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基于無人機(jī)多光譜的耐旱苧麻品種篩選方法
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國家重點(diǎn)研發(fā)計(jì)劃項(xiàng)目(2018YFD0201106)、財(cái)政部和農(nóng)業(yè)農(nóng)村部:國家現(xiàn)代農(nóng)業(yè)產(chǎn)業(yè)技術(shù)體系項(xiàng)目(CARS-16-E11)和國家自然科學(xué)基金項(xiàng)目(31471543)


Screening of Drought-tolerant Ramie Based on UAV Multispectral Imagery
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    摘要:

    高溫干旱是影響作物生長及最終生產(chǎn)力的主要脅迫源,。當(dāng)前,,無人機(jī)遙感技術(shù)已在作物倒伏和病蟲害的分級監(jiān)測研究中取得重大進(jìn)展,但有關(guān)利用無人機(jī)遙感進(jìn)行作物抗旱等級監(jiān)測的研究卻鮮有報(bào)道,。因此,,以苧麻種質(zhì)資源為研究對象,提出了苧麻抗旱性量化標(biāo)準(zhǔn),,并提供了一種利用無人機(jī)多光譜遙感鑒定苧麻種質(zhì)資源抗旱性的方法,。首先,由專家對36份苧麻種質(zhì)資源進(jìn)行抗旱性分級,;然后,,結(jié)合無人機(jī)多光譜遙感獲取的植被指數(shù),采用隨機(jī)森林(Random forest,,RF),、支持向量機(jī)(Support vector machine,SVM),、決策樹(Decision tree,,DT)3種機(jī)器學(xué)習(xí)方法分別構(gòu)建苧麻抗旱性鑒定模型,并通過苧麻在高溫干旱脅迫下的表型響應(yīng)檢驗(yàn)鑒定結(jié)果,;最后,基于無人機(jī)獲取的遙感表型,,篩選高溫干旱脅迫下優(yōu)質(zhì)苧麻種質(zhì)資源,。結(jié)果表明,利用SVM構(gòu)建的苧麻抗旱性鑒定模型正確率達(dá)到0.74,,不同抗旱級分類F1得分范圍為0.69~0.79,,說明該方法能用于苧麻種質(zhì)資源抗旱性評估。利用無人機(jī)遙感數(shù)據(jù)反演得到的3項(xiàng)苧麻表型性狀(葉綠素相對含量,、葉面積指數(shù),、株高)均與人工測量值具有較強(qiáng)的相關(guān)性,在此基礎(chǔ)上,,研究從高溫干旱脅迫中篩選出了3個(gè)優(yōu)質(zhì)苧麻種質(zhì)資源PJ-CD,、WS-XM、湘苧7號,。

    Abstract:

    High temperature and drought are the main stress sources affecting crop growth and final productivity. At present, UAV remote sensing technology has made great progress in the hierarchical monitoring of crop lodging and pests and diseases, but there are few reports on the use of UAV remote sensing for crop drought resistance grade monitoring. Therefore, taking ramie germplasm resources as the research object, quantitative criteria for ramie drought resistance was proposed, and a method to identify the drought resistance of ramie germplasm resources was providedby multi-spectral remote sensing of UAV. Firstly, totally 36 ramie germplasm resources were graded for drought resistance by experts. Then, combined with the vegetation index obtained by UAV multi-spectral remote sensing, and three machine learning methods,random forest (RF), support vector machine (SVM) and decision tree (DT) were used to construct ramie drought resistance identification models, and the results were evaluated by testing the phenotypic response of ramie under high temperature and drought stress. Finally, high-quality ramie germplasm resources under high temperature and drought stress were screened based on the remote sensing phenotypes obtained by UAV. The results showed that the accuracy of the ramie drought resistance identification model constructed by SVM reached 0.74, and the F1-score of different drought resistance classes was ranged from 0.69 to 0.79, indicating that the method could be used to evaluate the drought resistance of ramie germplasm resources. Three phenotypic characters of ramie (SPAD value, leaf area index and plant height) obtained from UAV remote sensing data were strongly correlated with the measured values. On this basis, three high-quality ramie germplasm resources PJ-CD, WS-XM and Xiangzhu 7 were selected from high temperature and drought stress.

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付虹雨,王薇,盧建寧,岳云開,崔國賢,佘瑋.基于無人機(jī)多光譜的耐旱苧麻品種篩選方法[J].農(nóng)業(yè)機(jī)械學(xué)報(bào),2023,54(4):206-213. FU Hongyu, WANG Wei, LU Jianning, YUE Yunkai, CUI Guoxian, SHE Wei. Screening of Drought-tolerant Ramie Based on UAV Multispectral Imagery[J]. Transactions of the Chinese Society for Agricultural Machinery,2023,54(4):206-213.

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  • 收稿日期:2023-01-16
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  • 在線發(fā)布日期: 2023-02-16
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