1,466 research outputs found
Device-to-Device Communications in the Millimeter Wave Band: A Novel Distributed Mechanism
In spite of its potential advantages, the large-scale implementation of the
device-to-device (D2D) communications has yet to be realized, mainly due to
severe interference and lack of enough bandwidth in the microwave (W)
band. Recently, exploiting the millimeter wave (mmW) band for D2D
communications has attracted considerable attention as a potential solution to
these challenges. However, its severe sensitivity to blockage along with its
directional nature make the utilization of the mmW band a challenging task as
it requires line-of-sight (LOS) link detection and careful beam alignment
between the D2D transceivers. In this paper, we propose a novel distributed
mechanism which enables the D2D devices to discover unblocked LOS links for the
mmW band communication. Moreover, as such LOS links are not always available,
the proposed mechanism allows the D2D devices to switch to the W band if
necessary. In addition, the proposed mechanism detects the direction of the LOS
links to perform the beam alignment. We have used tools from stochastic
geometry to evaluate the performance of the proposed mechanism in terms of the
signal-to-interference-plus-noise ratio (SINR) coverage probability. The
performance of the proposed algorithm is then compared to the one of the single
band (i.e., W/mmW) communication. The simulation results show that the
proposed mechanism considerably outperforms the single band communication.Comment: 6 Pages, 6 Figures, Accepted for presentation in Wireless
Telecommunication Symposium (WTS'18
Optimal Virtualized Inter-Tenant Resource Sharing for Device-to-Device Communications in 5G Networks
Device-to-Device (D2D) communication is expected to enable a number of new
services and applications in future mobile networks and has attracted
significant research interest over the last few years. Remarkably, little
attention has been placed on the issue of D2D communication for users belonging
to different operators. In this paper, we focus on this aspect for D2D users
that belong to different tenants (virtual network operators), assuming
virtualized and programmable future 5G wireless networks. Under the assumption
of a cross-tenant orchestrator, we show that significant gains can be achieved
in terms of network performance by optimizing resource sharing from the
different tenants, i.e., slices of the substrate physical network topology. To
this end, a sum-rate optimization framework is proposed for optimal sharing of
the virtualized resources. Via a wide site of numerical investigations, we
prove the efficacy of the proposed solution and the achievable gains compared
to legacy approaches.Comment: 10 pages, 7 figure
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