Development of a new thermal snow index and its relationship with snow cover indices and snow cover characteristic indices

被引:0
|
作者
Retinder Kour
Nilanchal Patel
Akhouri Pramod Krishna
机构
[1] Birla Institute of Technology Mesra,Department of Remote Sensing
来源
关键词
NDSI; S3; SGI; SCI; NDSTI; NDTSI; S3TSI;
D O I
暂无
中图分类号
学科分类号
摘要
In this study, we have developed a new thermal snow index viz. S3 thermal snow index (S3TSI) and determined its relationship with two existing thermal snow indices (i.e., normalized difference snow thermal index (NDSTI) and normalized difference thermal snow index (NDTSI)) and with snow cover indices (i.e., normalized difference snow index (NDSI) and S3) and snow cover characteristic indices (i.e., snow grain size index (SGI) and snow contamination index (SCI)) for two different sites such as bare snow cover and snow cover mixed with vegetation, respectively, based on Pearson’s correlation coefficients. Whereas NDSTI uses blue band, NDTSI incorporates NDSI. With this analogy, we have developed “S3TSI” by substituting S3 for NDSI since S3 better demarcates snow cover mixed with vegetation. The study was conducted in snow cover test sites of the Chenab basin, Western Himalayas using LANDSAT-8 Operational Land Imager and Thermal Infrared Sensor data of November 2013. The investigation revealed that S3TSI exhibits considerably higher correlation with NDTSI and also with NDSI and S3 in either site except in the case of snow cover mixed with vegetation where NDTSI correlates better with NDSI. All the three thermal snow indices exhibit very high correlation with the snow cover indices in snow cover mixed with vegetation as compared to bare snow cover. However, the thermal snow indices show weak correlation with the snow cover characteristic indices as compared to the snow cover indices in either site. The findings demonstrate the significance of the new thermal snow index as compared to NDSTI and NDTSI.
引用
收藏
相关论文
共 50 条
  • [31] Estimating fractional snow cover from MODIS using the normalized difference snow index
    Salomonson, VV
    Appel, I
    REMOTE SENSING OF ENVIRONMENT, 2004, 89 (03) : 351 - 360
  • [32] Comparison and analysis of snow cover data based on different definitions of snow cover days
    An, Di
    Li, DongLiang
    Yuan, Yun
    SCIENCES IN COLD AND ARID REGIONS, 2011, 3 (01): : 51 - 60
  • [33] AN ATTEMPT TO CALCULATE THE DEVELOPMENT OF A SNOW COVER IN A FOREST
    GRAF, B
    RACHNER, M
    RONSCH, H
    ZEITSCHRIFT FUR METEOROLOGIE, 1980, 30 (05): : 329 - 332
  • [34] Release temperature, snow-cover entrainment and the thermal flow regime of snow avalanches
    Vera Valero, Cesar
    Wikstroem Jones, Katreen
    Buehler, Yves
    Bartelt, Perry
    JOURNAL OF GLACIOLOGY, 2015, 61 (225) : 173 - 184
  • [35] Global SnowPack: a new set of snow cover parameters for studying status and dynamics of the planetary snow cover extent
    Dietz, Andreas J.
    Kuenzer, Claudia
    Dech, Stefan
    REMOTE SENSING LETTERS, 2015, 6 (11) : 844 - 853
  • [36] Uncovering Michael Snow's Cover to Cover
    Evans, Jon
    ART DOCUMENTATION, 2014, 33 (02): : 243 - 266
  • [37] THE EFFECT OF SNOW COVER ON THE CLIMATE
    COHEN, J
    RIND, D
    JOURNAL OF CLIMATE, 1991, 4 (07) : 689 - 706
  • [38] POTTER,PG - SNOW COVER
    LOEWE, F
    ARCTIC, 1966, 19 (04) : 360 - &
  • [39] Changes of snow cover in Poland
    Szwed, Malgorzata
    Pinskwar, Iwona
    Kundzewicz, Zbigniew W.
    Graczyk, Dariusz
    Mezghani, Abdelkader
    ACTA GEOPHYSICA, 2017, 65 (01): : 65 - 76
  • [40] PREDICTING FRACTIONAL SNOW COVER
    Whitesides, Clayton J.
    Connolly, Matthew H.
    Arbogast, Jason D.
    PAPERS OF THE APPLIED GEOGRAPHY CONFERENCES, VOL 33, 2010, : 45 - 54