Estimation of Irrigation Water Use by Using Irrigation Signals from SMAP Soil Moisture Data

IF 3.3 2区 农林科学 Q1 AGRONOMY Agriculture-Basel Pub Date : 2023-08-29 DOI:10.3390/agriculture13091709
Liming Zhu, Huifeng Wu, Min Li, Chaoyin Dou, A. Zhu
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Abstract

Accurate irrigation water-use data are essential to agricultural water resources management and optimal allocation. The obscuration presented by ground cover in farmland and the subjectivity of irrigation-related decision-making processes mean that effectively identifying regional irrigation water use remains a critical problem to be solved. In view of the advantages of satellite microwave remote sensing in monitoring soil moisture, previous studies have proposed a method for estimating irrigation water use using the satellite microwave remote sensing of soil moisture. However, the method is affected by false irrigation signals from soil moisture increases caused by non-irrigation factors, causing irrigation water use to be overestimated. Therefore, the purpose of this study is to improve the estimation of irrigation water use in drylands by using irrigation signals from SMAP soil moisture data. In this paper, the irrigation water use in Henan Province is estimated by using the irrigation signals from SMAP (soil moisture active and passive) soil moisture data. Firstly, a method for recognizing irrigation signals in soil moisture data obtained by microwave satellite remote sensing was used. Then, an estimation model of the amount of irrigation water (SM2Rainfall model) was built on each data pixel of the satellite microwave remote sensing of soil moisture. Finally, the amount of irrigation water utilized in Henan Province was estimated by combining the irrigation signals and irrigation water-use estimation model, and the results were evaluated. According to the findings, this study improved the estimation accuracy of irrigation water use by using the irrigation signals in Henan Province. The result of this study is of great importance to accurately obtain irrigation water use in the region.
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利用SMAP土壤水分数据估算灌溉用水量
准确的灌溉用水数据对农业水资源管理和优化配置至关重要。农田地被覆盖的隐蔽性和灌溉决策过程的主观性意味着有效识别区域灌溉用水仍然是一个亟待解决的关键问题。鉴于卫星微波遥感在土壤水分监测方面的优势,已有研究提出了利用卫星微波遥感土壤水分估算灌溉用水量的方法。然而,该方法受非灌溉因素引起的土壤水分增加所产生的虚假灌溉信号的影响,导致灌溉用水量被高估。因此,本研究的目的是利用SMAP土壤水分数据中的灌溉信号来改进旱地灌溉用水量的估算。本文利用SMAP (soil moisture active and passive soil moisture)土壤水分数据的灌溉信号,估算了河南省灌溉用水量。首先,采用微波卫星遥感土壤水分数据中灌溉信号的识别方法。然后,基于卫星微波遥感土壤湿度的每个数据像元,建立灌溉水量估算模型(SM2Rainfall模型)。最后,结合灌溉信号和灌溉用水量估算模型对河南省灌溉用水量进行估算,并对结果进行评价。根据研究结果,本研究提高了利用河南省灌溉信号估算灌溉用水量的精度。研究结果对准确获取该地区灌溉用水量具有重要意义。
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来源期刊
Agriculture-Basel
Agriculture-Basel Agricultural and Biological Sciences-Food Science
CiteScore
4.90
自引率
13.90%
发文量
1793
审稿时长
11 weeks
期刊介绍: Agriculture (ISSN 2077-0472) is an international and cross-disciplinary scholarly and scientific open access journal on the science of cultivating the soil, growing, harvesting crops, and raising livestock. We will aim to look at production, processing, marketing and use of foods, fibers, plants and animals. The journal Agriculturewill publish reviews, regular research papers, communications and short notes, and there is no restriction on the length of the papers. Our aim is to encourage scientists to publish their experimental and theoretical research in as much detail as possible. Full experimental and/or methodical details must be provided for research articles.
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