10 research outputs found

    Soluciones para la autenticación y gestión de subredes en manets y vanets

    Get PDF
    En los últimos años las redes inalámbricas están ganando cada vez más popularidad conforme sus prestaciones aumentan y se descubren nuevas aplicaciones. Dichas redes permiten a sus usuarios acceder a información y recursos en tiempo real sin necesidad de estar físicamente conectados. Además, ofrecen una gran flexibilidad a un bajo coste ya que en general no hay necesidad de usar instalaciones cableadas lo que implica que sean fácilmente desplegables. Es por eso que resultan muy útiles en entornos donde es muy costoso instalar infraestructuras fijas, como son entornos militares, agrícolas, situaciones de emergencia, etc. Las redes móviles ad-hoc o MANETs (Mobile Ad-hoc NETworks) son un tipo de red inalámbrica, distribuida y sin autoridad central en las que los nodos son móviles. El comportamiento de una MANET es en muchos aspectos similar al de una red Peer-TO-Peer (P2P) pues en ambos casos los nodos de la red reciben y envían información de forma descentralizada. La gestión de las MANETs conlleva muchas dificultades ya que por ejemplo su topología cambia constantemente debido a la movilidad de los nodos y a la inexistencia de una infraestructura fija. Las redes ad-hoc vehiculares o VANETs (Vehicular Ad-hoc NETworks) pueden considerarse un subconjunto de las MANETs en las que los nodos móviles son vehículos. En su definición clásica, las VANETs permiten comunicar información no solo entre las unidades a bordo u OBUs (On Board Units) situadas en los vehículos, sino también con la infraestructura de la carretera o RSU (Road Side Unit). El objetivo principal de estos sistemas es proporcionar un mejor conocimiento de las condiciones de las carreteras a los conductores para reducir el número de accidentes y lograr que la conducción sea más cómoda y fluida, reduciendo con ello la cantidad de CO2 que los vehículos expulsan a la atmósfera. Las redes ad-hoc son especialmente vulnerables a varios tipos de ataques, tanto activos como pasivos. Por ejemplo, un atacante puede intentar emular a un nodo legítimo y capturar paquetes de datos y de control, destruir tablas de encaminamiento, etc. En particular, los efectos de los ataques a las VANETs pueden ser muy destructivos, ya que pueden llegar incluso a causar muertes. Por este motivo, el propósito fundamental de la presente Tesis es la propuesta de nuevas herramientas que permitan proteger las redes móviles ad-hoc contra diferentes ataques, asegurando en la medida de lo posible que la generación de información, así como su retransmisión se realizan correctamente. Para ello, se proponen y analizan aquí nuevos esquemas de autenticación y gestión de subredes en MANETs y VANETs. Hay que destacar que las simulaciones juegan un papel fundamental en este trabajo ya que permiten analizar y evaluar el comportamiento de las propuestas realizadas a gran escala y en diversas condiciones. En particular, gran parte de los algoritmos diseñados en esta Tesis han sido simulados con el simulador de redes NS-2 y el simulador de tráfico SUMO. También son de gran interés en esta Tesis las implementaciones de algunas de las propuestas en dispositivos reales, ya que no sólo permiten evaluar su comportamiento en entornos reales, sino descubrir problemas que las simulaciones no detectan, y obtener datos reales para alimentar simulaciones a gran escala. Las implementaciones en dispositivos reales se han llevado a cabo en particular en la plataforma Windows Mobile usando Visual Studio 2008. Como resultado práctico de este trabajo, y en colaboración con otras investigaciones, surge VAiPho (VANET in Phones), que es una herramienta para la asistencia a la conducción. VAiPho permite crear una red vehicular real utilizando únicamente teléfonos móviles inteligentes, sin necesidad de instalar ningún tipo de infraestructura ni en los vehículos ni en la carretera. VAiPho cuenta ya con varias aplicaciones en entornos urbanos, tales como la detección de atascos, plazas de aparcamiento libres y vehículo aparcado. Dicha herramienta es el producto de la implementación de una patente presentada

    The r-evolution of driving: from Connected Vehicles to Coordinated Automated Road Transport (C-ART)

    No full text
    Connected and automated vehicles could revolutionise road transport. New traffic management approaches may become necessary, especially in light of a potential increase in travel demand. Coordinated Automated Road Transport (C-ART) is presented as a novel approach that stakeholders may consider for an eventual full realisation of a safe and efficient mobility system.JRC.C.4-Sustainable Transpor

    Algorithmes d'adressage et routage pour des réseaux fortement mobiles à grande échelle

    Get PDF
    After successfully connecting machines and people later (world wide web), the new era of In-ternet is about connecting things. Due to increasing demands in terms of addresses, mobility, scalability, security and other new unattended challenges, the evolution of current Internet archi-tecture is subject to major debate worldwide. The Internet Architecture Board (IAB) workshop on Routing and Addressing report described the serious scalability problems faced by large backbone operators in terms of routing and addressing, illustrated by the unsustainable growth of the Default Free Zone (DFZ) routing tables. Some proposals tackled the scalability and IP semantics overload issues with two different approaches: evolutionary approach (backward com-patibility) or a revolutionary approach. Several design objectives (technical or high-level) guided researchers in their proposals. Mobility is definitely one of the main challenges.Inter-Vehicle Communication (IVC) attracts considerable attention from the research com-munity and the industry for its potential in providing Intelligent Transportation Systems (ITS) and passengers services. Vehicular Ad-Hoc Networks (VANETs) are emerging as a class of wire-less network, formed between moving vehicles equipped with wireless interfaces (cellular and WiFi) employing heterogeneous communication systems. A VANET is a form of mobile ad-hoc network that provides IVC among nearby vehicles and may involve the use of a nearby fixed equipment on the roadside. The impact of Internet-based vehicular services (infotainment) are quickly developing. Some of these applications, driver assistance services or traffic reports, have been there for a while. But market-enabling applications may also be an argument in favor of a more convenient journey. Such use cases are viewed as a motivation to further adoption of the ITS standards developed within IEEE, ETSI, and ISO.This thesis focuses on applying Future Internet paradigm to vehicle-to-Internet communica-tions in an attempt to define the solution space of Future Vehicular Internet. We first introduce two possible vehicle-to-Internet use cases and great enablers for IP based services : eHealth and Fully-electric Vehicles. We show how to integrate those use cases into IPv6 enabled networks. We further focus on the mobility architectures and determine the fundamental components of a mobility architecture. We then classify those approaches into centralized and distributed to show the current trends in terms of network mobility extension, an essential component to vehicular networking. We eventually analyze the performance of these proposals. In order to define an identifier namespace for vehicular communications, we introduce the Vehicle Identification Numbers are possible candidates. We then propose a conversion algorithm that preserves the VIN characteristics while mapping it onto usable IPv6 networking objects (ad-dresses, prefixes, and Mobile Node Identifiers). We make use of this result to extend LISP-MN protocol with the support of our VIN6 addressing architecture. We also apply those results to group IP-based communications, when the cluster head is in charge of a group of followers.Cette thèse a pour objectif de faire avancer l'état de l'art des communications basée sur Internet Protocol version 6 (IPv6) dans le domaine des réseaux véhiculaires, et ce dans le cadre des évolutions récentes de IP, notamment l'avènement du Future Internet. Le Future Internet (F.I.) définit un ensemble d'approches pour faire évoluer l'Internet actuel , en particulier l'émergence d'un Internet mobile exigeant en ressources. Les acteurs de ce domaine définissent les contraintes inhérentes aux approches utilisées historiquement dans l'évolution de l'architecture d'Internet et tentent d'y remédier soit de manière évolutive soit par une rupture technologique (révolutionnaire). Un des problèmes au centre de cette nouvelle évolution d'Internet est la question du nommage et de l'adressage dans le réseau. Nous avons entrepris dans cette thèse l'étude de ce problème, dans le cadre restreint des communications véhiculaires Internet.Dans ce contexte, l'état de l'art du Future Internet a mis en avant les distinctions des approches révolutionnaires comparées aux propositions évolutives basées sur IPv6. Les réseaux véhiculaires étant d'ores-et-déjà dotés de piles protocolaires comprenant une extension IPv6, nous avons entamé une approche évolutive visant à intégrer les réseaux véhiculaires au Future Internet. Une première proposition a été de convertir un identifiant présent dans le monde automobile (VIN, Numéro d'Identification de Véhicule) en un lot d'adresses réseau propres à chaque véhicule (qui est donc propriétaire de son adressage issu de son identifiant). Cette proposition étant centrée sur le véhicule, nous avons ensuite intégré ces communications basés dans une architecture globale Future Internet basée sur IPv6 (protocole LISP). En particulier, et avec l'adressage VIN, nous avons défini un espace d'adressage indépendant des fournisseurs d'accès à Internet où le constructeur automobile devient acteur économique fournissant des services IPv6 à sa flotte de véhicules conjointement avec les opérateurs réseau dont il dépend pour transporter son trafic IP. Nous nous sommes ensuite intéressés à l'entourage proche du véhicule afin de définir un nouveau mode de communication inter-véhiculaire à Internet: le V2V2I (Angl. Vehicle-to-Vehicle-to-Infrastructure). Jusqu'à présent, les modes de transmission de données à Internet dans le monde du véhicule consistaient en des topologies V2I, à savoir véhicule à Internet, où le véhicule accède à l'infrastructure directement sans intermédiaire. Dans le cadre des communications véhiculaires à Internet, nous proposons une taxonomie des méthodes existantes dans l'état de l'art. Les techniques du Future Internet étant récentes, nous avons étendu notre taxonomie par une nouvelle approche basée sur la séparation de l'adressage topologique dans le cluster de celui de l'infrastructure. Le leader du cluster s'occupe d'affecter les adresses (de son VIN) et de gérer le routage à l'intérieur de son cluster. La dernière contribution consiste en la comparaison des performances des protocoles de gestion de mobilité, notamment pour les réseaux de véhicules et des communications de type vehicule-à-Internet. Dans ce cadre, nous avons proposé une classification des protocoles de gestion de mobilité selon leur déploiement: centralisé (basé réseau ou host) et distribué. Nous avons ensuite évalué les performances en modélisant les durées de configurations et de reconfigurations des différents protocoles concernés

    Actas da 10ª Conferência sobre Redes de Computadores

    Get PDF
    Universidade do MinhoCCTCCentro AlgoritmiCisco SystemsIEEE Portugal Sectio

    A Distributed Service Delivery Platform for Automotive Environments: Enhancing Communication Capabilities of an M2M Service Platform for Automotive Application

    Get PDF
    Full version: Access restricted permanently due to 3rd party copyright restrictions. Restriction set on 11.04.2018 by SE, Doctoral CollegeThe automotive domain is changing. On the way to more convenient, safe, and efficient vehicles, the role of electronic controllers and particularly software has increased significantly for many years, and vehicles have become software-intensive systems. Furthermore, vehicles are connected to the Internet to enable Advanced Driver Assistance Systems and enhanced In-Vehicle Infotainment functionalities. This widens the automotive software and system landscape beyond the physical vehicle boundaries to presently include as well external backend servers in the cloud. Moreover, the connectivity facilitates new kinds of distributed functionalities, making the vehicle a part of an Intelligent Transportation System (ITS) and thus an important example for a future Internet of Things (IoT). Manufacturers, however, are confronted with the challenging task of integrating these ever-increasing range of functionalities with heterogeneous or even contradictory requirements into a homogenous overall system. This requires new software platforms and architectural approaches. In this regard, the connectivity to fixed side backend systems not only introduces additional challenges, but also enables new approaches for addressing them. The vehicle-to-backend approaches currently emerging are dominated by proprietary solutions, which is in clear contradiction to the requirements of ITS scenarios which call for interoperability within the broad scope of vehicles and manufacturers. Therefore, this research aims at the development and propagation of a new concept of a universal distributed Automotive Service Delivery Platform (ASDP), as enabler for future automotive functionalities, not limited to ITS applications. Since Machine-to-Machine communication (M2M) is considered as a primary building block for the IoT, emergent standards such as the oneM2M service platform are selected as the initial architectural hypothesis for the realisation of an ASDP. Accordingly, this project describes a oneM2M-based ASDP as a reference configuration of the oneM2M service platform for automotive environments. In the research, the general applicability of the oneM2M service platform for the proposed ASDP is shown. However, the research also identifies shortcomings of the current oneM2M platform with respect to the capabilities needed for efficient communication and data exchange policies. It is pointed out that, for example, distributed traffic efficiency or vehicle maintenance functionalities are not efficiently treated by the standard. This may also have negative privacy impacts. Following this analysis, this research proposes novel enhancements to the oneM2M service platform, such as application-data-dependent criteria for data exchange and policy aggregation. The feasibility and advancements of the newly proposed approach are evaluated by means of proof-of-concept implementation and experiments with selected automotive scenarios. The results show the benefits of the proposed enhancements for a oneM2M-based ASDP, without neglecting to indicate their advantages for other domains of the oneM2M landscape where they could be applied as well

    Intelligent Circuits and Systems

    Get PDF
    ICICS-2020 is the third conference initiated by the School of Electronics and Electrical Engineering at Lovely Professional University that explored recent innovations of researchers working for the development of smart and green technologies in the fields of Energy, Electronics, Communications, Computers, and Control. ICICS provides innovators to identify new opportunities for the social and economic benefits of society.  This conference bridges the gap between academics and R&D institutions, social visionaries, and experts from all strata of society to present their ongoing research activities and foster research relations between them. It provides opportunities for the exchange of new ideas, applications, and experiences in the field of smart technologies and finding global partners for future collaboration. The ICICS-2020 was conducted in two broad categories, Intelligent Circuits & Intelligent Systems and Emerging Technologies in Electrical Engineering
    corecore