[1] 舒锐, 焦健, 臧传江, 等. 我国草莓产业现状及发展建议[J]. 中国果菜, 2019, 39(1): 51-53.
Shu Rui, Jiao Jian, ZangChuanjiang, et al. The current situation and development suggestions of strawberry industry in China [J]. China Fruit & Vegetable, 2019,39(1): 51-53.
[2] 胡建平, 岳仁才, 武东东, 等. 草莓移栽机的发展现状与展望[J]. 农业装备技术, 2020, 46(1): 7-10.
HuJianping, Yue Rencai, Wu Dongdong, et al. The development status and prospect of strawberry transplanting machines [J]. Agricultural Equipment & Technology, 2020,46(1): 7-10.
[3] 陈侃. 乡村振兴背景下建德草莓产业可持续发展研究[D]. 杭州: 浙江农林大学, 2020.
Chen Kan. Study on the sustainable development of strawberry industry injiande under the background of rural revitalization [D]. Hangzhou: Zhejiang A & F University, 2020.
[4] 吴久江. 草莓塑料大棚物联网技术应用及水分效率分析[D]. 杨凌: 西北农林科技大学, 2020.
Wu Jiujiang. Application of internet of things in strawberry plastic greenhouse and analysis of water efficiency [D]. Yangling: Northwest A & F University, 2020.
[5] 冷令, 吴伟斌, 张伟杰, 等. 基于改进PSO算法的多温室物联网群控终端变量协调控制研究[J]. 中国农机化学报, 2021, 42(1): 179-185.
Leng Ling, Wu Weibin, Zhang Weijie, et al. Variable coordinated control method of multi greenhouse Internet of Things group control terminal based on improved PSO algorithm [J]. Journal of Chinese Agricultural Mechanization, 2021, 42(1): 179-185.
[6] 吴传程, 赵春江, 吴华瑞, 等. 大型蔬菜温室无线监测网络覆盖优化方法研究[J]. 中国农机化学报, 2021, 42(04): 49-54.
Wu Chuancheng, Zhao Chunjiang, Wu Huarui, et al. Study on coverage optimization of wireless sensor network in a largescale vegetable greenhouse [J]. Journal of Chinese Agricultural Mechanization, 2021, 42(4): 49-54.
[7] 赵继春, 孙素芬, 郭建鑫, 等. 基于无线传感器网络的设施农业环境智能监测系统设计[J]. 中国农机化学报, 2020, 41(4): 146-151.
Zhao Jichun, Sun Sufen, Guo Jianxin, et al. Design of intelligent monitoring system for facility agricultural environment based on wireless sensor network [J]. Journal of Chinese Agricultural Mechanization, 2020, 41(4): 146-151.
[8] 卓焕权. 浅谈狄克逊准则的速记方法及运用[J]. 仪器仪表标准化与计量, 2021(1): 46-48.
Zhuo Huanquan. A brief talk on the shorthand method and application of Dixon criterion [J]. Instrument Standardization & Metrology, 2021(1): 46-48.
[9] 陈亚斌, 王亚刚, 周代仝. 基于修正狄克逊准则的多传感器融合算法[J]. 通信技术, 2014, 47(10): 1178-1182.
Chen Yabin, Wang Yagang, Zhou Daitong. A multisensor fusion algorithm based on modified Dixon criterion [J]. Communications Technology, 2014, 47(10): 1178-1182.
[10] 张阳, 沈明霞, 孙玉文, 等. 基于多传感器自适应加权融合的温室信息系统[J]. 传感器与微系统, 2014, 33(6): 100-103.
Zhang Yang, Shen Mingxia, Sun Yuwen, et al. Greenhouse information system based on multisensor adaptive weighted fusion [J]. Transducer and Microsystem Technologies, 2014, 33(6): 100-103.
[11] 丁辉, 仲跃, 张俊, 等. 基于相关性函数的多传感器自适应加权融合算法[J]. 重庆理工大学学报: 自然科学, 2016, 30(2): 114-118.
Ding Hui, Zhong Yue, Zhang Jun, et al. Multisensor adaptive weighted fusion algorithm based on correlation function [J]. Journal of Chongqing University of Technology (Natural Science), 2016, 30(2): 114-118.
[12] 季彦东. 温室大棚温湿度智能控制策略研究与实现[D]. 沈阳: 沈阳大学, 2021.
Ji Yandong. Research and implementation of temperature and humidity intelligent control strategy in greenhouse [D]. Shenyang: Shenyang University, 2021.
[13] 辛萍萍. 效益优先的温室环境多因子协同调控模型与方法研究[D]. 杨凌: 西北农林科技大学, 2019.
Xin Pingping. Multifactor coordination control model and method of greenhouse environment for benefitpriority [D]. Yangling: Northwest A & F University, 2019.
[14] 陈俐均, 杜尚丰, 梁美惠, 等. 温室温湿度解耦控制策略[J]. 江苏农业科学, 2019, 47(1): 216-220.
Chen Lijun, Du Shangfeng, Liang Meihui, et al. Study on temperature and humidity control in greenhouse by using decoupling strategy [J]. Jiangsu Agricultural Sciences, 2019, 47(1): 216-220.
|