Hardware Impaired Self-Energized Bidirectional Sensor Networks over Complex Fading Channels †
Abstract
:1. Introduction
State-Of-The-Art
- Rapidly converging infinite-series expressions have been derived for the OP and achievable throughput at hardware-impaired destination nodes with information transmission over Rician-shadowed fading environment. Asymptotic analysis and an approximation of the above-mentioned criteria for boundary high SNR values have been delivered when Rician-shadowed fading environment has been observed.
- Rapidly converging infinite-series expressions have been derived for the OP and achievable throughput at hardware-impaired destination nodes with information transmission over the mixed Hoyt/Rician-shadowed fading environment. Asymptotic analysis and an approximation of the above-mentioned criteria for boundary high SNR values have been delivered when the mixed Hoyt/Rician-shadowed fading environment has been observed.
- Rapidly converging infinite-series expressions have been derived for the outage probability (OP) and achievable throughput at hardware-impaired destination nodes with information transmission over Hoyt fading channels. Rapidly converging infinite-series expressions have been derived for the cumulative distribution function (CDF) of the SNR at destination nodes. Further, integral form for the symbol-error probability (SEP) at each node has been presented. Asymptotic analysis and an approximation of the above-mentioned criteria for boundary high SNR values have been delivered.
- Obtained analytical results have been verified through Monte Carlo simulations.
2. System Model
3. System Performances
3.1. Case of Hoyt Fading Channels
3.2. Case of Rician-Shadowed Fading Channels
3.3. Case of Mixed Hoyt/Rician-Shadowed Fading Channels
4. Asymptotic Analysis
4.1. Case of Hoyt Fading Channels
4.2. Case of Rician-Shadowed Fading Channels
4.3. Case of Mixed Hoyt/Rician-Shadowed Fading Channels
5. Numerical Results
6. Conclusions
Author Contributions
Funding
Conflicts of Interest
Appendix A
Appendix B
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Symbol | Parameter Names | Values |
---|---|---|
Energy harvesting efficiency | 0.7 | |
Mean of | 0.5 | |
Mean of | 0.5 | |
fading severity parameter | 0.5, 0.8 | |
Source SNR | 0–50 dB | |
Hardware impairment parameter | 0, 0.1, 0.2 | |
R | Transmission rate at source | 1.5 bps/Hz |
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Panic, S.R.; Jayakody, D.N.K.; Affes, S.; Muthuchidambaranathan, P. Hardware Impaired Self-Energized Bidirectional Sensor Networks over Complex Fading Channels. Sensors 2020, 20, 5574. https://doi.org/10.3390/s20195574
Panic SR, Jayakody DNK, Affes S, Muthuchidambaranathan P. Hardware Impaired Self-Energized Bidirectional Sensor Networks over Complex Fading Channels. Sensors. 2020; 20(19):5574. https://doi.org/10.3390/s20195574
Chicago/Turabian StylePanic, Stefan R., Dushantha Nalin K. Jayakody, Sofiene Affes, and Palanivelu Muthuchidambaranathan. 2020. "Hardware Impaired Self-Energized Bidirectional Sensor Networks over Complex Fading Channels" Sensors 20, no. 19: 5574. https://doi.org/10.3390/s20195574
APA StylePanic, S. R., Jayakody, D. N. K., Affes, S., & Muthuchidambaranathan, P. (2020). Hardware Impaired Self-Energized Bidirectional Sensor Networks over Complex Fading Channels. Sensors, 20(19), 5574. https://doi.org/10.3390/s20195574