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基于SWCI-NDVI特征空间的县域耕地地力遥感反演
引用本文:李因帅,赵庚星,王卓然,崔昆,奚雪,窦家聪. 基于SWCI-NDVI特征空间的县域耕地地力遥感反演[J]. 应用生态学报, 2021, 32(1): 252-260. DOI: 10.13287/j.1001-9332.202101.016
作者姓名:李因帅  赵庚星  王卓然  崔昆  奚雪  窦家聪
作者单位:1.山东农业大学资源与环境学院/土肥资源高效利用国家工程实验室, 山东泰安 271018;2.山东省农业技术推广总站, 济南 250013
基金项目:国家自然科学基金项目(41877003);山东省重大科技创新工程项目(2019JZZY010724);山东省“双一流”奖补资金(SYL2017XTTD02)资助。
摘    要:利用遥感反演县域耕地地力状况,快速、准确、高效地实现耕地定级,是区域耕地资源利用与管理的客观需求.本研究以东平县为研究区,利用Landsat-TM卫星影像和耕地地力评价资料,构建以地表含水量指数(SWCI)、归一化植被指数(NDVI)为特征参量的水分植被地力指数(MVFI),进而优选得到最佳反演模型,并在县域空间上进行...

关 键 词:耕地地力  遥感  反演模型  特征空间  洛伦茨曲线  基尼系数
收稿时间:2020-07-01

Remote sensing inversion of cultivated land fertility at county scale based on SWCI-NDVI feature space
LI Yin-shuai,ZHAO Geng-xing,WANG Zhuo-ran,CUI Kun,XI Xue,DOU Jia-cong. Remote sensing inversion of cultivated land fertility at county scale based on SWCI-NDVI feature space[J]. The journal of applied ecology, 2021, 32(1): 252-260. DOI: 10.13287/j.1001-9332.202101.016
Authors:LI Yin-shuai  ZHAO Geng-xing  WANG Zhuo-ran  CUI Kun  XI Xue  DOU Jia-cong
Affiliation:1.College of Resources and Environment, Shandong Agricultural University/National Engineering Laboratory for Efficient Utilization of Soil and Fertilizer Resources, Tai'an 271018, Shandong, China;2.Shandong General Station of Agricultural Technology Extension, Ji’nan 250013, China
Abstract:It is objective needs during utilization and management of regional cultivated land resource to use remote sensing to accurately and efficiently retrieve the status of cultivated land fertility at county level and realize the gradation of cultivated land rapidly.In this study,with Dongping County as a case,using Landsat TM satellite imagery and cultivated land fertility evaluation data,the moisture vegetation fertility index(MVFI)was constructed based on surface water capacity index(SWCI)and normalized difference vegetation index(NDVI),and then the optimal inversion model was optimized to obtain the best inversion model,which was further applied and verified at the county scale.The results showed that the correlation coefficient between MVFI and integrated fertility index(IFI)was-0.753,which could comprehensively reflect the growth of winter wheat,soil moisture and land fertility,and had clear biophysical significance.The best inversion model was the quadratic model,with high inversion accuracy.This model was suitable for the inversion of cultivated land fertility in the county.The spatial distribution and uniformity of the inversion results were similar to the results of soil fertility evaluation.The area differences between the high,medium and low grades were all less than 2.9%.This study provided a remote sensing inversion method of cultivated land fertility based on the feature space theory,which could effectively improve the evaluation efficiency and prediction accuracy of cultivated land fertility at the county scale.
Keywords:cultivated land fertility  remote sensing  inversion model  feature space  Lorenz curve  Gini coefficient
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