首页> 外文会议>Dragon 3 Final Results amp; Dragon 4 Kick-Off Symposium >FARMLAND DROUGHT EVALUATION BASED ON THE ASSIMILATION OF MULTI-TEMPORAL MULTI-SOURCE REMOTE SENSING DATA INTO AQUACROP MODEL
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FARMLAND DROUGHT EVALUATION BASED ON THE ASSIMILATION OF MULTI-TEMPORAL MULTI-SOURCE REMOTE SENSING DATA INTO AQUACROP MODEL

机译:基于多时相多源遥感数据到水产养殖模型的农田干旱评价

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摘要

Drought is the most costly natural disasters in China and all over the world. It is very important to evaluate the drought-induced crop yield losses and further improve water use efficiency at regional scale. Firstly, crop biomass was estimated by the combined use of Synthetic Aperture Radar (SAR) and optical remote sensing data. Then the estimated biophysical variable was assimilated into crop growth model (FAO AquaCrop) by the Particle Swarm Optimization (PSO) method from farmland scale to regional scale.rnAt farmland scale, the most important crop parameters of AquaCrop model were determined to reduce the used parameters in assimilation procedure. The Extended Fourier Amplitude Sensitivity Test (EFAST) method was used for assessing the contribution of different crop parameters to model output. Moreover, the AquaCrop model was calibrated using the experiment data in Xiaotangshan, Beijing.rnAt regional scale, spatial application of our methods were carried out and validated in the rural area of Yangling, Shaanxi Province, in 2014. This study will provide guideline to make irrigation decision of balancing of water consumption and yield loss.
机译:干旱是中国乃至世界上代价最高的自然灾害。评价干旱引起的农作物减产并进一步提高区域尺度的用水效率非常重要。首先,通过合成孔径雷达(SAR)和光学遥感数据的结合来估算作物生物量。然后通过粒子群优化(PSO)方法将估计的生物物理变量同化为农田尺度到区域尺度的作物生长模型(FAO AquaCrop)。在农田尺度下,确定AquaCrop模型最重要的作物参数以减少使用的参数在同化过程中。扩展傅里叶振幅灵敏度测试(EFAST)方法用于评估不同作物参数对模型输出的贡献。此外,使用北京小唐山的实验数据对AquaCrop模型进行了校准。2014年,在区域规模上,我们的方法在空间上的应用在陕西省杨凌市的农村地区进行了验证。该研究将为制定该模型提供指导。平衡耗水量和产量损失的灌溉决策。

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  • 来源
  • 会议地点 Wuhan(CN)
  • 作者单位

    National Engineering Research Center for Information Technology in Agriculture (NERCITA), 2449-26, Beijing 100097, P.R.China, Email: yanggj@nercita.org.cn;

    National Engineering Research Center for Information Technology in Agriculture (NERCITA), 2449-26, Beijing 100097, P.R.China yangh@nercita.org.cn;

    National Engineering Research Center for Information Technology in Agriculture (NERCITA), 2449-26, Beijing 100097, P.R.China;

    Consiglio Nazionale delle Ricerche – Institute of Methodologies for Environmental Analysis (C.N.R. – IMAA), Via del Fosso delCavaliere, 100, 00133 Roma, (Italy) Email: stefano.pignatti@cnr.it;

    Università della Tuscia, DAFNE, Via San Camillo de Lellis, 01100, Viterbo (Italy), Email: rcasa@unitus.it;

    Università della Tuscia, DAFNE, Via San Camillo de Lellis, 01100, Viterbo (Italy), p.c.silvestro@unitus.it;

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