LoRa Communications as an Enabler for Internet of Drones towards Large-Scale Livestock Monitoring in Rural Farms



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Figure 11. 

Heatmap of LoRaWAN

®

 coverage at UKM campus based on Cloud-RF



®

 PL simulations. (



a

) LoRaWAN

®

 cover-


age based on the ITM PL model. (

b

) LoRaWAN

®

 coverage based on the ECC-33 PL model. 



These metrics include mean squared error (MSE), root mean squared error (RMSE), 

mean absolute error (MAE), mean arctangent absolute percentile error (MAAPE), coeffi-

cient of correlation (R), and squared R (R2), also known as the coefficient of determination. 

Based on these evaluation metrics, it can be emphasized that all models show poor pre-

diction performance, with ECC-33 showing the worst prediction performance. As such, 

the ITM was selected and was then fine-tuned to minimize the prediction error. In this 

regard, the RMSE was considered the objective function to be minimized by adding a cor-

rection factor (S) to the ITM PL response in dB. The fine-tuning step led to S = 14.664 dB, 

which significantly improved the ITM’s prediction performance, as shown in Figure 12b,c 

and Table 4. For example, in terms of MSE, a 96.2% improvement was observed for the 

fine-tuned ITM. 

Similarly, the performance was also improved in terms of other metrics, except for R, 

showing a good correlation, as shown in Figure 12c. Hence, it can be concluded that the 

Cloud-RF


®

-based ITM (after fine-tuning) might represent the most suitable model for Lo-

RaWAN

®

-based coverage prediction and planning in the considered study area. How-



ever, we suggest that further enhancements or new PL model proposals are required to 

provide highly accurate predictions. Based on the observations in this section, we utilized 

the fine-tuned ITM PL model for coverage planning in the considered rural farm. 


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