Knowledge Resource Center for Ecological Environment in Arid Area
Remote sensing and Modeling the dynamics of soil moisture and vegetative cover of arid and semiarid areas | |
Zhan, XW; Gao, W; Qi, JG; Houser, PR; Slusser, JR; Pan, XL; Gao, ZQ; Ma, YJ | |
通讯作者 | Zhan, XW |
会议名称 | Conference on Ecosystems Dynamics, Agricultural Remote Sensing and Modeling and Site-Specific Agriculture |
会议日期 | AUG 07, 2003 |
会议地点 | SAN DIEGO, CA |
英文摘要 | With the large volume of satellite remote sensing data of the earth terrestrial surface becoming available, precisely monitoring the dynamics of the land surface state variables for agricultural and land use management becomes possible. Currently, the moderate resolution imaging spectroradiometers on board NASA's Earth Observing Satellites (EOS) Terra and Aqua make it possible to derive a global coverage of land surface vegetation indices, leaf area index, and surface temperature data products at 1km spatial resolution every day. The advanced microwave scanning radiometers (AMSR) on board Aqua and Japan's ADEOS satellites start sending back a global coverage of rainfall and land surface soil moisture data products at up to 25km spatial resolution every two to three days. It is also well known that these land surface remote sensing products contain uncertainties due to imperfect instrument calibration and inversion algorithms, geophysical noise, representativeness error, communication breakdowns, and other sources while land surface model can continuously simulate these land surface state or storage variables for all time steps and all covered areas. Therefore a combination of satellite remote sensing products and land surface model simulations may provide more continuous, precise and comprehensive depiction of the dynamics of the land surface states. This paper introduces the state-of-the-arts technologies in the development of NASA's Land Data Assimilation System, and then proposes a procedure to combine the simulations of a simple land surface model and the remote sensing products from MODIS and AMSR. After the results of testing the procedure for an and area in Southwest USA are presented, the application of the procedure for the oases in Fukang County of Xinjiang Autonomous Region is proposed. |
来源出版物 | ECOSYSTEMS' DYNAMICS, AGRICULTURAL REMOTE SENSING AND MODELING, AND SITE-SPECIFIC AGRICULTURE |
ISSN | 0277-786X |
出版年 | 2003 |
卷号 | 5153 |
页码 | 51-60 |
ISBN | 0-8194-5026-X |
出版者 | SPIE-INT SOC OPTICAL ENGINEERING |
类型 | Proceedings Paper |
语种 | 英语 |
国家 | USA |
收录类别 | CPCI-S |
WOS记录号 | WOS:000188361100006 |
WOS关键词 | SATELLITE DATA ; ENERGY FLUXES ; INDEXES ; CO2 |
WOS类目 | Agricultural Engineering ; Ecology ; Remote Sensing ; Imaging Science & Photographic Technology |
WOS研究方向 | Agriculture ; Environmental Sciences & Ecology ; Remote Sensing ; Imaging Science & Photographic Technology |
资源类型 | 会议论文 |
条目标识符 | http://119.78.100.177/qdio/handle/2XILL650/294279 |
作者单位 | (1)NASA, Goddard Space Flight Ctr, Hydrol Sci Branch, UMBC,GEST, Greenbelt, MD 20771 USA |
推荐引用方式 GB/T 7714 | Zhan, XW,Gao, W,Qi, JG,et al. Remote sensing and Modeling the dynamics of soil moisture and vegetative cover of arid and semiarid areas[C]:SPIE-INT SOC OPTICAL ENGINEERING,2003:51-60. |
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