Land surface phenology retrievals for arid and semi-arid ecosystems

被引:36
作者
Xie, Qiaoyun [1 ]
Cleverly, Jamie [1 ,2 ]
Moore, Caitlin E. [3 ,4 ]
Ding, Yanling [1 ,5 ]
Hall, Christopher C. [1 ]
Ma, Xuanlong [6 ]
Brown, Luke A. [7 ]
Wang, Cong [8 ]
Beringer, Jason [3 ]
Prober, Suzanne M. [9 ]
Macfarlane, Craig [9 ]
Meyer, Wayne S. [10 ]
Yin, Gaofei [11 ]
Huete, Alfredo [1 ]
机构
[1] Univ Technol Sydney, Fac Sci, Sydney, NSW 2007, Australia
[2] James Cook Univ, Coll Sci & Engn, Terr Ecosyst Res Network, Cairns, Qld 4811, Australia
[3] Univ Western Australia, Sch Agr & Environm, Crawley, WA 6010, Australia
[4] Univ Illinois, Inst Sustainabil Energy & Environm, Urbana, IL 61801 USA
[5] Northeast Normal Univ, Sch Geog Sci, Key Lab Geog Proc & Ecol Secur Changbai Mt, Minist Educ, Changchun 130024, Peoples R China
[6] Lanzhou Univ, Coll Earth & Environm Sci, Lanzhou 730000, Gansu, Peoples R China
[7] Univ Southampton, Sch Geog & Environm Sci, Southampton SO17 1BJ, Hants, England
[8] Cent China Normal Univ, Key Lab Geog Proc Anal & Simulat Hubei Prov, Sch Urban & Environm Sci, Wuhan 430079, Peoples R China
[9] Commonwealth Sci & Ind Res Org, Land & Water, Wembley, WA 6913, Australia
[10] Univ Adelaide, Sch Biol Sci, Adelaide, SA 5005, Australia
[11] Southwest Jiaotong Univ, Fac Geosci & Environm Engn, Chengdu 610031, Peoples R China
基金
澳大利亚研究理事会; 中国国家自然科学基金;
关键词
Land surface phenology; Arid and semi-arid ecosystems; EVI; MODIS; Gross primary productivity; TERN OzFlux; CARBON-DIOXIDE EXCHANGE; VEGETATION PHENOLOGY; TIME-SERIES; SPRING PHENOLOGY; COVER DYNAMICS; CLIMATE-CHANGE; MODIS EVI; VIIRS; WATER; PRODUCTIVITY;
D O I
10.1016/j.isprsjprs.2022.01.017
中图分类号
P9 [自然地理学];
学科分类号
0705 ; 070501 ;
摘要
Land surface phenology (LSP) plays a critical role in the regulation of photosynthesis, evapotranspiration, and energy fluxes. Significant progress has been made in extracting LSP information over large areas using satellite data, yet LSP retrievals remain a challenge over vast arid and semi-arid ecosystems because of sparse greenness, high variability and the lack of distinct annual patterns; for example, the MODerate Imaging Spectrometer (MODIS) Land Cover Dynamics Product MCD12Q2 that provides LSP metrics globally often failed to provide LSP information in these ecosystems. In this study, we used a modified threshold algorithm to extract LSP timing metrics, including the start, peak, and end of growing seasons, using the 16-day composite Enhanced Vegetation Index (EVI) time series from MODIS data. We applied this regionally customized algorithm across all arid and semi-arid climate regions of Australia (75% of the continental land area) encompassing shrublands, grasslands, savannas, woodlands, and croplands, extracting LSP metrics annually from 2003 to 2018, with up to two (phenology) seasons accounted for in each year. Our algorithm yielded an average of 64.9% successful rate of retrieval (proportion of pixels with retrieved LSP metrics) across 16 years in Arid and Semi-arid AUStralia (ASAUS), which was a significant increase compared to the 14.5% rate of retrieval yielded in our study area by the global product and the major cause of the different performances between these two approaches was the different EVI amplitude restrictions utilized to avoid spurious peaks (i.e. EVI amplitude > 0.1 used by the global product and peak EVI > time series average EVI used by our algorithm). Gross primary productivity (GPP) measurements at OzFlux eddy covariance (EC) tower sites were used to cross-compare with the presence/absence of growing seasons detected by our algorithm, and 97% of our retrieved seasons matched with those extracted using EC data. Preliminary tests at five OzFlux sites showed that our algorithm was robust to view angle-induced sensitivity of the input data and showed similar performance when using EVI data calculated using MODIS Nadir BRDFAdjusted Reflectance product. Our retrieved LSP metrics revealed that vegetation growth in arid ecosystems is highly irregular and can occur at any time of the year, more than once in a year, or can skip a year. The proportion of pixels with two growing seasons was found to be correlated with the average annual precipitation of the study area (p < 0.01), providing an estimation approach of LSP via rainfall. Our study improves the detection and measurement of vegetation phenology in arid and semi-arid regions by improving the spatial extend of LSP retrievals, which contributes to studies on LSP variations and dryland ecosystem resilience to climate change.
引用
收藏
页码:129 / 145
页数:17
相关论文
共 109 条
[51]   Abrupt shifts in phenology and vegetation productivity under climate extremes [J].
Ma, Xuanlong ;
Huete, Alfredo ;
Moran, Susan ;
Ponce-Campos, Guillermo ;
Eamus, Derek .
JOURNAL OF GEOPHYSICAL RESEARCH-BIOGEOSCIENCES, 2015, 120 (10) :2036-2052
[52]   Spatial patterns and temporal dynamics in savanna vegetation phenology across the North Australian Tropical Transect [J].
Ma, Xuanlong ;
Huete, Alfredo ;
Yu, Qiang ;
Coupe, Natalia Restrepo ;
Davies, Kevin ;
Broich, Mark ;
Ratana, Piyachat ;
Beringer, Jason ;
Hutley, Lindsay B. ;
Cleverly, James ;
Boulain, Nicolas ;
Eamus, Derek .
REMOTE SENSING OF ENVIRONMENT, 2013, 139 :97-115
[53]  
Macfarlane C., 2013, Great Western Woodlands OzFlux: Australian and New Zealand Flux Research and Monitoring
[54]   Multisite analysis of land surface phenology in North American temperate and boreal deciduous forests from Landsat [J].
Melaas, Eli K. ;
Sulla-Menashe, Damien ;
Gray, Josh M. ;
Black, T. Andrew ;
Morin, Timothy H. ;
Richardson, Andrew D. ;
Friedl, Mark A. .
REMOTE SENSING OF ENVIRONMENT, 2016, 186 :452-464
[55]   Detecting interannual variation in deciduous broadleaf forest phenology using Landsat TM/ETM plus data [J].
Melaas, Eli K. ;
Friedl, Mark A. ;
Zhu, Zhe .
REMOTE SENSING OF ENVIRONMENT, 2013, 132 :176-185
[56]   Multiscale assessment of land surface phenology from harmonized Landsat 8 and Sentinel-2, PlanetScope, and PhenoCam imagery [J].
Moon, Minkyu ;
Richardson, Andrew D. ;
Friedl, Mark A. .
REMOTE SENSING OF ENVIRONMENT, 2021, 266
[57]   Long-term continuity in land surface phenology measurements: A comparative assessment of the MODIS land cover dynamics and VIIRS land surface phenology products [J].
Moon, Minkyu ;
Zhang, Xiaoyang ;
Henebry, Geoffrey M. ;
Liu, Lingling ;
Gray, Josh M. ;
Melaas, Eli K. ;
Friedl, Mark A. .
REMOTE SENSING OF ENVIRONMENT, 2019, 226 :74-92
[58]   Reviews and syntheses: Australian vegetation phenology: new insights from satellite remote sensing and digital repeat photography [J].
Moore, Caitlin E. ;
Brown, Tim ;
Keenan, Trevor F. ;
Duursma, Remko A. ;
van Dijk, Albert I. J. M. ;
Beringer, Jason ;
Culvenor, Darius ;
Evans, Bradley ;
Huete, Alfredo ;
Hutley, Lindsay B. ;
Maier, Stefan ;
Restrepo-Coupe, Natalia ;
Sonnentag, Oliver ;
Specht, Alison ;
Taylor, Jeffrey R. ;
van Gorsel, Eva ;
Liddell, Michael J. .
BIOGEOSCIENCES, 2016, 13 (17) :5085-5102
[59]   Increased plant growth in the northern high latitudes from 1981 to 1991 [J].
Myneni, RB ;
Keeling, CD ;
Tucker, CJ ;
Asrar, G ;
Nemani, RR .
NATURE, 1997, 386 (6626) :698-702
[60]   Review: Development of an in situ observation network for terrestrial ecological remote sensing: the Phenological Eyes Network (PEN) [J].
Nasahara, Kenlo Nishida ;
Nagai, Shin .
ECOLOGICAL RESEARCH, 2015, 30 (02) :211-223