Arid
DOI10.1007/s10980-016-0381-y
Effect of spatial image support in detecting long-term vegetation change from satellite time-series
Maynard, Jonathan J.; Karl, Jason W.; Browning, Dawn M.
通讯作者Maynard, Jonathan J.
来源期刊LANDSCAPE ECOLOGY
ISSN0921-2973
EISSN1572-9761
出版年2016
卷号31期号:9页码:2045-2062
英文摘要

Arid rangelands have been severely degraded over the past century. Multi-temporal remote sensing techniques are ideally suited to detect significant changes in ecosystem state; however, considerable uncertainty exists regarding the effects of changing image resolution on their ability to detect ecologically meaningful change from satellite time-series.


(1) Assess the effects of image resolution in detecting landscape spatial heterogeneity. (2) Compare and evaluate the efficacy of coarse (MODIS) and moderate (Landsat) resolution satellite time-series for detecting ecosystem change.


Using long-term (similar to 12 year) vegetation monitoring data from grassland and shrubland sites in southern New Mexico, USA, we evaluated the effects of changing image support using MODIS (250-m) and Landsat (30-m) time-series in modeling and detecting significant changes in vegetation using time-series decomposition techniques.


Within our study ecosystem, landscape-scale (> 20-m) spatial heterogeneity was low, resulting in a similar ability to detect vegetation changes across both satellite sensors and levels of spatial image support. While both Landsat and MODIS imagery were effective in modeling temporal dynamics in vegetation structure and composition, MODIS was more strongly correlated to biomass due to its cleaner (i.e., fewer artifacts/data gaps) 16-day temporal signal.


The optimization of spatial/temporal scale is critical in ensuring adequate detection of change. While the results presented in this study are likely specific to arid shrub-grassland ecosystems, the approach presented here is generally applicable. Future analysis is needed in other ecosystems to assess how scaling relationships will change under different vegetation communities that range in their degree of landscape heterogeneity.


英文关键词Time series MODIS Landsat Image support Arid ecosystems Breaks for additive season and trend
类型Article
语种英语
国家USA
收录类别SCI-E
WOS记录号WOS:000384438000010
WOS关键词HERBACEOUS BIOMASS ; SURFACE REFLECTANCE ; NATIONAL-PARK ; NOAA-AVHRR ; LANDSAT ; NDVI ; SCALE ; DESERTIFICATION ; PERFORMANCE ; DISTURBANCE
WOS类目Ecology ; Geography, Physical ; Geosciences, Multidisciplinary
WOS研究方向Environmental Sciences & Ecology ; Physical Geography ; Geology
来源机构New Mexico State University
资源类型期刊论文
条目标识符http://119.78.100.177/qdio/handle/2XILL650/194961
作者单位New Mexico State Univ, USDA ARS, Jornada Expt Range, MSC 3JER, POB 30003, Las Cruces, NM 88003 USA
推荐引用方式
GB/T 7714
Maynard, Jonathan J.,Karl, Jason W.,Browning, Dawn M.. Effect of spatial image support in detecting long-term vegetation change from satellite time-series[J]. New Mexico State University,2016,31(9):2045-2062.
APA Maynard, Jonathan J.,Karl, Jason W.,&Browning, Dawn M..(2016).Effect of spatial image support in detecting long-term vegetation change from satellite time-series.LANDSCAPE ECOLOGY,31(9),2045-2062.
MLA Maynard, Jonathan J.,et al."Effect of spatial image support in detecting long-term vegetation change from satellite time-series".LANDSCAPE ECOLOGY 31.9(2016):2045-2062.
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