scholar
Walker, L.R., Landau, F.H., Velázquez, E., Shiels, A.B., & Sparrow, A. (2010a). Early successional woody plants facilitate and ferns inhibit forest development on Puerto Rican landslides. Journal of Ecology, 98, 625–635.CrossRefGoogle Scholar
Walker, L.R., Wardle, D.A., Bardgett, R.D., & Clarkson, B.D. (2010b). The use of chronosequences in studies of ecological succession and soil development. Journal of Ecology, 98, 725–736.CrossRefGoogle Scholar
Walker, T.W. & Syers, J.K. (1976). The fate of phosphorus during pedogensis. Geoderma, 15, 1–19.CrossRefGoogle Scholar
Walkinshaw, J. (1992). Landslide correction costs on U.S. state highway systems. Transport Research Record, 1343, 36–41.Google Scholar
Wang, D., Cao, L., de Piao, C., Xue, Y.-D., & Wang, M. (2011). Study on high and steep slope stability of surface mine based on RFPA-SRM. Journal of Coal Science and Engineering (China), 17, 119–123.CrossRefGoogle Scholar
Wang, W.-N., Chigira, M., & Furuya, T. (2003). Geological and geomorphological precursors of the Chiu-fen-erh-shan landslide triggered by the Chi-chi earthquake in central Taiwan. Engineering Geology, 69, 1–13.CrossRefGoogle Scholar
Wardle, D.A., Walker, L.R., & Bardgett, R.D. (2004). Ecosystem properties and forest decline in contrasting long-term chronosequences. Science, 305, 509–513.CrossRefGoogle ScholarPubMed
Waythomas, C.F., Scott, W.E., & Nye, C.J. (2010). The geomorphology of an Aleutian volcano following a major eruption: the 7–8 August 2008 eruption of Kasatochi Volcano, Alaska, and its aftermath. Arctic, Antarctic, and Alpine Research, 42, 260–275.CrossRefGoogle Scholar
Web of Science (2011). Accessed 10 November 2011.
Webb, R.H., Ragland, H.C., Godwin, W.H., & Jenkins, O. (1978). Environmental effects of soil property changes with off-road vehicle use. Environmental Management, 2, 219–233.CrossRefGoogle Scholar
Weidinger, J.T., Schramm, J.-F., & Romero, E. (1996). On preparatory causal factors, initiating the pre-historic Tsergo Ri landslide (Langthang Himal, Nepal). Tectonophysics, 260, 95–107.CrossRefGoogle Scholar
Weisman, A. (2007). The World Without Us. New York: Picador.Google Scholar
Wells, A., Duncan, R.P., & Stewart, G.H. (2001). Forest dynamics in Westland, New Zealand: the importance of large, infrequent earthquake-induced disturbance. Journal of Ecology, 89, 1006–1018.CrossRefGoogle Scholar
Wemple, B.C., Jones, J.A., & Grant, G.E. (1996). Channel network extension by logging roads in two basins, western Cascades, Oregon. Water Resources Bulletin, 32, 1195–1207.CrossRefGoogle Scholar
Wemple, B.C., Swanson, F.J., & Jones, J.A. (2001). Forest roads and geomorphic process interactions, Cascade Range, Oregon. Earth Surface Processes and Landforms, 26, 191–204.3.0.CO;2-U>CrossRefGoogle Scholar
Wentworth, C.K. (1943). Soil avalanches on Oahu, Hawaii. Geologic Society of America Bulletin, 54, 53–64.CrossRefGoogle Scholar
Westoby, M. (1984). The self-thinning rule. Advances in Ecological Research, 14, 167–225.CrossRefGoogle Scholar
Whelan, F. & Kelletat, D. (2002). Submarine slides on volcanic islands  – a source for mega-tsunamis in the Quaternary. Progress in Physical Geography, 27, 198–216.CrossRefGoogle Scholar
Whitehead, D. (2011). Forests as carbon sinks  – benefits and consequences. Tree Physiology, 31, 893–902.CrossRefGoogle ScholarPubMed
Whitehouse, I.E. (1982). Numerical assessment of erosion from old and recent photographs: a case study from a section of Highway 73, Canterbury, New Zealand. Journal of the Royal Society of New Zealand, 12, 91–101.CrossRefGoogle Scholar
Whitford, W.G., Depree, D.J., Hamilton, P., & Ettershank, G. (1981). Foraging ecology of seed harvesting ants, Pheidole spp, in a Chihuahuan Desert ecosystem. American Midland Naturalist, 105, 159–167.CrossRefGoogle Scholar
Wilcke, W., Valladarez, H., Stoyan, et al. (2003). Soil properties on a chronosequence of landslides in montane rain forest, Ecuador. Catena, 53, 79–95.CrossRefGoogle Scholar
Wilcock, P.R., Schmidt, J.C., Wolman, M.G., et al. (2003). When models meet managers: examples from geomorphology. American Geophysical Union Monograph Series, 135, 27–40.Google Scholar
Wilke, S., McCafferty, G., & Watson, B. (2011). The archaeology of death on the shore of Lake Nicaragua. In: Identity Crisis: Archaeological Perspectives on Social Identity, eds. Amundsen-Meyer, L., Engel, N., & Pickering, S., pp. 178–188. Calgary, British Columbia: Chacmool Archaeological Association & University of Calgary.Google Scholar
Willig, M.R. & Gannon, M.R. (1996). Mammals. In The Food Web of a Tropical Rain Forest, eds. Reagan, D.P. & Waide, R.B., pp. 399–431. Chicago: The University of Chicago Press.Google Scholar
Willig, M.R. & McGinley, M.A. (1999). The response of animals to disturbance and their roles in patch generation. In Ecosystems of Disturbed Ground, Ecosystems of the World 16, ed. Walker, L.R., pp. 633–658. Amsterdam: Elsevier.Google Scholar
Williams, J.C., Drummond, B.A., & Buxton, R.T. (2010). Initial effects of the August 2008 eruption on breeding birds and marine mammals, at Kasatochi Island, Alaska. Arctic, Antarctic, and Alpine Research, 42, 306–314.CrossRefGoogle Scholar
Willmott, W.F. (1984). Forest clearing and landslides on the basalt plateau of south east Queensland. Queensland Agricultural Journal, 110, 15–20.Google Scholar
Wilson, D., Patten, R., & Megahan, W.P. (1982). Systematic watershed analysis procedure for Clearwater National Forest. Transportation Research Record, National Academy of Sciences, Washington, D.C., 892, 50–56. Cited in Schuster (2001).Google Scholar
Wolfe, L.M. (1987). Inflorescence size and pollinaria removal in Asclepias curassavica and Epidendrum radicans. Biotropica, 19, 86–89.CrossRefGoogle Scholar
Wood, J.R., Wilmshurst, J.M., & Rawlence, N.J. (2011). Radiocarbon-dated faunal remains correlate very large rock avalanche deposit with prehistoric Alpine fault rupture. New Zealand Journal of Geology and Geophysics, 54, 431–434.CrossRefGoogle Scholar
Wondzell, S.M. & King, J.B. (2003). Postfire erosional processes in the Pacific Northwest and Rocky Mountain Regions. Forest Ecology and Management, 178, 75–87.CrossRefGoogle Scholar
Wong, H.N., Ho, K.K.S., & Chan, Y.C. (1997). Assessment of consequence of landslides. In Landslide Risk Assessment, eds. Cruden, D. & Fell, R., pp. 111–149. Rotterdam: Balkema.Google Scholar
Wu, W. & Sidle, R.C. (1995). A distributed slope stability model for steep forested hillslopes. Water Resources Research, 31, 2097–2110.CrossRefGoogle Scholar
Wunderle, J.M., Jr. (1995). Responses of bird populations in a Puerto Rican forest to Hurricane Hugo: the first 18 months. Condor, 97, 879–896.CrossRefGoogle Scholar
Wunderle, J.M., Jr. (1997). The role of animal seed dispersal in accelerating native forest regeneration on degraded tropical lands. Forest Ecology and Management, 99, 223–235.CrossRefGoogle Scholar
Wunderle, J.M., Jr., Díaz, A., Velásquez, I., & Scharron, R. (1987). Forest openings and the distribution of understory birds in a Puerto Rican rainforest. Wilson Bulletin, 99, 22–37.Google Scholar
Wyllie, D.C. & Norrish, N.I. (1996). Stabilization of rock slopes. In Landslides: Investigation and Mitigation, eds. Turner, A.K. & Schuster, R.L., pp. 474–504. Special Report 247, Transportation Research Board, National Research Council. Washington, D.C.: National Academy Press.Google Scholar
Xu, Q., Fan, X., Huang, R., et al. (2009). A catastrophic rockslide-debris flow in Wulong, Chongqing, China in 2009: background, characterization, and causes. Landslides, 7, 75–87.CrossRefGoogle Scholar
Yajima, T., Nakamura, F., Shimuzu, O., & Shibuya, M. (1998). Forest recovery after disturbance by the 1926 mudflow at Mount Tokachi, Hokkaido, Japan. Research Bulletin of Experimental Forestry Hokkaido University, 55, 216–228.Google Scholar
Yamamoto, S.-I., Nishimura, N., & Matsui, K. (1995). Natural disturbance and tree species coexistence in an old-growth beech  – dwarf bamboo forest, southwestern Japan. Journal of Vegetation Science, 6, 875–886.CrossRefGoogle Scholar
Yokota, S. & Iwamatsu, A. (1999). Weathering distribution in a steep slope of soft pyroclastic rocks as an indicator of slope instability. Engineering Geology, 55, 57–68.CrossRefGoogle Scholar
Yoo, K., Amundson, R., Heimsath, A.M., & Dietrich, W.E. (2006). Spatial patterns of soil organic carbon on hillslopes: integrating geomorphic processes and the biological C cycle. Geoderma, 130, 47–65.CrossRefGoogle Scholar
Yurkonis, K.A., Meiners, S.J., & Wachholder, B.E. (2005). Invasion impacts diversity through altered community dynamics. Journal of Ecology, 93, 1053–1061.CrossRefGoogle Scholar
Zarin, D.J. & Johnson, A.H. (1995a). Base saturation, nutrient cation, and organic matter increases during early pedogenesis on landslide scars in the Luquillo Experimental Forest, Puerto Rico. Geoderma, 65, 317–330.CrossRefGoogle Scholar
Zarin, D.J. & Johnson, A.H. (1995b). Nutrient accumulation during primary succession in a montane tropical forest, Puerto Rico. Soil Science Society of America Journal, 59, 1444–1452.CrossRefGoogle Scholar
Zasada, J.C., Sharik, T.L., & Nygren, M. (1992). The reproductive process in boreal forest trees. In A System Analysis of the Global Boreal Forest, eds. Shugart, H.H., Leemans, R., & Bonan, G.. Cambridge: Cambridge University Press.Google Scholar
Zêzere, J.L., Reis, E., Garcia, R., et al. (2004). Integration of spatial and temporal data for the definition of different landslide hazard scenarios in the area north of Lisbon (Portugal). Natural Hazards and Earth System Sciences, 4, 133–146.CrossRefGoogle Scholar
Zhou, C.H., Lee, C.F., Li, J., & Wu, Z.W. (2002). On the spatial relationship between landslides and causative factors on Lantau Island, Hong Kong. Geomorphology, 43, 197–207.CrossRefGoogle Scholar
Ziegler, A.C. (2002). Hawaiian Natural History, Ecology, and Evolution. Honolulu, Hawaii: Hawaii University Press.Google Scholar
Ziegler, A.D., Giambellucca, T.W., Tran, L.T., et al. (2004). Hydrological consequences of landscape fragmentation in mountainous northern Vietnam: evidence of accelerated overland flow generation. Journal of Hydrology, 287, 124–146.CrossRefGoogle Scholar
Ziemer, R.R. (1981). The role of vegetation in the stability of forested slopes. Proceedings of the 17 International Union of Forest Research Organization World Congress, Japan: 297–308.
Zobel, D.B. & Antos, J.A. (1991). 1980 tephra from Mount St. Helens: spatial and temporal variation beneath forest canopies. Biology and Fertility of Soils, 123, 60–66.CrossRefGoogle Scholar
Zogning, A., Ngouaneta, C., & Tiafacka, O. (2007). The catastrophic geographical processes in humid tropical Africa: a case study of the recent landslide disasters in Cameroon. Sedimentary Geology, 199, 15–29.CrossRefGoogle Scholar

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