Arid
DOI10.1016/j.envdev.2017.10.002
Estimating soil organic matter content from Hyperion reflectance images using PLSR, PCR, MinR and SWR models in semi-arid regions of Iran
Nowkandeh, Sina Mallah1; Noroozi, Ali Akbar2; Homaee, Mehdi.3
通讯作者Noroozi, Ali Akbar
来源期刊ENVIRONMENTAL DEVELOPMENT
ISSN2211-4645
EISSN2211-4653
出版年2018
卷号25页码:23-32
英文摘要

Soil organic matter is highly pivotal as it can improve physical, chemical and biological properties of soil through various functions. Direct measurement of soil organic matter at large scales requires a great number of soil samples which is time consuming, tedious and costly. Consequently, alternative methods must be developed to provide a rapid overview of soil organic matter with reasonable accuracy at large scales. Remote sensing can be considered as a non-destructive, rapid and inexpensive method for such purpose. Among different remote sensing features, hyperspectral spectroscopy may produce inexpensive, quick and accurate way of producing soil organic matter maps at large scales. This study aimed to assess the feasibility of providing accurate soil organic matter distribution maps for large semi-arid areas of Iran. Consequently, some Hyperion images were used to develop relationships between spectral bands and soil organic matter with several methods including Stepwise Regression (SWR), Minimum Regression (MinR), Partial Least Square Regression (PLSR) and Principle Component Regression (PCR) models. Models were first calibrated with Hyperion images of the Ivanekey region and then verified by using 9 random samples from the Ivanekey and 23 samples from the Uromia semi-arid regions. Results indicated that of the applied models, SWR and PLSR can provide reasonable accuracy (RMSE) to predict soil organic matter in entire semi-arid region. However, more investigations are needed to improve the accuracy of such predictive models for arid and semi-arid regions with relatively low organic matter content.


英文关键词Hyperion Principle component analysis Soil organic matter
类型Article
语种英语
国家Iran
收录类别SCI-E
WOS记录号WOS:000427999100004
WOS关键词NEAR-INFRARED SPECTROSCOPY ; QUANTITATIVE-ANALYSIS ; SPATIAL VARIABILITY ; CARBON ; FIELD ; PREDICTION ; SURFACE ; MOISTURE ; SPECTROMETRY ; INFORMATION
WOS类目Environmental Sciences
WOS研究方向Environmental Sciences & Ecology
资源类型期刊论文
条目标识符http://119.78.100.177/qdio/handle/2XILL650/208962
作者单位1.Tarbiat Modares Univ, Coll Agr, Tehran 14115336, Iran;
2.Soil Conservat & Watershed Management Res Inst, Tehran, Iran;
3.Tarbiat Modares Univ, Dept Irrigat & Drainage, Tehran 14115336, Iran
推荐引用方式
GB/T 7714
Nowkandeh, Sina Mallah,Noroozi, Ali Akbar,Homaee, Mehdi.. Estimating soil organic matter content from Hyperion reflectance images using PLSR, PCR, MinR and SWR models in semi-arid regions of Iran[J],2018,25:23-32.
APA Nowkandeh, Sina Mallah,Noroozi, Ali Akbar,&Homaee, Mehdi..(2018).Estimating soil organic matter content from Hyperion reflectance images using PLSR, PCR, MinR and SWR models in semi-arid regions of Iran.ENVIRONMENTAL DEVELOPMENT,25,23-32.
MLA Nowkandeh, Sina Mallah,et al."Estimating soil organic matter content from Hyperion reflectance images using PLSR, PCR, MinR and SWR models in semi-arid regions of Iran".ENVIRONMENTAL DEVELOPMENT 25(2018):23-32.
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