低码率扩频通信LoRa传输距离分析及数据测试分析
Analysis of LoRa Transmission Distance and Data Test in Low Bit Rate Spread Spectrum Communication
DOI: 10.12677/CSA.2020.108155, PDF,  被引量   
作者: 王黎明, 闫晓玲, 尹 洋:海军工程大学,湖北 武汉
关键词: LoRaFSK扩频丢包率传输距离LoRa FSK Spread Spectrum Packet Loss Rate Transmission Distance
摘要: 针对LoRa低码率扩频通信,本文首先对无线通信的空间传输进行分析,分析其传输过程中传输距离的相关因素。首先分析在理想环境中,无线通信中收、发天线间距离D与发射器的发射功率、接收器的灵敏度、发射天线增益、接收天线增益、载波频率、基站发射天线的馈线插损、因环境带来的空中传播损耗的关系,从而理论分析传输距离的影响因素。分析LoRa扩频通信的基本原理,将其与FSK调制进行对比其性能特点。最终通过大量的试验测试,对传输距离、丢包率、信号质量、信噪比指标进行分析,得到实测与理论的对比结果。
Abstract: In view of LoRa low bit rate spread spectrum communication, this paper first analyzes the spatial transmission of wireless communication, and analyzes the relevant factors of transmission distance in the transmission process. Firstly, the relationship between the distance d between the receiving and transmitting antennas and the transmitting power of the transmitter, the sensitivity of the receiver, the gain of the transmitting antenna, the gain of the receiving antenna, the carrier frequency, the insertion loss of the base station’s transmitting antenna’s feeders and the air transmission loss caused by the environment is analyzed in the ideal environment, so as to theoretically analyze the influencing factors of the transmission distance. The basic principle of Lora spread spectrum communication is analyzed and compared with FSK modulation. Finally, through a large number of tests, transmission distance, packet loss rate, signal quality, signal-to-noise ratio index are analyzed, and the comparison results between the actual measurement and the theory are obtained.
文章引用:王黎明, 闫晓玲, 尹洋. 低码率扩频通信LoRa传输距离分析及数据测试分析[J]. 计算机科学与应用, 2020, 10(8): 1480-1489. https://doi.org/10.12677/CSA.2020.108155

参考文献

[1] Zhang, X.L., Luan, Y.G. and Zhang, W.J. (2017) Research on the Application of LoRa Wireless Technology in Digital Construction of Oil Fields. Oil & Gas Field Surface Engineering, 36, 60-62, 66.
[2] Zhang, N.L., Zhang, R., Chen, L., et al. (2019) Status Monitoring System for Heavy Oil Injection Production Plunger Pump Based on Internet of Things. Journal of Xi’an Shiyou University (Natural Science Edition), 34, 112-116.
[3] Li, M.Z., Zi, W.B. and Wang, H. (2019) Research on MAC Layer TDMA Time Slot Allocation Protocol in LoRa Wireless Network. Computer Engineering, 45, 95-99, 118.
[4] Bor, M.C., Roedig, U. and Voigt, T. (2016) Do LoRa Low-Power Wide-Area Networks Scale? Pro-ceeding of the 19th ACM International Conference of Modeling, Analysis and Simulation of Wireless and Mobile Sys-tem-MSWiM’16 Malta, Malta, 59-67. [Google Scholar] [CrossRef
[5] Rizzi, M., Ferrari, P., Flam-mini, A., Sisinni, E. and Gidlund, M. (2017) Using LoRa for Industrial Wireless Networks. 2017 IEEE 13th internation-al Workshop on Factory Communication System (WFCS), Trondheim, Norway, 31 May-2 June 2017, 1-4. [Google Scholar] [CrossRef
[6] Cheong, P.S., Bergs, J., Hawinkel, C., et al. (2017) Comparison of LoRa WAN Classes and Their Power Consumption. IEEE Symposium on Communications and Vehicular Technology (SCVT), Leuven, 14-14 November 2017, 1-6. [Google Scholar] [CrossRef
[7] Rai, A., Chintalapudi, K.K., Padmanabhan, V.N., et al. (2012) Zee: Zero-Effort Crowdsourcing for Indoor Localization. Proceedings of the 18th Annual International Conference on Mobile Computing and Networking (MOBICOM), Istanbul, 293-304. [Google Scholar] [CrossRef
[8] Goyal, P., Ribeiro, V.J., Saran, H., et al. (2011) Strap-Down Pe-destrian Dead-Reckoning System. IEEE International Conference on Indoor Positioning & Indoor Navigation, Guimaraes, 21-23 September 2011, 1-7. [Google Scholar] [CrossRef