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Landscape degradation at different spatial scales caused by aridification Cover

Landscape degradation at different spatial scales caused by aridification

Open Access
|Dec 2017

References

  1. ALBERT, B. M. (2015): Holocene aridification, vegetation change, sedimentation regime and limits of carbon isotope data as indicated by the alluvial pollen sites of Arroyo Grande and El Molino in North-Central Mexico. Quaternary International, 377(7): 2–17.10.1016/j.quaint.2014.11.004
  2. BARTHOLY, J., PONGRÁCZ, R. (2010): Analysis of precipitation conditions for the Carpathian Basin based on extreme indices in the 20th century and climate simulations for the 21st century. Physics and Chemistry of the Earth Parts A/B/C 35(1): 43–51.10.1016/j.pce.2010.03.011
  3. BARTHOLY, J., PONGRÁCZ, R., KIS, A., MIKLÓS, E. (2011): Analysis of possible regional climate change in the Carpathian Basin on the basis of ENSEMBLES model simulations. Geophysical Research Abstracts 13: 11449.
  4. BASTIAN, O., STEINHARDT, U. [eds.] (2002): Development and Perspectives of Landscape Ecology. Dordrecht, Springer.10.1023/A:1014412915534
  5. BLANKA, V., MEZŐSI, G., MEYER, B. C. (2013): Projected changes in the drought hazard in Hungary due to climate change. Időjárás 117(2): 219–237.
  6. BRIDGES, E. M., OLDEMAN, L. R. (1999): Global assessment of human-induced land degradation. Arid Soil Research and Rehabilitation 13(4): 319–325.10.1080/089030699263212
  7. BRUNSDEN, D. (2001): A critical assessment of the sensitivity concept in geomorphology. Catena 42(2–4): 99–123.10.1016/S0341-8162(00)00134-X
  8. BUENDIA, C., BATALLA, R. J., SABATER, S., PALAU, A., MARCE, R. (2015): Runoff Trends Driven by Climate and Afforestation in a Pyrenean Basin. Land Degradation & Development, 27(3): 823–838.
  9. DEGROOT, R. S. (1992): Functions of Nature. Groningen, Wolters-Noordhoff.
  10. FARINA, A. (2006): Principles and Methods in Landscape Ecology. Towards a Science of the Landscape. Springer, Landscape Series 3.
  11. FIALA, K., BLANKA, V., LADÁNYI, Z., SZILASSI, P., BENYHE, B., DOLINAJ, D., PÁLFAI, P. (2014): Drought Severity and its Effect on Agricultural Production in the Hungarian-Serbian Cross-Border Area. Journal of Environment Geography 7(3–4): 43–51.10.2478/jengeo-2014-0011
  12. HUETE, A., DIDAN, K., MIURA, T., RODRIGUEZ, E. P., GAO, X., FERREIRA, L. G. (2002): Overview of the radiometric and biophysical performance of the MODIS vegetation indices. Remote Sensing of Environment 83(1–2): 195–213.10.1016/S0034-4257(02)00096-2
  13. KAIRIS, O., KOSMAS, C., KARAVITIS, C., RITSEMA, C., SALVATI, L. et al. (2014): Evaluation and selection of indicators for land degradation and desertification monitoring: types of degradation, causes, and implications for management. Environmental Management 54(5): 971–982.10.1007/s00267-013-0110-023811772
  14. KEESSTRA, S. D, VAN HUISSTEDEN, J., VANDENBERGHE, J., VAN DAM, O., DE GIER, J., PLEIZIER, I. D. (2005): Evolution of the morphology of the river Dragonja (SW Slovenia) due to land-use changes. Geomorphology 69(1–4): 191–207.10.1016/j.geomorph.2005.01.004
  15. KEESSTRA, S. D. (2007): Impact of natural reforestation on floodplain sedimentation in the Dragonja basin, SW Slovenia. Earth Surface Processes and Landforms 32(1): 49–65.10.1002/esp.1360
  16. KERTÉSZ, Á. (2009): The global problem of land degradation and desertification. Hungarian Geographical Bulletin 58(1): 19–31.
  17. KERTÉSZ, Á., MIKA, J. (1999): Aridification - Climate Change in South-Eastern Europe. Physics and Chemistry of the Earth Part A: Solid Earth and Geodesy 24(10): 913–920.10.1016/S1464-1895(99)00135-0
  18. KIRCHNER, A. (2014): Rekonstruktion der spätpleistozänen und holozänen Landschaftsgenese im Guapi-Macacu Einzugsgebiet, Rio de Janeiro, Südostbrasilien. Dissertation Leipzig University.
  19. KOHÁN, B. (2014): GIS-based Analyses of the Aridification of the Danube-Tisza Interfluve. Theses of the PhD Doctoral Dissertation, Budapest, Eötvös Loránd University.
  20. KUTI, L., VATAI, J., MÜLLER, T., KERÉK, B. (2002): Change of the groundwater level on the Danube-Tisza Hilly Region. Földtani Közlöny 132 (Special Issue): 317–325.
  21. LADA (2016): Field Manual for Local Level Land Degradation Assessment in Drylands. LADA-L Part 1: Methodological Approach, Planning and Analysis. Rome, FAO.
  22. LADÁNYI, Z., RAKONCZAI, J., DEÁK, J. Á. (2011a): A Hungarian landscape under strong natural and human impact in the last century. Carpathian Journal of Earth and Environmental Sciences 6(2): 35–44.
  23. LADÁNYI, Z., RAKONCZAI, J., VAN LEEUWEN, B. (2011b): Evaluation of precipitation-vegetation interaction on a climate-sensitive landscape using vegetation indices. Journal of Applied Remote Sensing 5: 053519 (Apr 14).10.1117/1.3576115
  24. LOVETT, G. M., TURNER, M. G., JONES, C. G., WEATHERS, K. C. [eds.] (2005): Ecosystem function in heterogeneous landscapes. New York, Springer.10.1007/b104357
  25. MEYER, B. C. (1997): Landschaftsstrukturen und Regulationsfunktionen in Intensivagrarlandschaften im Raum Leipzig-Halle. Regionalisierte Umweltqualitätsziele – Funktionsbewertungen – multikriterielle Landschaftsoptimierung unter Verwendung von GIS. Dissertation. Leipzig, UFZ-Bericht 24/1997.
  26. MEYER, B. C., GRABAUM, R. (2008): MULBO – Model framework for multicritieria landscape assessment and optimisation – A support system for spatial land use decision. Landscape Research 33(2): 155–179.10.1080/01426390801907428
  27. MEZŐSI, G., BATA, T., MEYER, B. C., BLANKA, V., LADÁNYI, Z. (2014): Climate Change Impacts on Environmental Hazards on the Great Hungarian Plain, Carpathian Basin. International Journal of Disaster Risk Science 5(2): 136–146.10.1007/s13753-014-0016-3
  28. MEZŐSI, G., BLANKA, V., BATA, T., KOVÁCS, F., MEYER, B. C. (2015): Estimation of regional differences in wind erosion sensitivity in Hungary. Natural Hazards and Earth System Sciences 15: 97–107.10.5194/nhess-15-97-2015
  29. MEZŐSI, G., BLANKA, V., LADÁNYI, Z., BATA, T., URDEA, P., FRANK, A., MEYER, B. C. (2016): Expected mid- and long-term changes in drought hazard for the south-eastern Carpathian basin. Carpathian Journal of Earth and Environmental Sciences 11(2): 355–366.
  30. MEZŐSI, G., MEYER, B. C., LOIBL, W., AUBRECHT, C., CSORBA, P., BATA, T. (2013): Assessment of regional climate change impacts on Hungarian landscapes. Regional Environmental Change 13(4): 797–811.10.1007/s10113-012-0326-1
  31. MIKA, J., HORVÁTH, S. Z., MAKRA, L. (2001): Impact of documented land use changes on the surface albedo and evapotranspiration in a plain watershed. Physics and Chemistry of the Earth Part B: Hydrology Oceans and Atmosphere 26(7): 601–606.10.1016/S1464-1909(01)00055-7
  32. NASSAUER, J. I., OPDAM, P. (2008): Design in science: extending the landscape ecology paradigm. Landscape Ecology 23: 633–644.10.1007/s10980-008-9226-7
  33. NEEF, E. (1967): Die theoretischen Grundlagen der Landschaftslehre. Haack VEB, Gotha.
  34. PÁLFAI, I., HERCEG, Á. (2011): Droughtness of Hungary and Balkan Peninsula. Riscuri si Catastrofe 9: 145–154.
  35. RAKONCZAI, J. (2007): Global change and landscape change in Hungary. Geografia fisica e dinamica quaternaria 30(2): 229–232.
  36. RAKONCZAI, J. (2011): Effects and consequences of global climate change in the Carpathian Basin. In: Blanco, J., Kheradmand, H. [eds.]: Climate Change – Geophysical Foundations and Ecological Effects (pp. 297–322). Rijeka, InTech.10.5772/24679
  37. RAKONCZAI, J, FEHÉR, Z. (2015): Function in change of climatic in the temporal change on the groundwater supply in the Hungarian Plain. Hidrológiai Közlöny 95(1): 1–16. (in Hungarian).
  38. RANNOW, S., LOIBL, W., GREIVING, S., GRUEHN, D., MEYER, B. C. (2010): Potential impacts of climate change in Germany – identifying regional priorities for adaptation activities in spatial planning. Landscape and Urban Planning. 98(3–4): 160–171.10.1016/j.landurbplan.2010.08.017
  39. REED, M. S., BUENEMANN, M., ATLHOPHENG, J., AKHTAR-SCHUSTER, M., BACHMANN, F. et al. (2011): Cross-scale monitoring and assessment of land degradation and sustainable land management: a methodological framework for knowledge management. Land Degradation and Development 22: 261–271.10.1002/ldr.1087
  40. SALVATI, L., FORINO, G. (2014): A ‘laboratory’ of landscape degradation: social and economical implications for sustainable development in peri-urban areas. International Journal of Innovation Sustainable Development 8(3): 232–249.10.1504/IJISD.2014.066616
  41. SANJUÁN, Y., GÓMEZ-VILLAR, A., NADAL-ROMERO, E., ÁLVAREZ-MARTÍNEZ, J., ARNÁEZ, J. et al. (2016): Linking Land Cover Changes in the Sub-Alpine and Montane Belts to Changes in a Torrential River. Land Degradation and Development 27(2): 179–189.10.1002/ldr.2294
  42. SORANNO, P. A., CHERUVELIL, K. S., BISSELL, E. G., BREMIGAN, M. T., DOWNING, J. A. et al. (2014): Cross-scale interactions: quantifying multiscaled cause – effect relationships in macrosystems. Frontiers in Ecology and Environment 12(1): 65–73.10.1890/120366
  43. STOCKING, M., MURNAGHAN, N. (2000): Land Degradation – Guidelines for field Assessment. University of East Anglia, Norwich, UK Available at: http://archive.unu.edu/env/plec/l-degrade/index-toc.html
  44. SZALAI, J. (2012): The effect of weather extremes on the development of the groundwater flow of the Danube-Tisza River. VI. Hungarian Geoscientific Conference, Szeged: pp. 804–812. [cit.20.01.2017]. Available at: http://geography.hu/mfk2012/pdf/Szalai_jozsef.pdf (in Hungarian).
  45. SZALAI, J. (2014): The changes in groundwater system in Hungary. 2nd Wahastrat Conference, Szeged, Hungary: 28. [cit.20.01.2017]. Available at: https://wahastrat.vizugy.hu/esemeny/20140616a/Szalai_20140616.pdf (in Hungarian).
  46. SZALAI, J., KOHÁN, B., NAGY, G. (2014): Space Statistic Analysis of the Groundwater Level Detection Network of the Danube-Tisza River 32. Hidrológiai Konferencia, Szeged: 14. [cit.20.01.2017]. Available at: http://www.hidrologia.hu/vandorgyules/32/dolgozatok/word/0712_szalai_jozsef.pdf (in Hungarian).
  47. UNEP (1997): World atlas of desertification, 2nd Edition, Middleton, N., Thomas, D. [eds.]. London, Arnold.
  48. USHER, M. B. (2001): Landscape sensitivity: from theory to practice. Catena 42(2–4): 375–383.10.1016/S0341-8162(00)00148-X
  49. VERBURG, P. H., ERB, K. H., MERTZ, O., ESPINDOLA, G. (2013): Land System Science: between global challenges and local realities. Current Opinion in Environmental Sustainability 5(5): 433–437.10.1016/j.cosust.2013.08.001401898224851141
  50. XU, H. (2006): Modification of normalised difference water index (NDWI) to enhance open water features in remotely sensed imagery. International Journal of Remote Sensing 27(14): 3025–3033.10.1080/01431160600589179
DOI: https://doi.org/10.1515/mgr-2017-0023 | Journal eISSN: 2199-6202 | Journal ISSN: 1210-8812
Language: English
Page range: 271 - 281
Submitted on: Jan 25, 2017
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Accepted on: Oct 10, 2017
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Published on: Dec 29, 2017
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2017 Burghard Christian Meyer, Gábor Mezősi, Ferenc Kovács, published by Czech Academy of Sciences, Institute of Geonics
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.