4 research outputs found

    Performance analysis of 4G wireless networks using system level simulator

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    Doutoramento em Engenharia Electrot茅cnicaIn the last decade, mobile wireless communications have witnessed an explosive growth in the user鈥檚 penetration rate and their widespread deployment around the globe. In particular, a research topic of particular relevance in telecommunications nowadays is related to the design and implementation of mobile communication systems of 4th generation (4G). 4G networks will be characterized by the support of multiple radio access technologies in a core network fully compliant with the Internet Protocol (all IP paradigms). Such networks will sustain the stringent quality of service (QoS) requirements and the expected high data rates from the type of multimedia applications (i.e. YouTube and Skype) to be available in the near future. Therefore, 4G wireless communications system will be of paramount importance on the development of the information society in the near future. As 4G wireless services will continue to increase, this will put more and more pressure on the spectrum availability. There is a worldwide recognition that methods of spectrum managements have reached their limit and are no longer optimal, therefore new paradigms must be sought. Studies show that most of the assigned spectrum is under-utilized, thus the problem in most cases is inefficient spectrum management rather spectrum shortage. There are currently trends towards a more liberalized approach of spectrum management, which are tightly linked to what is commonly termed as Cognitive Radio (CR). Furthermore, conventional deployment of 4G wireless systems (one BS in cell and mobile deploy around it) are known to have problems in providing fairness (users closer to the BS are more benefited relatively to the cell edge users) and in covering some zones affected by shadowing, therefore the use of relays has been proposed as a solution. To evaluate and analyse the performances of 4G wireless systems software tools are normally used. Software tools have become more and more mature in recent years and their need to provide a high level evaluation of proposed algorithms and protocols is now more important. The system level simulation (SLS) tools provide a fundamental and flexible way to test all the envisioned algorithms and protocols under realistic conditions, without the need to deal with the problems of live networks or reduced scope prototypes. Furthermore, the tools allow network designers a rapid collection of a wide range of performance metrics that are useful for the analysis and optimization of different algorithms. This dissertation proposes the design and implementation of conventional system level simulator (SLS), which afterwards enhances for the 4G wireless technologies namely cognitive Radios (IEEE802.22) and Relays (IEEE802.16j). SLS is then used for the analysis of proposed algorithms and protocols.FC

    Traffic Scheduling in Point-to-Multipoint OFDMA-based Systems

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    The new generation of wireless networks (e.g., WiMAX, LTE-Advanced, Cognitive Radio) support many high resource-consuming services (e.g., VoIP, video conference, multiplayer interactive gaming, multimedia streaming, digital video broadcasting, mobile commerce). The main problem of such networks is that the bandwidth is limited, besides to be subject to fading process, and shared among multiple users. Therefore, a combination of sophisticated transmission techniques (e.g., OFDMA) and proper packet scheduling algorithms is necessary, in order to provide applications with suitable quality of service. This Thesis addresses the problem of traffic scheduling in Point-to-Multipoint OFDMA-based systems. We formally prove that in such systems, even a simple scheduling problem of a Service Class at a time, is NP-complete, therefore, computationally intractable. An optimal solution is unfeasible in term of time, thus, fast and simple scheduling heuristics are needed. First, we address the Best Effort traffic scheduling issue, in a system adopting variable-length Frames, with the objective of producing a legal schedule (i.e., the one meeting all system constraints) of minimum length. Besides, we present fast and simple heuristics, which generate suboptimal solutions, and evaluate their performance in the average case, as in the worst one. Then, we investigate the scheduling of Real Time traffic, with the objective of meeting as many deadlines as possible, or equivalently, minimizing the packet drop ratio. Specifically, we propose two scheduling heuristics, which apply two different resource allocation mechanisms, and evaluate their average-case performance by means of a simulation experiment

    Assessment and Real Time Implementation of Wireless Communications Systems and Applications in Transportation Systems

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    Programa Oficial de Doutoramento en Tecnolox铆as da Informaci贸n e das Comunicaci贸ns en Redes M贸biles. 5029V01[Resumo] Os sistemas de comunicaci贸n sen f铆os de cuarta e quinta xeraci贸n (4G e 5G) utilizan unha capa f铆sica (PHY) baseada en modulaci贸ns multiportadora para a transmisi贸n de datos cun gran ancho de banda. Este tipo de modulaci贸ns proporcionan unha alta eficiencia espectral 谩 vez que permiten corrixir de forma sinxela os efectos da canle radio. Estes sistemas utilizan OFDMA como mecanismo para a repartici贸n dos recursos radio dispo帽ibles entre os diferentes usuarios. Este repartimento real铆zase asignando un subconxunto de subportadoras a cada usuario nun instante de tempo determinado. Isto aporta unha gran flexibilidade 贸 sistema que lle permite adaptarse tanto 贸s requisitos de calidade de servizo dos usuarios como 贸 estado da canle radio. A capa de acceso 贸 medio (MAC) destes sistemas enc谩rgase de configurar os diversos par谩metros proporcionados pola capa f铆sica OFDMA, ademais de xestionar os diversos fluxos de informaci贸n de cada usuario, transformando os paquetes de capas superiores en paquetes da capa f铆sica. Neste traballo est煤dase o dese帽o e implementaci贸n das capas MAC e PHY de sistemas de comunicaci贸n 4G ademais da s煤a aplicabilidade en sistemas de transporte ferroviarios. Por unha parte, ab贸rdase o dese帽o e implementaci贸n en tempo real do est谩ndar WiMAX. Est煤danse os mecanismos necesarios para establecer comunicaci贸ns bidireccionais entre unha estaci贸n base e m煤ltiples dispositivos m贸biles. Ademais, est煤dase como realizar esta implementaci贸n nunha arquitectura hardware baseada en DSPs e FPGAs, na que se implementan as capas MAC e PHY. Dado que esta arquitectura ten uns recursos computacionais limitados, tam茅n se estudan as necesidades de cada m贸dulo do sistema para poder garantir o funcionamento en tempo real do sistema completo. Por outra parte, tam茅n se estuda a aplicabilidade dos sistemas 4G a sistemas de transporte p煤blicos. Os sistemas de comunicaci贸ns e sinalizaci贸n son unha parte vital para os sistemas de transporte ferroviario e metro. As comunicaci贸ns sen f铆os utilizadas por estes sistemas deben ser robustas e proporcionar unha alta fiabilidade para permitir a supervisi贸n, control e seguridade do tr谩fico ferroviario. Para levar a cabo esta avaliaci贸n de viabilidade real铆zanse simulaci贸ns de redes de comunicaci贸ns LTE en contornos de transporte ferroviarios, comprobando o cumprimento dos requisitos de fiabilidade e seguridade. Real铆zanse diferentes simulaci贸ns do sistema de comunicaci贸ns para poder ser avaliadas e seleccionar a configuraci贸n e arquitectura do sistema m谩is axeitada en funci贸n do escenario considerado. Tam茅n se efect煤an simulaci贸ns de redes baseadas en Wi-Fi, dado que 茅 a soluci贸n m谩is utilizada nos metros, para confrontar os resultados cos obtidos para LTE. Para que os resultados das simulaci贸ns sexan realistas d茅bense empregar modelos de propagaci贸n radio axeitados. Nas simulaci贸ns util铆zanse tanto modelos deterministas como modelos baseados nos resultados de campa帽as de medida realizadas nestes escenarios. Nas simulaci贸ns empr茅ganse os diferentes fluxos de informaci贸n destes escenarios para comprobar que se cumpren os requisitos de calidade de servicio (QoS). Por exemplo, os fluxos cr铆ticos para o control ferroviario, como European Train Control System (ETCS) ou Communication-Based Train Control (CBTC), necesitan unha alta fiabilidade e un retardo m铆nimo nas comunicaci贸ns para garantir o correcto funcionamento do sistema.[Resumen] Los sistemas de comunicaci贸n inal谩mbricos de cuarta y quinta generaci贸n (4G y 5G) utilizan una capa f铆sica (PHY) basada en modulaciones multiportadora para la transmisi贸n de datos con un gran ancho de banda. Este tipo de modulaciones han demostrado tener una alta eficiencia espectral a la vez que permiten corregir de forma sencilla los efectos del canal radio. Estos sistemas utilizan OFDMA como mecanismo para el reparto de los recursos radio disponibles entre los diferentes usuarios. Este reparto se realiza asignando un subconjunto de subportadoras a cada usuario en un instante de tiempo determinado. Esto aporta una gran flexibilidad al sistema que le permite adaptarse tanto a los requisitos de calidad de servicio de los usuarios como al estado del canal radio. La capa de acceso al medio (MAC) de estos sistemas se encarga de configurar los diversos par谩metros proporcionados por la capa f铆sica OFDMA, adem谩s de gestionar los diversos flujos de informaci贸n de cada usuario, transformando los paquetes de capas superiores en paquetes de la capa f铆sica. En este trabajo se estudia el dise帽o e implementaci贸n de las capas MAC y PHY de sistemas de comunicaci贸n 4G adem谩s de su aplicabilidad en sistemas de transporte ferroviarios. Por una parte, se aborda el dise帽o e implementaci贸n en tiempo real del est谩ndar WiMAX. Se estudian los mecanismos necesarios para establecer comunicaciones bidireccionales entre una estaci贸n base y m煤ltiples dispositivos m贸viles. Adem谩s, se estudia c贸mo realizar esta implementaci贸n en una arquitectura hardware basada en DSPs y FPGAs, en la que se implementan las capas MAC y PHY. Dado que esta arquitectura tiene unos recursos computacionales limitados, tambi茅n se estudian las necesidades de cada m贸dulo del sistema para poder garantizar el funcionamiento en tiempo real del sistema completo. Por otra parte, tambi茅n se estudia la aplicabilidad de los sistemas 4G a sistemas de transporte p煤blicos. Los sistemas de comunicaciones y se帽alizaci贸n son una parte vital para los sistemas de transporte ferroviario y metro. Las comunicaciones inal谩mbricas utilizadas por estos sistemas deben ser robustas y proporcionar una alta fiabilidad para permitir la supervisi贸n, control y seguridad del tr谩fico ferroviario. Para llevar a cabo esta evaluaci贸n de viabilidad se realizan simulaciones de redes de comunicaciones LTE en entornos de transporte ferroviarios, comprobando si se cumplen los requisitos de fiabilidad y seguridad. Se realizan diferentes simulaciones del sistema de comunicaciones para poder ser evaluados y seleccionar la configuraci贸n y arquitectura del sistema m谩s adecuada en funci贸n del escenario planteado. Tambi茅n se efect煤an simulaciones de redes basadas en Wi-Fi, dado que es la soluci贸n m谩s utilizada en los metros, para comparar los resultados con los obtenidos para LTE. Para que los resultados de las simulaciones sean realistas se deben utilizar modelos de propagaci贸n radio apropiados. En las simulaciones se utilizan tanto modelos deterministas como modelos basados en los resultados de campa帽as de medida realizadas en estos escenarios. En las simulaciones se utilizan los diferentes flujos de informaci贸n de estos escenarios para comprobar que se cumplen sus requisitos de calidad de servicio. Por ejemplo, los flujos cr铆ticos para el control ferroviario, como European Train Control System (ETCS) o Communication-Based Train Control (CBTC), necesitan una alta fiabilidad y un retardo bajo en las comunicaciones para garantizar el correcto funcionamiento del sistema.[Abstract] The fourth and fifth generation wireless communication systems (4G and 5G) use a physical layer (PHY) based on multicarrier modulations for data transmission using high bandwidth. This type of modulations has shown to provide high spectral efficiency while allowing low complexity radio channel equalization. These systems use OFDMA as a mechanism for distributing the available radio resources among different users. This allocation is done by assigning a subset of subcarriers to each user in a given instant of time. This provides great flexibility to the system that allows it to adapt to both the quality of service requirements of users and the radio channel state. The media access layer (MAC) of these systems is in charge of configuring the multiple OFDMA PHY layer parameters, in addition to managing the data flows of each user, transforming the higher layer packets into PHY layer packets. This work studies the design and implementation of MAC and PHY layers of 4G communication systems as well as their applicability in rail transport systems. On the one hand, the design and implementation in real time of the WiMAX standard is addressed. The required mechanisms to establish bidirectional communications between a base station and several mobile devices are also evaluated. Moreover, a MAC layer and PHY layer implementation is presented, using a hardware architecture based in DSPs and FPGAs. Since this architecture has limited computational resources, the requirements of each processing block of the system are also studied in order to guarantee the real time operation of the complete system. On the other hand, the applicability of 4G systems to public transportation systems is also studied. Communications and signaling systems are a vital part of rail and metro transport systems. The wireless communications used by these systems must be robust and provide high reliability to enable the supervision, control and safety of rail traffic. To carry out this feasibility assessment, LTE communications network simulations are performed in rail transport environments to verify that reliability and safety requirements are met. Several simulations are carried out in order to evaluate the system performance and select the most appropriate system configuration in each case. Simulations of Wi-Fi based networks are also carried out, since it is the most used solution in subways, to compare the results with those obtained for LTE. To perform the simulations correctly, appropriate radio propagation models must be used. Both deterministic models and models based on the results of measurement campaigns in these scenarios are used in the simulations. The simulations use the different information flows present in the railway transportation systems to verify that its quality of service requirements are met. For example, critical flows for railway control, such as the European Train Control System (ETCS) or Communication-Based Train Control (CBTC), require high reliability and low delay communications to ensure the proper functioning of the system

    A real-time FPGA-based implementation of a high-performance MIMO-OFDM mobile WiMAX transmitter

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    The Multiple Input Multiple Output (MIMO)-Orthogonal Frequency Division Multiplexing (OFDM) is considered a key technology in modern wireless-access communication systems. The IEEE 802.16e standard, also denoted as mobile WiMAX, utilizes the MIMO-OFDM technology and it was one of the first initiatives towards the roadmap of fourth generation systems. This paper presents the PHY-layer design, implementation and validation of a high-performance real-time 2x2 MIMO mobile WiMAX transmitter that accounts for low-level deployment issues and signal impairments. The focus is mainly laid on the impact of the selected high bandwidth, which scales the implementation complexity of the baseband signal processing algorithms. The latter also requires an advanced pipelined memory architecture to timely address the datapath operations that involve high memory utilization. We present in this paper a first evaluation of the extracted results that demonstrate the performance of the system using a 2x2 MIMO channel emulation.Postprint (published version
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