• Progress in Geography
  • Vol. 39, Issue 4, 627 (2020)
Yongyong ZHANG1、1、* and Qiutan CHEN1、1、2、2
Author Affiliations
  • 1Institute of Geographic Sciences and Natural Resources Research, Key Laboratory of Water Cycle and Related Land Surface Process, CAS, Beijing 100101, China
  • 1中国科学院地理科学与资源研究所 陆地水循环及地表过程重点实验室,北京 100101
  • 2University of Chinese Academy of Sciences, Beijing 100049, China
  • 2中国科学院大学,北京 100049
  • show less
    DOI: 10.18306/dlkxjz.2020.04.009 Cite this Article
    Yongyong ZHANG, Qiutan CHEN. Characteristics of main flood event types and their temporal-spatial variations in the upper and middle reaches of the Huai River Basin[J]. Progress in Geography, 2020, 39(4): 627 Copy Citation Text show less
    References

    [1] Bunn S E, Arthington A H. Basic principles and ecological consequences of altered flow regimes for aquatic biodiversity[J]. Environmental Management, 30, 492-507(2002).

    [2] Zhang Y Y, Zhai X Y, Shao Q X et al. Assessing temporal and spatial alterations of flow regimes in the regulated Huai River Basin, China[J]. Journal of Hydrology, 529, 384-397(2015).

    [4] Wagener T, Sivapalan M, Troch P et al. Catchment classification and hydrologic similarity[J]. Geography Compass, 1, 901-931(2007).

    [5] Kuentz A, Arheimer B, Hundecha Y et al. Understanding hydrologic variability across Europe through catchment classification[J]. Hydrology and Earth System Sciences, 21, 2863-2879(2017).

    [6] Parajka J, Kohnová S, Bálint G et al. Seasonal characteristics of flood regimes across the Alpine-Carpathian range[J]. Journal of Hydrology, 394, 78-89(2010).

    [7] Hall J, Blöschl G. Spatial patterns and characteristics of flood seasonality in Europe[J]. Hydrology and Earth System Sciences, 22, 3883-3901(2018).

    [10] Sikorska A E, Viviroli D, Seibert J. Flood-type classification in mountainous catchments using crisp and fuzzy decision trees[J]. Water Resources Research, 51, 7959-7976(2015).

    [15] Koutroulis A G, Tsanis I K, Daliakopoulos I N. Seasonality of floods and their hydrometeorologic characteristics in the island of Crete[J]. Journal of Hydrology, 394, 90-100(2010).

    [16] Saharia M, Kirstetter P E, Vergara H et al. Characterization of floods in the United States[J]. Journal of Hydrology, 548, 524-535(2014).

    [22] Richter B D, Baumgartner J V, Powell J et al. A method for assessing hydrologic alteration within ecosystems[J]. Conservation Biology, 10, 1163-1174(1996).

    [23] Poff N L, Allan J D, Bain M B. The nature flow regime: A paradigm for river conservation and restoration[J]. BioScience, 47, 769-784(1997).

    [24] Poff N L, Zimmerman J K. Ecological responses to altered flow regimes: A literature review to inform the science and management of environmental flows[J]. Freshwater Biology, 55, 194-205(2010).

    [25] Zhang Y Y, Zhai X Y, Shao Q X et al. Assessing temporal and spatial alterations of flow regimes in the regulated Huai River Basin, China[J]. Journal of Hydrology, 529, 384-397(2015).

    [26] Zhang Y, Fu G, Sun B et al. Simulation and classification of the impacts of projected climate change on flow regimes in the arid Hexi Corridor of Northwest China[J]. Journal of Geophysical Research: Atmospheres, 120, 7429-7453(2015).

    [27] Goodman L, Kruskal W. Measures of associations for cross classification[J]. Journal of the American Statistical Association, 49, 732-764(1954).

    [28] Hubert L, Schultz J. Quadratic assignment as a general data-analysis strategy[J]. British Journal of Mathematical & Statistical Psychology, 29, 190-241(1976).

    Yongyong ZHANG, Qiutan CHEN. Characteristics of main flood event types and their temporal-spatial variations in the upper and middle reaches of the Huai River Basin[J]. Progress in Geography, 2020, 39(4): 627
    Download Citation