Spectro-spatial relationship between UAV derived high resolution DEM and SWIR hyperspectral data: application to an ombrotrophic peatland

被引:8
作者
Arroyo-Mora, J. Pablo [1 ]
Kalacska, Margaret [2 ]
Lucanus, Oliver [3 ]
Soffer, Raymond [1 ]
Leblanc, George [1 ]
机构
[1] Natl Res Council Canada, Flight Res Lab, Ottawa, ON, Canada
[2] McGill Univ, Dept Geog, ARSL, Montreal, PQ, Canada
[3] Water Pictures, Vaudreuil, PQ, Canada
来源
REMOTE SENSING FOR AGRICULTURE, ECOSYSTEMS, AND HYDROLOGY XIX | 2017年 / 10421卷
关键词
northern peatlands; UAV; Structure from Motion; SWIR; surface water; SASI; water indices; FROM-MOTION PHOTOGRAMMETRY; WATER-CONTENT; CARBON; BOG; TABLE; LEAF; PHOTOSYNTHESIS; VARIABILITY; WETLAND;
D O I
10.1117/12.2277874
中图分类号
TP7 [遥感技术];
学科分类号
081102 ; 0816 ; 081602 ; 083002 ; 1404 ;
摘要
Peatlands cover similar to 3% of the globe and are key ecosystems for climate regulation. To better understand the potential effects of climate change in peatlands, a major challenge is to determine the complex relationship between hydrology, microtopography, vegetation patterns, and gas exchange. Here we study the spectral and spatial relationship of microtopographic features (e.g. hollows and hummocks) and near-surface water through narrow-band spectral indices derived from hyperspectral imagery. We used a very high resolution digital elevation model (2.5 cm horizontal, 2.2 cm vertical resolution) derived from an UAV based Structure from Motion photogrammetry to map hollows and hummocks in the peatland area. We also created a 2 cm spatial resolution orthophoto mosaic to enhance the visual identification of these hollows and hummocks. Furthermore, we collected SWIR airborne hyperspectral (880-2450 nm) imagery at 1 m pixel resolution over four time periods, from April to June 2016 (phenological gradient: vegetation greening). Our results revealed an increase in the water indices values (NDWI1640 and NDWI2130) and a decrease in the moisture stress index (MSI) between April and June. In addition, for the same period the NDWI2130 shows a bimodal distribution indicating potential to quantitatively assess moisture differences between mosses and vascular plants. Our results, using the digital surface model to extract NDWI2130 values, showed significant differences between hollows and hummocks for each time period, with higher moisture values for hollows (i.e. moss dominated). However, for June, the water index for hummocks approximated the values found in hollows. Our study shows the advantages of using fine spatial and spectral scales to detect temporal trends in near surface water in a peatland.
引用
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页数:12
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