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Novel models for simulating maize growth based on thermal time and photothermal units: Applications under various mulching practices 被引量:1
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作者 LIAO Zhen-qi ZHENG Jing +4 位作者 FAN Jun-liang PEI Sheng-zhao dai yu-long ZHANG Fu-cang LI Zhi-jun 《Journal of Integrative Agriculture》 SCIE CAS CSCD 2023年第5期1381-1395,共15页
Maize (Zea mays L.) is one of the three major food crops and an important source of carbohydrates for maintaining food security around the world.Plant height (H),stem diameter (SD),leaf area index (LAI) and dry matter... Maize (Zea mays L.) is one of the three major food crops and an important source of carbohydrates for maintaining food security around the world.Plant height (H),stem diameter (SD),leaf area index (LAI) and dry matter (DM) are important growth parameters that influence maize production.However,the combined effect of temperature and light on maize growth is rarely considered in crop growth models.Ten maize growth models based on the modified logistic growth equation (Mlog) and the Mitscherlich growth equation (Mit) were proposed to simulate the H,SD,LAI and DM of maize under different mulching practices based on experimental data from 2015–2018.Either the accumulative growing degree-days (AGDD),helio thermal units (HTU),photothermal units (PTU) or photoperiod thermal units (PPTU,first proposed here) was used as a single driving factor in the models;or AGDD was combined with either accumulative actual solar hours (ASS),accumulative photoperiod response (APR,first proposed here) or accumulative maximum possible sunshine hours (ADL) as the dual driving factors in the models.The model performances were evaluated using seven statistical indicators and a global performance index.The results showed that the three mulching practices significantly increased the maize growth rates and the maximum values of the growth curves compared with non-mulching.Among the four single factor-driven models,the overall performance of the Mlog_(PTU)Model was the best,followed by the Mlog_(AGDD)Model.The Mlog_(PPTU)Model was better than the Mlog_(AGDD)Model in simulating SD and LAI.Among the 10 models,the overall performance of the Mlog_(AGDD–APR)Model was the best,followed by the Mlog_(AGDD–ASS)Model.Specifically,the Mlog_(AGDD–APR)Model performed the best in simulating H and LAI,while the Mlog_(AGDD–ADL)and Mlog_(AGDD–ASS)models performed the best in simulating SD and DM,respectively.In conclusion,the modified logistic growth equations with AGDD and either APR,ASS or ADL as the dual driving factors outperformed the commonly used modified logistic growth model with AGDD as a single driving factor in simulating maize growth. 展开更多
关键词 THERMAL time ACCUMULATIVE growing DEGREE-DAYS helio THERMAL UNITS PHOTOTHERMAL UNITS growth model
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A double-layer model for improving the estimation of wheat canopy nitrogen content from unmanned aerial vehicle multispectral imagery
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作者 LIAO Zhen-qi dai yu-long +5 位作者 WANG Han Quirine M.KETTERINGS LU Jun-sheng ZHANG Fu-cang LI Zhi-jun FAN Jun-liang 《Journal of Integrative Agriculture》 SCIE CAS CSCD 2023年第7期2248-2270,共23页
The accurate and rapid estimation of canopy nitrogen content(CNC)in crops is the key to optimizing in-season nitrogen fertilizer application in precision agriculture.However,the determination of CNC from field samplin... The accurate and rapid estimation of canopy nitrogen content(CNC)in crops is the key to optimizing in-season nitrogen fertilizer application in precision agriculture.However,the determination of CNC from field sampling data for leaf area index(LAI),canopy photosynthetic pigments(CPP;including chlorophyll a,chlorophyll b and carotenoids)and leaf nitrogen concentration(LNC)can be time-consuming and costly.Here we evaluated the use of high-precision unmanned aerial vehicle(UAV)multispectral imagery for estimating the LAI,CPP and CNC of winter wheat over the whole growth period.A total of 23 spectral features(SFs;five original spectrum bands,17 vegetation indices and the gray scale of the RGB image)and eight texture features(TFs;contrast,entropy,variance,mean,homogeneity,dissimilarity,second moment,and correlation)were selected as inputs for the models.Six machine learning methods,i.e.,multiple stepwise regression(MSR),support vector regression(SVR),gradient boosting decision tree(GBDT),Gaussian process regression(GPR),back propagation neural network(BPNN)and radial basis function neural network(RBFNN),were compared for the retrieval of winter wheat LAI,CPP and CNC values,and a double-layer model was proposed for estimating CNC based on LAI and CPP.The results showed that the inversion of winter wheat LAI,CPP and CNC by the combination of SFs+TFs greatly improved the estimation accuracy compared with that by using only the SFs.The RBFNN and BPNN models outperformed the other machine learning models in estimating winter wheat LAI,CPP and CNC.The proposed double-layer models(R^(2)=0.67-0.89,RMSE=13.63-23.71 mg g^(-1),MAE=10.75-17.59 mg g^(-1))performed better than the direct inversion models(R^(2)=0.61-0.80,RMSE=18.01-25.12 mg g^(-1),MAE=12.96-18.88 mg g^(-1))in estimating winter wheat CNC.The best winter wheat CNC accuracy was obtained by the double-layer RBFNN model with SFs+TFs as inputs(R^(2)=0.89,RMSE=13.63 mg g^(-1),MAE=10.75 mg g^(-1)).The results of this study can provide guidance for the accurate and rapid determination of winter wheat canopy nitrogen content in the field. 展开更多
关键词 UAV multispectral imagery spectral features texture features canopy photosynthetic pigment content canopy nitrogen content
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Nitrogen nutrition diagnosis for cotton under mulched drip irrigation using unmanned aerial vehicle multispectral images
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作者 PEI Sheng-zhao ZENG Hua-liang +2 位作者 dai yu-long BAI Wen-qiang FAN Jun-liang 《Journal of Integrative Agriculture》 SCIE CAS CSCD 2023年第8期2536-2552,共17页
Remote sensing has been increasingly used for precision nitrogen management to assess the plant nitrogen status in a spatial and real-time manner.The nitrogen nutrition index(NNI)can quantitatively describe the nitrog... Remote sensing has been increasingly used for precision nitrogen management to assess the plant nitrogen status in a spatial and real-time manner.The nitrogen nutrition index(NNI)can quantitatively describe the nitrogen status of crops.Nevertheless,the NNI diagnosis for cotton with unmanned aerial vehicle(UAV)multispectral images has not been evaluated yet.This study aimed to evaluate the performance of three machine learning models,i.e.,support vector machine(SVM),back propagation neural network(BPNN),and extreme gradient boosting(XGB)for predicting canopy nitrogen weight and NNI of cotton over the whole growing season from UAV images.The results indicated that the models performed better when the top 15 vegetation indices were used as input variables based on their correlation ranking with nitrogen weight and NNI.The XGB model performed the best among the three models in predicting nitrogen weight.The prediction accuracy of nitrogen weight at the upper half-leaf level(R^(2)=0.89,RMSE=0.68 g m^(-2),RE=14.62%for calibration and R^(2)=0.83,RMSE=1.08 g m^(-2),RE=19.71%for validation)was much better than that at the all-leaf level(R^(2)=0.73,RMSE=2.20 g m^(-2),RE=26.70%for calibration and R^(2)=0.70,RMSE=2.48 g m^(-2),RE=31.49%for validation)and at the plant level(R^(2)=0.66,RMSE=4.46 g m^(-2),RE=30.96%for calibration and R^(2)=0.63,RMSE=3.69 g m^(-2),RE=24.81%for validation).Similarly,the XGB model(R^(2)=0.65,RMSE=0.09,RE=8.59%for calibration and R^(2)=0.63,RMSE=0.09,RE=8.87%for validation)also outperformed the SVM model(R^(2)=0.62,RMSE=0.10,RE=7.92%for calibration and R^(2)=0.60,RMSE=0.09,RE=8.03%for validation)and BPNN model(R^(2)=0.64,RMSE=0.09,RE=9.24%for calibration and R^(2)=0.62,RMSE=0.09,RE=8.38%for validation)in predicting NNI.The NNI predictive map generated from the optimal XGB model can intuitively diagnose the spatial distribution and dynamics of nitrogen nutrition in cotton fields,which can help farmers implement precise cotton nitrogen management in a timely and accurate manner. 展开更多
关键词 UAV nitrogen diagnosis leaf nitrogen weight nitrogen nutrition index COTTON
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质子泵抑制剂临床应用的药物利用指数评价与分析 被引量:10
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作者 张啟智 张郁葱 +3 位作者 向大雄 戴玉龙 谭戈 彭文兴 《中南药学》 CAS 2018年第4期548-552,共5页
目的探讨采用药物利用指数(DUI)评价质子泵抑制剂(PPIs)临床用法用量的合理性,并结合病历进行用药合理性评价分析。方法利用医院HIS系统和医嘱系统统计各PPIs的用量和实际用药天数,计算DUI;同时利用医院电子病历系统查阅有无超适应证用... 目的探讨采用药物利用指数(DUI)评价质子泵抑制剂(PPIs)临床用法用量的合理性,并结合病历进行用药合理性评价分析。方法利用医院HIS系统和医嘱系统统计各PPIs的用量和实际用药天数,计算DUI;同时利用医院电子病历系统查阅有无超适应证用药、超禁忌证用药、PPIs的用法用量、给药途径与方法以及疗程,采用Excel进行统计。结果 DUI的分布及大小与患者PPIs使用情况大体一致,DUI的偏离程度与PPIs用法用量合理性评价结果基本吻合。结论 DUI可用来初步评价PPIs临床用法用量的合理性,再针对性的结合病历进行用药合理性评价将更全面。 展开更多
关键词 质子泵抑制剂 药物利用指数 合理性评价
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组合涡发生器强化螺旋通道换热的数值研究 被引量:7
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作者 王翠华 龚斌 +1 位作者 戴玉龙 吴剑华 《化学工程》 CAS CSCD 北大核心 2018年第4期35-40,共6页
旨在研究B形翼和柱形涡发生器组合后强化矩形螺旋通道内流体换热的特性。采用CFD模拟的方法分析了量纲一曲率κ、B形翼攻角α对螺旋通道内流体流动和换热的影响,并利用综合强化因子G表征组合涡发生器的综合强化效果。结果表明:B形翼改... 旨在研究B形翼和柱形涡发生器组合后强化矩形螺旋通道内流体换热的特性。采用CFD模拟的方法分析了量纲一曲率κ、B形翼攻角α对螺旋通道内流体流动和换热的影响,并利用综合强化因子G表征组合涡发生器的综合强化效果。结果表明:B形翼改变了柱后二次流的结构,在柱后截面的中心区域形成一对方向相反的附加涡,减小了柱后尾迹区的尺寸,增大了柱后流体的温度梯度,强化了传热;在所研究范围内,α增大,组合涡发生器强化传热效果先增大后减小,在攻角α=40°—45°时强化传热效果最优;α一定,κ值越小,组合涡发生器的强化效果越好,相对于只有柱时,其Nu提高了56.45%—69.08%,G提高了24%—37%。 展开更多
关键词 螺旋通道 矩形截面 B形翼 强化传热
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两种组合涡发生器强化螺旋通道换热性能的比较 被引量:2
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作者 王翠华 戴玉龙 +1 位作者 龚斌 吴剑华 《沈阳化工大学学报》 CAS 2019年第3期257-262,共6页
采用CFD模拟方法比较两种组合涡发生器强化大高宽比矩形水平螺旋通道的换热特性,并进一步分析B形翼的无量纲间距δ′、无量纲长度l′对螺旋通道内流体流动和换热的影响,利用综合因子G表征了两组合涡发生器的综合强化效果.结果表明:A形翼... 采用CFD模拟方法比较两种组合涡发生器强化大高宽比矩形水平螺旋通道的换热特性,并进一步分析B形翼的无量纲间距δ′、无量纲长度l′对螺旋通道内流体流动和换热的影响,利用综合因子G表征了两组合涡发生器的综合强化效果.结果表明:A形翼与B形翼均能改善柱后流体的流动,可分别在柱后等距横截面上形成二次流的四涡结构和六涡结构,并可在定距柱后形成纵向涡,加速尾迹区与主流流体的混合,实现了强化传热;B形翼与A形翼组合涡发生器相比,B形翼的综合强化效果更好;在所研究范围内,δ′增大,B形翼涡发生器的强化换热能力逐渐减小,综合性能变差;l′越大,内置B形翼组合涡发生器的螺旋通道的Nu数和f越大,但Nu数和f的增速随l′值的变大而变缓,当l′=1.0时该螺旋流道的综合强化性能最优. 展开更多
关键词 螺旋通道 矩形截面 B形翼 A形翼 强化传热
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轻稀土萃取La/Ce、CePr/Nd联动分离工艺研究 被引量:2
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作者 周武风 戴裕龙 +2 位作者 张五国 刘建峰 蔡建安 《生物化工》 2018年第6期97-98,共2页
在传统的模糊萃取分离工艺基础上,研究了组合联动轻稀土萃取分离新工艺流程,并与传统工艺进行了技术经济比较。经比较证明,联动分离新工艺先进合理,生产成本更低,皂化废水排放更少。
关键词 轻稀土 萃取分离 工艺优化
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低氯根球状碳酸铈颗粒制备工艺研究 被引量:1
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作者 周武风 戴裕龙 +3 位作者 钟杨根 游奇峰 蔡建安 刘建峰 《生物化工》 2019年第1期113-115,共3页
采用化学转化法、物理干燥法,通过控制制备过程反应条件,制备了低氯根球状碳酸铈粒子。利用扫描电镜(SEM)、分光光度计等对产品进行分析,结果表明:控制过程反应条件可以改变碳酸铈的形貌。
关键词 低氯根 碳酸铈 工艺研究
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