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不同肥料配比施用对玉米产量影响 被引量:1
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作者 朱德军 吴仕刚 +1 位作者 詹建成 汪勇 《湖南农机(学术版)》 2011年第2期212-212,214,共2页
凤冈县农林畜牧局2010年在土溪镇大连村开展了"3414"肥效试验,通过氮磷钾肥三元二次方程拟合,最佳配方施用量氮肥(N)为9.88kg、磷肥(P205)为8.11kg、钾肥(K20)为9.34kg。
关键词 不同肥料配比玉米产量回归模型
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北疆干旱荒漠地区膜下滴灌青贮玉米水肥耦合效应研究 被引量:4
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作者 刘虎 尹春艳 +1 位作者 张瑞强 魏永富 《节水灌溉》 北大核心 2018年第3期14-18,共5页
土壤水分和肥料管理是农业生产中最为关键的可控指标,是农作物高产稳产必不可少的因子。新疆北部阿勒泰草原的农牧业生产主要是在荒漠瘠薄的土地上开发和发展起来的,通过2015-2017年在阿勒泰地区福海县开展的膜下滴灌青贮玉米水肥耦合... 土壤水分和肥料管理是农业生产中最为关键的可控指标,是农作物高产稳产必不可少的因子。新疆北部阿勒泰草原的农牧业生产主要是在荒漠瘠薄的土地上开发和发展起来的,通过2015-2017年在阿勒泰地区福海县开展的膜下滴灌青贮玉米水肥耦合试验数据进行分析比较,初步得到青贮玉米不同水肥处理基本同时进入各个生育阶段;拔节期玉米的株高和茎粗随着施肥量的变化而变化;抽穗期,在不受旱和轻度受旱条件下,青贮玉米叶面积指数随施氮量的增加而增加;通过二元回归方程,合理的灌溉量、施肥量应分别是4 200 m^3/hm^2和195 kg/hm^2。 展开更多
关键词 北疆地区 青贮玉米 水肥耦合 生理指标 株高 产量回归模型
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黄瓜水肥耦合试验研究 被引量:2
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作者 李娟 陈韬 +1 位作者 刘春来 王剑波 《节水灌溉》 北大核心 2009年第12期37-40,共4页
采用二次回归通用旋转组合设计,研究日光温室滴灌施肥条件下黄瓜的水肥耦合效应,建立产量目标函数数学模型,分析其主因素、单因素以及各因素间的交互效应,提出目标产量的最优组合方案,定量给出了该试验条件下的适宜灌水和施肥量。
关键词 日光温室 滴灌施肥 黄瓜 水肥耦合 产量回归模型
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Establishment and Analysis of Regression Models between Sowing Time and Plant Productivity, Biological Yield of Forage Sorghum in Autumn Idle Land 被引量:1
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作者 ZHOU Han-zhang LIU Hong-xia +4 位作者 LIU Huan ZHOU Xin-jian WEI Zhi-min HOU Sheng-lin LI Shun-guo 《Agricultural Science & Technology》 CAS 2018年第1期51-58,共8页
[Objective]The aim was to establish the linear regression prediction models between sowing time and plant productivity, biological yield of forage sorghum in autumn idle land.[Method]The relationships between sowing t... [Objective]The aim was to establish the linear regression prediction models between sowing time and plant productivity, biological yield of forage sorghum in autumn idle land.[Method]The relationships between sowing time and plant productivity, biological yield of forage sorghum were simulated and compared by using field experiment and linear regression analysis.[Result] The sowing time had an important influence on the plant productivity and biological yield of forage sorghum in autumn idle land. The plant productivity and biological yield of forage sorghum both decreased with the delay of sowing time.The regression model between plant fresh weight and sowing time was ?fresh=0.618-0.015x; the regression model between plant dry weight and sowing time was ?dry=0.184-0.005x; and the regression model between biological yield and sowing time was yield=29 126.461-711.448x. During July 23rd to August 30th, when the sowing time was delayed by 1 day, the plant fresh weight of forage sorghum was reduced by 0.015 g, the plant dry weight was reduced by 0.005 g, and the yield was reduced by 711.448 kg/hm2. [Conclusion] The three regression models established in this study will provide theoretical support for the production of forage sorghum. 展开更多
关键词 Autumn idle land Forage sorghum Sowing time Plant productivity Biological yield Regression model Regression analysis
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Variable Rate Technology and Cotton Yield Response in Texas
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作者 Shyam Nair Chenggang Wang +2 位作者 Eduardo Segarra Jeff Johnson Roderick Rejesus 《Journal of Agricultural Science and Technology(B)》 2012年第9期1034-1043,共10页
Variable Rate Technology (VRT) takes within-field variability into consideration and aims to match resource application to crop requirement. Even though Texas is the most important cotton producing state in the US, ... Variable Rate Technology (VRT) takes within-field variability into consideration and aims to match resource application to crop requirement. Even though Texas is the most important cotton producing state in the US, the rate of VRT adoption is very low here. Hence, analyzing the factors influencing the adoption and providing a regional estimate of the impact of VRT adoption on cotton yield is very important. This study used the 2009 Southern Cotton Precision Farming Survey to analyze the farm and farmer characteristics affecting the adoption of VRT among Texas cotton farmers and to empirically estimate the impact of adoption of VRT on cotton yield in Texas. A two-stage least square procedure with a logistic regression model in the first stage and a multiple linear regression model in the second stage was used to analyze the data. The study revealed that there are significant regional differences in adoption pattern within the state of Texas; and the farmers from the coastal region, where there is higher within-field variability, were more likely to adopt VRT compared to other regions. Younger farmers, farmers managing larger farms, and farmers who use computers for farming operations were more likely to adopt VRT. The results also showed that, on an average, the adoption of VRT does not lead to significant yield improvements for cotton in Texas. Since the impact of VRT adoption on yield is not significant, the source of economic advantage of VRT adoption in Texas may be the reduction of input cost. 展开更多
关键词 Precision agriculture technology adoption COTTON site specific management variable rate technology
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