OFDM Multiple Antennas Cognitive Radio Relay CDMA Synchronization Channel Estimation Spectrum Sharing Interference Cancellation Full duplex Spectrum Sensing Resource Allocation Neural Networks Stochastic Geometry Equalizer Bi-Directional Feedback Femtocell Energy Harvesting Heterogeneous Networks Device-to-Device (D2D) Cross-link interference Cell Search Idle cells NOMA HetNet Ultra-dense small cell networks Spectral efficiency FBMC SINR mismatch problem Dynamic TDD interference management Sub-band filtering Mobility eigen decomposition outage probability Railway selection diversity Handoff Asynchronous Transmission flexible duplex 5G achievable sum rate interference mitigation Preamble Deep learning Grant-free Transmission MLP in-band full-duplex system sensing duration Correlated MIMO Simultaneous Sensing and Transmission transmission capacity (TC) Two-way communications Filtered OFDM automatic repeat request (ARQ) UWB full-duplex cellular OQAM bursty traffic model mode selection Bi-directional full-duplex Heterogeneous channel estimation capability Cognitive relay networks Channel estimation error multi-spectral pilot signal resource size control interference to noise ratio link reliability Coexistence scenarios mixed numerology Cooperative systems Resource management LTE-based V2V Vehicle-to-vehicle communication CP-OFDM full-spreading NOMA massive connectivity non-orthogonal multiple access Singular Vale Decomposition prototype filter Vehicle-to-Vehicle Reliability C-V2V Intentional frequency offset (IFO) B5G Multiple access Asynchronism Degree of freedom (DoF) Asynchronous non-orthogonal multiple access (NOMA) TDD configuration 6G Cell-free tabu-search Complexity Computation offloading Full-duplex Coexisting network Edge computing HST
Status : Published 
Date : 2016-01 
Title : Adaptive Mode Selection in D2D Communications Considering the Bursty Traffic Model 
Authors : Joonki Kim, Seokjung Kim, Jonghyun Bang, and Daesik Hong 
Journal : IEEE Communications Letters 
Abstract : This paper proposes a new mode selection scheme to improve the overall packet rates for device-to-device (D2D) communications systems in the bursty traffic model. We consider three types of D2D modes, i.e., dedicated mode, cellular mode, and reuse mode. In the full-buffer traffic model, if all the uplink (UL) channels are occupied by cellular users, the dedicated and cellular modes are not available for D2D user equipments (DUEs) to choose. However, in bursty traffic model, the traffic load is time-varying and DUEs have the option to select the dedicated or cellular modes. To determine the best mode for a DUE in the bursty traffic, we propose a mode selection scheme which considers the traffic load for the bursty traffic model. Numerical results show that the proposed scheme achieves a remarkable enhancement in average end-to-end delay, dropping probability and packet rate. 
URL : http://ieeexplore.ieee.org/xpl/articleDe...ic%20Model 
Download : https://mirinae.yonsei.ac.kr/?module=fil...le_srl=179 

Kim, Joonki; Kim, Seokjung; Bang, Jonghyun; Hong, Daesik, "Adaptive Mode Selection in D2D Communications Considering the Bursty Traffic Model", Communications Leters, IEEE, Jan 2016

doi: 10.1109/LCOMM.2016.2521371

keywords: {Device-to-Device Communication;mode selection;bursty traffic model}

URL: http://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=7390167

List of Articles
No.
Status Datesort
» [IEEE Commun. Lett.] Joonki Kim, Seokjung Kim, Jonghyun Bang, and Daesik Hong, "Adaptive Mode Selection in D2D Communications Considering the Bursty Traffic Model", IEEE Comm. Letters, Jan 2016 file Published  2016-01 
2 [IEEE Trans. Wireless Commun.] Hyunkee Min, Jemin Lee, Sungsoo Park, and Daesik Hong, "Capacity Enhancement Using an Interference Limited Area for Device-to-Device Uplink Underlaying Cellular Networks" IEEE Trans. Wireless Comm., Dec 2011 file Published  2011-12 
1 [IEEE Trans. Wireless Commun.] Hyunkee Min, Woohyun Seo, Jemin Lee, Sungsoo Park, and Daesik Hong,"Reliability Improvement Using Receive Mode Selection in the Device-to-Device Uplink Period Underlaying Cellular Networks," IEEE Trans. Wireless Commun., Feb. 2011 file Published  2011-02