Dynamic Mapping of Rice Growth Parameters Using HJ-1 CCD Time Series Data

نویسندگان

  • Jing Wang
  • Jingfeng Huang
  • Ping Gao
  • Chuanwen Wei
  • Lamin R. Mansaray
چکیده

The high temporal resolution (4-day) charge-coupled device (CCD) cameras onboard small environment and disaster monitoring and forecasting satellites (HJ-1A/B) with 30 m spatial resolution and large swath (700 km) have substantially increased the availability of regional clear sky optical remote sensing data. For the application of dynamic mapping of rice growth parameters, leaf area index (LAI) and aboveground biomass (AGB) were considered as plant growth indicators. The HJ-1 CCD-derived vegetation indices (VIs) showed robust relationships with rice growth parameters. Cumulative VIs showed strong performance for the estimation of total dry AGB. The cross-validation coefficient of determination (RCV) was increased by using two machine learning methods, i.e., a back propagation neural network (BPNN) and a support vector machine (SVM) compared with traditional regression equations of LAI retrieval. The LAI inversion accuracy was further improved by dividing the rice growth period into before and after heading stages. This study demonstrated that continuous rice growth monitoring over time and space at field level can be implemented effectively with HJ-1 CCD 10-day composite data using a combination of proper VIs and regression models.

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منابع مشابه

Correction: Wang, J., et al. Dynamic Mapping of Rice Growth Parameters Using HJ-1 CCD Time Series Data. Remote Sens. 2016, 8, 931

Jing Wang 1, Jingfeng Huang 1,*, Ping Gao 2, Chuanwen Wei 1 and Lamin R. Mansaray 1,3 1 Institute of Remote Sensing and Information Application, Zhejiang University, Hangzhou 310058, China; [email protected] (J.W.); [email protected] (C.W.); [email protected] (L.R.M.) 2 Jiangsu Meteorological Bureau, Nanjing 210008, China; [email protected] 3 Department of Agro-Meteorology and Ge...

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عنوان ژورنال:
  • Remote Sensing

دوره 8  شماره 

صفحات  -

تاریخ انتشار 2016