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Science

Snow avalanche hazard of the Krkonoše National Park, Czech Republic

ORCID Icon, , , , &
Pages 86-90 | Received 23 Aug 2016, Accepted 16 Nov 2016, Published online: 20 Dec 2016

References

  • Bartelt, P., Buehler, Y., Christen, M., Deubelbeiss, Y., Salz, M., Schneider, M., & Schumacher, L. (2013). RAMMS User manual v 1.5 Avalanche. Davos, Switzerland: WSL Institute for Snow and Avalanche Research SLF.
  • BFF/EISLF. (1984). Richtlinien zur Berücksichtigungder Lawinengefahr bei Raumwirksamen Tätigkeiten,Bundesamt für Forstwesen (BFF), Eidgenössisches Institut für Schnee- und Lawinenforschung (EISLF) [Guidelines for evaluating the hazard of avalanches in space-relevant activities. Federal Office for the Forest, Federal Institute for Snow and Avalanche Research], Bern, Switzerland.
  • Blahut, J. (2008). Snow avalanche susceptibility map of the Krkonoše Mts. produced by GIS and statistical-probabilistic techniques (in Czech). Opera Corcontica, 45, 35–44.
  • Blahut, J., & Klimeš, J. (2011). Contribution to Czech terminology in landslide risk studies (in Czech). Geografie – Sborník ČGS, 116, 79–90.
  • Bühler, Y., Kumar, S., Veitinger, J., Christen, M., Stoffel, A., & Snehmani, J. (2013). Automated identification of potential snow avalanche release areas based on digital elevation models. Natural Hazards and Earth System Science, 13, 1321–1335. doi:10.5194/nhess-13-1321-2013
  • Canadian Avalanche Association. (2002). Guidelines for avalanche risk determination and mapping in Canada. In D. M. McClung, C. J. Stethem, P. A. Schaerer, & J. B. Jamieson (Eds.), p. 31. Revelstoke: Canadian Avalanche Association. https://c.ymcdn.com/sites/www.avalancheassociation.ca/resource/resmgr/Standards_Docs/Guidelines_for_Risk_Determin.pdf
  • Christen, M., Bűhler, Y., Bartelt, P., Leine, R., Glover, J., Schweizer, A., … Volkwein, A. (2012 ). Integral hazard management using a unified software environment numerical simulation tool “RAMMS” for gravitational natural hazards. Conference Proceedings of the 12th Congress INTERPRAEVENT 2012, Grenoble, France, pp. 77–86.
  • Christen, M., Kowalski, J., & Bartelt, P. (2010). RAMMS: Numerical simulation of dense snow avalanches in three-dimensional terrain. Cold Regions Science and Technology, 63, 1–14. doi:10.1016/j.coldregions.2010.04.005
  • Chrustek, P., Świerk, M., & Biskupič, M. (2013). Snow avalanche hazard mapping for different frequency scenarios, the case of the Tatra Mts., Western Carpathians. Proceedings of the 2013 International Snow Science Workshop, Grenoble – Chamonix Mont-Blanc, pp. 745–749.
  • Engel, Z., Nývl, D., Křížek, M., Treml, V., Jankovská, V., & Lisá, L. (2010). Sedimentary evidence of landscape and climate history since the end of MIS 3 in the Krkonoše Mountains, Czech Republic. Quaternary Science Reviews, 29, 913–927. doi:10.1016/j.quascirev.2009.12.008
  • Gruber, U., & Bartelt, P. (2007). Snow avalanche hazard modelling of large areas using shallow water numerical methods and GIS. Environmental Modelling & Software, 22(10), 1472–1481. doi: 10.1016/j.envsoft.2007.01.001
  • Horton, P., Jaboyedoff, M., Rudaz, B., & Zimmermann, M. (2013). Flow-R, a model for susceptibility mapping of debris flows and other gravitational hazards at a regional scale. Natural Hazards and Earth System Science, 13, 869–885. doi:10.5194/nhess-13-869-2013
  • Janásková, B. (2006). Accumulation and ablation of snow cover in the summit parts of the East Giant Mountains (in Czech). Opera Corcontica, 43, 57–80.
  • Jeník, J. (1961). Alpine vegetation of Krkonoše, Kralický Sněžník and Hrubý Jeseník (in Czech). Praha: ČSAV.
  • Jonasson, C., Gordon, J. E., Kociánová, M., Josefsson, M., Dvořák, I. J., & Thompson, D. B. A. (2005). Links between geodiversity and biodiversity in European mountains: case studies from Sweden, Scotland and the Czech Republic. In D.B.A. Thompson, M.F. Price, & C.A. Galbraith (Eds.), Mountains of Northern Europe: Conservation, Management, People and Nature (pp. 57–70). Edinburgh: Scottish Natural Heritage.
  • Kociánová, M., Kořízek, V., Spusta, V., & Brzeziński, A. (2012). Snow avalanches in Krkonoše (in Czech). KRNAP Administration, Vrchlabí.
  • KRNAP Administration. (2010). Permanent snow avalanche paths of KRNAP area. SHP file, KRNAP Administration, Vrchlabí.
  • KRNAP Administration. (2012). LiDAR aerial point cloud data of KRNAP area. LAS files, KRNAP Administration, Vrchlabí.
  • KRNAP Administration. (2015). Ski-touring routes of KRNAP area. SHP file, KRNAP Administration, Vrchlabí.
  • Maggioni, M., Gruber, U., Purves, R. S., & Freppaz M. (2006). Potential Release Areas and Return Period of Avalanches: Is There a Relation? In Proceedings of the 2006 International Snow Science Workshop (pp. 566–571), Telluride, Colorado.
  • McClung, D. M. (2001). Characteristics of terrain, snow supply and forest cover for avalanche initiation caused by logging. Annals of Glaciology, 32, 223–229. doi: 10.3189/172756401781819391
  • McClung, D. M. (2003). Magnitude and Frequency of Avalanches in Relation to Terrain and Forest Cover. Arctic, Antarctic, and Alpine Research, 35, 82–90. doi: 10.1657/1523-0430(2003)035[0082:MAFOAI]2.0.CO;2
  • McClung, D. M., & Schaerer, P. (2004). The Avalanche Handbook. The Mountaineers, Seattle.
  • Pavlásek, J., Blahut, J., & Juras, R. (2015). Digital snow avalanche inventory of the Czech part of Krkonoše 1961/62-2014/15. XLS file, Czech University of Life Sciences, Prague.
  • Pradhan, B. (2013). A comparative study on the predictive ability of the decision tree, support vector machine and neuro-fuzzy models in landslide susceptibility mapping using GIS. Computers & Geosciences, 51, 350–365. doi: 10.1016/j.cageo.2012.08.023
  • Quinlan, J. R. (1993). C4. 5: Programs for machine learning. Morgan Kaufmann, San Francisco.
  • Saito, H., Nakayama, D., & Matsuyama, H. (2009). Comparison of landslide susceptibility based on a decision-tree model and actual landslide occurrence: the Akaishi Mountains, Japan. Geomorphology, 109(3), 108–121. doi:10.1016/j.geomorph.2009.02.026
  • Sampl, P., & Zwinger, T. (2004). Avalanche simulation with SAMOS. Annals of Glaciology, 38, 393–398. doi: 10.3189/172756404781814780
  • Schläppy, R., Eckert, N., Jomelli, V., Stoffel, M., Grancher, D., Brunstein, D., … Deschatres, M. (2014). Validation of extreme snow avalanches and related return periods derived from a statistical-dynamical model using tree-ring techniques. Cold Regions Science and Technology, 99, 12–26. doi:10.1016/j.coldregions.2013.12.001
  • Schweizer, J., Jamieson, B., & Schneebeli, M. (2003). Snow avalanche formation. Reviews of Geophysics, 41, 1016–1041. doi:10.1029/2002RG000123
  • Spusta, V., & Kociánová, M. (1998). Snow avalanche cadastre of Czech part of Krkonoše 1961/62-1997/98 (in Czech). Opera Corcontica, 35, 3–205.
  • Spusta sen, V., Spusta jun, V., & Kociánová, M. (2003). Snow avalanche cadastre and winter situation in the Czech part of Krkonoše 1998/99–2002/03 (in Czech). Opera Corcontica, 40, 5–86.
  • Spusta sen, V., Spusta jun, V., & Kociánová, M. (2006). Snow avalanche cadastre of Czech part of Krkonoše 2003/04 až 2005/06 (in Czech). Opera Corcontica, 43, 81–93.
  • Voellmy, A. (1955). Uber die Zerstőrungskraft von Lawinen [On breaking force of avalanches]. Schweizerische Bauzeitung, 73, 212–285.
  • Vrba, M. (2003). In avalanches and winter storms. Altituda, Vsetín.
  • Vrba, M., & Spusta, V. (1975). Snow avalanche cadastre of Krkonoše (in Czech). Opera Corcontica, 12, 65–90.
  • Vrba, M., & Spusta, V. (1991). Snow avalanche cadastre of Krkonoše (in Czech). Opera Corcontica, 28, 47–58.
  • Wu, X., Kumar, V., Quinlan, J. R., Ghosh, J., Yang, Q., Motoda, H., … Steinberg, D. (2008). Top 10 algorithms in data mining. Knowledge and Information Systems, 14(1), 1–37. doi:10.1007/s10115-007-0114-2
  • Yeon, Y. K., Han, J. G., & Ryu, K. H. (2010). Landslide susceptibility mapping in Injae, Korea, using a decision tree. Engineering Geology, 116(3), 274–283. doi:10.1016/j.enggeo.2010.09.009