25 resultados para M2M


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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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A medida que la sociedad avanza, la cantidad de datos almacenados en sistemas de información y procesados por las aplicaciones y servidores software se eleva exponencialmente. Además, las nuevas tecnologías han confiado su desarrollo en la red internacionalmente conectada: Internet. En consecuencia, se han aprovechado las conexiones máquina a máquina (M2M) mediante Internet y se ha desarrollado el concepto de "Internet de las Cosas", red de dispositivos y terminales donde cualquier objeto cotidiano puede establecer conexiones con otros objetos o con un teléfono inteligente mediante los servicios desplegados en dicha red. Sin embargo, estos nuevos datos y eventos se deben procesar en tiempo real y de forma eficaz, para reaccionar ante cualquier situación. Así, las arquitecturas orientadas a eventos solventan la comprensión del intercambio de mensajes en tiempo real. De esta forma, una EDA (Event-Driven Architecture) brinda la posibilidad de implementar una arquitectura software con una definición exhaustiva de los mensajes, notificándole al usuario los hechos que han ocurrido a su alrededor y las acciones tomadas al respecto. Este Trabajo Final de Grado se centra en el estudio de las arquitecturas orientadas a eventos, contrastándolas con el resto de los principales patrones arquitectónicos. Esta comparación se ha efectuado atendiendo a los requisitos no funcionales de cada uno, como, por ejemplo, la seguridad frente a amenazas externas. Asimismo, el objetivo principal es el estudio de las arquitecturas EDA (Event-Driven Architecture) y su relación con la red de Internet de las Cosas, que permite a cualquier dispositivo acceder a los servicios desplegados en esa red mediante Internet. El objeto del TFG es observar y verificar las ventajas de esta arquitectura, debido a su carácter de tipo inmediato, mediante el envío y recepción de mensajes en tiempo real y de forma asíncrona. También se ha realizado un estudio del estado del arte de estos patrones de arquitectura software, así como de la red de IoT (Internet of Things) y sus servicios. Por otro lado, junto con este TFG se ha desarrollado una simulación de una EDA completa, con todos sus elementos: productores, consumidores y procesador de eventos complejo, además de la visualización de los datos. Para ensalzar los servicios prestados por la red de IoT y su relación con una arquitectura EDA, se ha implementado una simulación de un servicio personalizado de Tele-asistencia. Esta prueba de concepto ha ayudado a reforzar el aprendizaje y entender con más precisión todo el conocimiento adquirido mediante el estudio teórico de una EDA. Se ha implementado en el lenguaje de programación Java, mediante las soluciones de código abierto RabbitMQ y Esper, ayudando a su unión el estándar AMQP, para completar correctamente la transferencia.

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Con objeto de conocer la influencia de las características geométricas de viñedos (Vitis vinifera L.) conducidos en espaldera sobre la interceptación de radiación solar, se desarrolló un estudio en dos viñedos de la variedad ¿Tempranillo¿ entre los años 2005 y 2008. Estos viñedos tenían diferentes distancias entre filas -2, 2,5 y 3 m-, alturas de vegetación -de 0,9 a 1,4 m- y densidades de vegetación -de 6 a 14 pámpanos/metro lineal. Desde cuajado hasta mediados de maduración se midió la radiación interceptada (Ri), a lo largo del día y con frecuencia horaria, con un sensor lineal de PAR, posicionándolo por encima de la vegetación en horizontal para medir la radiación incidente (Ro), y por debajo de la vegetación en horizontal, consecutivamente hasta cubrir la distancia entre dos filas adyacentes, para medir la radiación transmitida (Rt). También se midieron el índice de área foliar total (IAFT), el índice de área foliar externa (IAFE) y el volumen ocupado por la vegetación (V). IAFT varió entre 0,9 y 2,4 m2m-2, y IAFE entre 0,7 y 1,6 m2m-2. La eficiencia de interceptación de radiación (Ei) aumentó desde 0,2 hasta 0,6 al aumentar la superficie foliar. La disminución de la distancia entre filas y el aumento de la altura de vegetación supusieron aumentos de Ei. IAFTse relacionó con el coeficiente de transmisión de la radiación (T) de forma exponencial, de acuerdo con la ley de Beer. El coeficiente de transmisión global diario (T) y el coeficiente de transmisión mínimo diario (Tmin) se mostraron como buenos estimadores de IAFT. El amontonamiento de la vegetación redujo Ei. Así, a medida que aumentaron las relacionesIAFT/IAFE, y IAFT/V(densidad de superficie foliar) disminuyó el coeficiente de extinción (K). De estos dos índices, IAFT/V fue el que más estrechamente se relacionó con K.

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The low-energy consumption of IEEE 802.15.4 networks makes it a strong candidate for machine-to-machine (M2M) communications. As multiple M2M applications with 802.15.4 networks may be deployed closely and independently in residential or enterprise areas, supporting reliable and timely M2M communications can be a big challenge especially when potential hidden terminals appear. In this paper, we investigate two scenarios of 802.15.4 network-based M2M communication. An analytic model is proposed to understand the performance of uncoordinated coexisting 802.15.4 networks. Sleep mode operations of the networks are taken into account. Simulations verified the analytic model. It is observed that reducing sleep time and overlap ratio can increase the performance of M2M communications. When the networks are uncoordinated, reducing the overlap ratio can effectively improve the network performance. © 2012 Chao Ma et al.

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IEEE 802.15.4 standard has been proposed for low power wireless personal area networks. It can be used as an important component in machine to machine (M2M) networks for data collection, monitoring and controlling functions. With an increasing number of machine devices enabled by M2M technology and equipped with 802.15.4 radios, it is likely that multiple 802.15.4 networks may be deployed closely, for example, to collect data for smart metering at residential or enterprise areas. In such scenarios, supporting reliable communications for monitoring and controlling applications is a big challenge. The problem becomes more severe due to the potential hidden terminals when the operations of multiple 802.15.4 networks are uncoordinated. In this paper, we investigate this problem from three typical scenarios and propose an analytic model to reveal how performance of coexisting 802.15.4 networks may be affected by uncoordinated operations under these scenarios. Simulations will be used to validate the analytic model. It is observed that uncoordinated operations may lead to a significant degradation of system performance in M2M applications. With the proposed analytic model, we also investigate the performance limits of the 802.15.4 networks, and the conditions under which coordinated operations may be required to support M2M applications. © 2012 Springer Science + Business Media, LLC.

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Cognitive radio (CR) is fast emerging as a promising technology that can meet the machine-to machine (M2M) communication requirements for spectrum utilization and power control for large number of machines/devices expected to be connected to the Internet-of Things (IoT). Power control in CR as a secondary user can been modelled as a non-cooperative game cost function to quantify and reduce its effects of interference while occupying the same spectrum as primary user without adversely affecting the required quality of service (QoS) in the network. In this paper a power loss exponent that factors in diverse operating environments for IoT is employed in the non-cooperative game cost function to quantify the required power of transmission in the network. The approach would enable various CRs to transmit with lesser power thereby saving battery consumption or increasing the number of secondary users thereby optimizing the network resources efficiently.

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The wide adaptation of Internet Protocol (IP) as de facto protocol for most communication networks has established a need for developing IP capable data link layer protocol solutions for Machine to machine (M2M) and Internet of Things (IoT) networks. However, the wireless networks used for M2M and IoT applications usually lack the resources commonly associated with modern wireless communication networks. The existing IP capable data link layer solutions for wireless IoT networks provide the necessary overhead minimising and frame optimising features, but are often built to be compatible only with IPv6 and specific radio platforms. The objective of this thesis is to design IPv4 compatible data link layer for Netcontrol Oy's narrow band half-duplex packet data radio system. Based on extensive literature research, system modelling and solution concept testing, this thesis proposes the usage of tunslip protocol as the basis for the system data link layer protocol development. In addition to the functionality of tunslip, this thesis discusses the additional network, routing, compression, security and collision avoidance changes required to be made to the radio platform in order for it to be IP compatible while still being able to maintain the point-to-multipoint and multi-hop network characteristics. The data link layer design consists of the radio application, dynamic Maximum Transmission Unit (MTU) optimisation daemon and the tunslip interface. The proposed design uses tunslip for creating an IP capable data link protocol interface. The radio application receives data from tunslip and compresses the packets and uses the IP addressing information for radio network addressing and routing before forwarding the message to radio network. The dynamic MTU size optimisation daemon controls the tunslip interface maximum MTU size according to the link quality assessment calculated from the radio network diagnostic data received from the radio application. For determining the usability of tunslip as the basis for data link layer protocol, testing of the tunslip interface is conducted with both IEEE 802.15.4 radios and packet data radios. The test cases measure the radio network usability for User Datagram Protocol (UDP) based applications without applying any header or content compression. The test results for the packet data radios reveal that the typical success rate for packet reception through a single-hop link is above 99% with a round-trip-delay of 0.315s for 63B packets.

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The number of connected devices collecting and distributing real-world information through various systems, is expected to soar in the coming years. As the number of such connected devices grows, it becomes increasingly difficult to store and share all these new sources of information. Several context representation schemes try to standardize this information, but none of them have been widely adopted. In previous work we addressed this challenge, however our solution had some drawbacks: poor semantic extraction and scalability. In this paper we discuss ways to efficiently deal with representation schemes' diversity and propose a novel d-dimension organization model. Our evaluation shows that d-dimension model improves scalability and semantic extraction.

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In recent years the technological world has grown by incorporating billions of small sensing devices, collecting and sharing real-world information. As the number of such devices grows, it becomes increasingly difficult to manage all these new information sources. There is no uniform way to share, process and understand context information. In previous publications we discussed efficient ways to organize context information that is independent of structure and representation. However, our previous solution suffers from semantic sensitivity. In this paper we review semantic methods that can be used to minimize this issue, and propose an unsupervised semantic similarity solution that combines distributional profiles with public web services. Our solution was evaluated against Miller-Charles dataset, achieving a correlation of 0.6.

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The Internet of Things (IoT) has grown rapidly in recent years, leading to an increased need for efficient and secure communication between connected devices. Wireless Sensor Networks (WSNs) are composed of small, low-power devices that are capable of sensing and exchanging data, and are often used in IoT applications. In addition, Mesh WSNs involve intermediate nodes forwarding data to ensure more robust communication. The integration of Unmanned Aerial Vehicles (UAVs) in Mesh WSNs has emerged as a promising solution for increasing the effectiveness of data collection, as UAVs can act as mobile relays, providing extended communication range and reducing energy consumption. However, the integration of UAVs and Mesh WSNs still poses new challenges, such as the design of efficient control and communication strategies. This thesis explores the networking capabilities of WSNs and investigates how the integration of UAVs can enhance their performance. The research focuses on three main objectives: (1) Ground Wireless Mesh Sensor Networks, (2) Aerial Wireless Mesh Sensor Networks, and (3) Ground/Aerial WMSN integration. For the first objective, we investigate the use of the Bluetooth Mesh standard for IoT monitoring in different environments. The second objective focuses on deploying aerial nodes to maximize data collection effectiveness and QoS of UAV-to-UAV links while maintaining the aerial mesh connectivity. The third objective investigates hybrid WMSN scenarios with air-to-ground communication links. One of the main contribution of the thesis consists in the design and implementation of a software framework called "Uhura", which enables the creation of Hybrid Wireless Mesh Sensor Networks and abstracts and handles multiple M2M communication stacks on both ground and aerial links. The operations of Uhura have been validated through simulations and small-scale testbeds involving ground and aerial devices.