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Classification of Tundra Vegetation in the Krkonoše Mts. National Park Using APEX, AISA Dual and Sentinel-2A Data

Autor
Červená, Lucie
Albrechtová, Jana
Březina, Stanislav
Jakešová, Lucie
Suchá, Renáta
Kupková, Lucie
Zagajewski, Bogdan
Data publikacji
2017
Abstrakt (EN)

The aim of this study was to evaluate and compare suitability of aerial hyperspectral data (AISA Dual and APEX sensors) and Sentinel-2A data for classification of tundra vegetation cover in the Krkonoše Mts. National Park. We compared classification results (accuracy, maps) of pixel-based (Maximum Likelihood, Suport Vector Machine and Neural Net) and object-based approaches. The best classification results (overall accuracy 84.3%, Kappa coefficient = 0.81) were achieved for AISA Dual data using per-pixel SVM classifier for 40 PCA bands. The best classification results of APEX though were only 1.7 percentage points lower. To get comparable results for Sentinel-2A classification legend had to be simplified. With the simplified legend the accuracy using MLC classifier reached 77.7%.

Dyscyplina PBN
geografia społeczno-ekonomiczna i gospodarka przestrzenna
Czasopismo
European Journal of Remote Sensing
Tom
50
Zeszyt
1
Strony od-do
29-46
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