Thermal and Narrowband Multispectral Remote Sensing for Vegetation Monitoring From an Unmanned Aerial Vehicle

被引:961
作者
Berni, Jose A. J. [1 ]
Zarco-Tejada, Pablo J. [1 ]
Suarez, Lola [1 ]
Fereres, Elias [1 ,2 ]
机构
[1] Spanish Council Sci Res, Inst Sustainable Agr, Cordoba 14004, Spain
[2] Univ Cordoba, Dept Agron, E-14071 Cordoba, Spain
来源
IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING | 2009年 / 47卷 / 03期
关键词
Multispectral; narrowband; radiative transfer modeling; remote sensing; stress detection; thermal; unmanned aerial system (UAS); unmanned aerial vehicles (UAVs); CHLOROPHYLL CONTENT ESTIMATION; LAND-SURFACE TEMPERATURE; WATER-STRESS; HYPERSPECTRAL INDEXES; SPECTRAL REFLECTANCE; CANOPY TEMPERATURE; IRON-DEFICIENCY; CROP GROWTH; LEAF-AREA; MODEL;
D O I
10.1109/TGRS.2008.2010457
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Two critical limitations for using current satellite sensors in real-time crop management are the lack of imagery with optimum spatial and spectral resolutions and an unfavorable revisit time for most crop stress-detection applications. Alternatives based on manned airborne platforms are lacking due to their high operational costs. A fundamental requirement for providing useful remote sensing products in agriculture is the capacity to combine high spatial resolution and quick turnaround times. Remote sensing sensors placed on unmanned aerial vehicles (UAVs) could fill this gap, providing low-cost approaches to meet the critical requirements of spatial, spectral, and temporal resolutions. This paper demonstrates the ability to generate quantitative remote sensing products by means of a helicopter-based UAV equipped with inexpensive thermal and narrowband multispectral imaging sensors. During summer of 2007, the platform was flown over agricultural fields, obtaining thermal imagery in the 7.5-13-mu m region (40-cm resolution) and narrowband multispectral imagery in the 400-800-nm spectral region (20-cm resolution). Surface reflectance and temperature imagery were obtained, after atmospheric corrections with MODTRAN. Biophysical parameters were estimated using vegetation indices, namely normalized difference vegetation index, transformed chlorophyll absorption in reflectance index/optimized soil-adjusted vegetation index, and photochemical reflectance index (PRI), coupled with SAILH and FLIGHT models. As a result, the image products of leaf area index, chlorophyll content (C-ab), and water stress detection from PRI index and canopy temperature were produced and successfully validated. This paper demonstrates that results obtained with a low-cost UAV system for agricultural applications yielded comparable estimations, if not better, than those obtained by traditional manned airborne sensors.
引用
收藏
页码:722 / 738
页数:17
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