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Radio resource management for device to device communication using S and V shaped transfer functions

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Radio resource management for device to device communication using S and V shaped transfer functions. / Ahmad, Mushtaq ; Awais, Muhammad; Naeem, Muhammad et al.
In: Telecommunication Systems, Vol. 82, 01.01.2023, p. 91-100.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Ahmad, M, Awais, M, Naeem, M, Altaf, M, Iqbal, M & Abrar, M 2023, 'Radio resource management for device to device communication using S and V shaped transfer functions', Telecommunication Systems, vol. 82, pp. 91-100. https://doi.org/10.1007/s11235-022-00972-5

APA

Vancouver

Ahmad M, Awais M, Naeem M, Altaf M, Iqbal M, Abrar M. Radio resource management for device to device communication using S and V shaped transfer functions. Telecommunication Systems. 2023 Jan 1;82:91-100. Epub 2022 Nov 14. doi: 10.1007/s11235-022-00972-5

Author

Ahmad, Mushtaq ; Awais, Muhammad ; Naeem, Muhammad et al. / Radio resource management for device to device communication using S and V shaped transfer functions. In: Telecommunication Systems. 2023 ; Vol. 82. pp. 91-100.

Bibtex

@article{f5b50b7ed3944eb6b1c654c3e5bac848,
title = "Radio resource management for device to device communication using S and V shaped transfer functions",
abstract = "Device-to-device (D2D) communication has become a key complementary technology in emerging next-generation communication paradigm. It offers a number potential use cases including peer to peer communication, cellular offloading, device-relaying and content sharing etc. Efficient resource management is one of the key factor for boosting overall network data rate. This paper provides an effective resource management approach for D2D networks that not only maximises the network{\textquoteright}s overall throughput but also maximises the number of admitted users while adhering to power and interference limits. The optimization problem considered in this work is NP-complete and belongs to the category of mixed integer non-linear programming problems. The complexity of problem is proportional to the number of users, exhaustive search of solution is not feasible for large network size. In this work, the resource management problem solved using Binary Particle Swarm Optimization (BPSO) algorithm with eight different types of transfer functions which facilitate for calculation of probability values from velocities of the particles. The performance results are presented for different networks scenarios and compared with classical evolutionary algorithm. The simulation results show that the proposed solution achieves a better sum rate and faster convergence as compared to other solution.",
author = "Mushtaq Ahmad and Muhammad Awais and Muhammad Naeem and Muhammad Altaf and Muhammad Iqbal and Muhammad Abrar",
year = "2023",
month = jan,
day = "1",
doi = "10.1007/s11235-022-00972-5",
language = "English",
volume = "82",
pages = "91--100",
journal = "Telecommunication Systems",
issn = "1018-4864",
publisher = "Springer Netherlands",

}

RIS

TY - JOUR

T1 - Radio resource management for device to device communication using S and V shaped transfer functions

AU - Ahmad, Mushtaq

AU - Awais, Muhammad

AU - Naeem, Muhammad

AU - Altaf, Muhammad

AU - Iqbal, Muhammad

AU - Abrar, Muhammad

PY - 2023/1/1

Y1 - 2023/1/1

N2 - Device-to-device (D2D) communication has become a key complementary technology in emerging next-generation communication paradigm. It offers a number potential use cases including peer to peer communication, cellular offloading, device-relaying and content sharing etc. Efficient resource management is one of the key factor for boosting overall network data rate. This paper provides an effective resource management approach for D2D networks that not only maximises the network’s overall throughput but also maximises the number of admitted users while adhering to power and interference limits. The optimization problem considered in this work is NP-complete and belongs to the category of mixed integer non-linear programming problems. The complexity of problem is proportional to the number of users, exhaustive search of solution is not feasible for large network size. In this work, the resource management problem solved using Binary Particle Swarm Optimization (BPSO) algorithm with eight different types of transfer functions which facilitate for calculation of probability values from velocities of the particles. The performance results are presented for different networks scenarios and compared with classical evolutionary algorithm. The simulation results show that the proposed solution achieves a better sum rate and faster convergence as compared to other solution.

AB - Device-to-device (D2D) communication has become a key complementary technology in emerging next-generation communication paradigm. It offers a number potential use cases including peer to peer communication, cellular offloading, device-relaying and content sharing etc. Efficient resource management is one of the key factor for boosting overall network data rate. This paper provides an effective resource management approach for D2D networks that not only maximises the network’s overall throughput but also maximises the number of admitted users while adhering to power and interference limits. The optimization problem considered in this work is NP-complete and belongs to the category of mixed integer non-linear programming problems. The complexity of problem is proportional to the number of users, exhaustive search of solution is not feasible for large network size. In this work, the resource management problem solved using Binary Particle Swarm Optimization (BPSO) algorithm with eight different types of transfer functions which facilitate for calculation of probability values from velocities of the particles. The performance results are presented for different networks scenarios and compared with classical evolutionary algorithm. The simulation results show that the proposed solution achieves a better sum rate and faster convergence as compared to other solution.

U2 - 10.1007/s11235-022-00972-5

DO - 10.1007/s11235-022-00972-5

M3 - Journal article

VL - 82

SP - 91

EP - 100

JO - Telecommunication Systems

JF - Telecommunication Systems

SN - 1018-4864

ER -