451 research outputs found

    Distributed Self-Concatenated Coding for Cooperative Communication

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    In this paper, we propose a power-efficient distributed binary self-concatenated coding scheme using iterative decoding (DSECCC-ID) for cooperative communications. The DSECCC-ID scheme is designed with the aid of binary extrinsic information transfer (EXIT) charts. The source node transmits self-concatenated convolutional coded (SECCC) symbols to both the relay and destination nodes during the first transmission period. The relay performs SECCC-ID decoding, where it mayor may not encounter decoding errors. It then reencodes the information bits using a recursive systematic convolutional (RSC) code during the second transmission period. The resultant symbols transmitted from the source and relay nodes can be viewed as the coded symbols of a three-component parallel concatenated encoder. At the destination node, three-component DSECCC-ID decoding is performed. The EXIT chart gives us an insight into operation of the distributed coding scheme, which enables us to significantly reduce the transmit power by about 3.3 dB in signal-to-noise ratio (SNR) terms, as compared with a noncooperative SECCC-ID scheme at a bit error rate (BER) of 10-5. Finally, the proposed system is capable of performing within about 1.5 dB from the two-hop relay-aided network’s capacity at a BER of 10-5 , even if there may be decoding errors at the relay

    Radio resource management and metric estimation for multicarrier CDMA systems

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    Narrowband Interference Suppression in Wireless OFDM Systems

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    Signal distortions in communication systems occur between the transmitter and the receiver; these distortions normally cause bit errors at the receiver. In addition interference by other signals may add to the deterioration in performance of the communication link. In order to achieve reliable communication, the effects of the communication channel distortion and interfering signals must be reduced using different techniques. The aim of this paper is to introduce the fundamentals of Orthogonal Frequency Division Multiplexing (OFDM) and Orthogonal Frequency Division Multiple Access (OFDMA), to review and examine the effects of interference in a digital data communication link and to explore methods for mitigating or compensating for these effects

    Adaptive Communications for Next Generation Broadband Wireless Access Systems

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    Un dels aspectes claus en el disseny i gestiĂł de les xarxes sense fils d'accĂ©s de banda ampla Ă©s l'Ășs eficient dels recursos radio. Des del punt de vista de l'operador, l'ample de banda Ă©s un bĂ© escĂ s i preuat que sÂŽha d'explotar i gestionar de la forma mĂ©s eficient possible tot garantint la qualitat del servei que es vol proporcionar. Per altra banda, des del punt de vista del usuari, la qualitat del servei ofert ha de ser comparable al de les xarxes fixes, requerint aixĂ­ un baix retard i una baixa pĂšrdua de paquets per cadascun dels fluxos de dades entre la xarxa i l'usuari. Durant els darrers anys sÂŽhan desenvolupat nombroses tĂšcniques i algoritmes amb l'objectiu d'incrementar l'eficiĂšncia espectral. Entre aquestes tĂšcniques destaca l'Ășs de mĂșltiples antenes al transmissor i al receptor amb l'objectiu de transmetre diferents fluxos de dades simultaneament sense necessitat d'augmentar l'ample de banda. Per altra banda, la optimizaciĂł conjunta de la capa d'accĂ©s al medi i la capa fĂ­sica (fent Ășs de l'estat del canal per tal de gestionar de manera optima els recursos) tambĂ© permet incrementar sensiblement l'eficiĂšncia espectral del sistema.L'objectiu d'aquesta tesi Ă©s l'estudi i desenvolupament de noves tĂšcniques d'adaptaciĂł de l'enllaç i gestiĂł dels recursos rĂ dio aplicades sobre sistemes d'accĂ©s rĂ dio de propera generaciĂł (Beyond 3G). Els estudis realitzats parteixen de la premissa que el transmisor coneix (parcialment) l'estat del canal i que la transmissiĂł es realitza fent servir un esquema multiportadora amb mĂșltiples antenes al transmisor i al receptor. En aquesta tesi es presenten dues lĂ­nies d'investigaciĂł, la primera per casos d'una sola antenna a cada banda de l'enllaç, i la segona en cas de mĂșltiples antenes. En el cas d'una sola antena al transmissor i al receptor, un nou esquema d'assignaciĂł de recursos rĂ dio i prioritzaciĂł dels paquets (scheduling) Ă©s proposat i analitzat integrant totes dues funcions sobre una mateixa entitat (cross-layer). L'esquema proposat tĂ© com a principal caracterĂ­stica la seva baixa complexitat i que permet operar amb transmissions multimedia. Alhora, posteriors millores realitzades per l'autor sobre l'esquema proposat han permĂšs tambĂ© reduir els requeriments de senyalitzaciĂł i combinar de forma Ăłptima usuaris d'alta i baixa mobilitat sobre el mateix accĂ©s rĂ dio, millorant encara mĂ©s l'eficiĂšncia espectral del sistema. En cas d'enllaços amb mĂșltiples antenes es proposa un nou esquema que combina la selecciĂł del conjunt optim d'antenes transmissores amb la selecciĂł de la codificaciĂł espai- (frequĂšncia-) temps. Finalment es donen una sĂšrie de recomanacions per tal de combinar totes dues lĂ­nies d'investigaciĂł, aixĂ­ con un estat de l'art de les tĂšcniques proposades per altres autors que combinen en part la gestiĂł dels recursos rĂ dio i els esquemes de transmissiĂł amb mĂșltiples antenes.Uno de los aspectos claves en el diseño y gestiĂłn de las redes inalĂĄmbricas de banda ancha es el uso eficiente de los recursos radio. Desde el punto de vista del operador, el ancho de banda es un bien escaso y valioso que se debe explotar y gestionar de la forma mĂĄs eficiente posible sin afectar a la calidad del servicio ofrecido. Por otro lado, desde el punto de vista del usuario, la calidad del servicio ha de ser comparable al ofrecido por las redes fijas, requiriendo asĂ­ un bajo retardo y una baja tasa de perdida de paquetes para cada uno de los flujos de datos entre la red y el usuario. Durante los Ășltimos años el nĂșmero de tĂ©cnicas y algoritmos que tratan de incrementar la eficiencia espectral en dichas redes es bastante amplio. Entre estas tĂ©cnicas destaca el uso de mĂșltiples antenas en el transmisor y en el receptor con el objetivo de poder transmitir simultĂĄneamente diferentes flujos de datos sin necesidad de incrementar el ancho de banda. Por otro lado, la optimizaciĂłn conjunta de la capa de acceso al medio y la capa fĂ­sica (utilizando informaciĂłn de estado del canal para gestionar de manera Ăłptima los recursos) tambiĂ©n permite incrementar sensiblemente la eficiencia espectral del sistema.El objetivo de esta tesis es el estudio y desarrollo de nuevas tĂ©cnicas de adaptaciĂłn del enlace y la gestiĂłn de los recursos radio, y su posterior aplicaciĂłn sobre los sistemas de acceso radio de prĂłxima generaciĂłn (Beyond 3G). Los estudios realizados parten de la premisa de que el transmisor conoce (parcialmente) el estado del canal a la vez que se considera que la transmisiĂłn se realiza sobre un sistema de transmisiĂłn multiportadora con mĂșltiple antenas en el transmisor y el receptor. La tesis se centra sobre dos lĂ­neas de investigaciĂłn, la primera para casos de una Ășnica antena en cada lado del enlace, y la segunda en caso de mĂșltiples antenas en cada lado. Para el caso de una Ășnica antena en el transmisor y en el receptor, se ha desarrollado un nuevo esquema de asignaciĂłn de los recursos radio asĂ­ como de priorizaciĂłn de los paquetes de datos (scheduling) integrando ambas funciones sobre una misma entidad (cross-layer). El esquema propuesto tiene como principal caracterĂ­stica su bajo coste computacional a la vez que se puede aplicar en caso de transmisiones multimedia. Posteriores mejoras realizadas por el autor sobre el esquema propuesto han permitido tambiĂ©n reducir los requisitos de señalizaciĂłn asĂ­ como combinar de forma Ăłptima usuarios de alta y baja movilidad. Por otro lado, en caso de enlaces con mĂșltiples antenas en transmisiĂłn y recepciĂłn, se presenta un nuevo esquema de adaptaciĂłn en el cual se combina la selecciĂłn de la(s) antena(s) transmisora(s) con la selecciĂłn del esquema de codificaciĂłn espacio-(frecuencia-) tiempo. Para finalizar, se dan una serie de recomendaciones con el objetivo de combinar ambas lĂ­neas de investigaciĂłn, asĂ­ como un estado del arte de las tĂ©cnicas propuestas por otros autores que combinan en parte la gestiĂłn de los recursos radio y los esquemas de transmisiĂłn con mĂșltiples antenas.In Broadband Wireless Access systems the efficient use of the resources is crucial from many points of views. From the operator point of view, the bandwidth is a scarce, valuable, and expensive resource which must be exploited in an efficient manner while the Quality of Service (QoS) provided to the users is guaranteed. On the other hand, a tight delay and link quality constraints are imposed on each data flow hence the user experiences the same quality as in fixed networks. During the last few years many techniques have been developed in order to increase the spectral efficiency and the throughput. Among them, the use of multiple antennas at the transmitter and the receiver (exploiting spatial multiplexing) with the joint optimization of the medium access control layer and the physical layer parameters.In this Ph.D. thesis, different adaptive techniques for B3G multicarrier wireless systems are developed and proposed focusing on the SS-MC-MA and the OFDM(A) (IEEE 802.16a/e/m standards) communication schemes. The research lines emphasize into the adaptation of the transmission having (Partial) knowledge of the Channel State Information for both; single antenna and multiple antenna links. For single antenna links, the implementation of a joint resource allocation and scheduling strategy by including adaptive modulation and coding is investigated. A low complexity resource allocation and scheduling algorithm is proposed with the objective to cope with real- and/or non-real- time requirements and constraints. A special attention is also devoted in reducing the required signalling. However, for multiple antenna links, the performance of a proposed adaptive transmit antenna selection scheme jointly with space-time block coding selection is investigated and compared with conventional structures. In this research line, mainly two optimizations criteria are proposed for spatial link adaptation, one based on the minimum error rate for fixed throughput, and the second focused on the maximisation of the rate for fixed error rate. Finally, some indications are given on how to include the spatial adaptation into the investigated and proposed resource allocation and scheduling process developed for single antenna transmission

    A General Framework for Analyzing, Characterizing, and Implementing Spectrally Modulated, Spectrally Encoded Signals

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    Fourth generation (4G) communications will support many capabilities while providing universal, high speed access. One potential enabler for these capabilities is software defined radio (SDR). When controlled by cognitive radio (CR) principles, the required waveform diversity is achieved via a synergistic union called CR-based SDR. Research is rapidly progressing in SDR hardware and software venues, but current CR-based SDR research lacks the theoretical foundation and analytic framework to permit efficient implementation. This limitation is addressed here by introducing a general framework for analyzing, characterizing, and implementing spectrally modulated, spectrally encoded (SMSE) signals within CR-based SDR architectures. Given orthogonal frequency division multiplexing (OFDM) is a 4G candidate signal, OFDM-based signals are collectively classified as SMSE since modulation and encoding are spectrally applied. The proposed framework provides analytic commonality and unification of SMSE signals. Applicability is first shown for candidate 4G signals, and resultant analytic expressions agree with published results. Implementability is then demonstrated in multiple coexistence scenarios via modeling and simulation to reinforce practical utility

    Noise (AWGN) Avoidance in CDMA Systems Using the Mechanism of Spread Spectrum

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    In today communication systems the most probable problems are that of channel capacity, jamming and interference or noise. The channel capacity can be maximized by multiplexing the channel. While the jamming problem and for noise reduction the most important technique that we can apply is spread spectrum. That by spreading the spectrum of the original message signal, the impact of noise upon the message signal can be reduced. For that purpose, two different techniques that is DSSS(Direct Sequence Spread Spectrum) and FHSS (Frequency Hoping Spread Spectrum) can be applied. Since the two approaches are core ideas upon which CDMA system is based, so in this paper we have analyzed both the techniques to observe that h up to what extent they are efficacious in removing AWGN in CDMA systems communication. IndexTerms:DSSS, FHSS, Code Division Multiple Access (CDMA), Additive White Gaussian Noise (AWGN), spread spectrum

    Initial synchronisation of wideband and UWB direct sequence systems: single- and multiple-antenna aided solutions

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    This survey guides the reader through the open literature on the principle of initial synchronisation in single-antenna-assisted single- and multi-carrier Code Division Multiple Access (CDMA) as well as Direct Sequence-Ultra WideBand (DS-UWB) systems, with special emphasis on the DownLink (DL). There is a paucity of up-to-date surveys and review articles on initial synchronization solutions for MIMO-aided and cooperative systems - even though there is a plethora of papers on both MIMOs and on cooperative systems, which assume perfect synchronization. Hence this paper aims to ?ll the related gap in the literature

    GAME THEORETIC APPROACH TO RADIO RESOURCE MANAGEMENT ON THE REVERSE LINK FOR MULTI-RATE CDMA WIRELESS DATA NETWORKS

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    This work deals with efficient power and rate assignment to mobile stations (MSs) involved in bursty data transmission in cellular CDMA networks. Power control in the current CDMA standards is based on a fixed target signal quality called signal to interference ratio (SIR). The target SIR represents a predefined frame error rate (FER). This approach is inefficient for data-MSs because a fixed target SIR can limit the MS's throughput. Power control should thus provide dynamic target SIRs instead of a fixed target SIR. In the research literature, the power control problem has been modeled using game theory. A limitation of the current literature is that in order to implement the algorithms, each MS needs to know information such as path gains and transmission rates of all other MSs. Fast rate control schemes in the evolving cellular data systems such as cdma2000-1x-EV assign transmission rates to MSs using a probabilistic approach. The limitation here is that the radio resources can be either under or over-utilized. Further, all MSs are not assigned the same rates. In the schemes proposed in the literature, only few MSs, which have the best channel conditions, obtain all radio resources. In this dissertation, we address the power control issue by moving the computation of the Nash equilibrium from each MS to the base station (BS). We also propose equal radio resource allocation for all MSs under the constraint that only the maximum allowable radio resources are used in a cell. This dissertation addresses the problem of how to efficiently assign power and rate to MSs based on dynamic target SIRs for bursty transmissions. The proposed schemes in this work maximize the throughput of each data-MS while still providing equal allocation of radio resources to all MSs and achieving full radio resource utilization in each cell. The proposed schemes result in power and rate control algorithms that however require some assistance from the BS. The performance evaluation and comparisons with cdma2000-1x-Evolution Data Only (1x-EV-DO) show that the proposed schemes can provide better effective rates (rates after error) than the existing schemes

    Multi-carrier transmission techniques toward flexible and efficient wireless communication systems

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