14 research outputs found

    Quality of service study in synchronized time-triggered aerial networks

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    Unmanned aerial vehicles (UAVs) have shown tremendous potential in both military and civilian applications, for example, in delivery services, search and rescue, and surveillance. Currently, UAVs can perform several tasks while in flight. UAVs have real-time systems with limited capability for time-triggered synchronization, which impose synchronization limitations for their platforms. Additionally, there is no time-triggered synchronization between the UAVs and the ground station. One of the requirements for a reliable communication links between a UAV and a ground station is the need for synchronization using Global Navigation Satellite System (GNSS) in a time-triggered network. However, the information exchange between UAV and ground station lacks the time-triggered abilities. In this context, GNSS time can be used as an external source to allow UAV performing tasks connected to the ground station with time-stamped messages. In this paper, we investigate the capability of GNSS as an external time source for the time-triggered network to achieve high quality of service (QoS) of a communication link between the ground station and UAV. Simulations analysis was conducted to evaluate the overall system performance, which gives a better understanding of performance of a time-triggered wired and wireless networ

    Performance analysis of Ethernet Powerlink protocol: Application to a new lift system generation

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    International audienceTo ensure control, present lifts use the Controller Area Network (CAN) bus for transmitting commands between components. Although it is largely adopted in the industrial process, CAN is not able to guarantee a sufficient throughput to transmit multimedia data or to meet the requirements of some safety standards. In this paper, we present a transition case from electrical/electromechanical components to a networked control system. The main element we focus on in the lift system is the safety chain. We propose to build the lift communication system around real-time Ethernet for more efficiency, smartness and safety. Furthermore, the use of the openSAFETY protocol as a safety layer over the real-time Ethernet allows the achievement of the required Safety Integrity Level (SIL). This adopted solution should meet the adopted standard IEC 61508 requirements

    Analysis of synchronization in distributed avionics systems based on time-triggered ethernet

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    Significant developments are made in unmanned aerial vehicles (UAVs) and in avionics, where messages sent in the network with critical Time play a vital role. Several studies in Time-Triggered Ethernet have been carried out, but these studies. Still, these improving QoS such as latency in end-to-end delays of an internally synchronized TTE network. However, no one monitors integrated modular avionics. We proposed a framework that enables TTE to be externally synchronized from a GNSS to overcome this problem. We have incorporated our proposed Algorithm in the TTE protocol based on specific parameters and multiple existing algorithms. The proposed Algorithm gives us the ability to control and synchronize the TTE network. Also, we have a developed scenario for analyzing the performance of externally synchronized end-to-end latency of TT messages in a TTE network. We simulated scenarios in our framework and analyzed QoS but, more specifically, the latency that affects the performance of time-triggered messages in externally synchronized TTE networks. The result shows that our proposed framework outperforms existing approaches

    One solution for TTEthernet synchronization analysis using genetic algorithm

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    Bezbjednosno-kritični sistemi poput aviona ili automobila zahtijevaju visoko-pouzdanu razmjenu poruka između uređaja u sistemu, što se postiže primjenom determinističkih mreža. Pravilno uspostavljanje međusobne usklađenosti časovnika, kao i konstantno održavanje vremenske usklađenosti, svrstavaju se među najbitnije aspekte determinističkih mreža među kojima su i TTEthernet mreže. Ukoliko časovnici mrežnih uređaja nisu vremenski usklađeni, deterministička razmjena poruka u mreži nije izvodljiva. S obzirom da se informacije o najkritičnijim funkcijama sistema prenose preko determinističke klase poruka, očigledno je da ovakvi servisi neće biti dostupni sve dok se časovnici ne usklade. Teza se bavi procjenom najgoreg slučaja vremena koje je potrebno da protekne da bi se časovnici mrežnih uređaja međusobno uskladili, u slučaju da u mreži postoji jedan uređaj pod otkazom. Procjene su vršene pomoću OMNeT++ simulacija uz primjenu genetskog algoritma. Simulacije pokazuju da se vrijeme neophodno da se uspostavi usklađenost časovnika u TTEthernet mreži značajno povećava pod uticajem uređaja pod otkazom, a samim tim se produžava i vrijeme nedostupnosti najkritičnijih servisa mreže. Simulacije pokazuju da se za mrežu posmatranu u tezi, za izabrane parametre mreže dobija procijenjena vrijednost medijane jednaka 489579μs za najgori slučaj uspostavljanja vremenske usklađenosti u mreži.Safety-critical systems like airplanes and cars demand high-reliable communication between components within the system, which is achieved by using deterministic networks. Proper establishing and maintenance of synchronization of device clocks in the network components represents one of crucial aspects in deterministic networks where belong TTEthernet as well. If device clocks are not synchronized, deterministic communication is not feasible. Keeping in mind that most critical information has been exchanged between the network components using deterministic traffic class, it is obvious that such services will not be available until the clocks in the network are synchronized. The thesis deals with estimation of worst-case startup time for observed TTEthernet network, in case that one device in the network is under failure. The estimation is performed by OMNeT++ simulations and using genetic algorithm. The simulations show that startup time of the network is extended significantly under impact of faulty component. Also, unavailability of most critical services in the network is extended for the same time. For the network simulated in this thesis, estimated median value equals 489579 μs for worst-case startup time

    A study of the applicability of software-defined networking in industrial networks

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    173 p.Las redes industriales interconectan sensores y actuadores para llevar a cabo funciones de monitorización, control y protección en diferentes entornos, tales como sistemas de transporte o sistemas de automatización industrial. Estos sistemas ciberfísicos generalmente están soportados por múltiples redes de datos, ya sean cableadas o inalámbricas, a las cuales demandan nuevas prestaciones, de forma que el control y gestión de tales redes deben estar acoplados a las condiciones del propio sistema industrial. De este modo, aparecen requisitos relacionados con la flexibilidad, mantenibilidad y adaptabilidad, al mismo tiempo que las restricciones de calidad de servicio no se vean afectadas. Sin embargo, las estrategias de control de red tradicionales generalmente no se adaptan eficientemente a entornos cada vez más dinámicos y heterogéneos.Tras definir un conjunto de requerimientos de red y analizar las limitaciones de las soluciones actuales, se deduce que un control provisto independientemente de los propios dispositivos de red añadiría flexibilidad a dichas redes. Por consiguiente, la presente tesis explora la aplicabilidad de las redes definidas por software (Software-Defined Networking, SDN) en sistemas de automatización industrial. Para llevar a cabo este enfoque, se ha tomado como caso de estudio las redes de automatización basadas en el estándar IEC 61850, el cual es ampliamente usado en el diseño de las redes de comunicaciones en sistemas de distribución de energía, tales como las subestaciones eléctricas. El estándar IEC 61850 define diferentes servicios y protocolos con altos requisitos en terminos de latencia y disponibilidad de la red, los cuales han de ser satisfechos mediante técnicas de ingeniería de tráfico. Como resultado, aprovechando la flexibilidad y programabilidad ofrecidas por las redes definidas por software, en esta tesis se propone una arquitectura de control basada en el protocolo OpenFlow que, incluyendo tecnologías de gestión y monitorización de red, permite establecer políticas de tráfico acorde a su prioridad y al estado de la red.Además, las subestaciones eléctricas son un ejemplo representativo de infraestructura crítica, que son aquellas en las que un fallo puede resultar en graves pérdidas económicas, daños físicos y materiales. De esta forma, tales sistemas deben ser extremadamente seguros y robustos, por lo que es conveniente la implementación de topologías redundantes que ofrezcan un tiempo de reacción ante fallos mínimo. Con tal objetivo, el estándar IEC 62439-3 define los protocolos Parallel Redundancy Protocol (PRP) y High-availability Seamless Redundancy (HSR), los cuales garantizan un tiempo de recuperación nulo en caso de fallo mediante la redundancia activa de datos en redes Ethernet. Sin embargo, la gestión de redes basadas en PRP y HSR es estática e inflexible, lo que, añadido a la reducción de ancho de banda debida la duplicación de datos, hace difícil un control eficiente de los recursos disponibles. En dicho sentido, esta tesis propone control de la redundancia basado en el paradigma SDN para un aprovechamiento eficiente de topologías malladas, al mismo tiempo que se garantiza la disponibilidad de las aplicaciones de control y monitorización. En particular, se discute cómo el protocolo OpenFlow permite a un controlador externo configurar múltiples caminos redundantes entre dispositivos con varias interfaces de red, así como en entornos inalámbricos. De esta forma, los servicios críticos pueden protegerse en situaciones de interferencia y movilidad.La evaluación de la idoneidad de las soluciones propuestas ha sido llevada a cabo, principalmente, mediante la emulación de diferentes topologías y tipos de tráfico. Igualmente, se ha estudiado analítica y experimentalmente cómo afecta a la latencia el poder reducir el número de saltos en las comunicaciones con respecto al uso de un árbol de expansión, así como balancear la carga en una red de nivel 2. Además, se ha realizado un análisis de la mejora de la eficiencia en el uso de los recursos de red y la robustez alcanzada con la combinación de los protocolos PRP y HSR con un control llevado a cabo mediante OpenFlow. Estos resultados muestran que el modelo SDN podría mejorar significativamente las prestaciones de una red industrial de misión crítica

    Connected Vehicles: Solutions and Challenges

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    Abstract-Providing various wireless connectivities for vehicles enables the communication between vehicles and their internal and external environments. Such a connected vehicle solution is expected to be the next frontier for automotive revolution and the key to the evolution to next generation intelligent transportation systems (ITSs). Moreover, connected vehicles are also the building blocks of emerging Internet of Vehicles (IoV). Extensive research activities and numerous industrial initiatives have paved the way for the coming era of connected vehicles. In this paper, we focus on wireless technologies and potential challenges to provide vehicle-to-x connectivity. In particular, we discuss the challenges and review the state-of-the-art wireless solutions for vehicle-to-sensor, vehicleto-vehicle, vehicle-to-Internet, and vehicle-to-road infrastructure connectivities. We also identify future research issues for building connected vehicles

    Robust and secure resource management for automotive cyber-physical systems

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    2022 Spring.Includes bibliographical references.Modern vehicles are examples of complex cyber-physical systems with tens to hundreds of interconnected Electronic Control Units (ECUs) that manage various vehicular subsystems. With the shift towards autonomous driving, emerging vehicles are being characterized by an increase in the number of hardware ECUs, greater complexity of applications (software), and more sophisticated in-vehicle networks. These advances have resulted in numerous challenges that impact the reliability, security, and real-time performance of these emerging automotive systems. Some of the challenges include coping with computation and communication uncertainties (e.g., jitter), developing robust control software, detecting cyber-attacks, ensuring data integrity, and enabling confidentiality during communication. However, solutions to overcome these challenges incur additional overhead, which can catastrophically delay the execution of real-time automotive tasks and message transfers. Hence, there is a need for a holistic approach to a system-level solution for resource management in automotive cyber-physical systems that enables robust and secure automotive system design while satisfying a diverse set of system-wide constraints. ECUs in vehicles today run a variety of automotive applications ranging from simple vehicle window control to highly complex Advanced Driver Assistance System (ADAS) applications. The aggressive attempts of automakers to make vehicles fully autonomous have increased the complexity and data rate requirements of applications and further led to the adoption of advanced artificial intelligence (AI) based techniques for improved perception and control. Additionally, modern vehicles are becoming increasingly connected with various external systems to realize more robust vehicle autonomy. These paradigm shifts have resulted in significant overheads in resource constrained ECUs and increased the complexity of the overall automotive system (including heterogeneous ECUs, network architectures, communication protocols, and applications), which has severe performance and safety implications on modern vehicles. The increased complexity of automotive systems introduces several computation and communication uncertainties in automotive subsystems that can cause delays in applications and messages, resulting in missed real-time deadlines. Missing deadlines for safety-critical automotive applications can be catastrophic, and this problem will be further aggravated in the case of future autonomous vehicles. Additionally, due to the harsh operating conditions (such as high temperatures, vibrations, and electromagnetic interference (EMI)) of automotive embedded systems, there is a significant risk to the integrity of the data that is exchanged between ECUs which can lead to faulty vehicle control. These challenges demand a more reliable design of automotive systems that is resilient to uncertainties and supports data integrity goals. Additionally, the increased connectivity of modern vehicles has made them highly vulnerable to various kinds of sophisticated security attacks. Hence, it is also vital to ensure the security of automotive systems, and it will become crucial as connected and autonomous vehicles become more ubiquitous. However, imposing security mechanisms on the resource constrained automotive systems can result in additional computation and communication overhead, potentially leading to further missed deadlines. Therefore, it is crucial to design techniques that incur very minimal overhead (lightweight) when trying to achieve the above-mentioned goals and ensure the real-time performance of the system. We address these issues by designing a holistic resource management framework called ROSETTA that enables robust and secure automotive cyber-physical system design while satisfying a diverse set of constraints related to reliability, security, real-time performance, and energy consumption. To achieve reliability goals, we have developed several techniques for reliability-aware scheduling and multi-level monitoring of signal integrity. To achieve security objectives, we have proposed a lightweight security framework that provides confidentiality and authenticity while meeting both security and real-time constraints. We have also introduced multiple deep learning based intrusion detection systems (IDS) to monitor and detect cyber-attacks in the in-vehicle network. Lastly, we have introduced novel techniques for jitter management and security management and deployed lightweight IDSs on resource constrained automotive ECUs while ensuring the real-time performance of the automotive systems

    Reserva de recursos em automotive ethernet

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    Mestrado em Engenharia Electrónica e TelecomunicaçõesIn recent years, automotive industry has undergone major changes, being able to highlight not only the growing development of electronic systems in increasingly and varied features and contexts, as well as to cope with its growing interaction between with the driver and the outside world. Due to the huge amount of traffic involved in these system communications, networking technologies used so far are starting to be less appealing and the industry began to consider alternatives, economically more competitive as is the case of Ethernet. The use of Ethernet technology in automotive domains faces some challenges, namely with time constraints compliance and well defined resource requirements. The emergence of AVB (Audio Video Bridging) protocols, is trying to tackle some of these problems of having dynamic Quality of Service management in automotive Ethernet networks. One example of such protocols is the signalling protocol (SRP Stream Reservation Protocol), which could be used for providing a resource reservation mechanism in an automotive Ethernet domain. To test the feasibility of such recent methods, simulation tools are of paramount importance. This work presents an implementation of the SRP (Stream Reservation Protocol) in Omnet++, taking into account some of its constraints. It is described the fundamental aspects of this model implementation, as well as some functional tests.Nos últimos anos, a industria automóvel tem sofrido grandes evoluções, podendo-se destacar não só o crescente desenvolvimento de sistemas eletrónicos em contextos e funcionalidades cada vez mais variados, como também a crescente interacção deste com o condutor e o mundo exterior. Devido ao enorme aumento de tráfego envolvido nas comunicações que compõem esses sistemas, as tecnologias de redes usadas até então deixaram de ser tão apelativas e passaram-se a considerar alternativas económicamente mais competitivas como é o caso da Ethernet. O uso de redes Ethernet em âmbito automóvel levanta alguns problemas, nomeadamente no cumprimento de limites temporais e requisitos de recursos bem definidos. O aparecimento de protocolos AVB (Audio Video Bridging) vem tentar colmatar vários problemas de gestão dinâmica de Qualidade de Serviço das redes Ethernet no domínio automóvel. O protocol de sinalização SRP (Stream Reservation Protocol) pode ser adaptado para redes Ethernet no contexto automóvel para proporcionar um mecanismo de reserva de recursos. Para testar a viabilidade de métodos tão recentes, as ferramentes de simulação são de uma importância vital. Este trabalho apresententa uma implemetação do protocolo SRP (Stream Reservation Protocol) em ambiente de simulação OMNeT++. São apresentados os aspectos fundamentais do modelo implemetado bem como alguns testes funcionais de validação deste

    The Virtual Bus: A Network Architecture Designed to Support Modular-Redundant Distributed Periodic Real-Time Control Systems

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    The Virtual Bus network architecture uses physical layer switching and a combination of space- and time-division multiplexing to link segments of a partial mesh network together on schedule to temporarily form contention-free multi-hop, multi-drop simplex signalling paths, or 'virtual buses'. Network resources are scheduled and routed by a dynamic distributed resource allocation mechanism with self-forming and self-healing characteristics. Multiple virtual buses can coexist simultaneously in a single network, as the resources allocated to each bus are orthogonal in either space or time. The Virtual Bus architecture achieves deterministic delivery times for time-sensitive traffic over multi-hop partial mesh networks by employing true line-speed switching; delays of around 15ns at each switching point are demonstrated experimentally, and further reductions in switching delays are shown to be achievable. Virtual buses are inherently multicast, with delivery skew across multiple destinations proportional to the difference in equivalent physical length to each destination. The Virtual Bus architecture is not a purely theoretical concept; a small research platform has been constructed for development, testing and demonstration purposes
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