Cache-Enabled Heterogeneous Cellular Networks: Optimal Tier-Level Content Placement
Juan Wen, Kaibin Huang, Sheng Yang, Victor O. K. Li

TL;DR
This paper investigates optimal tier-level content placement in cache-enabled heterogeneous cellular networks to maximize hit probability, deriving closed-form solutions for uniform SIR thresholds and near-optimal policies for non-uniform thresholds.
Contribution
It introduces a tier-level content placement strategy with a closed-form solution for uniform SIR thresholds and a near-optimal approximation for non-uniform thresholds in HCNs.
Findings
Optimal placement probability is proportional to the square root of content popularity.
Closed-form solution derived for uniform SIR thresholds.
Near-optimal policy effective for non-uniform SIR thresholds, validated by simulations.
Abstract
Caching popular contents at base stations (BSs) of a heterogeneous cellular network (HCN) avoids frequent information passage from content providers to the network edge, thereby reducing latency and alleviating traffic congestion in backhaul links. In general, the optimal strategies for content placement in HCNs remain largely unknown and deriving them forms the theme of this paper. To this end, we adopt the popular random HCN model where tiers of BSs are modelled as independent Poisson point processes distributed in the plane with different densities. Further, the random caching scheme is considered where each of a given set of files with corresponding popularity measures is placed at each BS of a particular tier with a corresponding probability, called placement probability. The probabilities are identical for all BSs in the same tier but vary over tiers, giving the name…
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Taxonomy
TopicsCaching and Content Delivery · Cooperative Communication and Network Coding · Opportunistic and Delay-Tolerant Networks
