Performance Evaluation of LoRa Communications in Harsh Industrial Environments
<p>Example of two symbols modulation.</p> "> Figure 2
<p>Example of two-symbol demodulation.</p> "> Figure 3
<p>The simulated channel when noise is modeled as (<b>a</b>) AWG Noise, and (<b>b</b>) an industrial noise.</p> "> Figure 4
<p>Bits in each codeword.</p> "> Figure 5
<p>IIR filter structure.</p> "> Figure 6
<p>FIR filter structure.</p> "> Figure 7
<p>LoRa Network topology.</p> "> Figure 8
<p>Basic LoRa architecture.</p> "> Figure 9
<p>LOS and NLOS configurations for OtM mode.</p> "> Figure 10
<p>Pocket Error Rate over a fading channel with AWGN noise for the OtM mode.</p> "> Figure 11
<p>Pocket Error Rate over a fading channel with industrial noise for the OtM mode.</p> "> Figure 12
<p>LOS and NLOS configurations for MtO mode.</p> "> Figure 13
<p>Pocket Error Rate over a fading channel with AWGN noise for the MtO mode.</p> "> Figure 14
<p>Pocket Error Rate over a fading channel with industrial noise for the MtO mode.</p> "> Figure 15
<p>LoRa architecture with forward error correction.</p> "> Figure 16
<p>PER over a fading channel with the industrial noise in LOS configuration for the OtM mode, using the error correcting code. (<b>a</b>) PER for a 4/5 coding rate; (<b>b</b>) PER for a 4/8 coding rate.</p> "> Figure 17
<p>PER over a fading channel with the industrial noise in NLOS configuration for the OtM mode, using the error correcting code. (<b>a</b>) PER for a 4/5 coding rate; (<b>b</b>) PER for a 4/8 coding rate.</p> "> Figure 18
<p>PER over a fading channel with the industrial noise in LOS configuration for the MtO mode, using the error correcting code. (<b>a</b>) PER for a 4/5 coding rate; (<b>b</b>) PER for a 4/8 coding rate.</p> "> Figure 19
<p>PER over a fading channel with the industrial noise in NLOS configuration for the MtO mode, using the error correcting code. (<b>a</b>) PER for a 4/5 coding rate; (<b>b</b>) PER for a 4/8 coding rate.</p> "> Figure 20
<p>Magnitude Response (dB) and Phase Response (radians) for RIF Filter.</p> "> Figure 21
<p>Magnitude Response (dB) and Phase Response (radians) for IIR Filter.</p> "> Figure 22
<p>PER over a fading channel with the industrial noise for the OtM mode, using the error correcting code 4/5 coding rate and IIR filter. (<b>a</b>) PER in LOS configuration; (<b>b</b>) PER in NLOS configuration.</p> "> Figure 23
<p>PER over a fading channel with the industrial noise for the OtM mode, using the error correcting code 4/5 coding rate and FIR filter. (<b>a</b>) PER in LOS configuration; (<b>b</b>) PER in NLOS configuration.</p> "> Figure 24
<p>PER over a fading channel with the industrial noise for the MtO mode, using the error correcting code 4/5 coding rate and IIR filter. (<b>a</b>) PER in LOS configuration; (<b>b</b>) PER in NLOS configuration.</p> "> Figure 25
<p>PER over a fading channel with the industrial noise for the MtO mode, using the error correcting code 4/5 coding rate and FIR filter. (<b>a</b>) PER in LOS configuration; (<b>b</b>) PER in NLOS configuration.</p> ">
Abstract
:1. Introduction
2. Related Work
3. LoRa, Channel and Noise
3.1. LoRa: Modulator and Demodulator
3.1.1. Modulator
3.1.2. Demodulator
3.2. Channel and Noise
3.2.1. Channel
3.2.2. Noise
4. Hamming Error-Correcting Code, IIR and FIR Filters
4.1. Hamming Error-Correcting Code
4.2. Filtering Systems
4.2.1. IIR Filter
4.2.2. FIR Filter
5. LoRa under Noisy Channel
5.1. One to Many Mode
5.2. Many to One Mode
6. LoRa Performance: Using Error Correction and Filtering
6.1. LoRa with Forward Error Correction and Filtering
6.1.1. One to Many Mode
6.1.2. Many to One Mode
6.2. LoRa with Forward Error Correction and Filtering
6.2.1. One to Many Mode
6.2.2. Many to One Mode
7. Conclusions and Perspectives
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
LoRa | long range |
IIoT | Industrial Internet of Things |
LPWAN | Low-power wide area network |
PER | Packet Error Rate |
FEC | Forward error correction |
IIR | Infinite Impulse Response |
FIR | Finite Impulse Response |
LOS | Line of Sight |
NLOS | Non-Line of Sight |
SF | Spreading Factor |
OtM | one-to-many |
MtO | many to one |
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Reference | Objectives | Architecture | Scenarios | Tools | Results |
---|---|---|---|---|---|
[9] | The research evaluated LoRa technology’s performance through noise measurements, link quality analysis, and signal quality analysis, involving extensive testing, equipment exchange, and long-term monitoring. | Many to one | LOS and NLOS | Raspberry Pi 3 Dragino Lora/GPS HAT NUCLEO64 SX1276MB1MAS | The study found that the technology did not significantly affect reliability or packet loss, and it achieved data rates of 21,875 bps, which is suitable for non-critical industrial applications. |
[11] | The LoRa-WAN network was deployed using open-source systems and low-cost hardware, collecting environmental data in controlled industrial environments using Heltec Wi-Fi-LoRa 32 and Raspberry Pi 3 Model B. | Point to Point | LOS | Raspberry Pi 3 Model B Wi-Fi-LoRa 32 SX1278 | The results show that the SNR, RSSI, and PER parameters show little degradation in connection quality in the industrial environment analyzed. |
[16] | The aim of the study was to evaluate the SNR-dependent capability of LoRa technology during transmission by testing different spreading factors and measuring bit error rate in various noisy environments. | Point to Point | LOS | Matlab | The study revealed a significant decrease in signal quality due to industrial noise compared to Gaussian noise, with BER values ranging from 10−2 to 10−3. |
[17] | The study aimed to design a LoRa system model to evaluate the impact of intense multipath signals on LoRa performance, focusing on bit error probability and decoding efficiency. | Point to Point | LOS | Matlab | LoRa’s use in multi-propagation mining environments leads to a 2.5–6 decibel performance reduction for different spreading factors at a BER of 10−3. |
[18] | The study aimed to evaluate LoRa technology’s transmission performance under white Gaussian noise and disturbance conditions, using an experimental setup with specific antennas and signal-to-noise ratio. | Point to Point | LOS | LoRa STM32 Nucleo pack Computer spectrum analyzer horn antenna signal generator | The technology ensures solid communication in noisy environments, with high SF levels ensuring maximum performance even with extended bandwidth, reducing lost packets more than either increase or decrease. |
[20] | The study simulated a LoRaWAN configuration in an industrial environment using the LoRaWAN NS-3 module, evaluating network performance, traffic analysis, interference, and error rate to assess reliability, efficiency, and responsiveness in a complex scenario. | Many to one | LOS and NLOS | NS-3 LoRaWAN module | LoRaWAN, when configured correctly, can efficiently serve IIoT sensing applications with a packet success rate of over 90% and minimal communication delays. |
[21] | The study at Mie University in Japan measured LoRa communication performance using a Python-developed system to evaluate received signal strength and geographic coordinates and identified points outside the communication range. | Point to Point | NLOS | LoRa module ES920LRB Raspberry Pi 3 global navigation satellite system (GNSS) | The results showed that the harsh environment leads to a reduction in the communication area |
[24] | The experiment at Ulsan University compared packet transmission success rates of LoRaWAN, Slotted Aloha, and RT-LoRa protocols using a gateway and 15 nodes on three floors, considering two interference scenarios. | Many to one | LOS and NLOS | STM32 microcontroller SX1276 | Tests on a platform with a gateway and fifteen nodes demonstrated a transmission success rate exceeding 94% despite high traffic and external interference. |
Parameters | Description |
---|---|
Communication | MtO and OtM |
Transmission configurations | LOS and NLOS |
Frequency | 868 MHz |
Bandwidth | 125 kHz |
Spreading factor | 7 and 12 |
Coding rate | 4/5 and 4/8 |
Parameters | Values | |
---|---|---|
Sampling frequency | Hz | |
Normalized cut-off frequency | 0.125 | |
Optimum filter order | IIR filter | 10 |
FIR filter | 18 |
Configuration | LOS | NLOS | ||||||||
---|---|---|---|---|---|---|---|---|---|---|
Mode | OtM | MtO | OtM | MtO | ||||||
SF | 7 | 12 | 7 | 12 | 7 | 12 | 7 | 12 | ||
SNR Threshold (dB) | without optimization | AWGN | −6 | −19 | 4 | −6 | 21 | 9 | 25 | 14 |
Industrial | 9 | −2 | 18 | 4 | 30 | 19 | 49 | 35 | ||
With Optimization (Industrial) | Coding rate 4/5 | 7 | −4 | 18 | 4 | 28 | 15 | 46 | 32 | |
Coding rate 4/8 | 1 | −10 | 8 | −6 | 22 | 10 | 40 | 23 | ||
IIR Filter + Coding rate 4/5 | 4 | −7 | 12 | −1 | 25 | 14 | 42 | 28 | ||
FIR Filter + Coding rate 4/5 | 4 | −8 | 12 | −2 | 26 | 15 | 43 | 26 |
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Aarif, L.; Tabaa, M.; Hachimi, H. Performance Evaluation of LoRa Communications in Harsh Industrial Environments. J. Sens. Actuator Netw. 2023, 12, 80. https://doi.org/10.3390/jsan12060080
Aarif L, Tabaa M, Hachimi H. Performance Evaluation of LoRa Communications in Harsh Industrial Environments. Journal of Sensor and Actuator Networks. 2023; 12(6):80. https://doi.org/10.3390/jsan12060080
Chicago/Turabian StyleAarif, L’houssaine, Mohamed Tabaa, and Hanaa Hachimi. 2023. "Performance Evaluation of LoRa Communications in Harsh Industrial Environments" Journal of Sensor and Actuator Networks 12, no. 6: 80. https://doi.org/10.3390/jsan12060080
APA StyleAarif, L., Tabaa, M., & Hachimi, H. (2023). Performance Evaluation of LoRa Communications in Harsh Industrial Environments. Journal of Sensor and Actuator Networks, 12(6), 80. https://doi.org/10.3390/jsan12060080