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Resource allocation and interference management for d2d-enabled dl/ul decoupled het-nets

Resource allocation and interference management for d2d-enabled dl/ul decoupled het-nets
Resource allocation and interference management for d2d-enabled dl/ul decoupled het-nets

In this paper, resource allocation and interference mitigation are investigated for heterogeneous networks where the lowest tier consists of device-To-device (D2D) cells. In order to alleviate dead-zone problem, we first consider downlink/uplink (DL/UL) decoupling user association and quantify its capability on interference management and network-wide D2D performance enhancement. Second, we propose an UL fractional frequency reuse scheme where subband (SB) bandwidths are adaptively determined based on: 1) user equipment (UE) density; 2) e-node-B (eNB) density; and 3) on/off switching frequency of small cells. Obtained results show that the adaptive method significantly reduces the number of outage users. Thereafter, a novel concatenated bi-partite matching (CBM) method is proposed for joint SB assignment (SA) and resource block allocation (RA) of cellular UEs. Numerical results show that the CBM provides a close performance to exhaustive solution with greatly reduced running time. The CBM is then extended to a centralized mode selection, SA, and RA for D2D cells. Alternatively, we develop offline and online semi-distributed approaches where a D2D-cell can reuse white-list RBs (WRBs), which are not occupied by the adjacent small cells. In the former, D2D-cell members are not aware of intra-cell and inter-cell interference and uniformly distribute their maximum permissible power to WRBs. In the latter, we put D2D sum rate maximization into a convex form by exploiting the proximity gain of D2D UEs. Online distributed solution is then developed by message passing of dual variables and consistency prices. Finally, virtues and drawbacks of the developed approaches are compared and explained.

Concatenated bi-partite graphs, Dead-zone mitigation, Downlink/uplink decoupling, Fractional frequency reuse, Geometric programming, Inter-Tier interference management, Subband assignment, Truncated channel inversion
2169-3536
22735-22749
Celik, Abdulkadir
f8e72266-763c-4849-b38e-2ea2f50a69d0
Radaydeh, Redha M.
04739d42-a01a-48d3-a112-c4a67f112766
Al-Qahtani, Fawaz S.
b898b465-80a2-4d10-88bf-4c8463fb98d8
Alouini, Mohamed Slim
3ccd5915-318e-4f4b-b47a-48257ab4c0eb
Celik, Abdulkadir
f8e72266-763c-4849-b38e-2ea2f50a69d0
Radaydeh, Redha M.
04739d42-a01a-48d3-a112-c4a67f112766
Al-Qahtani, Fawaz S.
b898b465-80a2-4d10-88bf-4c8463fb98d8
Alouini, Mohamed Slim
3ccd5915-318e-4f4b-b47a-48257ab4c0eb

Celik, Abdulkadir, Radaydeh, Redha M., Al-Qahtani, Fawaz S. and Alouini, Mohamed Slim (2017) Resource allocation and interference management for d2d-enabled dl/ul decoupled het-nets. IEEE Access, 5, 22735-22749, [8060504]. (doi:10.1109/ACCESS.2017.2760350).

Record type: Article

Abstract

In this paper, resource allocation and interference mitigation are investigated for heterogeneous networks where the lowest tier consists of device-To-device (D2D) cells. In order to alleviate dead-zone problem, we first consider downlink/uplink (DL/UL) decoupling user association and quantify its capability on interference management and network-wide D2D performance enhancement. Second, we propose an UL fractional frequency reuse scheme where subband (SB) bandwidths are adaptively determined based on: 1) user equipment (UE) density; 2) e-node-B (eNB) density; and 3) on/off switching frequency of small cells. Obtained results show that the adaptive method significantly reduces the number of outage users. Thereafter, a novel concatenated bi-partite matching (CBM) method is proposed for joint SB assignment (SA) and resource block allocation (RA) of cellular UEs. Numerical results show that the CBM provides a close performance to exhaustive solution with greatly reduced running time. The CBM is then extended to a centralized mode selection, SA, and RA for D2D cells. Alternatively, we develop offline and online semi-distributed approaches where a D2D-cell can reuse white-list RBs (WRBs), which are not occupied by the adjacent small cells. In the former, D2D-cell members are not aware of intra-cell and inter-cell interference and uniformly distribute their maximum permissible power to WRBs. In the latter, we put D2D sum rate maximization into a convex form by exploiting the proximity gain of D2D UEs. Online distributed solution is then developed by message passing of dual variables and consistency prices. Finally, virtues and drawbacks of the developed approaches are compared and explained.

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More information

Published date: 5 October 2017
Additional Information: Publisher Copyright: © 2013 IEEE.
Keywords: Concatenated bi-partite graphs, Dead-zone mitigation, Downlink/uplink decoupling, Fractional frequency reuse, Geometric programming, Inter-Tier interference management, Subband assignment, Truncated channel inversion

Identifiers

Local EPrints ID: 504463
URI: http://eprints.soton.ac.uk/id/eprint/504463
ISSN: 2169-3536
PURE UUID: ac4a690e-d90f-4621-967a-74250c14ed1d
ORCID for Abdulkadir Celik: ORCID iD orcid.org/0000-0001-9007-9979

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Date deposited: 09 Sep 2025 19:53
Last modified: 10 Sep 2025 13:50

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Contributors

Author: Abdulkadir Celik ORCID iD
Author: Redha M. Radaydeh
Author: Fawaz S. Al-Qahtani
Author: Mohamed Slim Alouini

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