Exploiting Transmission and Caching Diversity in Cache-Enabled User-Centric Network: Analysis and Optimization

User-centric network (UCN) organizes a dynamic base station group (BSG) for each user equipment (UE), consisting of potential base stations (BSs) with caching ability. However, the performance gain brought by the increased BS diversity of potential BSs has not yet been analyzed. Using stochastic geo...

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Main Authors: Ying Chen, Hongtao Zhang
Format: Article
Language:English
Published: IEEE 2019-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8717687/
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spelling doaj-c9a07ed79f9e41d4bebc3b3bad48f2a22021-03-29T23:37:48ZengIEEEIEEE Access2169-35362019-01-017659346594310.1109/ACCESS.2019.29176388717687Exploiting Transmission and Caching Diversity in Cache-Enabled User-Centric Network: Analysis and OptimizationYing Chen0Hongtao Zhang1https://orcid.org/0000-0003-2031-5985School of Information and Communication Engineering, Beijing University of Posts and Telecommunications, Beijing, ChinaSchool of Information and Communication Engineering, Beijing University of Posts and Telecommunications, Beijing, ChinaUser-centric network (UCN) organizes a dynamic base station group (BSG) for each user equipment (UE), consisting of potential base stations (BSs) with caching ability. However, the performance gain brought by the increased BS diversity of potential BSs has not yet been analyzed. Using stochastic geometry, the analytical expression of average outage probability is derived for the cache-enabled UCN, where a practical scenario is considered wherein inter-cache data transfer cannot be performed between BSs and the serving BS must have the requested content. Specifically, the gain of BS diversity within the BSG is characterized, where the UE benefits from transmission resource diversity of the BSG by always connecting to the BS with the best coverage performance among those with the required content, and the increased caching content diversity is utilized by searching the content within the BSG. Based on the analysis, to minimize the lower bound of outage probability, closed-form optimal caching distribution is obtained which is more uniform than the request distribution. Outage probability of the cache-enabled UCN is decreased by 42.1% compared to the case where the UE connects to the nearest BS with the required content. Moreover, the optimal caching distribution decreases outage probability by 28.5% compared to the policy of caching the most popular contents.https://ieeexplore.ieee.org/document/8717687/User-centric networkcachestochastic geometryoptimal caching distributionPoisson point process
collection DOAJ
language English
format Article
sources DOAJ
author Ying Chen
Hongtao Zhang
spellingShingle Ying Chen
Hongtao Zhang
Exploiting Transmission and Caching Diversity in Cache-Enabled User-Centric Network: Analysis and Optimization
IEEE Access
User-centric network
cache
stochastic geometry
optimal caching distribution
Poisson point process
author_facet Ying Chen
Hongtao Zhang
author_sort Ying Chen
title Exploiting Transmission and Caching Diversity in Cache-Enabled User-Centric Network: Analysis and Optimization
title_short Exploiting Transmission and Caching Diversity in Cache-Enabled User-Centric Network: Analysis and Optimization
title_full Exploiting Transmission and Caching Diversity in Cache-Enabled User-Centric Network: Analysis and Optimization
title_fullStr Exploiting Transmission and Caching Diversity in Cache-Enabled User-Centric Network: Analysis and Optimization
title_full_unstemmed Exploiting Transmission and Caching Diversity in Cache-Enabled User-Centric Network: Analysis and Optimization
title_sort exploiting transmission and caching diversity in cache-enabled user-centric network: analysis and optimization
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2019-01-01
description User-centric network (UCN) organizes a dynamic base station group (BSG) for each user equipment (UE), consisting of potential base stations (BSs) with caching ability. However, the performance gain brought by the increased BS diversity of potential BSs has not yet been analyzed. Using stochastic geometry, the analytical expression of average outage probability is derived for the cache-enabled UCN, where a practical scenario is considered wherein inter-cache data transfer cannot be performed between BSs and the serving BS must have the requested content. Specifically, the gain of BS diversity within the BSG is characterized, where the UE benefits from transmission resource diversity of the BSG by always connecting to the BS with the best coverage performance among those with the required content, and the increased caching content diversity is utilized by searching the content within the BSG. Based on the analysis, to minimize the lower bound of outage probability, closed-form optimal caching distribution is obtained which is more uniform than the request distribution. Outage probability of the cache-enabled UCN is decreased by 42.1% compared to the case where the UE connects to the nearest BS with the required content. Moreover, the optimal caching distribution decreases outage probability by 28.5% compared to the policy of caching the most popular contents.
topic User-centric network
cache
stochastic geometry
optimal caching distribution
Poisson point process
url https://ieeexplore.ieee.org/document/8717687/
work_keys_str_mv AT yingchen exploitingtransmissionandcachingdiversityincacheenabledusercentricnetworkanalysisandoptimization
AT hongtaozhang exploitingtransmissionandcachingdiversityincacheenabledusercentricnetworkanalysisandoptimization
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