237 research outputs found

    Efficient Transmission Techniques in Cooperative Networks: Forwarding Strategies and Distributed Coding Schemes

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    This dissertation focuses on transmission and estimation schemes in wireless relay network, which involves a set of source nodes, a set of destination nodes, and a set of nodes helps communication between source nodes and destination nodes, called relay nodes. It is noted that the overall performance of the wireless relay systems would be impacted by the relay methods adopted by relay nodes. In this dissertation, efficient forwarding strategies and channel coding involved relaying schemes in various relay network topology are studied.First we study a simple structure of relay systems, with one source, one destination and one relay node. By exploiting “analog codes” -- a special class of error correction codes that can directly encode and protect real-valued data, a soft forwarding strategy –“analog-encode-forward (AEF)”scheme is proposed. The relay node first soft-decodes the packet from the source, then re-encodes this soft decoder output (Log Likelihood Ratio) using an appropriate analog code, and forwards it to the destination. At the receiver, both a maximum-likelihood (ML) decoder and a maximum a posterior (MAP) decoder are specially designed for the AEF scheme.The work is then extended to parallel relay networks, which is consisted of one source, one destination and multiple relay nodes. The first question confronted with us is which kind of soft information to be relayed at the relay nodes. We analyze a set of prevailing soft information for relaying considered by researchers in this field. A truncated LLR is proved to be the best choice, we thus derive another soft forwarding strategy – “Z” forwarding strategy. The main parameter effecting the overall performance in this scheme is the threshold selected to cut the LLR information. We analyze the threshold selection at the relay nodes, and derive the exact ML estimation at the destination node. To circumvent the catastrophic error propagation in digital distributed coding scheme, a distributed soft coding scheme is proposed for the parallel relay networks. The key idea is the exploitation of a rate-1 soft convolutional encoder at each of the parallel relays, to collaboratively form a simple but powerful distributed analog coding scheme. Because of the linearity of the truncated LLR information, a nearly optimal ML decoder is derived for the distributed coding scheme. In the last part, a cooperative transmission scheme for a multi-source single-destination system through superposition modulation is investigated. The source nodes take turns to transmit, and each time, a source “overlays” its new data together with (some or all of) what it overhears from its partner(s), in a way similar to French-braiding the hair. We introduce two subclasses of braid coding, the nonregenerative and the regenerative cases, and, using the pairwise error probability (PEP) as a figure of merit, derive the optimal weight parameters for each one. By exploiting the structure relevance of braid codes with trellis codes, we propose a Viterbi maximum-likelihood (ML) decoding method of linear-complexity for the regenerative case. We also present a soft-iterative joint channel-network decoding. The overall decoding process is divided into the forward message passing and the backward message passing, which makes effective use of the available reliability information from all the received signals. We show that the proposed “braid coding” cooperative scheme benefits not only from the cooperative diversity but also from the bit error rate (BER) performance gain

    Performance enhancement solutions in wireless communication networks

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    In this dissertation thesis, we study the new relaying protocols for different wireless network systems. We analyze and evaluate an efficiency of the transmission in terms of the outage probability over Rayleigh fading channels by mathematical analyses. The theoretical analyses are verified by performing Monte Carlo simulations. First, we study the cooperative relaying in the Two-Way Decode-and-Forward (DF) and multi-relay DF scheme for a secondary system to obtain spectrum access along with a primary system. In particular, we proposed the Two-Way DF scheme with Energy Harvesting, and the Two-Way DF Non-orthogonal Multiple Access (NOMA) scheme with digital network coding. Besides, we also investigate the wireless systems with multi-relay; the best relay selection is presented to optimize the effect of the proposed scheme. The transmission protocols of the proposed schemes EHAF (Energy Harvesting Amplify and Forward) and EHDF (Energy Harvesting Decode and Forward) are compared together in the same environment and in term of outage probability. Hence, with the obtained results, we conclude that the proposed schemes improve the performance of the wireless cooperative relaying systems, particularly their throughput. Second, we focus on investigating the NOMA technology and proposing the optimal solutions (protocols) to advance the data rate and to ensure the Quality of Service (QoS) for the users in the next generation of wireless communications. In this thesis, we propose a Two-Way DF NOMA scheme (called a TWNOMA protocol) in which an intermediate relay helps two source nodes to communicate with each other. Simulation and analysis results show that the proposed protocol TWNOMA is improving the data rate when comparing with a conventional Two-Way scheme using digital network coding (DNC) (called a TWDNC protocol), Two-Way scheme without using DNC (called a TWNDNC protocol) and Two-Way scheme in amplify-and-forward(AF) relay systems (called a TWANC protocol). Finally, we considered the combination of the NOMA and physical layer security (PLS) in the Underlay Cooperative Cognitive Network (UCCN). The best relay selection strategy is investigated, which uses the NOMA and considers the PLS to enhance the transmission efficiency and secrecy of the new generation wireless networks.V této dizertační práci je provedena studie nových přenosových protokolů pro různé bezdrátové síťové systémy. S využitím matematické analýzy jsme analyzovali a vyhodnotili efektivitu přenosu z hlediska pravděpodobnosti výpadku přes Rayleighův kanál. Teoretické analýzy jsou ověřeny provedenými simulacemi metodou Monte Carlo. Nejprve došlo ke studii kooperativního přenosu ve dvoucestném dekóduj-a-předej (Two-Way Decode-and-Forward–TWDF) a vícecestném DF schématu s větším počtem přenosových uzlů pro sekundární systém, kdy takto byl získán přístup ke spektru spolu s primárním systémem. Konkrétně jsme navrhli dvoucestné DF schéma se získáváním energie a dvoucestné DF neortogonální schéma s mnohonásobným přístupem (Non-orthogonal Multiple Access–NOMA) s digitálním síťovým kódováním. Kromě toho rovněž zkoumáme bezdrátové systémy s větším počtem přenosových uzlů, kde je přítomen výběr nejlepšího přenosového uzlu pro optimalizaci efektivnosti navrženého schématu. Přenosové protokoly navržených schémat EHAF (Energy Harvesting Amplify and Forward) a EHDF(Energy Harvesting Decode and Forward) jsou společně porovnány v identickém prostředí z pohledu pravděpodobnosti výpadku. Následně, na základě získaných výsledků, jsme dospěli k závěru, že navržená schémata vylepšují výkonnost bezdrátových kooperativních systémů, konkrétně jejich propustnost. Dále jsme se zaměřili na zkoumání NOMA technologie a navrhli optimální řešení (protokoly) pro urychlení datového přenosu a zajištění QoS v další generaci bezdrátových komunikací. V této práci jsme navrhli dvoucestné DF NOMA schéma (nazýváno jako TWNOMA protokol), ve kterém mezilehlý přenosový uzel napomáhá dvěma zdrojovým uzlům komunikovat mezi sebou. Výsledky simulace a analýzy ukazují, že navržený protokol TWNOMA vylepšuje dosaženou přenosovou rychlost v porovnání s konvenčním dvoucestným schématem používajícím DNC (TWDNC protokol), dvoucestným schématem bez použití DNC (TWNDNC protokol) a dvoucestným schématem v zesil-a-předej (amplify-and-forward) přenosových systémech (TWANC protokol). Nakonec jsme zvážili využití kombinace NOMA a zabezpečení fyzické vrstvy (Physical Layer Security–PLS) v podpůrné kooperativní kognitivní síti (Underlay Cooperative Cognitive Network–UCCN). Zde je zde zkoumán výběr nejlepšího přenosového uzlu, který užívá NOMA a bere v úvahu PLS pro efektivnější přenos a zabezpečení nové generace bezdrátových sítí.440 - Katedra telekomunikační technikyvyhově

    Spectral-energy efficiency trade-off of relay-aided cellular networks

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    Wireless communication networks are traditionally designed to operate at high spectral e ciency with less emphasis on power consumption as it is assumed that endless power supply is available through the power grid where the cells are connected to. As new generations of mobile networks exhibit decreasing gains in spectral e ciency, the mobile industry is forced to consider energy reform policies in order to sustain the economic growth of itself and other industries relying on it. Consequently, the energy e ciency of conventional direct transmission cellular networks is being examined while alternative green network architectures are also explored. The relay-aided cellular network is being considered as one of the potential network architecture for energy e cient transmission. However, relaying transmission incurs multiplexing loss due to its multi-hop protocol. This, in turn, reduces network spectral e ciency. Furthermore, interference is also expected to increase with the deployment of Relay Stations (RSs) in the network. This thesis examines the power consumption of the conventional direct transmission cellular network and contributes to the development of the relay-aided cellular network. Firstly, the power consumption of the direct transmission cellular network is investigated. While most work considered transmitter side strategies, the impact of the receiver on the Base Station (BS) total power consumption is investigated here. Both the zero-forcing and minimum mean square error weight optimisation approaches are considered for both the conventional linear and successive interference cancellation receivers. The power consumption model which includes both the radio frequency transmit power and circuit power is described. The in uence of the receiver interference cancellation techniques, the number of transceiver antennas, circuit power consumption and inter-cell interference on the BS total power consumption is investigated. Secondly, the spectral-energy e ciency trade-o in the relay-aided cellular network is investigated. The signal forwarding and interference forwarding relaying paradigms are considered with the direct transmission cellular network taken as the baseline. This investigation serves to understand the dynamics in the performance trade-o . To select a suitable balance point in the trade-o , the economic e ciency metric is proposed whereby the spectral-energy e ciency pair which maximises the economic pro tability is found. Thus, the economic e ciency metric can be utilised as an alternative means to optimise the relay-aided cellular network while taking into account the inherent spectral-energy e ciency trade-o . Finally, the method of mitigating interference in the relay-aided cellular network is demonstrated by means of the proposed relay cooperation scheme. In the proposed scheme, both joint RS decoding and independent RS decoding approaches are considered during the broadcast phase while joint relay transmission is employed in the relay phase. Two user selection schemes requiring global Channel State Information (CSI) are considered. The partial semi-orthogonal user selection method with reduced CSI requirement is then proposed. As the cooperative cost limits the practicality of cooperative schemes, the cost incurred at the cooperative links between the RSs is investigated for varying degrees of RS cooperation. The performance of the relay cooperation scheme with di erent relay frequency reuse patterns is considered as well. In a nutshell, the research presented in this thesis reveals the impact of the receiver on the BS total power consumption in direct transmission cellular networks. The relayaided cellular network is then presented as an alternative architecture for energy e cient transmission. The economic e ciency metric is proposed to maximise the economic pro tability of the relay network while taking into account the existing spectral-energy e ciency trade-o . To mitigate the interference from the RSs, the relay cooperation scheme for advanced relay-aided cellular networks is proposed

    Distributed Turbo Product Coding Techniques Over Cooperative Communication Systems

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    In this dissertation, we propose a coded cooperative communications framework based on Distributed Turbo Product Code (DTPC). The system uses linear block Extended Bose-Chaudhuri-Hochquenghem (EBCH) codes as component codes. The source broadcasts the EBCH coded frames to the destination and nearby relays. Each relay constructs a product code by arranging the corrected bit sequences in rows and re-encoding them vertically using EBCH as component codes to obtain an Incremental Redundancy (IR) for source\u27s data. Under this frame, we have investigated a number of interesting and important issues. First, to obtain, independent vertical parities from each relay in the same code space, we propose circular interleaving of the decoded EBCH rows before reencoding vertically. We propose and derive a novel soft information relay for the DTPC over cooperative network based on EBCH component codes. The relay generates Log-Likelihood Ratio (LLR) values for the decoded rows are used to construct a product code by re-encoding the matrix along the columns using a novel soft block encoding technique to obtain soft parity bits with different reliabilities that can be used as soft IR for source\u27s data which is forwarded to the destination. To minimize the overall decoding errors, we propose a power allocation method for the distributed encoded system when the channel attenuations for the direct and relay channels are known. We compare the performance of our proposed power allocation method with the fixed power assignments for DTPC system. We also develop a power optimization algorithm to check the validity of our proposed power allocation algorithm. Results for the power allocation and the power optimization prove on the potency of our proposed power allocation criterion and show the maximum possible attainable performance from the DTPC cooperative system. Finally, we propose new joint distributed Space-Time Block Code (STBC)-DTPC by generating the vertical parity on the relay and transmitting it to the destination using STBC on the source and relay. We tested our proposed system in a fast fading environment on the three channels connecting the three nodes in the cooperative network

    Design And Performance Analysis Of Enhanced Network Coded Cooperative Communication Systems

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    Tez (Yüksek Lisans) -- İstanbul Teknik Üniversitesi, Fen Bilimleri Enstitüsü, 2017Thesis (M.Sc.) -- İstanbul Technical University, Institute of Science and Technology, 2017Kablosuz haberleşme sistemi birbiriyle haberleşebilen birçok hareketli düğüm noktasından oluşmaktadır. Sönümleme ise kablosuz haberleşme sistemlerinin performansını olumsuz yönde etkileyen önemli faktörlerden biridir. Sönümlemenin mevcut olduğu ortamlarda güvenilir bir haberleşme için kanal kodlama ve çeşitleme teknikleri önerilmiş ve uygulanmıştır. Bunlardan biri, çeşitleme kazancı elde ederek olabildiğince hatasız veri iletimi gerçekleştirmek üzere her bir terminalde çoklu verici ve alıcı düğümleri kullanan çok girişli çok çıkışlı çeşitleme (MIMO) tekniğidir. Fakat işbirlikli çeşitleme tekniği bunu her bir terminalde birden çok verici anten kullanmadan gerçekleştirebilmektedir. Kablosuz yayın ortamı komşu röle düğümlerin işbirliği yapmasına imkan sağlayarak verinin kaynak düğümlerden hedef düğümlere aktarılması sırasındaki sönümleme etikisini azaltmaktadır. Bu sebeple, işbirlikli haberleşme sistemi veri iletimi sırasında röle düğümler ile oluşturulan birden çok haberleşme ağının kullanılmasını ve kendiliğinden oluşan uzaysal kanal çeşitlemesinden faydalanılmasını mümkün kılmaktadır. Doğrudan veri iletimi kullanan klasik tek atlamalı haberleşme sistemlerinde bir alıcı doğrudan gelen işaretin içerisindeki veriyi elde ederek yansıyan işaretleri girişim olarak algılarken, işbirlikli haberleşme sistemleri diğer işaretleri katkı olarak değerlendirmektedir. Böylelikle işbirlikli çeşitlemede veri iki ya da daha çok işaretin birlikte değerlendirilmesiyle elde etmektedir. Başka bir deyişle, işbirlikli çeşitleme kablosuz haberleşme ağlarında bulunan her bir düğümdeki antenin dağıtık olarak kullanıldığı bir anten çeşitleme tekniğidir. Hareketli düğümlerin (mobile nodes) güç, bant genişliği ve boyut gibi kısıtları sebebiyle diğer çeşitleme tekniklerinin kanal sönümlemesine karşı kullanılamadığı kablosuz tasarsız (ad hoc) algılayıcı ağları için işbirlikli çeşitleme özellikle faydalı olmaktadır. Bütün senaryolar için, hareketli kullanıcılar arasında işbirliği olan kablosuz sistemler bu işbirliğinin olmadığı diğer sistemlere göre daha yüksek bir sığa potansiyeline sahiptir. Fakat, işbirlikli haberleşme ile hata performansında elde edilen iyileşme çoğu durumda kablosuz ağdaki iletim hızından feragat ile mümkündür. Bu gibi durumlarda, ağ kodlama tekniği sayesinde röle düğümlere gönderilmiş olan veri paketlerinin akıllı bir şekilde birleştirilmesi ile işbirlikli kablosuz ağlardaki veri hızında ciddi bir iyileştirme sağlanabilmektedir. Ağ kodlama esasen kayıpsız haberleşme sistemlerinde yönlendirme ağlarının verimini artırmak için geliştirilmiştir. Fakat, ağ kodlama ile işbirlikli kablosuz ağların tümleştirilmesi (entegrasyonu) sönümlemenin bulunduğu ortamlarda kaynakların daha verimli bir şekilde kullanılması ve hata performansının iyileştirilmesi yönünde ciddi bir potansiyele sahiptir. Ağ kodlama, 5G standartlarının ötesindeki kablosuz ağlarda sürekli artan kullanıcı ve cihazların taleplerini karşılayabilecek kabiliyete sahiptir. Kablosuz sistemlerin yayın doğası işbirlikli haberleşme ve ağ kodlamanın beraber uygulanmasını ve bu iki tekniğin faydalarından yararlanmayı mümkün kılmaktadır. Bu bağlamda, son yıllarda mevcut literatürde çeşitli ağ kodlama teknikleri değerlendirilmekte fakat her yöntem röle düğümlerdeki veri paketleri işlevlerinin birleştirilmesi ve iletilmesini kapsamaktadır. Bu tezde, rastgele doğrusal ağ kodlama, karmaşık alan ağ kodlama ve XOR ağ kodlama tekniklerinin benzetimleri yapılmış ve çeşitli bakış açıları ile analiz edilmiştir. Tezin ilk bölümünde, Rayleigh ve Rician sönümleme kanalları için varış düğümlerindeki kod çözme hata olasılığı üzerinden rastgele doğrusal ağ kodlama sistemlerinin performansı incelenmektedir. Doğrusal ağ kodlama sistemlerinde, ara düğümlerdeki veri bitleri paket vektörler olarak alınmakta ve ara düğümler belirli bir boyutta ve eşit olasılıklı Galois kümesinden çıkarılan katsayılar ile alınan paketleri doğrusal olarak birleştirerek veriyi çözmektedir. Bu bölümdeki benzetim ortamı birden çok kaynak ile röle ve varış düğümlerinden oluşmakta; kaynak ve varış noktaları arasında ise doğrudan bağlantılar bulunmamaktadır. Belirtilen sistemdeki haberleşme kanalı kesintileri ve dolayısıyla paket kayıpları sönümleme etkisiyle oluşmaktadır. Belirtilen sistem modeli için ortaya çıkan benzetim sonuçları, paket çözümündeki kayıp olasılığının sadece sönümleme ortamı değil röle düğümlerde ağ kodlama için kullanılan katsayılar tarafından da belirlendiğini göstermektedir. Sönümleme kanallarındaki çözümleme kayıp olasılıkları röle düğümlerdeki paketlerin doğrusal olarak birleştirilmesi sırasında kullanılan rastgele katsayıları barındıran Galois kümesinin boyutu artırılarak düşürülebilmektedir. Tezin ikinci kısmında ise, karmaşık alan ağ kodlamasının bit hat oranı performansı frekans seçmeli Rayleigh sönümleme kanalları için dik frekans bölmeli çoğullama (OFDM) kullanılarak analiz edilmiştir. Daha önceki çalışmalarda, bu analiz düz sönümleme kanalları için yapılmıştır. Performans değerlendirmesinde kullanılan sistem modeli birden çok kaynak düğümü, tekli ya da çoklu röle düğümleri ve tek varış düğümü içermektedir. Hem kuvvetlendir ve aktar hem de çöz ve aktar tipi röleler için hata performansı elde edilmekte ve çoklu röle sistemleri için röle seçimi hem kuvventlendir ve aktar hem de çöz ve aktar seçenekleri için ele alınmaktadır. Katlamalı kanal kodları da opsiyonel olarak mevcut sisteme performansı artırmak için eklenebilmekte ve sert kararlı (hard decision) Viterbi Algoritması kaynak bitleri çözmek için kullanılmaktadır. Buna ek olarak, kaynak ve varış noktalarına farklı uzaklıklardaki röle düğümlerinde asimetrik bağlantı ortamları da değerlendirilmiştir. Daha önce bahsedilen senaryo kapsamında hedef ve/veya röle düğümlerde her bir bitin aynı zamanda elde edilmesi için OFDM ile birlikte çoklu kullanıcı belirleme kuralları uygulanmıştır. Benzetim sonuçları, rölelerdeki analog dalga formunun kaydedilmesini gerektirmesi dolayısıyla uygulama açısından pratik olmasa da her durumda kuvvetlendir ve aktar röle düğümlerinin, çöz ve aktar tipi röle düğümlerinden daha iyi performansa sahip olduğunu göstermektedir. Dahası, sistem modelinde hem kuvvetlendir ve aktar hem de çöz ve aktar tipi röleler ile röle seçimi yapıldığında hata performansında hatırı sayılır bir iyileştirme gözlenmektedir. Son olarak, asimetrik ağlarda, daha iyi bir hata performansı röle düğümlerinin kaynak düğümlerine daha yakın yerleştirilmesi ile elde edilebilmektedir. Tezin üçüncü kısmında, ele alınan tekniklerin faydalı yönlerini birleştirecek şekilde, OFDM kullanan kanal kodlamalı karmaşık alan ağ kodlama tekniği önerilmekte ve bit hata oranı üzerinden performans değerlendirmesi yapılmaktadır. Buradaki çalışma OFDM kullanan katlamalı kanal kodlamalı karmaşık alan ağ kodlama ve ikinci bölümde bahsedilen sert kararlı (hard decision) Viterbi Algoritmasının genişletilmesidir. Sistem modeli ikinci kısımdaki ile aynı olmakla birlikte yavaş ve frekans seçimli Rayleigh sönümleme kanalı içermektedir. Yine hem kuvvetlendir ve aktar hem de çöz ve aktar türü röleler bu bağlamda değerlendirilmiş ve birden çok röle içeren senaryolarda röle seçimi uygulanmıştır. Fakat, bu bölümde kodlanmış kaynak bitlerinin elde edilmesi için yumuşak kararlı (soft decision) Viterbi Algoritması ve Max-Log-MAP kod çözme teknikleri kullanılmakta ve böylelikle çok kullanıcı belirleme kuralları kodlanmış kaynak bitleri için log likelihood oranlarını sağlamaktadır. Dahası, kafeste farklı kod oranlarına ve durum sayılarına sahip katlamalı kodlar ve asimetrik bağlantı ortamları için performans analizi verilmektedir. Benzetim sonuçlarına göre, hem yumuşak kararlı Viterbi hem de Max- Log-MAP kanal çözümleme tekniklerinin belirtilen sistem modelinde aynı bit hatası performansına sahip olduğu görülmektedir. Kuvventlendir ve aktar yöntemi çöz ve aktar yöntemine göre her durumda daha iyi sonuç vermekte ve röle seçim teknikleri fark edilir bir performans iyileştirmesine sebep olmaktadır. Daha düşük kod oranlı ve daha çok kafes durumuna (trellis state) sahip katlamalı kodlar sistem performansını ciddi bir şekilde artırmakta ve asimetrik bağlantılarda aynı şekilde performansın iyileştirilmesi amacına katkı yapmaktadır. Tezin son bölümü OFDM ile birleştirilmiş iki yönlü röle ağları için XOR ağ kodlama tekniğinin geliştirilmiş versiyonu ile ilgilidir. İki yönlü röle ağları için geliştirilen geleneksel stratejiler ile karşılaştırıldığında, bu stratejide Galois küme eklemesi veya kaynaklarda çoklu veri paketlerinin bit XOR kodlaması uygulanmaktadır. XOR kodlamalı paket, iki yönlü röle ağının hata performansını artırmak için verici çeşitleme kazancı elde etmek üzere artıklık barındıran veri paketleri ile birlikte röle düğümlerine iletilmektedir. Sistem modeli, iki kaynak ve istenen hata performansının elde edilmesi için farklı sayıda ve katlamalı kanal kodlamalı röle düğümleri içermektedir. Sistemde birden çok röle olduğu durumda röle seçimi de yapılmakta ve bu sayede sadece hata performansı artırılmamakta aynı zamanda verimlilik de artmaktadır. Sonuçlar, iki yönlü röle ağının iletim ucunda sağlanan artıklık ile sistemde bit hatası performansının artırıldığını göstermektedir.A wireless communication system consists of multiple wireless nodes that can move around and communicate with each other. Fading is one of major degrading factors that can limit the performance of wireless communication systems. In order to achieve reliable communication in fading environments, channel coding and diversity techniques were proposed and implemented. Multiple input multiple output (MIMO) is one of the diversity techniques which uses multiple transmission and reception nodes per terminal to obtain diversity gains for reduced errors in the transmission of data. But cooperative diversity techniques can realize this purpose without installing multiple transmission antennas per terminal. The broadcasting nature of wireless medium allows neighbouring relay nodes to cooperate in communication by forwarding information from source nodes to destination nodes for fading mitigation. Therefore, cooperative communication system utilizes multiple communication routes created by relay nodes and exploits the inherent spatial diversity of the channel for information transmission. While classical single hop communication systems use direct transmission in which a receiver recovers the information using the direct signal only and regarding the reflected signal as interference, the cooperative communication systems consider the other signal as contribution. Therefore, cooperative diversity retrieves information from the combination of two or more signals. In other words, cooperative diversity is a virtual antenna diversity technique that uses distributed antennas belonging to each node in a wireless network for communication. Cooperative diversity is particularly considered useful in wireless ad hoc and sensor networks, where power/bandwidth/size restrictions of the mobile nodes may prevent the use of other diversity techniques to combat channel fading. In all scenarios, cooperation among mobile users of a wireless system has the potential to provide an increased capacity in comparison with the systems without using cooperation. However, in most cases, cooperative communication attains this improvement in error performance by sacrificing the throughput of wireless network. In such cases, network coding technique can substantially improve the data rate of cooperative wireless networks by intelligently combining the forwarded packets of information at the relay nodes. Network coding was originally proposed for lossless communication systems to increase the throughput of routing networks. But the integration of network coding with cooperative wireless networks has the potential to ensure more efficient usage of resources with improved error performance in fading environments. Network coding can ensure the capability to address the ever increasing number of users and devices in wireless networks, in beyond 5G standards. The broadcast nature of wireless systems allows the joint implementation of cooperative communication and network coding, exploiting the benefits of both techniques. In this context, several types of network coding have been discussed in literature in the recent years but each type involves the concept of combining and transmitting the functions of information packets at the relay nodes. In this thesis, random linear network coding, complex field network coding and exclusive-OR (XOR) network coding are simulated and analyzed in different perspectives. In the first part of this thesis, the performance of random linear network coding systems is investigated for Rayleigh and Rician fading channels in terms of decoding failure probabilities at destination nodes. In random linear network coding systems, the information bits at the intermediate nodes are received as packet vectors and the intermediate nodes encode the information data by linearly combining the received packets, with coefficients randomly extracted from the Galois field of a particular size, with equal probability. The setup considered in this section consists of multiple source, relay and destination nodes, with no direct links between sources and destinations. The communication channel outage and hence the packet loss in the given system occurs due to fading. The simulation results for the supposed system model show that the packet decoding failure probabilities are not only determined by the fading environment but also by the coefficients used in the network coding at the relay nodes. In fading channels, decoding failure probabilities can be reduced by increasing the size of the Galois field that contains random coefficients for linear combination of packets at relay nodes. In the second part of this thesis, the bit error rate performance of complex field network coding is analyzed with orthogonal frequency division multiplexing (OFDM) for frequency selective Rayleigh fading channels. In previous literatures, this analysis is performed for flat fading channels. The system model used in the performance evaluation contains multiple source nodes, single or multiple relay nodes and a single destination node. Both amplify and forward as well as decode and forward types of relays are assumed to obtain error performance results and for multi-relay system, relay selection is also taken into account for both amplify and forward and decode and forward relay types. Convolutional channel codes are also optionally integrated in the given system to boost the system performance and hard decision Viterbi decoding is used to decode source bits. In addition to this, asymmetric link environments, with relay nodes at different distances from sources and destination, are also considered. Multiuser detection rules with OFDM are employed at destination node and/or relay nodes to retrieve each source bits at the same time, for the above mentioned scenarios. The simulation results indicate that amplify and forward relay nodes outperform decode and forward relay nodes in all cases but are not very suitable from the implementation perspective since they require the storage of analog waveform at relays. Moreover, a considerable improvement is error performance can be observed when relay selection is provided in the system model with both amplify and forward and decode and forward types of relays. Finally, in asymmetric network, better error performance can be achieved by placing relay nodes closer to the source nodes. The third part of this thesis proposes the channel coded complex field network coding with OFDM, combining the mutual benefits of all the techniques involved and the performance evaluation is made in terms of bit error rate. This work is the extension of the Convolutional channel coded complex field network coding with OFDM and hard decision Viterbi decoding, presented in the second part. The system model is same as the second part with slow and frequency selective Rayleigh fading channel. Again, both amplify and forward and decode and forward types of relays are considered in this context and relay selection is employed in scenarios with multiple relays. However, this part uses soft decision Viterbi and Max-Log-MAP decoding techniques for obtaining coded source bits and therefore, in this case, the multiuser detection rules provide log likelihood ratios for coded source bits. Moreover, the performance analysis is provided for Convolutional codes with different code rates and number of states in the trellis as well as for asymmetric link environments. From simulation results, it is seen that both soft decision Viterbi and Max-Log-MAP channel decoding techniques provide almost same bit error performance in the given system model. Amplify and forward performs better than decode and forward in all cases and relay selection techniques results in a noticeable performance gain. Convolutional codes with lower code rate and more number of trellis states can enhance the system performance considerably and asymmetric links also serve the similar purpose of performance improvement. The final part of thesis is related to an enhanced version of XOR network coding scheme for two-way relay networks, combined with OFDM. Compared to other conventional strategies for two-way relay networks, this strategy performs Galois field addition or bit-wise XOR coding of multiple information packets at sources. The XOR coded packet is transmitted to the relay nodes along with the information packets which facilitates redundancy to acquire transmit diversity gain for improving error performance of the two-way relay network. The system model consists of two source and different number of relay nodes with Convolutional channel encoding in the system to obtain desired error performance. Relay selection is also provided when there are multiple relays in the system and this provision not only improves the error performance but also gives better throughput. The results show that the redundancy provided at the transmission end of two-way relay network enhances bit error performance of the system.Yüksek LisansM.Sc

    16-QAM Hierarchical Modulation Optimization in Relay Cooperative Networks

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    16-QAM Hierarchical Modulation Optimization in Relay Cooperative Networks Sara Sallam Recently, the concept of cooperative networks has attracted special attention in the field of wireless communications. This is due to their ability in achieving diversity with no extra hardware cost. The main drawback that characterizes cooperative networks is that they require extra transmission time slots compared to the traditional non-cooperative networks. Several strategies have been proposed in order to mitigate this disadvantage. One of the most recently adopted techniques is the use of hierarchical modulation. Hierarchical modulation was originally used in Digital Video Broadcast (DVB) applications. Lately, it has been applied in cooperative networks for its ability to transmit relative high data rate with acceptable performance. In this thesis, the application of a 4/16 QAM hierarchical modulation in cooperative networks is examined. This study focuses on a downlink cellular network scenario, composed of a Base Station, a Relay and two destinations. The Base Station intends to transmit two different streams of data to these two destinations by concatenating the two streams and broadcasting the resulting sequence using a non-uniform 4/16 QAM hierarchical modulation. Unlike previous work, the main contribution in this thesis is the optimization of the 16QAM constellation’s parameters according to each user’s channel condition. In other words, this method gives each user’s data the priority it needs in order to be detected as correctly as possible at the destination. Explicit closed form expressions of Hierarchical modulation Bit Error Rate in relay cooperative networks are derived. These BER expressions are used in order to select the constellation’s parameters that will achieve total minimum BER in coded and un-coded schemes. Results prove that the proposed method achieve noticeable improvement in both users performance compared to the use of uniform 16QAM constellation

    MIMO communications over relay channels

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    Analysis and Design of Non-Orthogonal Multiple Access (NOMA) Techniques for Next Generation Wireless Communication Systems

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    The current surge in wireless connectivity, anticipated to amplify significantly in future wireless technologies, brings a new wave of users. Given the impracticality of an endlessly expanding bandwidth, there’s a pressing need for communication techniques that efficiently serve this burgeoning user base with limited resources. Multiple Access (MA) techniques, notably Orthogonal Multiple Access (OMA), have long addressed bandwidth constraints. However, with escalating user numbers, OMA’s orthogonality becomes limiting for emerging wireless technologies. Non-Orthogonal Multiple Access (NOMA), employing superposition coding, serves more users within the same bandwidth as OMA by allocating different power levels to users whose signals can then be detected using the gap between them, thus offering superior spectral efficiency and massive connectivity. This thesis examines the integration of NOMA techniques with cooperative relaying, EXtrinsic Information Transfer (EXIT) chart analysis, and deep learning for enhancing 6G and beyond communication systems. The adopted methodology aims to optimize the systems’ performance, spanning from bit-error rate (BER) versus signal to noise ratio (SNR) to overall system efficiency and data rates. The primary focus of this thesis is the investigation of the integration of NOMA with cooperative relaying, EXIT chart analysis, and deep learning techniques. In the cooperative relaying context, NOMA notably improved diversity gains, thereby proving the superiority of combining NOMA with cooperative relaying over just NOMA. With EXIT chart analysis, NOMA achieved low BER at mid-range SNR as well as achieved optimal user fairness in the power allocation stage. Additionally, employing a trained neural network enhanced signal detection for NOMA in the deep learning scenario, thereby producing a simpler signal detection for NOMA which addresses NOMAs’ complex receiver problem
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