19 resultados para RFId dentificazione tag reader middleware

em Universidad Politécnica de Madrid


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A notorious advantage of wireless transmission is a significant reduction and simplification in wiring and harness. There are a lot of applications of wireless systems, but in many occasions sensor nodes require a specific housing to protect the electronics from hush environmental conditions. Nowadays the information is scarce and nonspecific on the dynamic behaviour of WSN and RFID. Therefore the purpose of this study is to evaluate the dynamic behaviour of the sensors. A series of trials were designed and performed covering temperature steps between cold room (5 °C), room temperature (23 °C) and heated environment (35 °C). As sensor nodes: three Crossbow motes, a surface mounted Nlaza module (with sensor Sensirion located on the motherboard), an aerial mounted Nlaza where the Sensirion sensor stayed at the end of a cable), and four tags RFID Turbo Tag (T700 model with and without housing), and 702-B (with and without housing). To assess the dynamic behaviour a first order response approach is used and fitted with dedicated optimization tools programmed in Matlab that allow extracting the time response (?) and corresponding determination coefficient (r2) with regard to experimental data. The shorter response time (20.9 s) is found for the uncoated T 700 tag which encapsulated version provides a significantly higher response (107.2 s). The highest ? corresponds to the Crossbow modules (144.4 s), followed by the surface mounted Nlaza module (288.1 s), while the module with aerial mounted sensor gives a response certainly close above to the T700 without coating (42.8 s). As a conclusion, the dynamic response of temperature sensors within wireless and RFID nodes is dramatically influenced by the way they are housed (to protect them from the environment) as well as by the heat released by the node electronics itself; its characterization is basic to allow monitoring of high rate temperature changes and to certify the cold chain. Besides the time to rise and to recover is significantly different being mostly higher for the latter than for the former.

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In this paper, we propose a particle filtering (PF) method for indoor tracking using radio frequency identification (RFID) based on aggregated binary measurements. We use an Ultra High Frequency (UHF) RFID system that is composed of a standard RFID reader, a large set of standard passive tags whose locations are known, and a newly designed, special semi-passive tag attached to an object that is tracked. This semi-passive tag has the dual ability to sense the backscatter communication between the reader and other passive tags which are in its proximity and to communicate this sensed information to the reader using backscatter modulation. We refer to this tag as a sense-a-tag (ST). Thus, the ST can provide the reader with information that can be used to determine the kinematic parameters of the object on which the ST is attached. We demonstrate the performance of the method with data obtained in a laboratory environment.

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We present a new method to accurately locate persons indoors by fusing inertial navigation system (INS) techniques with active RFID technology. A foot-mounted inertial measuring units (IMUs)-based position estimation method, is aided by the received signal strengths (RSSs) obtained from several active RFID tags placed at known locations in a building. In contrast to other authors that integrate IMUs and RSS with a loose Kalman filter (KF)-based coupling (by using the residuals of inertial- and RSS-calculated positions), we present a tight KF-based INS/RFID integration, using the residuals between the INS-predicted reader-to-tag ranges and the ranges derived from a generic RSS path-loss model. Our approach also includes other drift reduction methods such as zero velocity updates (ZUPTs) at foot stance detections, zero angular-rate updates (ZARUs) when the user is motionless, and heading corrections using magnetometers. A complementary extended Kalman filter (EKF), throughout its 15-element error state vector, compensates the position, velocity and attitude errors of the INS solution, as well as IMU biases. This methodology is valid for any kind of motion (forward, lateral or backward walk, at different speeds), and does not require an offline calibration for the user gait. The integrated INS+RFID methodology eliminates the typical drift of IMU-alone solutions (approximately 1% of the total traveled distance), resulting in typical positioning errors along the walking path (no matter its length) of approximately 1.5 m.

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In this paper we present a novel Radio Frequency Identification (RFID) system for accurate indoor localization. The system is composed of a standard Ultra High Frequency (UHF), ISO-18006C compliant RFID reader, a large set of standard passive RFID tags whose locations are known, and a newly developed tag-like RFID component that is attached to the items that need to be localized. The new semi-passive component, referred to as sensatag (sense-a-tag), has a dual functionality wherein it can sense the communication between the reader and standard tags which are in its proximity, and also communicate with the reader like standard tags using backscatter modulation. Based on the information conveyed by the sensatags to the reader, localization algorithms based on binary sensor principles can be developed. We present results from real measurements that show the accuracy of the proposed system.

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After the extraordinary spread of the World Wide Web during the last fifteen years, engineers and developers are pushing now the Internet to its next border. A new conception in computer science and networks communication has been burgeoning during roughly the last decade: a world where most of the computers of the future will be extremely downsized, to the point that they will look like dust at its most advanced prototypes. In this vision, every single element of our “real” world has an intelligent tag that carries all their relevant data, effectively mapping the “real” world into a “virtual” one, where all the electronically augmented objects are present, can interact among them and influence with their behaviour that of the other objects, or even the behaviour of a final human user. This is the vision of the Internet of the Future, which also draws ideas of several novel tendencies in computer science and networking, as pervasive computing and the Internet of Things. As it has happened before, materializing a new paradigm that changes the way entities interrelate in this new environment has proved to be a goal full of challenges in the way. Right now the situation is exciting, with a plethora of new developments, proposals and models sprouting every time, often in an uncoordinated, decentralised manner away from any standardization, resembling somehow the status quo of the first developments of advanced computer networking, back in the 60s and the 70s. Usually, a system designed after the Internet of the Future will consist of one or several final user devices attached to these final users, a network –often a Wireless Sensor Network- charged with the task of collecting data for the final user devices, and sometimes a base station sending the data for its further processing to less hardware-constrained computers. When implementing a system designed with the Internet of the Future as a pattern, issues, and more specifically, limitations, that must be faced are numerous: lack of standards for platforms and protocols, processing bottlenecks, low battery lifetime, etc. One of the main objectives of this project is presenting a functional model of how a system based on the paradigms linked to the Internet of the Future works, overcoming some of the difficulties that can be expected and showing a model for a middleware architecture specifically designed for a pervasive, ubiquitous system. This Final Degree Dissertation is divided into several parts. Beginning with an Introduction to the main topics and concepts of this new model, a State of the Art is offered so as to provide a technological background. After that, an example of a semantic and service-oriented middleware is shown; later, a system built by means of this semantic and service-oriented middleware, and other components, is developed, justifying its placement in a particular scenario, describing it and analysing the data obtained from it. Finally, the conclusions inferred from this system and future works that would be good to be tackled are mentioned as well. RESUMEN Tras el extraordinario desarrollo de la Web durante los últimos quince años, ingenieros y desarrolladores empujan Internet hacia su siguiente frontera. Una nueva concepción en la computación y la comunicación a través de las redes ha estado floreciendo durante la última década; un mundo donde la mayoría de los ordenadores del futuro serán extremadamente reducidas de tamaño, hasta el punto que parecerán polvo en sus más avanzado prototipos. En esta visión, cada uno de los elementos de nuestro mundo “real” tiene una etiqueta inteligente que porta sus datos relevantes, mapeando de manera efectiva el mundo “real” en uno “virtual”, donde todos los objetos electrónicamente aumentados están presentes, pueden interactuar entre ellos e influenciar con su comportamiento el de los otros, o incluso el comportamiento del usuario final humano. Ésta es la visión del Internet del Futuro, que también toma ideas de varias tendencias nuevas en las ciencias de la computación y las redes de ordenadores, como la computación omnipresente y el Internet de las Cosas. Como ha sucedido antes, materializar un nuevo paradigma que cambia la manera en que las entidades se interrelacionan en este nuevo entorno ha demostrado ser una meta llena de retos en el camino. Ahora mismo la situación es emocionante, con una plétora de nuevos desarrollos, propuestas y modelos brotando todo el rato, a menudo de una manera descoordinada y descentralizada lejos de cualquier estandarización, recordando de alguna manera el estado de cosas de los primeros desarrollos de redes de ordenadores avanzadas, allá por los años 60 y 70. Normalmente, un sistema diseñado con el Internet del futuro como modelo consistirá en uno o varios dispositivos para usuario final sujetos a estos usuarios finales, una red –a menudo, una red de sensores inalámbricos- encargada de recolectar datos para los dispositivos de usuario final, y a veces una estación base enviando los datos para su consiguiente procesado en ordenadores menos limitados en hardware. Al implementar un sistema diseñado con el Internet del futuro como patrón, los problemas, y más específicamente, las limitaciones que deben enfrentarse son numerosas: falta de estándares para plataformas y protocolos, cuellos de botella en el procesado, bajo tiempo de vida de las baterías, etc. Uno de los principales objetivos de este Proyecto Fin de Carrera es presentar un modelo funcional de cómo trabaja un sistema basado en los paradigmas relacionados al Internet del futuro, superando algunas de las dificultades que pueden esperarse y mostrando un modelo de una arquitectura middleware específicamente diseñado para un sistema omnipresente y ubicuo. Este Proyecto Fin de Carrera está dividido en varias partes. Empezando por una introducción a los principales temas y conceptos de este modelo, un estado del arte es ofrecido para proveer un trasfondo tecnológico. Después de eso, se muestra un ejemplo de middleware semántico orientado a servicios; después, se desarrolla un sistema construido por medio de este middleware semántico orientado a servicios, justificando su localización en un escenario particular, describiéndolo y analizando los datos obtenidos de él. Finalmente, las conclusiones extraídas de este sistema y las futuras tareas que sería bueno tratar también son mencionadas.

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Distributed real-time embedded systems are becoming increasingly important to society. More demands will be made on them and greater reliance will be placed on the delivery of their services. A relevant subset of them is high-integrity or hard real-time systems, where failure can cause loss of life, environmental harm, or significant financial loss. Additionally, the evolution of communication networks and paradigms as well as the necessity of demanding processing power and fault tolerance, motivated the interconnection between electronic devices; many of the communications have the possibility of transferring data at a high speed. The concept of distributed systems emerged as systems where different parts are executed on several nodes that interact with each other via a communication network. Java’s popularity, facilities and platform independence have made it an interesting language for the real-time and embedded community. This was the motivation for the development of RTSJ (Real-Time Specification for Java), which is a language extension intended to allow the development of real-time systems. The use of Java in the development of high-integrity systems requires strict development and testing techniques. However, RTJS includes a number of language features that are forbidden in such systems. In the context of the HIJA project, the HRTJ (Hard Real-Time Java) profile was developed to define a robust subset of the language that is amenable to static analysis for high-integrity system certification. Currently, a specification under the Java community process (JSR- 302) is being developed. Its purpose is to define those capabilities needed to create safety critical applications with Java technology called Safety Critical Java (SCJ). However, neither RTSJ nor its profiles provide facilities to develop distributed realtime applications. This is an important issue, as most of the current and future systems will be distributed. The Distributed RTSJ (DRTSJ) Expert Group was created under the Java community process (JSR-50) in order to define appropriate abstractions to overcome this problem. Currently there is no formal specification. The aim of this thesis is to develop a communication middleware that is suitable for the development of distributed hard real-time systems in Java, based on the integration between the RMI (Remote Method Invocation) model and the HRTJ profile. It has been designed and implemented keeping in mind the main requirements such as the predictability and reliability in the timing behavior and the resource usage. iThe design starts with the definition of a computational model which identifies among other things: the communication model, most appropriate underlying network protocols, the analysis model, and a subset of Java for hard real-time systems. In the design, the remote references are the basic means for building distributed applications which are associated with all non-functional parameters and resources needed to implement synchronous or asynchronous remote invocations with real-time attributes. The proposed middleware separates the resource allocation from the execution itself by defining two phases and a specific threading mechanism that guarantees a suitable timing behavior. It also includes mechanisms to monitor the functional and the timing behavior. It provides independence from network protocol defining a network interface and modules. The JRMP protocol was modified to include two phases, non-functional parameters, and message size optimizations. Although serialization is one of the fundamental operations to ensure proper data transmission, current implementations are not suitable for hard real-time systems and there are no alternatives. This thesis proposes a predictable serialization that introduces a new compiler to generate optimized code according to the computational model. The proposed solution has the advantage of allowing us to schedule the communications and to adjust the memory usage at compilation time. In order to validate the design and the implementation a demanding validation process was carried out with emphasis in the functional behavior, the memory usage, the processor usage (the end-to-end response time and the response time in each functional block) and the network usage (real consumption according to the calculated consumption). The results obtained in an industrial application developed by Thales Avionics (a Flight Management System) and in exhaustive tests show that the design and the prototype are reliable for industrial applications with strict timing requirements. Los sistemas empotrados y distribuidos de tiempo real son cada vez más importantes para la sociedad. Su demanda aumenta y cada vez más dependemos de los servicios que proporcionan. Los sistemas de alta integridad constituyen un subconjunto de gran importancia. Se caracterizan por que un fallo en su funcionamiento puede causar pérdida de vidas humanas, daños en el medio ambiente o cuantiosas pérdidas económicas. La necesidad de satisfacer requisitos temporales estrictos, hace más complejo su desarrollo. Mientras que los sistemas empotrados se sigan expandiendo en nuestra sociedad, es necesario garantizar un coste de desarrollo ajustado mediante el uso técnicas adecuadas en su diseño, mantenimiento y certificación. En concreto, se requiere una tecnología flexible e independiente del hardware. La evolución de las redes y paradigmas de comunicación, así como la necesidad de mayor potencia de cómputo y de tolerancia a fallos, ha motivado la interconexión de dispositivos electrónicos. Los mecanismos de comunicación permiten la transferencia de datos con alta velocidad de transmisión. En este contexto, el concepto de sistema distribuido ha emergido como sistemas donde sus componentes se ejecutan en varios nodos en paralelo y que interactúan entre ellos mediante redes de comunicaciones. Un concepto interesante son los sistemas de tiempo real neutrales respecto a la plataforma de ejecución. Se caracterizan por la falta de conocimiento de esta plataforma durante su diseño. Esta propiedad es relevante, por que conviene que se ejecuten en la mayor variedad de arquitecturas, tienen una vida media mayor de diez anos y el lugar ˜ donde se ejecutan puede variar. El lenguaje de programación Java es una buena base para el desarrollo de este tipo de sistemas. Por este motivo se ha creado RTSJ (Real-Time Specification for Java), que es una extensión del lenguaje para permitir el desarrollo de sistemas de tiempo real. Sin embargo, RTSJ no proporciona facilidades para el desarrollo de aplicaciones distribuidas de tiempo real. Es una limitación importante dado que la mayoría de los actuales y futuros sistemas serán distribuidos. El grupo DRTSJ (DistributedRTSJ) fue creado bajo el proceso de la comunidad de Java (JSR-50) con el fin de definir las abstracciones que aborden dicha limitación, pero en la actualidad aun no existe una especificacion formal. El objetivo de esta tesis es desarrollar un middleware de comunicaciones para el desarrollo de sistemas distribuidos de tiempo real en Java, basado en la integración entre el modelo de RMI (Remote Method Invocation) y el perfil HRTJ. Ha sido diseñado e implementado teniendo en cuenta los requisitos principales, como la predecibilidad y la confiabilidad del comportamiento temporal y el uso de recursos. El diseño parte de la definición de un modelo computacional el cual identifica entre otras cosas: el modelo de comunicaciones, los protocolos de red subyacentes más adecuados, el modelo de análisis, y un subconjunto de Java para sistemas de tiempo real crítico. En el diseño, las referencias remotas son el medio básico para construcción de aplicaciones distribuidas las cuales son asociadas a todos los parámetros no funcionales y los recursos necesarios para la ejecución de invocaciones remotas síncronas o asíncronas con atributos de tiempo real. El middleware propuesto separa la asignación de recursos de la propia ejecución definiendo dos fases y un mecanismo de hebras especifico que garantiza un comportamiento temporal adecuado. Además se ha incluido mecanismos para supervisar el comportamiento funcional y temporal. Se ha buscado independencia del protocolo de red definiendo una interfaz de red y módulos específicos. También se ha modificado el protocolo JRMP para incluir diferentes fases, parámetros no funcionales y optimizaciones de los tamaños de los mensajes. Aunque la serialización es una de las operaciones fundamentales para asegurar la adecuada transmisión de datos, las actuales implementaciones no son adecuadas para sistemas críticos y no hay alternativas. Este trabajo propone una serialización predecible que ha implicado el desarrollo de un nuevo compilador para la generación de código optimizado acorde al modelo computacional. La solución propuesta tiene la ventaja que en tiempo de compilación nos permite planificar las comunicaciones y ajustar el uso de memoria. Con el objetivo de validar el diseño e implementación se ha llevado a cabo un exigente proceso de validación con énfasis en: el comportamiento funcional, el uso de memoria, el uso del procesador (tiempo de respuesta de extremo a extremo y en cada uno de los bloques funcionales) y el uso de la red (consumo real conforme al estimado). Los buenos resultados obtenidos en una aplicación industrial desarrollada por Thales Avionics (un sistema de gestión de vuelo) y en las pruebas exhaustivas han demostrado que el diseño y el prototipo son fiables para aplicaciones industriales con estrictos requisitos temporales.

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Intraoral devices for bite-force sensing have several applications in odontology and maxillofacial surgery, as bite-force measurements provide additional information to help understand the characteristics of bruxism disorders and can also be of help for the evaluation of post-surgical evolution and for comparison of alternative treatments. A new system for measuring human bite forces is proposed in this work. This system has future applications for the monitoring of bruxism events and as a complement for its conventional diagnosis. Bruxism is a pathology consisting of grinding or tight clenching of the upper and lower teeth, which leads to several problems such as lesions to the teeth, headaches, orofacial pain and important disorders of the temporomandibular joint. The prototype uses a magnetic field communication scheme similar to low-frequency radio frequency identification (RFID) technology (NFC). The reader generates a low-frequency magnetic field that is used as the information carrier and powers the sensor. The system is notable because it uses an intra-mouth passive sensor and an external interrogator, which remotely records and processes information regarding a patient?s dental activity. This permits a quantitative assessment of bite-force, without requiring intra-mouth batteries, and can provide supplementary information to polysomnographic recordings, current most adequate early diagnostic method, so as to initiate corrective actions before irreversible dental wear appears. In addition to describing the system?s operational principles and the manufacture of personalized prototypes, this report will also demonstrate the feasibility of the system and results from the first in vitro and in vivo trials.

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Wireless Sensor Networks (WSNs) are spearheading the efforts taken to build and deploy systems aiming to accomplish the ultimate objectives of the Internet of Things. Due to the sensors WSNs nodes are provided with, and to their ubiquity and pervasive capabilities, these networks become extremely suitable for many applications that so-called conventional cabled or wireless networks are unable to handle. One of these still underdeveloped applications is monitoring physical parameters on a person. This is an especially interesting application regarding their age or activity, for any detected hazardous parameter can be notified not only to the monitored person as a warning, but also to any third party that may be helpful under critical circumstances, such as relatives or healthcare centers. We propose a system built to monitor a sportsman/woman during a workout session or performing a sport-related indoor activity. Sensors have been deployed by means of several nodes acting as the nodes of a WSN, along with a semantic middleware development used for hardware complexity abstraction purposes. The data extracted from the environment, combined with the information obtained from the user, will compose the basis of the services that can be obtained.

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The traditional power grid is just a one-way supplier that gets no feedback data about the energy delivered, what tariffs could be the most suitable ones for customers, the shifting daily needs of electricity in a facility, etc. Therefore, it is only natural that efforts are being invested in improving power grid behavior and turning it into a Smart Grid. However, to this end, several components have to be either upgraded or created from scratch. Among the new components required, middleware appears as a critical one, for it will abstract all the diversity of the used devices for power transmission (smart meters, embedded systems, etc.) and will provide the application layer with a homogeneous interface involving power production and consumption management data that were not able to be provided before. Additionally, middleware is expected to guarantee that updates to the current metering infrastructure (changes in service or hardware availability) or any added legacy measuring appliance will get acknowledged for any future request. Finally, semantic features are of major importance to tackle scalability and interoperability issues. A survey on the most prominent middleware architectures for Smart Grids is presented in this paper, along with an evaluation of their features and their strong points and weaknesses.

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Among the main features that are intended to become part of what can be expected from the Smart City, one of them should be an improved energy management system, in order to benefit from a healthier relation with the environment, minimize energy expenses, and offer dynamic market opportunities. A Smart Grid seems like a very suitable infrastructure for this objective, as it guarantees a two-way information flow that will provide the means for energy management enhancement. However, to obtain all the required information, another entity must care about all the devices required to gather the data. What is more, this entity must consider the lifespan of the devices within the Smart Grid—when they are turned on and off or when new appliances are added—along with the services that devices are able to provide. This paper puts forward SMArc—an acronym for semantic middleware architecture—as a middleware proposal for the Smart Grid, so as to process the collected data and use it to insulate applications from the complexity of the metering facilities and guarantee that any change that may happen at these lower levels will be updated for future actions in the system.

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There is an increasing tendency of turning the current power grid, essentially unaware of variations in electricity demand and scattered energy sources, into something capable of bringing a degree of intelligence by using tools strongly related to information and communication technologies, thus turning into the so-called Smart Grid. In fact, it could be considered that the Smart Grid is an extensive smart system that spreads throughout any area where power is required, providing a significant optimization in energy generation, storage and consumption. However, the information that must be treated to accomplish these tasks is challenging both in terms of complexity (semantic features, distributed systems, suitable hardware) and quantity (consumption data, generation data, forecasting functionalities, service reporting), since the different energy beneficiaries are prone to be heterogeneous, as the nature of their own activities is. This paper presents a proposal on how to deal with these issues by using a semantic middleware architecture that integrates different components focused on specific tasks, and how it is used to handle information at every level and satisfy end user requests.

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Este trabajo presenta un sistema de posicionamiento local (LPS) para personas en entornos interiores basado en la combinación de tecnología RFID activa y una metodología bayesiana de estimación de la posición a partir de la fuerza de las señales de RF recibidas. La complejidad inherente a la propagación de las ondas de RF en entornos interiores causa grandes fluctuaciones en el nivel de la fuerza de la señal, por lo que las técnicas bayesianas, de naturaleza estadística, tienen ventajas significativas frente a métodos de posicionamiento más comunes, como multilateración, minimización cuadrática o localización por fingerprinting. En la validación experimental del sistema RFID-LPS se consigue un error de posicionamiento medio de 2.10 m (mediana de 1.84 m y 3.89 m en el 90% de los casos), en un área abarcada de 475 m2 con 29 tags RFID, y con velocidades de desplazamiento de hasta 0.5 m/s, prestaciones iguales o superiores a otros sistemas del estado del arte. Aunque existen precedentes en Robótica móvil, la combinación de métodos bayesianos y tecnología RFID activa usada en este trabajo es original en el marco de los sistemas de localización de personas, cuyos desplazamientos son generalmente más impredecibles que los de los robots. Otros aspectos novedosos investigados son la posibilidad de alcanzar una estimación conjunta de posición y orientación de un usuario con dos métodos distintos (uso de antenas directivas y aprovechamiento de la atenuación de la señal de RF por el cuerpo humano), la escalabilidad del sistema RFID-LPS, y la estimación de la posición por técnicas bayesianas en sistemas simples que pueden detectar los marcadores RFID, pero no medir su fuerza de señal.

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El objetivo de este proyecto es el estudio de soluciones de escalabilidad y alta disponibilidad en sistemas distribuidos, así como su implantación en aquel de los sistemas analizados por Telefónica Digital, PopBox y Rush, que se consideré más adecuado. Actualmente, muchos servicios y aplicaciones están alojados directamente en laWeb, permitiendo abaratar el uso de ciertos servicios y mejorando la productividad y la competitividad de las empresas que los usan. Este crecimiento de las tecnologías en cloud experimentado en los últimos años plantea la necesidad de realizar sistemas que sean escalables, fiables y estén disponibles la mayor parte del tiempo posible. Un fallo en el servicio no afecta a una sola empresa, sino a todas las que están haciendo uso de dicho servicio. A lo largo de este proyecto se estudiarán las soluciones de alta disponibilidad y escalabilidad implementadas en varios sistemas distribuidos y se realizará una evaluación crítica de cada una de ellas. También se analizará la idoneidad de estas soluciones para los sistemas en los que posteriormente se aplicarán: PopBox y Rush. Se han diseñado diferentes soluciones para las plataformas implicadas, siguiendo varias aproximaciones y realizando un análisis exhaustivo de cada una de ellas, teniendo en cuenta el rendimiento y fiabilidad de cada aproximación. Una vez se ha determinado cuál es la estrategia más adecuada, se ha realizado una implementación fiable del sistema. Para cada uno de los módulos implementados se ha llevado a cabo una fase de testing unitario y de integración para asegurar el buen comportamiento del sistema y la integridad de éste cuando se realicen cambios. Específicamente, los objetivos que se alcanzarán son los siguientes: 1. Análisis exhaustivo de los sistemas de escalabilidad y alta escalabilidad que existen actualmente. 2. Diseño de una solución general HA1 y escalable teniendo en cuenta el objetivo anterior. 3. Análisis de la idoneidad de los sistemas PopBox y Rush para el diseño de un entorno distribuido escalable. 4. Diseño e implantación de una solución ad-hoc en el sistema elegido. ---ABSTRACT---The aim of this project is the study of solutions in scalability and high availability in distributed systems, and also its implementation in one of the systems developed y Telefónica I+D, PopBox and Rush, deemed more suitable. Nowadays, a lot of services and applications are stored directly in the Web, allowing companies to reduce the costs of using certain services and improving the productivity and competitiveness of those who use these services. This increase of the use of cloud tecnologies experimented in the last few years has led to the need of developing high available, scalable, and reliable systems. A failure in the service does not affect a single company but all the companies using this service. Throughout this project, I will study several solutions in High Availability and Scalability developed in some distributed systems and I will make a critic analysis of each one. Also I will analize the suitability of these solutions in the systems in which they will be applied: PopBox and Rush. I have designed different solutions for the platforms involved, following several approaches and making an exhaustive analysis of each one, taking into account their performance and reliability of each approach. Once I had determined which is the best strategy, I have developed a reliable implementation of the system. For each module implemented, I have carried out a set of unitary and integration tests to ensure the good behaviour of the system and the integrity of it when it changes. Specifically, the objectives to be achieved are as follows: 1. Exhaustive analysis of the systems in scalability and high availability that currently exist. 2. Design of a general solution taking into account the previous point. 3. Analysis of the suitability of the sistems PopBox and Rush for the design of a scalable distributed system. 4. Design and implementation of an ad-hoc solution in the chosen system.

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Son muchos los dominios de aplicación que han surgido en los últimos años con motivo de los avances tecnológicos. Algunos como eHealth, Smart Building o Smart Grid están teniendo una gran aceptación por parte de empresas que incrementan sus inversiones en este tipo de campos. Las redes inalámbricas de sensores y actuadores juegan un papel fundamental en el desarrollo de este tipo de aplicaciones. A través de este tipo de redes inalámbricas es posible monitorizar y actuar sobre un entorno gracias a nodos sensores y actuadores de forma cómoda y sencilla. Las WSANs (Wireless Sensors and Actuators Networks) junto con la robótica y M2M (Machine-to-Machine) están forjando el camino hacia el Internet of Things (IoT), un futuro en el que todo esté conectado entre sí. Cada vez aparecen dispositivos más pequeños y autónomos, que junto con el crecimiento de las redes, propician la interconexión de “el todo”. Este Proyecto Fin de Carrera tiene como objetivo contribuir en este avance, desarrollando parcialmente una solución middleware que abstraiga al usuario de la complejidad del hardware, implementando ciertas funcionalidades ofrecidas por el middleware nSOM desarrollado por la UPM. Para conseguir este objetivo se realizará un estudio del Estado del Arte actual y una comparativa de las diferentes plataformas hardware involucradas en las Redes Inalámbricas de Sensores y Actuadores (Wireless Sensor-Actuator Networks). Este estudio tendrá como fin la elección de una de las plataformas hardware para su futuro uso en un despliegue parcial del mencionado middleware nSOM. Posteriormente, se diseñará e implementará un sistema para ejemplificar un caso de uso sobre dicha plataforma integrando la publicación de las características y servicios de cada nodo final y el envío de peticiones y la recepción de respuestas. Finalmente se obtendrá un conjunto de conclusiones a partir de los resultados obtenidos y se detallarán posibles líneas de trabajo. ABSTRACT. There are many applications domains that have arisen because of technological advances in recent years. Some as eHealth, Smart Building or Smart Grid are having a great acceptance by companies that increase their investments in such fields. Wireless sensors and actuators networks play a fundamental role in the development of such applications. By means of this kind of wireless network it is possible to monitor and act upon an environment with the assistance of sensors and actuators nodes, readily. The WSANs (Wireless Sensors and Actuators Networks) together with robotics and M2M (Machine-to-Machine) are forging the way towards the Internet of Things (IoT), a future in which all of them are connected among themselves. Smaller and more autonomous devices are appearing that, along with the growth of networks, foster the interconnection of ‘the whole’. This Degree Final Project aims to contribute to this breakthrough, developing partially a middleware solution that abstracts the user from the complexity of hardware, implementing certain functionalities offered by the nSOM middleware solution carried out by UPM. To achieve this objective a study of the current state of the art and a comparison of the different hardware platforms involved in the Wireless and Actuators Sensor Networks (Wireless Sensor-Actuator Networks) will be performed. This study will aim the election of one of the hardware platforms for its future use in a partial deployment of the mentioned middleware nSOM. Subsequently, a system will be designed and implemented to exemplify a use case on the platform mentioned before integrating the publication of the features and services of each end node and sending requests and receiving responses. Finally a set of conclusions from the results will be stated and possible lines of future works will be detailed.

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La fermentación de las bayas de café se considera una et apa crítica en el procesado del café debido a su impacto en la calidad final del producto. La temperatura es una de las principales variables de control que puede ser utilizada para predecir el final del proceso, teniendo en cuenta que varios autores indican que el control de esta etapa es fundamental para evitar la mala calidad de la be bida final. En la práctica, la fermentación es el paso menos controlado del proceso, haciendo que los beneficiaderos operen lejos de sus condiciones óptimas en términos de costes de operación (es decir, elevados consumos de energía y agua) y de calidad del producto final. El objetivo de este trabajo es caracterizar los gradientes de temperatura que se dan en los tanques de fermentación mediante una red multi-distribuida de sensores autónomos, inalámbricos y de bajo coste (registradores de temperatura del tipo RFID, identificadores de radiofrecuencia semipasivos modelo TurboTag®).Para ello se utilizan dos metodologías: la interpolación espacial en coordenadas polares y los diagramas de espacio de fase. Se supervisaron dos fermentaciones reales de café, en El Cauca (Colombia), mediante sensores sumergidos directamente en la masa en fermentación. Los fermentadores eran tanques de plástico cubiertos, uno de ellos colocado en el interior de un almacén, permaneciendo el otro a la intemperie. El rango de variación máximo de temperatura en los tanques fue de 4,5ºC. La interpolación espacial mostró, incluso en el fermentador bajo las condiciones menos desfavorables en el interior del almacén, un gradiente radial de temperatura instantáneo de 0,1 °C/cm desde el centro hasta el perímetro del tanque y un gradiente vertical de temperatura de 0,25 °C/cm para sensores con coordenadas polares iguales. La combinación de ambas metodologías permitió la identificación consistente de los puntos calientes y fríos de ambas fermentaciones.