Performance Analysis and Optimal Cooperative Cluster Size for Randomly Distributed Small Cells Under Cloud RAN
One major advantage of cloud/centralized radio access network is the ease of implementation of multi-cell coordination mechanisms to improve the system spectrum efficiency (SE). Theoretically, large number of cooperative cells lead to a higher SE; however, it may also cause significant delay due to...
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doaj-35f183fdf93f4286a75c579153e1fe562021-03-29T19:40:57ZengIEEEIEEE Access2169-35362016-01-0141925193910.1109/ACCESS.2016.25507587448382Performance Analysis and Optimal Cooperative Cluster Size for Randomly Distributed Small Cells Under Cloud RANLei Zhang0https://orcid.org/0000-0002-4767-3849Atta Ul Quddus1Efstathios Katranaras2Dirk Wubben3Yinan Qi4Rahim Tafazolli5 University of Surrey, Surrey, U.K. University of Surrey, Surrey, U.K. Sequans Communications, Reading, U.K. University of Bremen, Bremen, Germany Samsung Electronics Research and Development Institute, St. Staines, U.K. University of Surrey, Surrey, U.K.One major advantage of cloud/centralized radio access network is the ease of implementation of multi-cell coordination mechanisms to improve the system spectrum efficiency (SE). Theoretically, large number of cooperative cells lead to a higher SE; however, it may also cause significant delay due to extra channel state information feedback and joint processing computational needs at the cloud data center, which is likely to result in performance degradation. In order to investigate the delay impact on the throughput gains, we divide the network into multiple clusters of cooperative small cells and formulate a throughput optimization problem. We model various delay factors and the sum-rate of the network as a function of cluster size, treating it as the main optimization variable. For our analysis, we consider both base stations' as well as users' geometric locations as random variables for both linear and planar network deployments. The output signal-to-interference-plus-noise ratio and ergodic sum-rate are derived based on the homogenous Poisson point processing model. The sum-rate optimization problem in terms of the cluster size is formulated and solved. Simulation results show that the proposed analytical framework can be utilized to accurately evaluate the performance of practical cloud-based small cell networks employing clustered cooperation.https://ieeexplore.ieee.org/document/7448382/Cloud-RANCSI delaylatencyoptimal cooperative clusterPoisson point processing |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Lei Zhang Atta Ul Quddus Efstathios Katranaras Dirk Wubben Yinan Qi Rahim Tafazolli |
spellingShingle |
Lei Zhang Atta Ul Quddus Efstathios Katranaras Dirk Wubben Yinan Qi Rahim Tafazolli Performance Analysis and Optimal Cooperative Cluster Size for Randomly Distributed Small Cells Under Cloud RAN IEEE Access Cloud-RAN CSI delay latency optimal cooperative cluster Poisson point processing |
author_facet |
Lei Zhang Atta Ul Quddus Efstathios Katranaras Dirk Wubben Yinan Qi Rahim Tafazolli |
author_sort |
Lei Zhang |
title |
Performance Analysis and Optimal Cooperative Cluster Size for Randomly Distributed Small Cells Under Cloud RAN |
title_short |
Performance Analysis and Optimal Cooperative Cluster Size for Randomly Distributed Small Cells Under Cloud RAN |
title_full |
Performance Analysis and Optimal Cooperative Cluster Size for Randomly Distributed Small Cells Under Cloud RAN |
title_fullStr |
Performance Analysis and Optimal Cooperative Cluster Size for Randomly Distributed Small Cells Under Cloud RAN |
title_full_unstemmed |
Performance Analysis and Optimal Cooperative Cluster Size for Randomly Distributed Small Cells Under Cloud RAN |
title_sort |
performance analysis and optimal cooperative cluster size for randomly distributed small cells under cloud ran |
publisher |
IEEE |
series |
IEEE Access |
issn |
2169-3536 |
publishDate |
2016-01-01 |
description |
One major advantage of cloud/centralized radio access network is the ease of implementation of multi-cell coordination mechanisms to improve the system spectrum efficiency (SE). Theoretically, large number of cooperative cells lead to a higher SE; however, it may also cause significant delay due to extra channel state information feedback and joint processing computational needs at the cloud data center, which is likely to result in performance degradation. In order to investigate the delay impact on the throughput gains, we divide the network into multiple clusters of cooperative small cells and formulate a throughput optimization problem. We model various delay factors and the sum-rate of the network as a function of cluster size, treating it as the main optimization variable. For our analysis, we consider both base stations' as well as users' geometric locations as random variables for both linear and planar network deployments. The output signal-to-interference-plus-noise ratio and ergodic sum-rate are derived based on the homogenous Poisson point processing model. The sum-rate optimization problem in terms of the cluster size is formulated and solved. Simulation results show that the proposed analytical framework can be utilized to accurately evaluate the performance of practical cloud-based small cell networks employing clustered cooperation. |
topic |
Cloud-RAN CSI delay latency optimal cooperative cluster Poisson point processing |
url |
https://ieeexplore.ieee.org/document/7448382/ |
work_keys_str_mv |
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