Optimal Achievable Transmission Capacity Scheme for Full-Duplex Multihop Wireless Networks
Abstract
:1. Introduction
1.1. Literature Review
1.2. Contributions
- This paper contributes that the findings of the CT scheme only and the MCST scheme only cannot provide the best achievable network capacity all the time, even with the aid of transmit power control scheme in the FD multihop wireless networks. As a result, the OATC scheme is proposed to combine these two schemes to achieve the optimal achievable capacity.
- This paper introduces an algorithm for the OATC scheme to choose either the CT scheme or MCST scheme by using the tradeoff threshold, which is the tradeoff to consider both the interference power and the received power of the ongoing transmission.
- Through numerical simulation results, this paper reveals that the proposed OATC scheme not only applies the high ratio of the CT scheme when the network is not dense to achieve the optimal achievable capacity but also reduces total interference power.
2. System Model
2.1. Channel Model
2.2. SINR Model
2.3. Link Capacity Model
2.4. Achievable Single BRF Transmission Capacity
2.5. Transmit Power Control Scheme
3. Optimal Achievable Transmission Capacity Scheme
Algorithm 1 CT with CTPC Algorithm |
Definition: is transmission control set, P is the transmit power and is the choice transmission rate, is the threshold of CT, t is timeslot, i is the transmitting node, j is the receiving node |
Input: , , , |
Output: |
function CT/CTPC |
Calculate , |
Calculate target rate of each flow where |
Calculate next target rate of all flows where |
if then |
Set . Go to step 13 |
else |
Calculate from |
Set . Go to step 2 |
end if |
Set |
Set |
Calculate |
return |
end function |
Algorithm 2 MCST with CTPC Algorithm |
Definition: is transmission control set, P is the transmit power and is choice transmission rate, is the threshold of MCST, t is timeslot, i is the transmitting node
|
Algorithm 3 OATC with CTPC Algorithm |
|
4. Numerical Simulations
4.1. Simulation Scenarios and Settings
4.2. Evaluation Metrics
4.2.1. Achievable Network Capacity
4.2.2. Achievable Throughput
4.2.3. Achievable Transmission Overhead
4.3. Simulation Results and Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
BRF | Basic relaying flow transmission |
CSMA/CA | Carrier sense multiple access with collision avoidance |
CT | Concurrent transmission scheme |
CTPC | Consensus transmit power control scheme |
DCF | Distributed coordination function |
FD | Full-duplex |
FD-MCST | FD MAC protocol with MCST scheme |
HD | Half-duplex |
IUI | Inter-user interference |
MAC | Medium access control protocol |
MCST | Mixture of concurrent and sequential transmission scheme |
OATC | Optimal achievable transmission capacity scheme |
RD | Relay-destination transmission |
RTS/CTS | Request-to-send/clear-to-send mechanism |
RTS/FCTS | Request-to-send/full-duplex clear-to-send MAC protocol |
SI | Self-interference |
SIC | Self-interference cancellation |
SINR | Signal-to-interference-plus-noise ratio |
SNR | Signal-to-noise ratio |
SR | Source-relay transmission |
TPC | Transmit power control scheme |
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Parameter | Value |
---|---|
Network coverage size | 100 m × 100 m |
Transmit power (P) | 20 dBm |
Propagation model | Log-distance pathloss |
Attenuation constant () | 3.5 |
Wall attenuation () | 0 dB |
Shadowing parameter () | 8 dB |
Noise level () | −174 dBm |
Channel bandwidth (B) | 20 MHz |
Basic rate () | 24 Mbps |
PHY header duration | 44 s |
MAC header | 320 bits |
RTS size | 160 bits |
CTS size | 112 bits |
STS size | 120 bits |
ACK size | 112 bits |
DIFS length | 34 s |
SIFS length | 16 s |
DATA length (l) | 1500, 2500, 3500, 4500, 5500, 6500 bytes |
Contention window () | 16 Slot time |
Slot time length () | 9 s |
Consensus coefficient () | 0.5∼3 |
Number of simulations | 1000 times |
Achievable Network Capacity [Mbps] | Average Achievable Throughput [Mbps] | |
---|---|---|
RTS/FCTS | 77.07 | 150.04 |
FD-MCST | 78.47 | 195.92 |
OATC | 78.47 | 195.92 |
Average Achievable Throughput [Mbps] | |||||
---|---|---|---|---|---|
No. of BRF Transmissions | RTS/FCTS | FD-MCST | OATC | ||
No TPC | TPC | No TPC | TPC | ||
10 | 29.84 | 31.78 | 38.42 | 39.68 | 40.02 |
20 | 20.79 | 23.52 | 27.75 | 29.99 | 30.23 |
30 | 18.48 | 21.34 | 24.99 | 27.28 | 27.51 |
40 | 17.27 | 20.45 | 23.54 | 26.17 | 26.40 |
50 | 16.22 | 19.49 | 22.30 | 25.13 | 25.36 |
No. of BRF Transmissions | Ratio of CT in OATC | Interference Reduction [dBm] | Gain | Gain |
---|---|---|---|---|
10 | 0.11 | 0.53 (3%) | 36% | 34% |
20 | 0.06 | 0.62 (8%) | 41% | 45% |
30 | 0.05 | 0.61 (22%) | 44% | 49% |
40 | 0.04 | 0.54 (61%) | 46% | 53% |
50 | 0.03 | 0.60 (17%) | 48% | 56% |
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Khun, A.T.P.; Lim, Y.; Tan, Y. Optimal Achievable Transmission Capacity Scheme for Full-Duplex Multihop Wireless Networks. Sensors 2022, 22, 7849. https://doi.org/10.3390/s22207849
Khun ATP, Lim Y, Tan Y. Optimal Achievable Transmission Capacity Scheme for Full-Duplex Multihop Wireless Networks. Sensors. 2022; 22(20):7849. https://doi.org/10.3390/s22207849
Chicago/Turabian StyleKhun, Aung Thura Phyo, Yuto Lim, and Yasuo Tan. 2022. "Optimal Achievable Transmission Capacity Scheme for Full-Duplex Multihop Wireless Networks" Sensors 22, no. 20: 7849. https://doi.org/10.3390/s22207849
APA StyleKhun, A. T. P., Lim, Y., & Tan, Y. (2022). Optimal Achievable Transmission Capacity Scheme for Full-Duplex Multihop Wireless Networks. Sensors, 22(20), 7849. https://doi.org/10.3390/s22207849