Arid
DOI10.1016/j.jag.2014.11.011
Semi-automated mapping of burned areas in semi-arid ecosystems using MODIS time-series imagery
Hardtke, Leonardo A.1; Blanco, Paula D.1; del Valle, Hector F.1; Metternicht, Graciela I.2; Sione, Walter F.3,4
通讯作者Hardtke, Leonardo A.
来源期刊INTERNATIONAL JOURNAL OF APPLIED EARTH OBSERVATION AND GEOINFORMATION
ISSN0303-2434
出版年2015
卷号38页码:25-35
英文摘要

Understanding spatial and temporal patterns of burned areas at regional scales, provides a long-term perspective of fire processes and its effects on ecosystems and vegetation recovery patterns, and it is a key factor to design prevention and post-fire restoration plans and strategies. Remote sensing has become the most widely used tool to detect fire affected areas over large tracts of land (e.g., ecosystem, regional and global levels). Standard satellite burned area and active fire products derived from the 500-m Moderate Resolution Imaging Spectroradiometer (MODIS) and the Satellite Pour l’Observation de la Terre (SPOT) are available to this end. However, prior research caution on the use of these global-scale products for regional and sub-regional applications. Consequently, we propose a novel semi-automated algorithm for identification and mapping of burned areas at regional scale. The semi-arid Monte shrublands, a biome covering 240,000 km(2) in the western part of Argentina, and exposed to seasonal bushfires was selected as the test area. The algorithm uses a set of the normalized burned ratio index products derived from MODIS time series; using a two-phased cycle, it firstly detects potentially burned pixels while keeping a low commission error (false detection of burned areas), and subsequently labels them as seed patches. Region growing image segmentation algorithms are applied to the seed patches in the second-phase, to define the perimeter of fire affected areas while decreasing omission errors (missing real burned areas). Independently-derived Landsat ETM+ burned-area reference data was used for validation purposes. Additionally, the performance of the adaptive algorithm was assessed against standard global fire products derived from MODIS Aqua and Terra satellites, total burned area (MCD45A1), the active fire algorithm (MOD14); and the L3JRC SPOT VEGETATION 1 km GLOBCARBON products. The correlation between the size of burned areas detected by the global fire products and independently-derived Landsat reference data ranged from R-2 = 0.01-0.28, while our algorithm performed showed a stronger correlation coefficient (R-2=0.96). Our findings confirm prior research calling for caution when using the global fire products locally or regionally. (C) 2014 Elsevier B.V. All rights reserved.


英文关键词Bushfires Burned area Time series Image segmentation MODIS Normalized burn ratio Rangelands
类型Article
语种英语
国家Argentina ; Australia
收录类别SCI-E
WOS记录号WOS:000351970100003
WOS关键词FIRE SEVERITY ; SPOT-VEGETATION ; FOREST-FIRES ; VALIDATION ; ALGORITHM ; PRODUCT ; CLIMATE ; DISTURBANCE ; INTENSITY ; WILDFIRES
WOS类目Remote Sensing
WOS研究方向Remote Sensing
资源类型期刊论文
条目标识符http://119.78.100.177/qdio/handle/2XILL650/187929
作者单位1.Natl Patagonian Ctr, Argentinean Natl Res Council, Terr Ecol Unit, Chubut, Argentina;
2.Univ New S Wales, Sch Biol Earth & Environm Sci, Inst Environm Studies, Sydney, NSW 2052, Australia;
3.Autonomous Univ Entre Rios, RA-3100 Parana, Entre Rios, Argentina;
4.UnLu PRODITEL, RA-6700 Buenos Aires, DF, Argentina
推荐引用方式
GB/T 7714
Hardtke, Leonardo A.,Blanco, Paula D.,del Valle, Hector F.,et al. Semi-automated mapping of burned areas in semi-arid ecosystems using MODIS time-series imagery[J],2015,38:25-35.
APA Hardtke, Leonardo A.,Blanco, Paula D.,del Valle, Hector F.,Metternicht, Graciela I.,&Sione, Walter F..(2015).Semi-automated mapping of burned areas in semi-arid ecosystems using MODIS time-series imagery.INTERNATIONAL JOURNAL OF APPLIED EARTH OBSERVATION AND GEOINFORMATION,38,25-35.
MLA Hardtke, Leonardo A.,et al."Semi-automated mapping of burned areas in semi-arid ecosystems using MODIS time-series imagery".INTERNATIONAL JOURNAL OF APPLIED EARTH OBSERVATION AND GEOINFORMATION 38(2015):25-35.
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