A Comprehensive Analytical Framework under Practical Constraints for a Cooperative NOMA System Empowered by SWIPT IoT
Abstract
:1. Introduction
1.1. Information Background
1.2. Related Works and Motivation
1.3. Contributions
- An innovative C-NOMA scheme custom-tailored for SWIPT-enabled IoT systems takes center stage. This scheme orchestrates power allocation for two users through a pivotal relay node (R) in the DF of signals from the B. It is essential to emphasize that R also performs the critical task of EH from the power beacon (PB). This holistic integration of power management, signal manipulation, and EH within a unified relay node represents a groundbreaking strategy, aimed at optimizing overall system efficiency. The scheme utilizes a TS receiver architecture, enabling R to simultaneously perform both EH and Information Processing (IP) tasks.
- EH Protocol Advancement: The paper introduces an advanced EH protocol with an HD-based TSR mechanism meticulously designed for SWIPT-based C-NOMA systems. This EH protocol assumes a pivotal role in the harnessing of energy from received signals, thereby bolstering the sustainability and autonomy of IoT devices interconnected within the network.
- In an effort to provide a comprehensive understanding of system performance, the paper derives precise closed-form expressions for critical metrics, including but not limited to OP and System Throughput (ST). These analytical expressions serve as essential tools for rigorously evaluating the proposed C-NOMA and EH schemes. Researchers and practitioners can use these insights to make informed decisions and assess the effectiveness of these systems in practical IoT deployments.
1.4. Organization and Notations
2. System Model
3. The TSR-Based Energy Harvesting of the Relay Node
3.1. The Energy Harvesting at the Relay Node
3.2. Phase: Energy Transfer
3.3. Phase: Data Transmission
3.3.1. Stage. 1: Communication
3.3.2. Stage. 2: Communication
4. Performance Assessment
4.1. Channel Characteristics
4.2. The OP
4.2.1. The OP in the Scenario of LEH
4.2.2. The OP in the Scenario of NLEH
4.3. System Throughput Analysis (STA)
5. Pseudo Code
Algorithm 1: The proposed method for Problem-Solving |
1. Initialization: 1.1 Set 1.2 Set 1.3 Set 1.4 Set 2. While Loop: 2.1 while do: 2.1.1 Set 2.1.2 Set 2.1.5 If then 2.1.5.1 Set else: 2.1.5.2 Set 2.1.6 end 2.2 End while 3. Return the Optimal : 3.1 Return |
6. Optimization of the TS Factor to Minimize the OP for Users
7. Energy Efficiency
8. Simulation Results
9. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Appendix A. Proof of Equation (21)
References
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Our Scheme | [33] | [34] | [4] | [5] | [6] | [35] | [36] | [37] | |
---|---|---|---|---|---|---|---|---|---|
NOMA | ✓ | ✓ | ✓ | ✓ | ✓ | ✓ | X | X | ✓ |
Multiple Relay | X | X | X | X | X | X | X | ✓ | X |
Energy harvesting | ✓ | ✓ | ✓ | ✓ | ✓ | ✓ | ✓ | ✓ | ✓ |
Generalized channels | ✓ | X | X | X | X | X | X | X | X |
Full-Duplex | X | ✓ | ✓ | X | X | X | X | X | X |
Power beacon | ✓ | X | X | X | X | X | X | ✓ | ✓ |
AF | X | X | X | X | X | X | ✓ | X | X |
DF | ✓ | ✓ | ✓ | ✓ | ✓ | ✓ | X | ✓ | ✓ |
Outage Probability | ✓ | ✓ | ✓ | ✓ | ✓ | ✓ | X | ✓ | ✓ |
Throughput | ✓ | ✓ | ✓ | ✓ | ✓ | ✓ | X | ✓ | ✓ |
Optimization | ✓ | X | ✓ | X | X | X | X | X | ✓ |
Acronym | Definition |
---|---|
6G | Six-generation |
AF | Amplify and decode |
AWGN | Additive white gaussian noise |
CDF | Cumulative distribution function |
C-NOMA | Cooperative non-orthogonal multiple access |
CSST | Cooperative spectrum-sharing transmission |
D2D | Device to device |
DF | Decode and forward |
DLT | Delay-limited transmission |
EH | Energy harvesting |
FD | Full-duplex |
HD | Half-duplex |
IoT | Internet of things |
IP | Information processing |
ipSIC | Imperfect SIC |
LEH | Linear energy harvesting |
NLEH | Nonlinear energy harvesting |
OFDM | Orthogonal frequency division multiple access |
OFDMA | Orthogonal frequency division multiple access |
OMA | Orthogonal multiple access |
OP | Outage probability |
Probability density function | |
pSIC | Perfect SIC |
QoS | Quality of service |
RMS | Root-mean-square |
RVs | Random variables |
SC | Superimposed coding |
SIC | Successive interference cancellation |
ST | System throughput |
SINR | signal-to-plus-noise ratio |
SNR | signal-to-noise ratio |
SWIPT | Simultaneous wireless information and power transfer |
TSR | Time-switching receiver |
Parameters | Description |
---|---|
The target rate is set at , where i belongs to the set . | |
’s information | |
’s threshold rate. | |
Power allocation coefficients at . | |
& | The AWGN term was succeeded by . |
Transmit power at BS. | |
Transmit power at R | |
T | The total time used for EH and IP. |
Time-switching factor. | |
The EH efficiency. | |
e | Subindex for defining the RV. Here, |
The ratio of the dispersed waves to the total power of the dominant components. | |
An extension utilizing real values that are linked to the quantity of multipath clusters. | |
The root-mean-square (RMS) value of the received signal envelope. | |
The average value of the received signal envelope. | |
The instantaneous signal-to-noise ratio (SNR). | |
The average SNR. | |
The shaping parameter refers to a crucial aspect of a Nakagami-m RV. | |
The rate parameter (also known as the inverse scale parameter) represents an optimistic measure of a Gamma RV. |
Parameters | Notations | Values |
---|---|---|
Power splitting factors | ||
Threshold data rate at | Bit/s/Hz | |
Threshold data rate at | Bit/s/Hz | |
Time-switching factor | ||
Coherence time block | T | 1 |
Interference factor | ||
Energy conversion efficiency | ||
Monte-Carlo sample | − |
Channels | Distribution Parameters |
---|---|
Rayleigh | , |
One-sided Gaussian | , |
Nakagami-m | , |
Rician with parameter K | , |
, |
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Tran, H.Q.; Sur, S.N.; Lee, B.M. A Comprehensive Analytical Framework under Practical Constraints for a Cooperative NOMA System Empowered by SWIPT IoT. Mathematics 2024, 12, 2249. https://doi.org/10.3390/math12142249
Tran HQ, Sur SN, Lee BM. A Comprehensive Analytical Framework under Practical Constraints for a Cooperative NOMA System Empowered by SWIPT IoT. Mathematics. 2024; 12(14):2249. https://doi.org/10.3390/math12142249
Chicago/Turabian StyleTran, Huu Q., Samarendra Nath Sur, and Byung Moo Lee. 2024. "A Comprehensive Analytical Framework under Practical Constraints for a Cooperative NOMA System Empowered by SWIPT IoT" Mathematics 12, no. 14: 2249. https://doi.org/10.3390/math12142249
APA StyleTran, H. Q., Sur, S. N., & Lee, B. M. (2024). A Comprehensive Analytical Framework under Practical Constraints for a Cooperative NOMA System Empowered by SWIPT IoT. Mathematics, 12(14), 2249. https://doi.org/10.3390/math12142249