149 research outputs found

    Power allocation for D2D communications using max-min message-passing algorithm

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    The approach of factor-graphs (FGs) is applied in the context of power control and user pairing in Device-to-Device (D2D) communications as an effective underlay concept in wireless cellular networks. D2D communications can increase the spectral efïŹciency of wireless cellular networks by establishing a direct link between devices with limited help from the evolved node base stations (eNBs). A well-designed user pairing and power allocation scheme with low complexity can remarkably improve the system’s performance. In this paper, a simple and distributed FG based approach is utilized for power control and user pairing implementation in an underlay cellular network with D2D communications. A max-min criterion is proposed to maximize the minimum rate of all active users in the network, including the cellular and multiple D2D co-channel links in the uplink direction. An associated message-passing (MP) algorithm is presented to distributedly solve the resultant NP-hard maximization problem, with a guaranteed convergence compared to game-theoretic and Q-learning based methods. The complexity and convergence of the proposed method are analyzed and numerical results conïŹrm that the proposed scheme outperforms alternative algorithms in terms of complexity, while keeping the sum-rate of users nearly the same as centralized counterpart methods

    Advanced Technologies for Device-to-device Communications Underlaying Cellular Networks

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    The past few years have seen a major change in cellular networks, as explosive growth in data demands requires more and more network capacity and backhaul capability. New wireless technologies have been proposed to tackle these challenges. One of the emerging technologies is device-to-device (D2D) communications. It enables two cellular user equip- ment (UEs) in proximity to communicate with each other directly reusing cellular radio resources. In this case, D2D is able to of oad data traf c from central base stations (BSs) and signi cantly improve the spectrum ef ciency of a cellular network, and thus is one of the key technologies for the next generation cellular systems. Radio resource management (RRM) for D2D communications and how to effectively exploit the potential bene ts of D2D are two paramount challenges to D2D communications underlaying cellular networks. In this thesis, we focus on four problems related to these two challenges. In Chapter 2, we utilise the mixed integer non-linear programming (MINLP) to model and solve the RRM optimisation problems for D2D communications. Firstly we consider the RRM optimisation problem for D2D communications underlaying the single carrier frequency division multiple access (SC-FDMA) system and devise a heuristic sub- optimal solution to it. Then we propose an optimised RRM mechanism for multi-hop D2D communications with network coding (NC). NC has been proven as an ef cient technique to improve the throughput of ad-hoc networks and thus we apply it to multi-hop D2D communications. We devise an optimal solution to the RRM optimisation problem for multi-hop D2D communications with NC. In Chapter 3, we investigate how the location of the D2D transmitter in a cell may affect the RRM mechanism and the performance of D2D communications. We propose two optimised location-based RRM mechanisms for D2D, which maximise the throughput and the energy ef ciency of D2D, respectively. We show that, by considering the location information of the D2D transmitter, the MINLP problem of RRM for D2D communications can be transformed into a convex optimisation problem, which can be ef ciently solved by the method of Lagrangian multipliers. In Chapter 4, we propose a D2D-based P2P le sharing system, which is called Iunius. The Iunius system features: 1) a wireless P2P protocol based on Bittorrent protocol in the application layer; 2) a simple centralised routing mechanism for multi-hop D2D communications; 3) an interference cancellation technique for conventional cellular (CC) uplink communications; and 4) a radio resource management scheme to mitigate the interference between CC and D2D communications that share the cellular uplink radio resources while maximising the throughput of D2D communications. We show that with the properly designed application layer protocol and the optimised RRM for D2D communications, Iunius can signi cantly improve the quality of experience (QoE) of users and of oad local traf c from the base station. In Chapter 5, we combine LTE-unlicensed with D2D communications. We utilise LTE-unlicensed to enable the operation of D2D in unlicensed bands. We show that not only can this improve the throughput of D2D communications, but also allow D2D to work in the cell central area, which normally regarded as a “forbidden area” for D2D in existing works. We achieve these results mainly through numerical optimisation and simulations. We utilise a wide range of numerical optimisation theories in our works. Instead of utilising the general numerical optimisation algorithms to solve the optimisation problems, we modify them to be suitable for the speci c problems, thereby reducing the computational complexity. Finally, we evaluate our proposed algorithms and systems through sophisticated numer- ical simulations. We have developed a complete system-level simulation framework for D2D communications and we open-source it in Github: https://github.com/mathwuyue/py- wireless-sys-sim

    Secrecy-Optimized Resource Allocation for Device-to-Device Communication Undelaying Cellular Networks

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    L’objectif principal de l’introduction de la communication de pĂ©riphĂ©rique-Ă -pĂ©riphĂ©rique «device-to-device» (D2D) sous-jacente aux systĂšmes de communication sans fil de cinquiĂšme gĂ©nĂ©ration (5G), est d’augmenter l’efficacitĂ© spectrale (ES). Cependant, la communication D2D sous-jacente aux rĂ©seaux cellulaires peut entraĂźner une dĂ©gradation des performances causĂ©e par des co-interfĂ©rences de canal sĂ©vĂšres entre les liaisons cellulaires et D2D. De plus, en raison de la complexitĂ© du contrĂŽle et de la gestion, les connexions directes entre les appareils Ă  proximitĂ© sont vulnĂ©rables. En consĂ©quence, la communication D2D n’est pas robuste contre les menaces de sĂ©curitĂ© et l’écoute clandestine. Pourtant, les co-interfĂ©rences de canal peuvent ĂȘtre adoptĂ©es pour aider les utilisateurs cellulaires (UC) et les paires D2D afin d’empĂȘcher l’écoute clandestine. Dans cette thĂšse, nous Ă©tudions diffĂ©rents scĂ©narios de problĂšmes d’allocation de ressources en utilisant le concept de sĂ©curitĂ© de couche physique «physical layer security» (PLS) pour la communication D2D sous-jacente aux rĂ©seaux cellulaires, tout en satisfaisant les exigences minimales de qualitĂ© de service (QoS) des liaisons cellulaires et D2D. Dans le cas oĂč PLS est pris en compte, l’interfĂ©rence peut aider Ă  rĂ©duire l’écoute clandestine. PremiĂšrement, nous formulons un scĂ©nario d’allocation de ressources dans lequel chaque bloc de ressources (RB) temps-frĂ©quence de multiplexage par rĂ©partition orthogonale en frĂ©quence (OFDM) peut ĂȘtre partagĂ© par une seule CU et une paire D2D dans un rĂ©seau unicellulaire. Le problĂšme formulĂ© est rĂ©duit au problĂšme de correspondance tridimensionnelle, qui est gĂ©nĂ©ralement NP-difficile, et la solution optimale peut ĂȘtre obtenue par des mĂ©thodes compliquĂ©es, telles que la recherche par force brute et/ou l’algorithme de branchement et de liaison qui ont une complexitĂ© de calcul exponentielle. Nous proposons donc une mĂ©ta-heuristique basĂ©e sur l’algorithme de recherche tabou «Tabu Search» (TS) avec une complexitĂ© de calcul rĂ©duite pour trouver globalement la solution d’allocation de ressources radio quasi-optimale.----------ABSTRACT: The primary goal of introducing device-to-device (D2D) communication underlying fifthgeneration (5G) wireless communication systems is to increase spectral efficiency (ES). However, D2D communication underlying cellular networks can lead to performance degradation caused by severe co-channel interference between cellular and D2D links. In addition, due to the complexity of control and management, direct connections between nearby devices are vulnerable. Thus, D2D communication is not robust against security threats and eavesdropping. On the other hand, the co-channel interference can be adopted to help cellular users (CUs) and D2D pairs to prevent eavesdropping. In this thesis, we investigate different resource allocation problem scenarios using the physical layer security (PLS) concept for the D2D communication underlying cellular networks, while satisfying the minimum quality of service (QoS) requirements of cellular and D2D link. If the PLS is taken into account, the interference can help reduce eavesdropping. First, we formulate a resource allocation scenario in which each orthogonal frequency-division multiplexing (OFDM) time-frequency resource block (RB) can be shared by one single CU and one D2D pair in a single-cell network. The formulated problem is reduced to the threedimensional matching problem, which is generally NP-hard, and the optimal solution can be obtained through the complicated methods, such as brute-force search and/or branch-andbound algorithm that have exponential computational complexity. We, therefore, propose a meta-heuristic based on Tabu Search (TS) algorithm with a reduced computational complexity to globally find the near-optimal radio resource allocation solution
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