7 research outputs found

    Chaos-Based Communication Systems

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    The attractive properties of chaos signal that is generated from dynamic systems motivate the researchers to explore the advantage of using this signal type as a carrier in different communication systems. In this chapter, different types of digital chaos–based communication system are discussed; in particular, digital communications where reference signal and its modulated version are transmitted together. This type is called differential coherent systems. Brief surveys on the recently developed systems are presented

    Performance of a SIMO-CDSK System over Rayleigh Fading Channels

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    This paper proposes a single-input multiple-output (SIMO) architecture for correlation delay shift keying (CDSK) modulation technique, and the bit error rate (BER) formula is derived under the assumption of the proposed system over Rayleigh fading channels. The new system employs multiple antennas at the receiver end to form a SIMO structure so as to obtain a diversity gain. Theoretical analysis and simulations show that, at a higher signal-to-noise ratio (SNR), the proposed SIMO-CDSK architecture has an outstanding bit error rate (BER) performance in contrast to the conventional single-input single-output (SISO) CDSK and GCDSK communication system; for the given SNR, the diversity gain of the proposed system will be improved with the number of receiver antennas increasing; for different SNRs, the best performance of the proposed system can be obtained by selecting the reasonable spreading factor; because the performance of SIMO-CDSK system is independent of the time delay, the proposed system has better security than GCDSK system

    Generalized correlation-delay-shift-keying scheme for noncoherent chaos-based communication systems

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    Chaos-based underwater communication with arbitrary transducers and bandwidth

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    Acknowledgments: This research is supported in part by National Natural Science Foundation of China (61172070), Innovative Research Team of Shaanxi Province (2013KCT-04), The Key Basic Research Fund of Shaanxi Province (2016ZDJC-01), EPSRC (EP/I032606/1), Chao Bai was supported by Excellent Ph.D. research fund (310-252071603) at XAUT.Peer reviewedPublisher PD

    Contributions Ă  l’amĂ©lioration des systĂšmes de communication multi-utilisateurs par\ud chaos : synchronisation et analyse des performances

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    Les radiocommunications constituent actuellement un domaine en plein essor. Depuis quelques annĂ©es, de nombreux chercheurs Ă©tudient la possibilitĂ© d'utiliser des signaux chaotiques pour transmettre des donnĂ©es, en particulier dans un contexte multi-utilisateurs. Parmi les diffĂ©rentes techniques d'accĂšs multiple, le CDMA (Code Division Multiple Access) permet Ă  diffĂ©rents utilisateurs de transmettre simultanĂ©ment sur la mĂȘme bande de frĂ©quence. Les sĂ©quences utilisĂ©es actuellement pour l'Ă©talement du spectre sont des sĂ©quences dites pseudo-alĂ©atoires binaires Ă  faible intercorrĂ©lation gĂ©nĂ©rĂ©es sur la base d'un registre Ă  dĂ©calage (les sĂ©quences de Gold) ou bien des sĂ©quences binaires orthogonales (les sĂ©quences de Walsh).\ud \ud \ud \ud Cette thĂšse porte sur l’étude d’un systĂšme de communication multi-utilisateurs par Ă©talement de spectre utilisant des gĂ©nĂ©rateurs de chaos. Les signaux chaotiques peuvent ĂȘtre gĂ©nĂ©rĂ©s par des systĂšmes itĂ©ratifs discrets modĂ©lisĂ©s par des transformations ponctuelles. \ud \ud \ud Dans un premier temps, nous avons Ă©tudiĂ© les signaux chaotiques issus de diffĂ©rents systĂšmes dynamiques, /a priori/ dĂ©finis par des fonctions classiques continues ou continues par morceaux. En se basant sur les propriĂ©tĂ©s de corrĂ©lation et sur les distributions des Ă©nergies des signaux chaotiques, une Ă©tude comparative entre les diffĂ©rentes sĂ©quences chaotiques a Ă©tĂ© faite dans le cadre d’une transmission DS-CDMA par sĂ©quence chaotique. Le but de cette comparaison est de fournir des Ă©lĂ©ments permettant de choisir la sĂ©quence la mieux adaptĂ©e Ă  l’étalement du spectre. Une mĂ©thode simple rapide et prĂ©cise pour prĂ©dire le taux d’erreurs binaires pour des systĂšmes DS-CDMA basĂ© sur le chaos a Ă©tĂ© proposĂ©e en mode mono et multi-utilisateur. Une Ă©tude plus poussĂ©e sur la distribution de l’énergie a permis d’établir une expression analytique du taux d’erreurs binaires. Ces calculs de performances ont Ă©tĂ© Ă©tendus Ă  un canal de transmission Ă  multi-trajets en mode multi-utilisateurs.\ud \ud Nous avons explorĂ© ensuite le processus de synchronisation des systĂšmes dynamiques chaotiques. Tout d’abord, nous avons portĂ© notre attention sur l’étude des diffĂ©rentes mĂ©thodes d’intĂ©gration numĂ©rique afin de dĂ©terminer une mĂ©thode adaptĂ©e permettant de rĂ©aliser la synchronisation chaotique par couplage avec une faible charge de calcul.\ud \ud Enfin, toujours dans l’idĂ©e d’établir la synchronisation du chaos pour les systĂšmes de transmission de type DS-CDMA. Nous avons proposĂ© des rĂ©cepteurs intĂ©grant des unitĂ©s de synchronisation similaires aux unitĂ©s de synchronisations (/acquisition et poursuite/) utilisĂ©es dans les systĂšmes classiques Ă  Ă©talement du spectre. Ces unitĂ©s de synchronisations utilisent simultanĂ©ment une sĂ©quence binaire pseudo-alĂ©atoire classique et une sĂ©quence chaotique pour Ă©tablir et maintenir la synchronisation. Ces techniques ont Ă©tĂ© comparĂ©es Ă  une mĂ©thode similaire de la littĂ©rature, ce qui a permis de montrer l’amĂ©lioration de la performance des systĂšmes proposĂ©s, et notamment le fait qu’ils soient opĂ©rationnels en mode asynchrone.-------------------------------------------------------------------------------Radiocommunications field is currently in full development. In recent years, many researchers have explored the possibility of using chaotic signals to transmit data, especially in a multi-user case. Among the various multiple access techniques, the CDMA (Code Division Multiple Access) allows different users to transmit simultaneously on the same frequency band. The sequences currently used for classical spread spectrum are the sequences known as pseudo-random binary sequences with low cross-correlation generated on the basis of a shift linear register (Gold sequences) or binary orthogonal sequences (Walsh codes).\ud \ud This thesis has focused on the study of a communication system with multi-user spread spectrum using chaotic generators as spreading sequences. The chaotic signals can be generated by iterative discrete systems modelled by discrete transformations.\ud \ud \ud In a first step, we have studied various chaotic signals from different dynamical systems, / a priori / defined by traditional functions continuous or piece wise linear functions. Relying on the correlation properties and the energy distribution of chaotic signals, a comparative study between different chaotic sequences was made in the framework of chaos-based DS-CDMA systems. The purpose of this comparison is to provide necessary elements to choose the best sequence for a spread spectrum system under an Additive White Gaussian Noise (AWGN) channel. A simple method to rapidly and accurately predict the bit error rate for chaos-based DS-CDMA was proposed in single and multi-user cases. Further study on the energy distribution has resulted in an analytical expression of the bit error rate. These performances have been also been studied and extended to the multi-user case.\ud \ud In a second part, we have explored the synchronization process of chaotic dynamical systems. After reviewing the existing approaches in the literature, we have focused our attention on the study of different methods of digital integration in order to determine an appropriate method to achieve synchronization using coupling with a low a low computing charge.\ud \ud \ud Finally, we have studied the synchronization process for chaos-based DS-CDMA system. We have proposed receivers incorporating synchronization units similar to the synchronization units (/ acquisition and tracking /) used in conventional spread spectrum systems. These synchronization units are using simultaneously a classical binary pseudo-random sequence together with a chaotic sequence in order to achieve and maintain synchronization. These techniques were compared to a similar existing method recently proposed in literature. We have demonstrate the improvement in performance brought by our proposed system, including the fact that this system is also operational in the asynchronous case.\ud \u

    Joint signal detection and channel estimation in rank-deficient MIMO systems

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    L'Ă©volution de la prospĂšre famille des standards 802.11 a encouragĂ© le dĂ©veloppement des technologies appliquĂ©es aux rĂ©seaux locaux sans fil (WLANs). Pour faire face Ă  la toujours croissante nĂ©cessitĂ© de rendre possible les communications Ă  trĂšs haut dĂ©bit, les systĂšmes Ă  antennes multiples (MIMO) sont une solution viable. Ils ont l'avantage d'accroĂźtre le dĂ©bit de transmission sans avoir recours Ă  plus de puissance ou de largeur de bande. Cependant, l'industrie hĂ©site encore Ă  augmenter le nombre d'antennes des portables et des accĂ©soires sans fil. De plus, Ă  l'intĂ©rieur des bĂątiments, la dĂ©ficience de rang de la matrice de canal peut se produire dĂ» Ă  la nature de la dispersion des parcours de propagation, ce phĂ©nomĂšne est aussi occasionnĂ© Ă  l'extĂ©rieur par de longues distances de transmission. Ce projet est motivĂ© par les raisons dĂ©crites antĂ©rieurement, il se veut un Ă©tude sur la viabilitĂ© des transcepteurs sans fil Ă  large bande capables de rĂ©gulariser la dĂ©ficience de rang du canal sans fil. On vise le dĂ©veloppement des techniques capables de sĂ©parer M signaux co-canal, mĂȘme avec une seule antenne et Ă  faire une estimation prĂ©cise du canal. Les solutions dĂ©crites dans ce document cherchent Ă  surmonter les difficultĂ©s posĂ©es par le medium aux transcepteurs sans fil Ă  large bande. Le rĂ©sultat de cette Ă©tude est un algorithme transcepteur appropriĂ© aux systĂšmes MIMO Ă  rang dĂ©ficient

    Performance evaluation of chaotic CDSK modulation system with different chaotic maps

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