农业工程学报
農業工程學報
농업공정학보
2015年
2期
162-169
,共8页
传感器%果园%信号%路径损耗%多路径传输
傳感器%果園%信號%路徑損耗%多路徑傳輸
전감기%과완%신호%로경손모%다로경전수
sensor%orchard%signaling%pass-loss%multipath transmission
为解决无线传感器网络在桃园中的快速部署问题,该文研究了2.4 GHz无线射频信号在桃园中的传播特性。依据角度选取4条传输路径,在3种(0.5、1.5、2.5 m)典型的天线高度,同时测量丢包率和路径损耗情况,分析表明两者具有明显的相关性,天线高度和通信距离是路径损耗的主要影响因素。在天线高度为0.5和1.5 m时,可靠传输距离为6个行距(27 m);在天线高度为2.5 m时,可靠传输距离大于14个行距(63 m),因此冠层顶部为布设天线的最佳位置。对路径损耗数据进行回归分析,发现其在每种天线高度,每条传输路径下对数模型最适合作为路径损耗模型,模型的R2最大为0.945,最小为0.732。为研究节点部署于桃园任意位置时的路径损耗情况,便于节点快速灵活地部署,在3种天线高度下对路径损耗数据进行对数回归分析,R2最大为0.976,最小为0.939。最后对2组模型进行了验证,表明模型可以预测射频信号在桃园中的路径损耗情况,该文研究结果为无线传感器网络在桃园中的部署提供了参考。
為解決無線傳感器網絡在桃園中的快速部署問題,該文研究瞭2.4 GHz無線射頻信號在桃園中的傳播特性。依據角度選取4條傳輸路徑,在3種(0.5、1.5、2.5 m)典型的天線高度,同時測量丟包率和路徑損耗情況,分析錶明兩者具有明顯的相關性,天線高度和通信距離是路徑損耗的主要影響因素。在天線高度為0.5和1.5 m時,可靠傳輸距離為6箇行距(27 m);在天線高度為2.5 m時,可靠傳輸距離大于14箇行距(63 m),因此冠層頂部為佈設天線的最佳位置。對路徑損耗數據進行迴歸分析,髮現其在每種天線高度,每條傳輸路徑下對數模型最適閤作為路徑損耗模型,模型的R2最大為0.945,最小為0.732。為研究節點部署于桃園任意位置時的路徑損耗情況,便于節點快速靈活地部署,在3種天線高度下對路徑損耗數據進行對數迴歸分析,R2最大為0.976,最小為0.939。最後對2組模型進行瞭驗證,錶明模型可以預測射頻信號在桃園中的路徑損耗情況,該文研究結果為無線傳感器網絡在桃園中的部署提供瞭參攷。
위해결무선전감기망락재도완중적쾌속부서문제,해문연구료2.4 GHz무선사빈신호재도완중적전파특성。의거각도선취4조전수로경,재3충(0.5、1.5、2.5 m)전형적천선고도,동시측량주포솔화로경손모정황,분석표명량자구유명현적상관성,천선고도화통신거리시로경손모적주요영향인소。재천선고도위0.5화1.5 m시,가고전수거리위6개행거(27 m);재천선고도위2.5 m시,가고전수거리대우14개행거(63 m),인차관층정부위포설천선적최가위치。대로경손모수거진행회귀분석,발현기재매충천선고도,매조전수로경하대수모형최괄합작위로경손모모형,모형적R2최대위0.945,최소위0.732。위연구절점부서우도완임의위치시적로경손모정황,편우절점쾌속령활지부서,재3충천선고도하대로경손모수거진행대수회귀분석,R2최대위0.976,최소위0.939。최후대2조모형진행료험증,표명모형가이예측사빈신호재도완중적로경손모정황,해문연구결과위무선전감기망락재도완중적부서제공료삼고。
For solving the rapid deployment of wireless sensor network in peach orchard, this paper focused on the radio frequency signal transmission characteristics of 2.4 GHz radio frequency in peach orchard. Four transmission paths were selected according to different angles and packet loss rate and pass-loss of radio frequency signal were calculated under three antenna heights (0.5, 1.5, 2.5 m) at the same time. A correlation analysis was conducted to verify if they were related with each other. Communication distance and antenna height were considered to be the main influencing factors of path-loss. Under any antenna height and transmission path, packet loss rate was very low when communication distance was within six-row spacing and the maximum of packet loss rate was 8.3%. From seven-row spacing, packet loss rate began to increase significantly and with the increase of row spacing, the packet loss rate became increasingly high. Due to the shielding effects from branches and leaves, radio frequency signal could cause the phenomenon such as reflection, diffraction and refraction which might lower the path-loss of radio frequency signal. When the antenna height was 0.5 and 1.5 m separately, the shielding effects were relatively large. The reliable transmission distance was only six-line spacing (27 m). When the antenna height was 2.5 m, the reliable transmission distance was fourteen-line spacing (63 m), and the canopy top was the best position for setting up antenna. Using regression analysis to analyze data of path-loss, it can be concluded that logarithm model was the most suitable model of path-loss under three antenna heights and four transmission paths. The maximum ofR2 was 0.945 and the minimum ofR2was 0.732. The influence of path-loss to radio frequency signal in peach orchard was not very significant. In order to research the path-loss and deploy the nodes quickly and flexiblywhen nodes were deployed in any site of the peach orchard,Logarithmic regression analysis was used to analyze the data of path-loss under three antenna heights. The maximum ofR2 was 0.976 and the minimum ofR2 was 0.939. The two groups of models were validated during peach’s young stage and mature stage lastly and it showed that the two models could predict the path-loss of radio frequency signal under three antenna heights and any transmission path in peach orchard. The two models and the analysis of reliable transmission distance can be selected flexibly and conveniently when establishing wireless sensor network. The conclusion in this paper can provide reference for radio frequency signal transmission and wireless sensor network deployment in peach orchard.