867 resultados para Wired and wireless


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Networked control systems (NCS) are distributed control system in which sensors, actuators and controllers are physically separated and connected through communication networks. NCS represent the evolution of networked control architectures providing greater modularity and control decentralization, ease maintenance and diagnosis and lower cost of implementation. A recent trend in this research topic is the development of NCS using wireless networks which enable interoperability between existing wired and wireless systems. This paper presents the feasibility analysis of using a serial RS-232 to Bluetooth converter as a wireless sensor link in NCS. In order to support this investigation, relevant performance metrics for wireless control applications such as jitter, time delay and messages lost are highlighted and calculated to evaluate the converter capabilities. In addition the control performance of an implemented motor control system using the converter is analyzed. Experimental results led to the conclusion that serial RS-232 Bluetooth converters can be used to implement wireless networked control systems (WNCS) providing transmission rates and closed control loop times which are acceptable for NCS applications. © 2011 IEEE.

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Pós-graduação em Engenharia Elétrica - FEIS

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Our society uses a large diversity of co-existing wired and wireless networks in order to satisfy its communication needs. A cooper- ation between these networks can benefit performance, service availabil- ity and deployment ease, and leads to the emergence of hybrid networks. This position paper focuses on a hybrid mobile-sensor network identify- ing potential advantages and challenges of its use and defining feasible applications. The main value of the paper, however, is in the proposed analysis approach to evaluate the performance at the mobile network side given the mixed mobile-sensor traffic. The approach combines packet- level analysis with modelling of flow-level behaviour and can be applied for the study of various application scenarios. In this paper we consider two applications with distinct traffic models namely multimedia traffic and best-effort traffic.

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FTTH (fibra hasta el hogar) es actualmente, junto con la banda ancha móvil, la principal evolución tecnológica en Redes y Servicios de Telecomunicaciones. Se prevé que en los próximos años, el despliegue de las redes FTTH se vea incrementado de manera significativa, gracias al interés creciente tanto de Operadores de Telecomunicaciones como de Organismos Gubernamentales. Este despliegue (que en el año 2013 ya se está haciendo realidad) llevará servicios de muy alta velocidad (superiores a 100 Mbps, incluso 1 Gbps) de manera masiva a los hogares, exigiendo nuevos requisitos y prestaciones en la red del hogar de los clientes. Se abre aquí, por tanto, un campo de exploración novedoso, incipiente y de requerimientos cada vez más exigentes. De hecho, sin duda, la red del hogar es uno de los elementos fundamentales para el éxito de las redes y servicios en FTTH. Debido a todo lo anterior, se convierte en una necesidad para el sector de las Telecomunicaciones el encontrar soluciones a los problemas anteriormente mencionados. Con objeto de contribuir al análisis de soluciones, este proyecto se enfoca en dos temas, ambos relacionados con la problemática ya mencionada en la red del hogar:  Prospección e identificación de soluciones tecnológicas avanzadas para la red del hogar. Descrito en capítulos 2, 3 y 4. En ellos se realiza un estudio detallado de la situación actual y tendencias futuras de los dispositivos utilizados en la red del hogar. Este estudio está enfocado en la distribución de señales de muy alto ancho de banda (en torno a los 100 Mbps por segundo) en el hogar.  Diseño y desarrollo de una aplicación que permita determinar la calidad de experiencia de cliente (QoE) de un servicio de televisión IP (IPTV). Descrito en capítulos 5 y 6. Se ha seleccionado este tipo de servicios debido a que son los que requieren mayores prestaciones tanto de la red de transporte como de la red del hogar y, al mismo tiempo, son los más complicados de medir debido a la fuerte componente de subjetividad del usuario final. Una red del hogar correctamente diseñada debe cumplir de manera equilibrada los requisitos demandados tanto por el operador como por el cliente o usuario final del servicio. Los requisitos del operador se centran principalmente en el control de la inversión (CAPEX) y del gasto de mantenimiento de la red del hogar (OPEX). El usuario, por otra parte, requiere sencillez en la instalación y mínimo número de elementos a instalar (cero intrusismo, ausencia de cableado). Para adaptarse a estos requerimientos, existe una serie de dispositivos y tecnologías que buscan encontrar el punto de equilibrio entre necesidades de operadores y de clientes finales. Las soluciones actualmente utilizadas pueden dividirse en soluciones cableadas e inalámbricas. También existen soluciones híbridas. Todas ellas se describen en detalle en los capítulos 3 y 4. Al final del estudio se concluye que, con la tecnología actual, es preferible el uso de soluciones cableadas tipo Ethernet o POF. Es recomendable no usar soluciones PLC de manera extensiva (G.hn puede ser una alternativa a futuro) y, en caso de no requerir cableado, utilizar WiFi 11n con frecuencias de 5 GHz, así como sus evoluciones, WiFi 11ac y 11ad. La aplicación desarrollada, explicada en los capítulos 5 y 6, permite capturar y medir en tiempo real la señal de televisión IP que se entrega al usuario. Esta aplicación estimará, a partir de dichas medidas, la calidad de la señal entregada. Para ello tendrá en cuenta el tipo de descodificador utilizado por el usuario así como la red empleada (red FTTH de Telefónica). Esta aplicación podría ser utilizada en los centros de atención técnica de las operadoras de telecomunicaciones, determinando así la relación existente entre reclamaciones recibidas y calidad de servicio medida por la aplicación. Asimismo, aparte de realizar medidas en tiempo real, la aplicación vuelca las medidas realizadas y alarmas detectadas en ficheros log, facilitando el análisis técnico de los problemas e incidencias registrados por dichos centros técnicos. Igualmente, esta aplicación puede ser utilizada para el proceso de certificación de equipamiento de red del hogar o incluso como herramienta para profundizar en parámetros teóricos y criterios de medida de calidad de servicio en IPTV. ABSTRACT. FTTH (Fiber To The Home) and mobile broadband are currently the main technological trend in the Network and Telecommunications Services area. In the next few years, the deployment of FTTH networks will experiment a significant increase, due to the growing interest of both telecommunications operators and government agencies. This deployment (that is becoming a reality) which will massively carry high-speed services to households (speeds of more than 100 Mbps, even 1 Gbps) will demand new requirements and features in the customer’s home network. It can be found here a new and emerging field of exploration, with increasingly demanding requirements. In fact, the home network is one of the key elements for the success of FTTH network and services. Due to the aforementioned, it is a necessity for the telecommunications industry to find solutions to these problems. In order to contribute into the solution analysis, this project focuses on two subjects, both related to the problems of home networking:  Exploratory research and identification of advanced technology solutions for the home network. Described in chapters 2, 3 and 4. These chapters show a detailed study of the current situation and future trends of the devices used at the home network. It focuses on the distribution of very high bandwidth signals (around 100 Mbps per second) in the customer’s home.  Design and development of an application to evaluate customer’s quality of experience (QoE) of an IP television service (IPTV). Described in chapters 5 and 6. IPTV service has been selected because it requires higher performance both from the transport and the home networks and, at the same time, it is the most difficult to measure due to the strong component of subjectivity of the end user. A correct design of the home network must meet the requirements demanded both by the network operator and the customer (end user of the service). Network operator requirements mainly focus on reduced capital expenditures (CAPEX) and operational expenditures (OPEX). Additionally, the final user requires a simple and easy installation and also the minimum number of items to install (zero intrusion, lack of wiring, etc.). Different devices and technologies seek to find a balance between these two requirements (network operators and final users requirements). Solutions available in the market can be divided into wired and wireless. There are also hybrid solutions. All of them are described thoroughly in the first part of the project. The conclusion at the end of the study recommends the use of wired technologies like Ethernet or POF. Additionally, the use of PLC is not advised (G.hn can be an alternative in the future) and, in the case of not requiring wiring, the use of 11ac and 11ad WiFi is advised. The application developed in the second part of the project allows capturing and measuring the real-time IPTV signal delivered to the user. This application will estimate the delivered signal quality from the captured measurements. For this purpose, it will also consider the type of decoder installed on the customer’s premises and the transport network (Telefonica’s FTTH network). This application could be used at the operator’s technical service centres, determining in this way the relationship between user’s complaints and the quality of service measured. Additionally, this application can write all the measurements and alarms in log files, making easier the technical analysis of problems and impairments recorded by the technical centres. Finally, the application can also be used for the certification process of home networking equipment (i.e. decoders) or even as a tool to deepen theoretical parameters and measuring criteria of quality of service in IPTV.

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Networking encompasses a variety of tasks related to the communication of information on networks; it has a substantial economic and societal impact on a broad range of areas including transportation systems, wired and wireless communications and a range of Internet applications. As transportation and communication networks become increasingly more complex, the ever increasing demand for congestion control, higher traffic capacity, quality of service, robustness and reduced energy consumption requires new tools and methods to meet these conflicting requirements. The new methodology should serve for gaining better understanding of the properties of networking systems at the macroscopic level, as well as for the development of new principled optimization and management algorithms at the microscopic level. Methods of statistical physics seem best placed to provide new approaches as they have been developed specifically to deal with nonlinear large-scale systems. This review aims at presenting an overview of tools and methods that have been developed within the statistical physics community and that can be readily applied to address the emerging problems in networking. These include diffusion processes, methods from disordered systems and polymer physics, probabilistic inference, which have direct relevance to network routing, file and frequency distribution, the exploration of network structures and vulnerability, and various other practical networking applications. © 2013 IOP Publishing Ltd.

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This paper is sponsored by the Ministry of Education and Research of the Republic of Bulgaria in the framework of project No 105 “Multimedia Packet Switching Networks Planning with Quality of Service and Traffic Management”.

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Next generation networks are characterized by ever increasing complexity, intelligence, heterogeneous technologies and increasing user expectations. Telecommunication networks in particular have become truly global, consisting of a variety of national and regional networks, both wired and wireless. Consequently, the management of telecommunication networks is becoming increasingly complex. In addition, network security and reliability requirements require additional overheads which increase the size of the data records. This in turn causes acute network traffic congestions. There is no single network management methodology to control the various requirements of today's networks, and provides a good level of Quality of Service (QoS), and network security. Therefore, an integrated approach is needed in which a combination of methodologies can provide solutions and answers to network events (which cause severe congestions and compromise the quality of service and security). The proposed solution focused on a systematic approach to design a network management system based upon the recent advances in the mobile agent technologies. This solution has provided a new traffic management system for telecommunication networks that is capable of (1) reducing the network traffic load (thus reducing traffic congestion), (2) overcoming existing network latency, (3) adapting dynamically to the traffic load of the system, (4) operating in heterogeneous environments with improved security, and (5) having robust and fault tolerance behavior. This solution has solved several key challenges in the development of network management for telecommunication networks using mobile agents. We have designed several types of agents, whose interactions will allow performing some complex management actions, and integrating them. Our solution is decentralized to eliminate excessive bandwidth usage and at the same time has extended the capabilities of the Simple Network Management Protocol (SNMP). Our solution is fully compatible with the existing standards.

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This paper presents a NCAP embedded on DE2 kit with Nios II processor and uClinux to development of a network gateway with two interfaces, wireless (ZigBee) and wired (RS232) based on IEEE 1451. Both the communications, wireless and wired, were developed to be point-to-point and working with the same protocols, based on IEEE 1451.0-2007. The tests were made using a microcomputer, which through of browser was possible access the web page stored in the DE2 kit and send commands of control and monitoring to both TIMs (WTIM and STIM). The system describes a different form of development of the NCAP node to be applied in different environments with wired or wireless in the same node. © 2011 IEEE.

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End-to-End differentiation between wireless and congestion loss can equip TCP control so it operates effectively in a hybrid wired/wireless environment. Our approach integrates two techniques: packet loss pairs (PLP) and Hidden Markov Modeling (HMM). A packet loss pair is formed by two back-to-back packets, where one packet is lost while the second packet is successfully received. The purpose is for the second packet to carry the state of the network path, namely the round trip time (RTT), at the time the other packet is lost. Under realistic conditions, PLP provides strong differentiation between congestion and wireless type of loss based on distinguishable RTT distributions. An HMM is then trained so observed RTTs can be mapped to model states that represent either congestion loss or wireless loss. Extensive simulations confirm the accuracy of our HMM-based technique in classifying the cause of a packet loss. We also show the superiority of our technique over the Vegas predictor, which was recently found to perform best and which exemplifies other existing loss labeling techniques.

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The current congestion-oriented design of TCP hinders its ability to perform well in hybrid wireless/wired networks. We propose a new improvement on TCP NewReno (NewReno-FF) using a new loss labeling technique to discriminate wireless from congestion losses. The proposed technique is based on the estimation of average and variance of the round trip time using a filter cal led Flip Flop filter that is augmented with history information. We show the comparative performance of TCP NewReno, NewReno-FF, and TCP Westwood through extensive simulations. We study the fundamental gains and limits using TCP NewReno with varying Loss Labeling accuracy (NewReno-LL) as a benchmark. Lastly our investigation opens up important research directions. First, there is a need for a finer grained classification of losses (even within congestion and wireless losses) for TCP in heterogeneous networks. Second, it is essential to develop an appropriate control strategy for recovery after the correct classification of a packet loss.

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This paper analyzes a case study of wireless network implementation in a politically sensitive environment and seeks to gain practical insights for IT managers in today’s networked economy. The case evolved around an urgent decision to implement wireless networks that were a radical replacement for the existing wired network infrastructure. Although the wireless network infrastructure was well calculated as being considerably cost-efficient, inexperienced administrators and IT department failed to consult various involved stakeholders. Consequently, unintended results of wireless network implementation entangled with the cost efficiency of technology outcome and in turn undermined the objectives and achievement of the initial project plan. Drawing from social perspectives, this case study challenges traditionally dominant perspectives of technology efficiency and summarizes several lessons that could help IT managers and policy makers to better strategize ICT in general, and wireless networks in particular.

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This thesis studies optimisation problems related to modern large-scale distributed systems, such as wireless sensor networks and wireless ad-hoc networks. The concrete tasks that we use as motivating examples are the following: (i) maximising the lifetime of a battery-powered wireless sensor network, (ii) maximising the capacity of a wireless communication network, and (iii) minimising the number of sensors in a surveillance application. A sensor node consumes energy both when it is transmitting or forwarding data, and when it is performing measurements. Hence task (i), lifetime maximisation, can be approached from two different perspectives. First, we can seek for optimal data flows that make the most out of the energy resources available in the network; such optimisation problems are examples of so-called max-min linear programs. Second, we can conserve energy by putting redundant sensors into sleep mode; we arrive at the sleep scheduling problem, in which the objective is to find an optimal schedule that determines when each sensor node is asleep and when it is awake. In a wireless network simultaneous radio transmissions may interfere with each other. Task (ii), capacity maximisation, therefore gives rise to another scheduling problem, the activity scheduling problem, in which the objective is to find a minimum-length conflict-free schedule that satisfies the data transmission requirements of all wireless communication links. Task (iii), minimising the number of sensors, is related to the classical graph problem of finding a minimum dominating set. However, if we are not only interested in detecting an intruder but also locating the intruder, it is not sufficient to solve the dominating set problem; formulations such as minimum-size identifying codes and locating dominating codes are more appropriate. This thesis presents approximation algorithms for each of these optimisation problems, i.e., for max-min linear programs, sleep scheduling, activity scheduling, identifying codes, and locating dominating codes. Two complementary approaches are taken. The main focus is on local algorithms, which are constant-time distributed algorithms. The contributions include local approximation algorithms for max-min linear programs, sleep scheduling, and activity scheduling. In the case of max-min linear programs, tight upper and lower bounds are proved for the best possible approximation ratio that can be achieved by any local algorithm. The second approach is the study of centralised polynomial-time algorithms in local graphs these are geometric graphs whose structure exhibits spatial locality. Among other contributions, it is shown that while identifying codes and locating dominating codes are hard to approximate in general graphs, they admit a polynomial-time approximation scheme in local graphs.

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We consider a dense, ad hoc wireless network confined to a small region, such that direct communication is possible between any pair of nodes. The physical communication model is that a receiver decodes the signal from a single transmitter, while treating all other signals as interference. Data packets are sent between source-destination pairs by multihop relaying. We assume that nodes self-organise into a multihop network such that all hops are of length d meters, where d is a design parameter. There is a contention based multiaccess scheme, and it is assumed that every node always has data to send, either originated from it or a transit packet (saturation assumption). In this scenario, we seek to maximize a measure of the transport capacity of the network (measured in bit-meters per second) over power controls (in a fading environment) and over the hop distance d, subject to an average power constraint. We first argue that for a dense collection of nodes confined to a small region, single cell operation is efficient for single user decoding transceivers. Then, operating the dense ad hoc network (described above) as a single cell, we study the optimal hop length and power control that maximizes the transport capacity for a given network power constraint. More specifically, for a fading channel and for a fixed transmission time strategy (akin to the IEEE 802.11 TXOP), we find that there exists an intrinsic aggregate bit rate (Theta(opt) bits per second, depending on the contention mechanism and the channel fading characteristics) carried by the network, when operating at the optimal hop length and power control. The optimal transport capacity is of the form d(opt)((P) over bar (t)) x Theta(opt) with d(opt) scaling as (P) over bar (1/eta)(t), where (P) over bar (t) is the available time average transmit power and eta is the path loss exponent. Under certain conditions on the fading distribution, we then provide a simple characterisation of the optimal operating point.

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We consider a dense, ad hoc wireless network confined to a small region, such that direct communication is possible between any pair of nodes. The physical communication model is that a receiver decodes the signal from a single transmitter, while treating all other signals as interference. Data packets are sent between source-destination pairs by multihop relaying. We assume that nodes self-organise into a multihop network such that all hops are of length d meters, where d is a design parameter. There is a contention based multiaccess scheme, and it is assumed that every node always has data to send, either originated from it or a transit packet (saturation assumption). In this scenario, we seek to maximize a measure of the transport capacity of the network (measured in bit-meters per second) over power controls (in a fading environment) and over the hop distance d, subject to an average power constraint. We first argue that for a dense collection of nodes confined to a small region, single cell operation is efficient for single user decoding transceivers. Then, operating the dense ad hoc network (described above) as a single cell, we study the optimal hop length and power control that maximizes the transport capacity for a given network power constraint. More specifically, for a fading channel and for a fixed transmission time strategy (akin to the IEEE 802.11 TXOP), we find that there exists an intrinsic aggregate bit rate (Thetaopt bits per second, depending on the contention mechanism and the channel fading characteristics) carried by the network, when operating at the optimal hop length and power control. The optimal transport capacity is of the form dopt(Pmacrt) x Thetaopt with dopt scaling as Pmacrt 1 /eta, where Pmacrt is the available time average transmit power and eta is the path loss exponent. Under certain conditions on the fading distribution, we then pro- - vide a simple characterisation of the optimal operating point.

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This letter reports the statistical characterization and modeling of the indoor radio channel for a mobile wireless personal area network operating at 868 MHz. Line of sight (LOS) and non-LOS conditions were considered for three environments: anechoic chamber, open office area and hallway. Overall, the Nakagami-m cdf best described fading for bodyworn operation in 60% of all measured channels in anechoic chamber and open office area environments. The Nakagami distribution was also found to provide a good description of Rician distributed channels which predominated in the hallway. Multipath played an important role in channel statistics with the mean recorded m value being reduced from 7.8 in the anechoic chamber to 1.3 in both the open office area and hallway.