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平原区土壤质地的反射光谱预测与地统计制图
引用本文:王德彩,邬登巍,赵明松,张甘霖.平原区土壤质地的反射光谱预测与地统计制图[J].土壤通报,2012(2):257-262.
作者姓名:王德彩  邬登巍  赵明松  张甘霖
作者单位:土壤与农业可持续发展国家重点实验室(中国科学院南京土壤研究所);中国科学院研究生院
基金项目:江苏省基础研究计划(BK2008058);中国科学院知识创新工程重要方向性项目(KZCX2-YW-409)资助
摘    要:基于地统计方法的土壤属性制图通常需要大量的采样与实验室测定。本研究提出利用可见光近红外(visible-nearinfrared spectroscopy,VNIR)光谱技术测定替代实验室测定,并与地统计方法相结合预测土壤质地的空间变异。通过建立砂粒(0.02 mm),粉粒(0.002~0.02 mm),黏粒(0.002 mm)含量的VNIR光谱预测模型,将模型预测得到的质地数据和建模点实测质地数据一同用于地统计分析和Kriging插值制图。以江苏北部黄淮平原地区为案例的研究结果表明,砂粒、粉粒、黏粒含量的预测值和实测值的均方根误差(RMSE)分别为8.67%、6.90%3、.51%,平均绝对误差(MAE)分别为6.46%、5.60%、3.05%,显示了较高的预测精度。研究为快速获取平原区土壤质地空间分布提供了新的可能的途径。

关 键 词:数字土壤制图  平原区  土壤质地  地统计学  Kriging

Prediction and Mapping of Soil Texture of a Plain Area Using Reflectance Spectra and Geo-statistics
WANG De-cai,WU Deng-wei,ZHAO Ming-song,ZHANG Gan-lin.Prediction and Mapping of Soil Texture of a Plain Area Using Reflectance Spectra and Geo-statistics[J].Chinese Journal of Soil Science,2012(2):257-262.
Authors:WANG De-cai  WU Deng-wei  ZHAO Ming-song  ZHANG Gan-lin
Institution:1(1.State Key Laboratory of Soil and Sustainable Agriculture Institute of Soil Science,Chinese Academy of Sciences,Nanjing 210008,China;2.Graduate School of the Chinese Academy of Sciences,Beijing 100049,China.)
Abstract:Digital soil mapping methods based on Geo-statistics often needs a large number of samples.This study investigated a method that integrating geostatistics and visible-near-infrared(VNIR) spectroscopy to estimate soil texture of a plain area in Jiangsu province.Predictive models between soil texture(sand,silt and clay content) and VNIR spectroscopy were established.Soil texture data of training samples and those obtained from the predicted models were used for mapping soil texture using ordinary kriging method.A validation dataset produced the estimates of error for the predicted maps of sand,silt and clay expressed as RMSE with the values of 8.67%,6.90%,and 3.51%,respectively.This study demonstrates the possibility to potentially map regional soil texture variation digitally with considerable success.
Keywords:Digital soil mapping  Plain area  Soil texture  Geostatistics  Kriging
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