12 resultados para Broadband networks

em Universidad Politécnica de Madrid


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Reducing energy consumption is one of the main challenges in most countries. For example, European Member States agreed to reduce greenhouse gas (GHG) emissions by 20% in 2020 compared to 1990 levels (EC 2008). Considering each sector separately, ICTs account nowadays for 2% of total carbon emissions. This percentage will increase as the demand of communication services and applications steps up. At the same time, the expected evolution of ICT-based developments - smart buildings, smart grids and smart transportation systems among others - could result in the creation of energy-saving opportunities leading to global emission reductions (Labouze et al. 2008), although the amount of these savings is under debate (Falch 2010). The main development required in telecommunication networks ?one of the three major blocks of energy consumption in ICTs together with data centers and consumer equipment (Sutherland 2009) ? is the evolution of existing infrastructures into ultra-broadband networks, the so-called Next Generation Networks (NGN). Fourth generation (4G) mobile communications are the technology of choice to complete -or supplement- the ubiquitous deployment of NGN. The risk and opportunities involved in NGN roll-out are currently in the forefront of the economic and policy debate. However, the issue of which is the role of energy consumption in 4G networks seems absent, despite the fact that the economic impact of energy consumption arises as a key element in the cost analysis of this type of networks. Precisely, the aim of this research is to provide deeper insight on the energy consumption involved in the usage of a 4G network, its relationship with network main design features, and the general economic impact this would have in the capital and operational expenditures related with network deployment and usage.

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The debate on network neutrality has reached sufficient notoriety to eliminate the need for detailed explanation. A simple definition will suffice: “network neutrality” is understood as the principle by which the owners of broadband networks would not be allowed to establish any type of discrimination or preference over the traffic transmitted through them

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En este proyecto realizaremos un estudio del efecto de las interferencias procedentes de las redes públicas y veremos cómo afectan el rendimiento de las comunicaciones GSM-R que están en la banda de frecuencias adyacente, por un lado, definiremos las características de las redes públicas y como afectan los niveles de potencia y los anchos de banda de redes de banda ancha, especialmente LTE que dispone de un ancho de banda adaptativo que puede llegar hasta 20 MHZ, y por otro lado definiremos las características y las exigencias de las comunicaciones GSM-R que es una red privada que se utiliza actualmente para comunicaciones ferroviales. Con el objetivo de determinar el origen y los motivos de estas interferencias vamos a explicar cómo se produzcan las emisiones no deseadas de las redes públicas que son fruto de la intermodulación que se produzca por las características no lineales de los amplificadores, entre las emisiones no deseadas se puede diferenciar entre el dominio de los espurios y el dominio de las emisiones fuera de banda, para determinar el nivel de las emisiones fuera de banda definiremos la relación de fugas del canal adyacente, ACLR, que determina la diferencia entre el pico de la señal deseada y el nivel de señal interferente en la banda de paso. Veremos cómo afectan estas emisiones no deseadas a las comunicaciones GSMR en el caso de interferencias procedentes de señales de banda estrecha, como es el caso de GSM, y como afectan en el caso de emisiones de banda ancha con los protocolos UMTS y LTE, también estudiaremos como varia el rendimiento de la comunicación GSM-R frente a señales LTE de diferentes anchos de banda. Para reducir el impacto de las interferencias sobre los receptores GSM-R, analizaremos el efecto de los filtros de entrada de los receptores GSM-R y veremos cómo varia la BER y la ACLR. Además, con el objetivo de evaluar el rendimiento del receptor GSM-R ante diferentes tipos de interferencias, simularemos dos escenarios donde la red GSM-R se verá afectada por las interferencias procedente de una estación base de red pública, en el primer escenario la distancia entre la BS y MS GSM-R será de 4.6 KM, mientras en el segundo escenario simularemos una situación típica cuando un tren está a una distancia corta (25 m) de la BS de red pública. Finalmente presentaremos los resultados en forma de graficas de BER y ACLR, y tablas indicando los diferentes niveles de interferencias y la diferencia entre la potencia a la que obtenemos un valor óptimo de BER, 10-3, sin interferencia y la potencia a la que obtenemos el mismo valor con interferencias. ABSTRACT In this project we will study the interference effect from public networks and how they affect the performance of GSM-R communications that are in the adjacent frequency band, furthermore, we will define the characteristics of public networks and will explain how the power levels and bandwidth broadband networks are affected as a result, especially LTE with adaptive bandwidth that can reach 20 MHZ. Lastly, we will define the characteristics and requirements of the GSM-R communications, a private network that is currently used for railways communications. In order to determine the origin and motives of these interferences, we will explain what causes unwanted emissions of public networks that occur as a result. The intermodulation, which is caused by the nonlinear characteristics of amplifiers. Unwanted emissions from the transmitter are divided into OOB (out-of-band) emission and spurious emissions. The OOB emissions are defined by an Adjacent Channel Leakage Ratio (ACLR) requirement. We'll analyze the effect of the OOB emission on the GSM-R communication in the case of interference from narrowband signals such as GSM, and how they affect emissions in the case of broadband such as UMTS and LTE; also we will study how performance varies with GSM-R versus LTE signals of different bandwidths. To reduce the impact of interference on the GSM-R receiver, we analyze the effect of input filters GSM-R receivers to see how it affects the BER (Bits Error Rate) and ACLR. To analyze the GSM-R receiver performance in this project, we will simulate two scenarios when the GSM-R will be affected by interference from a base station (BS). In the first case the distance between the public network BS and MS GSM-R is 4.6 KM, while the second case simulates a typical situation when a train is within a short distance, 25 m, of a public network BS. Finally, we will present the results as BER and ACLR graphs, and tables showing different levels of interference and the differences between the power to obtain an optimal value of BER, 10-3, without interference, and the power that gets the same value with interference.

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Recent advances in coherent optical receivers is reviewed. Digital-Signal-Processing (DSP) based phase and polarization management techniques make coherent detection robust and feasible. With coherent detection, the complex field of the received optical signal is fully recovered, allowing compensation of linear and nonlinear optical impairments including chromatic dispersion (CD) and polarization-mode dispersion (PMD) using digital filters. Coherent detection and advanced optical modulation formats have become a key ingredient to the design of modern dense wavelength-division multiplexed (DWDM) optical broadband networks. In this paper, firstly we present the different subsystems of a digital coherent optical receiver, and secondly, we will compare the performance of some multi-level and multi-dimensional modulation formats in some physical impairments and in high spectral-efficiency (SE) and high-capacity DWDM transmissions, simulating the DSP with Matlab and the optical network performance with OptiSystem software.

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En este Proyecto se va a abordar el estudio, tanto de arquitectura como de tecnologías, de la evolución de las redes de banda ancha fijas, desde la invención del teléfono hasta la progresiva implantación de la fibra óptica, debido a que las redes de cobre serán reemplazadas por este nuevo material. Se va a estudiar esta evolución en base al medio físico en el que se apoyan las diferentes redes desde el pasado hasta nuestros días. Esta implantación de fibra óptica es conocida como FTTH, fibra hasta el hogar, donde se despliegan estas redes con sus diferentes elementos para proporcionar servicio de banda ancha a la sociedad. En esta memoria se recoge el despliegue para diferentes escenarios tipo más comunes y llevados a cabo por las diferentes compañías de telecomunicaciones del país. Para ello se ha escogido la cartografía del distrito madrileño de Moratalaz y se ha procedido a diseñar tanto la red de alimentación como la red de distribución que conforman el despliegue FTTH. Por último se ha comentado las futuras líneas de evolución de estas redes, tanto a corto plazo como a largo, analizando los beneficios económicos para las diferentes compañías encargadas de los despliegues y los mejorados servicios que ofrecen al conjunto de la sociedad. ABSTRACT. This Project will address the study of the evolution of fixed broadband networks, mainly in architectures and technologies. The study will start from the invention of telephone to the progressive implantation of optical fiber since this medium are intended to replace the copper wires employed in this networks. It will study this evolution based on the physical medium in which the different networks are supported from the past to our times. This implantation of fiber-optic technology is known as FTTH, fiber to the home, so these networks are deployed with different elements in order to provide the broadband service to society. In this report, deployment for different common cases implanted by different telecommunications companies in the country is collected. For this it has chosen the cartography of Moratalaz and has proceeded to design the supply and distribution networks that compose the FTTH deployment. Finally, it has been discussed the future lines of the evolution for these networks in the short-term and long-term analyzing the economic benefits for the companies and the improved services provided to the whole society.

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Next Generation Networks (NGN) provide Telecommunications operators with the possibility to share their resources and infrastructure, facilitate the interoperability with other networks, and simplify and unify the management, operation and maintenance of service offerings, thus enabling the fast and cost-effective creation of new personal, broadband ubiquitous services. Unfortunately, service creation over NGN is far from the success of service creation in the Web, especially when it comes to Web 2.0. This paper presents a novel approach to service creation and delivery, with a platform that opens to non-technically skilled users the possibility to create, manage and share their own convergent (NGN-based and Web-based) services. To this end, the business approach to user-generated services is analyzed and the technological bases supporting the proposal are explained.

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Next generation access networks (NGAN) will support a renewed electronic communication market where main opportunities lie in the provision of ubiquitous broadband connectivity, applications and content. From their deployment it is expected a wealth of innovations. Within this framework, the project reviews the variety of NGAN deployment options available for rural environments, derives a simple method for approximate cost calculations, and then discusses and compares the results obtained. Data for Spain are used for practical calculations, but the model is applicable with minor modifications to most of the rural areas of European countries. The final part of the paper is devoted to review the techno-economic implications of a network deployment in a rural environment as well as the adequacy and possible developments of the regulatory framework involved

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Next generation access networks (NGAN) will support a renewed communication structure where opportunities lie in the provision of ubiquitous broadband connectivity, a wide variety of new applications, appealing contents and a general support to the sustainable growth of diverse sectors. From their deployment it is expected a wealth of innovations, jobs creation and a new wave of economic growth. In this paper we discuss which could be the role of Hybrid Fibre Coax (HFC) in the Next Generation Access Network (NGAN) roadmap. Thus, we propose a simplified model for making approximate cost calculations for HFC deployment based on the geographic and sociodemographic characteristics of Spain. Considering the latest evolution of HFC based on DOCSIS 3.0 from integrated (I-CMTS) towards modular (M-CMTS), the results from the model are compared with the most competitive NGAN for ultrabroadband speeds: Fibre to the Home (FTTH) based on Gigabitcapable Passive Optical Networks (GPON)

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Increasing availability (andaffordability) of mobile broadband - In 2015 half of the subscriber base will be in 3G/4G, and 80% in 2020 (27% in 2011) - 7.6 billion mobile users by 2020 (5.4 billion in 2011). Mobile subscribers per 100 inhabitants:99%. Increasing availability (and affordability) of smartphones - In 2020 81% of phones sold globally will be smartphones (2.5 billion) from 26% in 2011 (400 million) - 595 million tablets in 2020 (70 million in 2011)

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The networks need to provide higher speeds than those offered today. For it, considering that in the spectrum radio technologies is the scarcest resource in the development of these technologies and the new developments is essential to maximize the performance of bits per hertz transmitted. Long Term Evolution optimize spectral efficiency modulations with new air interface, and more advanced algorithms radius. These capabilities is the fact that LTE is an IPbased technology that enables end-to-end offer high transmission rates per user and very low latency, ie delay in the response times of the network around only 10 milliseconds, so you can offer any realtime application. LTE is the latest standard in mobile network technology and 3GPP ensure competitiveness in the future, may be considered a technology bridge between 3G networks - current 3.5G and future 4G networks, which are expected to reach speeds of up to 1G . LTE operators provide a simplified architecture but both robust, supporting services on IP technology. The objectives to be achieved through its implementation are ambitious, first users have a wide range of added services like capabilities that currently enjoys with residential broadband access at competitive prices, while the operator will have a network fully IP-based environment, reducing the complexity and cost of the same, which will give operators the opportunity to migrate to LTE directly. A major advantage of LTE is its ability to fuse with existing networks, ensuring interconnection with the same, increasing his current coverage and allowing a data connection established by a user in the environment continue when fade the coverage LTE. Moreover, the operator has the advantage of deploying network gradually, starting initially at areas of high demand for broadband services and expand progressively in line with this. RESUMEN. Las redes necesitan proporcionar velocidades mayores a las ofertadas a día de hoy. Para ello, teniendo en cuenta que en tecnologías radio el espectro es el recurso más escaso, en la evolución de estas tecnologías y en los nuevos desarrollos es esencial maximizar el rendimiento de bits por hercio transmitido. Long Term Evolution optimiza la eficiencia espectral con nuevas modulaciones en la interfaz aire, así como los algoritmos radio más avanzado. A estas capacidades se suma el hecho de que LTE es una tecnología basada en IP de extremo a extremo que permite ofrecer altas velocidades de transmisión por usuario y latencias muy bajas, es decir, retardos en los tiempos de respuesta de la red en torno a sólo 10 milisegundos, por lo que permite ofrecer cualquier tipo de aplicación en tiempo real. LTE es el último estándar en tecnología de redes móviles y asegurará la competitividad de 3GPP en el futuro, pudiendo ser considerada una tecnología puente entre las redes 3G – 3.5G actuales y las futuras redes 4G, de las que se esperan alcanzar velocidades de hasta 1G. LTE proporcionará a las operadoras una arquitectura simplificada pero robusta a la vez, soportando servicios sobre tecnología IP. Los objetivos que se persiguen con su implantación son ambiciosos, por una parte los usuarios dispondrá de una amplia oferta de servicios añadidos con capacidades similares a las que disfruta actualmente con accesos a banda ancha residencial y a precios competitivos, mientras que el operador dispondrá de una red basada en entorno totalmente IP, reduciendo la complejidad y el costo de la misma, lo que dará a las operadoras la oportunidad de migrar a LTE directamente. Una gran ventaja de LTE es su capacidad para fusionarse con las redes existentes, asegurando la interconexión con las mismas, aumentando su actual cobertura y permitiendo que una conexión de datos establecida por un usuario en el entorno LTE continúe cuando la cobertura LTE se desvanezca. Por otra parte el operador tiene la ventaja de desplegar la red LTE de forma gradual, comenzando inicialmente por las áreas de gran demanda de servicios de banda ancha y ampliarla progresivamente en función de ésta.

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The contribution to global energy consumption of the information and communications technology (ICT) sector has increased considerably in the last decade, along with its growing relevance to the overall economy. This trend will continue due to the seemingly ever greater use of these technologies, with broadband data traffic generated by the usage of telecommunication networks as a primary component. In fact, in response to user demand, the telecommunications industry is initiating the deployment of next generation networks (NGNs). However, energy consumption is mostly absent from the debate on these deployments, in spite of the potential impact on both expenses and sustainability. In addition, consumers are unaware of the energy impact of their choices in ultra-broadband services. This paper focuses on forecasting energy consumption in the access part of NGNs by modelling the combined effect of the deployment of two different ultra-broadband technologies (FTTH-GPON and LTE), the evolution of traffic per user, and the energy consumption in each of the networks and user devices. Conclusions are presented on the levels of energy consumption, their cost and the impact of different network design parameters. The effect of technological developments, techno-economic and policy decisions on energy consumption is highlighted. On the consumer side, practical figures and comparisons across technologies are provided. Although the paper focuses on Spain, the analysis can be extended to similar countries.

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Lately, the mobile data market has moved into a growth stage triggered by two facts: affordability of mobile broadband, and availability of data-friendly devices. At this stage, market growth is no longer dependent on push strategies from suppliers; on the contrary, demand is now driving the market. However, it will not be easy for mobile operating companies to cope up with the demand to come in the near future. The infrastructure that is needed to support corresponding demand is far from completion. Operators are forced to make heavy investments to upgrade and expand their networks. To decide how to handle the present and upcoming demand, they need to identify and understand the characteristics of the scenarios they face. This is precisely the aim of this article, which provides figures on the consequences for mobile infrastructures of a generalised mobile media uptake. Data from the Spanish mobile deployment case have been used to arrive at practical figures and illustration of results, but the conclusions are easily extended to other countries and regions