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基于Downhill-Simplex算法的观测数据与作物生长模型同化方法研究
引用本文:孙琳丽,景元书,马玉平,俄有浩,邹艳东,邢开瑜,吴玮.基于Downhill-Simplex算法的观测数据与作物生长模型同化方法研究[J].中国农业气象,2012(4):555-566.
作者姓名:孙琳丽  景元书  马玉平  俄有浩  邹艳东  邢开瑜  吴玮
作者单位:南京信息工程大学;中国气象科学研究院;内蒙古通辽气象局;四川省气候中心
基金项目:中国气象科学研究院基本科研业务费专项(2009Y005);公益性行业(气象)科研专项(GYHY200906022);中国气象局气候变化专项项目(CCSF-09-12)
摘    要:以夏玉米叶面积指数(LAI)、贮存器官干重(WSO)、地上总干重(TAGP)以及土壤水分含量(SM)为结合点,建立了基于Downhill—Simplex算法的作物生长模型WOFOST同化多种地面观测数据的一般方法或流程:开展观测数据与作物生长模型同化方法的正确性验证→利用Downhill—Simplex算法进行WOFOST模型的敏感性分析一选择敏感参数组合→通过优化效果确定待优化参数→利用新的观测数据对待优化参数进行优化,从而实现了观测数据与作物生长模型的同化,提升了模型的模拟能力。同化过程中遴选出的WOFOST模型的待优化参数主要包括比叶面积、最大CO2同化速率、初始地上部总干物重、根深最大日增量和初始土壤有效水等。

关 键 词:观测数据同化  作物生长模型  Downhill—Simplex算法  敏感性分析

Assimilation Scheme of Observation Data and Crop Growth Model Based on Downhill-Simplex Algorithm
SUN Lin-li,JING Yuan-shu,MA Yu-ping,E You-hao,ZOU Yan-dong,XING Kai-yu,WU Wei.Assimilation Scheme of Observation Data and Crop Growth Model Based on Downhill-Simplex Algorithm[J].Chinese Journal of Agrometeorology,2012(4):555-566.
Authors:SUN Lin-li  JING Yuan-shu  MA Yu-ping  E You-hao  ZOU Yan-dong  XING Kai-yu  WU Wei
Institution:1,2(1.Nanjing University of Information Science & Technology,Nanjing 210044,China;2.Chinese Academy of Meteorological Sciences,Beijing 100081;3.Meteorological Bureau of Tongliao of Inner Mongolia,Tongliao 028000;4 Sichuan Climate Center,Chengdu 610072)
Abstract:The scheme of assimilation of multivariate observation data and crop growth model based on Downhill - Simplex algorithm was established while LAI, dry weight of living storage organs (WSO), total above ground production (TAGP) and soil moisture (SM) as the point of integration for summer maize in Hebei. Correctness verification of assimilation of the observational data and crop growth model was firstly performed. Then, sensitivity of all parameters and initial value of the state variables in WOFOST were analyzed based on the Downhill - Simplex algorithm and the parameters to be optimized were determined through selection of parameter groups and optimization results. The optimal value of those parameters was at last obtained by means of optimization of new observed data. So, assimilation of measured data and crop growth model was achieved and simulated accuracy of crop growth model was improved. In addition, parameters to be optimized in data assimilation mainly included specific leaf area, leaf maximum CO2 assimilation rate, the initial total crop dry weight, maximum daily increase in rooting depth, and initial amount of available water in total root zone.
Keywords:Assimilation of observation data  Crop growth model  Downhill - Simplex algorithm  Sensitivity analysis
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