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基于植被指數(shù)的獼猴桃根域土壤水分反演影響因素研究
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陜西省重點(diǎn)研發(fā)計(jì)劃項(xiàng)目(2022NY-220)和陜西省自然科學(xué)基礎(chǔ)研究計(jì)劃項(xiàng)目(2021JQ-156)


Influencing Factors of Soil Moisture Content Inversion in Kiwifruit Root Region Based on Vegetation Index
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    摘要:

    針對(duì)現(xiàn)有監(jiān)測方式難以大面積準(zhǔn)確監(jiān)測植株個(gè)體水分狀況,且獼猴桃果園的郁閉性導(dǎo)致根域土壤含水率(Root domain soil water content,RSWC)監(jiān)測方法匱乏的問題,使用多層感知機(jī)(Multi-layer perceptron,MLP)和冠層植被指數(shù)來預(yù)測果實(shí)膨大期(5—9月)徐香獼猴桃植株40cm深度的RSWC。在MLP訓(xùn)練數(shù)據(jù)的預(yù)處理中,采用Pearson相關(guān)系數(shù)作為輸入(植被指數(shù))與輸出(RSWC)的相關(guān)性評(píng)價(jià)指標(biāo),采用單因素方差分析作為輸入與輸出的顯著性評(píng)價(jià)指標(biāo)。進(jìn)一步考慮冠層采集范圍可能對(duì)模型精度造成的影響,將數(shù)據(jù)分割為不同尺度對(duì)MLP進(jìn)行訓(xùn)練評(píng)估。結(jié)果表明,重歸一化植被指數(shù)(Renormalized difference vegetation index,RDVI)與RSWC具有最高的相關(guān)性與顯著性,相關(guān)系數(shù)和P分別為0.744和0.007,該指數(shù)可以作為RSWC反演的輸入量。對(duì)不同尺度RDVI的建模數(shù)據(jù)表明,模型精度與RDVI采樣面積A及對(duì)角線長度L有著較強(qiáng)的相關(guān)性(R2分別為0.991和0.993),為了使模型精度最大化,采樣面積應(yīng)在2.540~3.038m2之間。通過使用該尺度的RDVI建立的MLP模型達(dá)到最大精度(R2為0.638,RMSE為0.016)。本研究可為建立非接觸性獼猴桃果園土壤含水率估算方法與果園灌溉系統(tǒng)設(shè)計(jì)提供依據(jù)。

    Abstract:

    Aiming at the problems that the existing monitoring methods are difficult to accurately monitor the individual water status of plants in a large area, and the canopy closure of kiwifruit orchard leads to lack of root domain soil water content (RSWC) monitoring methods. Multi-layer perceptron (MLP) and canopy vegetation index were used to predict RSWC at 40cm depth of kiwifruit Xuxiang during fruit expansion period (May-September). In the preprocessing of MLP training data, Pearson correlation coefficient was used as the correlation evaluation index between input (vegetation index) and output (RSWC), and one-way ANOVA was used as the significance evaluation index between input and output. Further considering the possible impact of canopy acquisition range on model accuracy, the data were divided into different scales for training and evaluation of MLP. The results showed that renormalized difference vegetation index (RDVI) and RSWC had the highest correlation and significance, the correlation coefficient and P value were 0.744 and 0.007, respectively. This index could be used as the input of RSWC inversion. The modeling data of RDVI at different scales showed that the model accuracy was strongly correlated with RDVI sampling area A and diagonal length L(R2 was 0.991 and 0.993, respectively). In order to maximize the model accuracy, the sampling area should be between 2.540m2 and 3.038m2. The MLP model established by using RDVI of this scale achieved the maximum accuracy (R2 was 0.638, RMSE was 0.016). The research result can provide a basis for the establishment of soil water content estimation method and orchard irrigation system design of non-contact kiwifruit orchard.

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張軍,鄧俊濤,倪國威,牛子杰,潘時(shí)佳,韓文霆.基于植被指數(shù)的獼猴桃根域土壤水分反演影響因素研究[J].農(nóng)業(yè)機(jī)械學(xué)報(bào),2022,53(12):223-230. ZHANG Jun, DENG Juntao, NI Guowei, NIU Zijie, PAN Shijia, HAN Wenting. Influencing Factors of Soil Moisture Content Inversion in Kiwifruit Root Region Based on Vegetation Index[J]. Transactions of the Chinese Society for Agricultural Machinery,2022,53(12):223-230.

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  • 收稿日期:2022-07-07
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  • 在線發(fā)布日期: 2022-10-09
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