[1]祁建广,李宝营,李仁庆. 超低功耗水质pH检测仪设计[J]. 仪表技术与传感器,2017(3):118-120,126.
[2]姚达雯,周国平,王鑫鑫,等. 基于WSNs-SMS的低功耗水质检测系统设计[J]. 传感器与微系统,2014,33(11):109-112.
[3]孙卓. 基于WSN和ZigBee的水质监测系统设计[J]. 电子设计工程,2017,25(24):96-100.
[4]蔡向科,高振斌,范书瑞. 一种低功耗水产养殖水质监测系统设计方法[J]. 渔业现代化,2018,45(4):47-50.
[5]谢宁俊,侍孝一,杨洁,等. 基于nRF24L01模块的中继协作通信系统设计与实现[J]. 现代电子技术,2015,38(21):67-71.
[6]龚天平. LoRa 技术实现远距离、低功耗无线数据传输[J]. 电子世界,2016(10):115.
[7]Mohamed A,Axel S. Free space range measurements with Semtech LoRaTM technology[C]// 2nd international symposium on wireless systems within the conferences on intelligent data acquisition and advanced computing systems. Offenburg:IEEE,2014:19-23.
[8]徐冬冬. LoRa与NB-IoT技术开启物联网新格局[J]. 科学技术创新,2017(24):116-117.
[9]Augustin A,Yi J Z,Clausen T,et al. A study of LoRa:long range & low power networks for the internet of things[J]. Sensors,2016,16(9):1466.
[10]赵静,苏光添. LoRa无线网络技术分析[J]. 移动通信,2016,40(21):50-57.
[11]Petajajarvi J,Mikhaylov K,Pettissalo M,et al. Performance of a low-power wide-area network based on LoRa technology:Doppler robustness,scalability,and coverage[J]. International Journal of Distributed Sensor Networks,2017,13(3):1-16.
[1]王亚平,张宝华,董丽荣.基于WSN与TinyOS技术的智能温室监控系统设计[J].江苏农业科学,2014,42(08):408.
Wang Yaping,et al.Design of intellectualized monitoring and control system for greenhouse based on WSN and TinyOS technology[J].Jiangsu Agricultural Sciences,2014,42(3):408.
[2]王建春,钱春阳,王艳,等.设施温室节能型传感器节点的选型与设计[J].江苏农业科学,2017,45(12):148.
Wang Jianchun,et al.Selection and design of energy-saving sensor node in greenhouse[J].Jiangsu Agricultural Sciences,2017,45(3):148.
[3]郑贵林,汪体成.基于LoRa的温室环境智能监控系统的设计[J].江苏农业科学,2019,47(10):216.
Zheng Guilin,et al.Design of intelligent monitoring system of greenhouse environment based on LoRa technology[J].Jiangsu Agricultural Sciences,2019,47(3):216.