113 research outputs found

    Performance analysis of variable Smart Grid traffic over ad hoc Wireless Mesh Networks

    Get PDF
    Recent advances in ad hoc Wireless Mesh Networks (WMN) has posited it as a strong candidate in Smart Grid's Neighbourhood Area Network (NAN) for Advanced Metering Infrastructure (AMI). However, its abysmal capacity and poor multi-hoping performance in harsh dynamic environment will require an improvement to its protocol stacks in order for it to effectively support the variable requirements of application traffic in Smart Grid. This paper presents a classification of Smart Grid traffics and examines the performance of HWMP (which is the default routing protocol of the IEEE 802.11s standard) with the Optimised Link State Routing (OLSR) protocol in a NAN based ad hoc WMN. Results from simulations in ns-3 show that HWMP does not outperform OLSR. This indicates that cross layer modifications can be developed in OLSR protocol to address the routing challenges in a NAN based ad hoc WMN

    A joint multi-path and multi-channel protocol for traffic routing in smart grid neighborhood area networks

    Get PDF
    In order to improve the management mechanisms of the electric energy transport infrastructures, the smart grid networks have associated data networks that are responsible for transporting the necessary information between the different elements of the electricity network and the control center. Besides, they make possible a more efficient use of this type of energy. Part of these data networks is comprised of the Neighborhood Area Networks (NANs), which are responsible for interconnecting the different smart meters and other possible devices present at the consumers' premises with the control center. Among the proposed network technologies for NANs, wireless technologies are becoming more relevant due to their flexibility and increasing available bandwidth. In this paper, some general modifications are proposed for the routing protocol of the wireless multi-hop mesh networks standardized by the IEEE. In particular, the possibility of using multiple paths and transmission channels at the same time, depending on the quality of service needs of the different network traffic, is added. The proposed modifications have been implemented in the ns-3 simulator and evaluated in situations of high traffic load. Simulation results show improvements in the network performance in terms of packet delivery ratio, throughput and network transit time.Peer ReviewedPostprint (published version

    Mesh networks for handheld mobile devices

    Get PDF
    Mesh communications emerge today as a very popular networking solution. Mesh networks have a decentralized and multihop design. These characteristics arouse interest in research for relevant novel features, such as cooperation among nodes, distribution of tasks, scalability, communication with limited infrastructure support, and the support of mobile devices as mesh nodes. In addition to the inexistence of a solution that implements mesh networks with mobile devices at the data link layer (Layer 2), there is also a need to reconsider existing metrics with new information to tackle the intrinsic characteristics of mobile devices, e.g., the limited energy resources of their battery. To tackle this problem, this thesis presents a detailed study about projects, routing protocols and metrics developed in the area of mesh networks. In addition, two data link layer solutions, Open802.11s and B.A.T.M.A.N-advanced, have been adapted and deployed in a real mesh network testbed with off the shelf routers devices installed with a customized operating system. From this testbed, Open802.11s has proved to offer better performance than B.A.T.M.A.N-advanced. Following this, a breakthrough in this work has been the integration of the 802.11s on an Android mobile device and its subsequent incorporation in the mesh network. This allowed the study of eventual limitations imposed by the mobile device on the operation of the mesh network, namely performance and energy scarcity. With this, another major novelty has followed, by designing, implementing and evaluating several energy related metrics regarding the battery status of mobile devices. This has enabled the participation of mobile devices in mesh routing paths in an efficient way. Our main objective was to implement a mesh network with mobile devices. This has been achieved and validated through the evaluation of diverse testing scenarios performed in a real mesh testbed. The obtained results also show that the operation of a mesh with mobile devices can be enhanced, including the lifetime of mobile devices, when an energy-aware metric is used.As redes mesh surgem hoje em dia como uma solução de rede em crescimento e expansão. Neste tipo de redes o comportamento entre os nós é descentralizado e numa topologia de multihop. Estas características despertam interesse na pesquisa e desenvolvimento de novas funcionalidades tais como: cooperação entre nós, distribuição de tarefas, escalabilidade da rede e comunicações mesmo em casos de uma infraestrutura limitada e o suporte de dispositivos móveis como nós de uma rede mesh. Associado à inexistência de um projecto que implemente redes mesh em dispositivos móveis na camada de ligação de dados (Layer 2), surge a necessidade de repensar as métricas já existentes com novas informações que façam face às novas características dos dispositivos móveis, neste caso, os recursos limitados de bateria. Por forma a resolver este problema, este trabalho apresenta um estudo detalhado sobre os projetos, protocolos de routing e métricas desenvolvidas na área das redes mesh. Além disso, duas soluções que utilizam a camada de ligação de dados, Open802.11s e BATMAN-advanced, estes foram adaptadao e implementados num testbed real utilizando routers com um sistema operacional costumizado instalado. Deste testbed, concluiu-se que o Open802.11s obtem um melhor desempenho que o BATMAN-advanced. Assim, um dos avanços deste trabalho foi a integração do Open802.11s num dispositivo móvel Android e sua posterior incorporação na rede mesh. Isto permitiu o estudo de eventuais limitações impostas pelo dispositivo móvel ao funcionar numa rede mesh, ou seja, desempenho e a escassez de energia. Com isso, foi concebida outra novidade, através da concepção, avaliação e implementação de várias métricas relacionadas com a energia e que têm por base o estado da bateria do dispositivo. Isto permitiu que os dispositivos móveis participem na rede mesh e a sua gestão de bateria seja feita de forma eficiente. O principal objectivo era a implementação de uma rede mesh com dispositivos móveis. Este foi alcançado e validado através de diversos cenários de teste reais. Os resultados obtidos demonstram também que o funcionamento de uma rede mesh com dispositivos móveis pode ser melhorada, incluindo o tempo de vida dos dispositivos móveis, quando uma métrica que considera a energia é utilizada

    Customized Wireless Mesh Routing Metric for Swarm of Drones Applications

    Get PDF
    With the proliferation of drones applications, there is an increasing need for handling their numerous challenges. One of such challenges arises when a swarm-of-drones is deployed to accomplish a specific task which requires coordination and communication. While this swarm-of-drones is essentially a special form of mobile ad hoc networks (MANETs) which has been studied for many years, there are still some unique requirements of drone applications that necessitates re-visiting MANET approaches. These challenges stem from 3-D environments the drones are deployed in, and their specific way of mobility which adds to the wireless link management challenges. In this thesis, we consider the existing 802.11s wireless mesh standard and adopt its routing capabilities for swarm-of-drones. Specifically, we propose two link quality routing metrics called SrFTime and CRP metrics as an improvement to the 802.11s default Airtime routing metric, to enable better network throughput for drone applications. SrFTime improve network performance of stationary and mobile Wireless Mesh Networks, while CRP is designed to fit the link characteristics of drones and enable more efficient routes from these to their gateway. The evaluations in the actual 802.11s standard indicate that our proposed metrics outperforms the existing one consistently under various conditions

    Performance evaluation of Wireless Mesh Network routing protocol for smart grid networks

    Get PDF
    Recent Advances in Wireless Mesh Networks (WMN) makes it one of the candidate communication technologies for Smart Grid Automatic Metering Infrastructure (AMI) because of its scalability and low cost of deployment. However, its capacity and multi-hoping performance in dynamic environment may not guarantee resilience and packet delivery reliability requirements of AMI. Theoretical and practical studies have shown that the multi-hoping capacity of a mesh network is constrained by increase in the number of nodes and number of hops in the network. In addition traffic requirements for smart meters will further compound WMN multi-hopping issues. In this paper, the performance of WMN when deployed for AMI is carried out using two wireless routing protocols; Hybrid Wireless Mesh Protocol (HWMP) and Optimised Link State Rout protocol (OLSR) in NS-3. Simulation results show that compared to the reliability requirement of AMI, there is need for improving the routing metric for both protocols. Furthermore, The Dynamic Link Exchange Protocol (DLEP) which allows layer 2 link estimation was proposed to enhance the route decision

    Development of a Remotely Accessible Wireless Testbed for Performance Evaluation of AMI Related Protocols

    Get PDF
    Although smart meters are deployed in many countries, the data collection process from smart meters in Smart Grid (SG) still has some challenges related to consumer privacy that needs to be addressed. Referred to as Advanced Metering Infrastructure (AMI), the data collected and transmitted through the AMI can leak sensitive information about the consumers if it is sent as a plaintext. While many solutions have been proposed in the past, the deployment of these solutions in real-life was not possible since the actual AMIs were not accessible to researchers. Therefore, a lot of solutions relied on simulations which may not be able to capture the real performance of these solutions. In this thesis, two 802.11s wireless mesh-based SG AMI network testbeds are developed with Beaglebone Black and Raspberry Pi 3 boards to provide a baseline for the simulations. The Raspberry Pi 3 testbed is also configured to be remotely accessible

    Medium Access Control and Routing Protocols Design for 5G

    Get PDF
    In future wireless systems, such as 5G and beyond, the current dominating human-centric communication systems will be complemented by a tremendous increase in the number of smart devices, equipped with radio devices, possibly sensors, and uniquely addressable. This will result in explosion of wireless traffic volume, and consequently exponential growth in demand of radio spectrum. There are different engineering techniques for resolving the cost and scarcity of radio spectrum such as coexistence of diverse devices on the same pool of radio resources, spectrum aggregations, adoption of mmWave bands with huge spectrum, etc. The aim of this thesis is to investigate Medium Access Control (MAC) and routing protocols for 5G and beyond radio networks. Two scenarios are addressed: heterogeneous scenario where scheduled and uncoordinated users coexist, and a scenario where drones are used for monitoring a given area. In the heterogeneous scenario scheduled users are synchronised with the Base Station (BS) and rely on centralised resource scheduler for assignment of time slots, while the uncoordinated users are asynchronous with each other and the BS and rely unslotted Carrier Sense Multiple Access with Collision Avoidance (CSMA/CA) for channel access. First, we address a single-hop network with advanced scheduling algorithm design and packet length adaptation schemes design. Second, we address a multi-hop network with novel routing protocol for enhancing performance of the scheduled users in terms of throughput, and coexistence of all network users. In the drone-based scenario, new routing protocols are designed to address the problems of Wireless Mesh Networks with monitoring drones. In particular, a novel optimised Hybrid Wireless Mesh Protocol (O-HWMP) for a quick and efficient discovery of paths is designed, and a capacity achieving routing and scheduling algorithm, called backpressure, investigated. To improve on the long-end-to-end delays of classical backpressure, a modified backpressure algorithm is proposed and evaluated

    Contribution to the traffc engineering in wireless mesh networks

    Get PDF
    Nowadays, we live in a modern society in which people and devices are interconnected anywhere and anytime. Under this premise, both the infrastructure and the services offered have evolved and diversified in a drastic way. In fact, many of these services are transported in decentralized networks. Among them, Wireless mesh networks are decentralized networks that have been widely studied in different research areas such as community networks, public safety and surveillance. Wireless mesh networks have been also studied and evaluated in the Smart Grid scenario. Smart Grids are a new paradigm in which the electricity network is no longer focused only on the generation, distribution and transport of electricity to subscribers. Now, it is a robust network that includes a data communication network. The associated data network is divided in different subnetworks. This thesis is mainly focused on the improvement of the performance of one of those subnetworks, the so-called Smart Grid Neighborhood Area Network. Several applications are transmitted between the users and the control center. In general, upstream communication involves tasks such as meter reading, billing data or electricity consumption, while downstream communication allows the smart grid to take actions in different network situations such as power peaks or emergency situations. In the first part, the work is focused on improving the routing mechanism. To do this, a multipath routing mechanism is proposed, where the traffics that are most important are transmitted over the best communication links. In order to improve even more the benefits obtained, a multichannel scheme is proposed to separate both control traffic and data traffic, and use the less congested channels to transmit the most priority traffic types.Smart Grids offer many services and some of them are very demanding in terms of QoS. Besides, infrastructure failures, attacks and high congestion situations can greatly reduce the network performance. Therefore, the network must be able to offer a minimum QoS to the most priority applications handling some traffic control techniques. With this goal in mind, in this thesis some congestion control mechanisms are also proposed. In the first of these mechanisms, the decision of whether a packet should be retransmitted or not is made in a distributed and independent way by each one of the network nodes, depending on the network conditions that the node itself is observing. This mechanism considers again the existence of traffics with different priorities, so that, less priority traffic has a higher probability of being discarded. Furthermore, an emergency system is coupled to the congestion control mechanism. With this strategy, the NAN is able to take global actions (in a short time) to face anomalous situations.In a Smart grid scenario, the nodes are static and each of them transmits upstream data flows to the data concentrator. Therefore, depending on their geographical location, some nodes may be more favored than others. Besides, some nodes can monopolize the network resources if they are not regulated. For this reason, in this thesis another distributed solution is proposed that runs in each node. The objective here is to provide a fair distribution of network resources regardless of the geographical position and the transmission rate. The last contribution is focused on the application of machine learning techniques to obtain again a better performance of the data networks under study. In this sense, a new congestion control mechanism is proposed, which, like the previous ones, provides different quality of service to data flows with different priorities. For this, a complete framework is proposed, including the generation, preprocessing and evaluation of the data necessary for the training of the machine learning algorithms that will be used. The proposal is also implemented and evaluated in the Smart Grid NANs environmentAvui dia, vivim en una societat en què les persones i els dispositius estan interconnectats en qualsevol lloc i en qualsevol moment. Sota aquesta premissa, la infraestructura com els serveis oferts han evolucionat i diversificat de manera dràstica. De fet, molts d'aquests serveis s'envien en xarxes descentralitzades. Entre elles, les xarxes de malla sense fils són xarxes descentralitzades que han estat àmpliament estudiades en diferents àrees com xarxes comunitàries, seguretat pública i vigilància. Les xarxes de malla sense fils també s'han estudiat i avaluat en les xarxes elèctriques intel·ligents. Aquestes xarxes són un nou paradigma on la xarxa elèctrica ja no es centra només en la generació, distribució i transport d'electricitat als subscriptors. Ara, és una xarxa robusta que inclou una xarxa de comunicació de dades. La xarxa de dades associada es divideix en diferents subxarxes. Aquesta tesi se centra a millorar el rendiment d'una d'aquestes subxarxes, l'anomenada xarxa d'àrea de veïnatge de les xarxes elèctriques intel·ligents. Diverses aplicacions s'envien entre els usuaris i el centre de control. En general, la comunicació de pujada implica la lectura de mesuradors, dades de facturació o consum elèctric, mentre que la comunicació de baixada permet que la xarxa intel·ligent prengui mesures davant diferents situacions, com pics d'energia o d'emergència. La primera part de la feina es centra a millorar el mecanisme d'enrutament. Per això, es proposa un mecanisme de múltiples rutes, on els tràfics més prioritaris s'envien a través dels millors enllaços de comunicació. A més, es proposa un esquema multicanal per separar el tràfic de control del de dades, i utilitzar els canals menys congestionats per enviar les dades més prioritàries.Les xarxes elèctriques intel·ligents ofereixen molts serveis i alguns són exigents en termes de qualitat de servei (QoS). A més, les falles d'infraestructura, els atacs i les situacions d'alta congestió poden reduir el seu rendiment. Per tant, la xarxa ha d'oferir una QoS mínima a les aplicacions més prioritàries mitjançant algunes tècniques de control de tràfic. Amb aquest objectiu, en aquesta tesi també es proposen alguns mecanismes de control de congestió. En el primer d'aquests mecanismes, cada node de forma distribuïda i independent, decideix si un paquet s¿ha de retransmetre o no depenent de les condicions de la xarxa que el mateix node està observant. Aquest mecanisme considera novament tràfics amb diferents prioritats, de manera que, el tràfic menys prioritari té una major probabilitat de ser descartat. A més, un sistema d'emergència està acoblat amb el mecanisme de control de congestió. Amb això, la xarxa pot prendre accions globals (en poc temps) per enfrontar situacions anòmales.A les xarxes elèctriques intel·ligents, els nodes són fixos i cadascun envia dades a un concentrador de dades. Per tant, depenent de la seva ubicació geogràfica, alguns nodes poden ser més afavorits que altres. A més, alguns nodes poden monopolitzar els recursos de xarxa si no són regulats. A causa d'això, en aquesta tesi es proposa una altra solució distribuïda que s'executa en cada node. L'objectiu és proveir una distribució justa dels recursos de la xarxa, independent de la posició geogràfica i la velocitat de transmissió. L'última contribució es centra en l'aplicació de tècniques d'aprenentatge automàtic per obtenir de nou un millor rendiment de les xarxes de dades en estudi. En aquest sentit, es proposa un nou mecanisme de control de congestió que, a l'igual que els anteriors, proveeix diferent qualitat de servei d'acord amb la prioritat de les dades. Per això, es proposa un sistema, que inclou la generació, el processament i l'avaluació de les dades necessàries per a l'entrenament dels algoritmes d'aprenentatge que s'utilitzaran. La proposta també s'implementa i avalua a l'entorn de les xarxes elèctriques intel·ligents en l'entorn de Smart Grid NANsHoy en día, vivimos en una sociedad moderna en la que las personas y los dispositivos están interconectados en cualquier lugar y en cualquier momento. Bajo esta premisa, tanto la infraestructura como los servicios ofrecidos han evolucionado y diversificado de manera drástica. De hecho, muchos de estos servicios se transportan en diferentes tipos de redes. Las redes descentralizadas (o sin infraestructura) se están utilizando ampliamente para soportar estos servicios. Permiten una mayor accesibilidad para los usuarios debido a una gran cantidad de ventajas. Por ejemplo, la creación automática, la configuración automática, la instalación fácil en áreas de difícil acceso, mantenimiento y escalabilidad hacen que este tipo de redes sean atractivas para los proveedores de servicios. Entre ellas, las redes de malla inalámbricas son redes descentralizadas que han sido ampliamente estudiadas en diferentes áreas de investigación, como redes comunitarias, escenarios de desastres, seguridad pública y vigilancia. Además, estos tipos de red son más estructurados que las redes ad hoc inalámbricas tradicionales y, por lo tanto, pueden admitir protocolos más complejos. Las redes de malla inalámbricas también se han estudiado y evaluado en el escenario de redes eléctricas inteligentes. Las redes eléctricas inteligentes son un nuevo paradigma en el que se abordan las infraestructuras tradicionales de transporte de electricidad. En este contexto, la red eléctrica ya no se centra solo en la generación, distribución y transporte de electricidad a los suscriptores. Ahora, es una red robusta que incluye una red de comunicación de datos. El objetivo de tener una red de comunicación de datos junto con la eléctrica es proporcionar un servicio eficiente desde el centro de control al usuario, así como dar retroalimentación sobre el correcto funcionamiento de las redes de electricidad y datos al centro de control. Como la infraestructura de transporte eléctrico, la red de datos asociada se divide en diferentes subredes. Esta tesis se centra principalmente en la mejora del rendimiento de una de esas subredes, la llamada red de área de vecindad de las redes electrices inteligentes. Las contribuciones se centran en mejorar el enrutamiento de datos, proporcionando una diferenciación del tráfico con la provisión de calidad de servicio (QoS), mecanismos de control de congestión, un sistema de emergencia que trata situaciones anómalas de la red y una distribución justa de los recursos de la red. Varias aplicaciones se transmiten desde los usuarios al centro de control, así como desde el centro de control hacia los usuarios. En general, la comunicación hacia el centro de control implica tareas como la lectura de medidores, los datos de facturación o el consumo de electricidad, mientras que la comunicación hacia los suscriptores permite que la red eléctrica inteligente tome medidas en diferentes situaciones de la red, como picos de energía o situaciones de emergencia. En la primera parte de la tesis, el trabajo se centra en mejorar el mecanismo de enrutamiento. Para hacer esto, se propone un mecanismo de enrutamiento de múltiples rutas, donde los tráficos que son más importantes se transmite a través de los mejores enlaces de comunicación, mientras que los tráficos de menor prioridad se transmiten a través de las rutas con menos reputación (menos métrica de enrutamiento). Para mejorar aun más los beneficios obtenidos, se propone un esquema multicanal para separar tanto el tráfico de control como el tráfico de datos, y utilizar los canales menos congestionados para transmitir los tipos de tráfico más prioritarios. Las redes eléctricas inteligentes ofrecen muchos servicios y algunos de ellos son muy exigentes en términos de QoS. Por lo tanto, las fallas de infraestructura, los ataques y las situaciones de alta congestión pueden reducir en gran medida el rendimiento de la red. Para enfrentar estos problemas, la red debe poder ofrecer una calidad de servicio mínima a las aplicaciones más prioritarias mediante algunas técnicas de control de tráfico. Con este objetivo en mente, en esta tesis también se proponen algunos mecanismos de control de congestión. En el primero de estos mecanismos, cada uno de los nodos de la red decide de manera distribuida e independiente si un paquete debe o no ser retransmitido, dependiendo de las condiciones de la red (principalmente la utilización promedio del canal y la ocupación de los buffers) que el nodo mismo está observando. Es decir, un nodo intermedio puede descartar directamente un paquete de datos si observa que el canal de transmisión se está utilizando por encima de un cierto umbral. Este mecanismo considera nuevamente la existencia de tráficos con diferentes prioridades, de modo que, el tráfico menos prioritario tiene una mayor probabilidad de ser descartado. Además, un sistema de emergencia está acoplado al mecanismo de control de congestión. Con esta estrategia, la NAN puede tomar acciones globales (en poco tiempo) para enfrentar situaciones anómalas, lo que proporciona aún más probabilidad de transmisión para tráficos con mayores requisitos de QoS. Con este fin, también se propone una señalización de emergencia que puede activarse automática o manualmente. Una distribución justa de los recursos de la red también es un campo de investigación importante en las redes eléctricas inteligentes. Tenga en cuenta que, en este escenario, los nodos son estáticos y cada uno de ellos transmite flujos de datos hacia al concentrador de datos. Por lo tanto, dependiendo de su ubicación geográfica, algunos nodos pueden ser más favorecidos que otros. Además, algunos nodos pueden monopolizar los recursos de la red si no están regulados. Por esta razón, en esta tesis se propone otro algoritmo de control de congestión distribuido que se ejecuta en cada nodo. El objetivo aquí es proporcionar una distribución justa de los recursos de la red, independientemente de la posición geográfica y la velocidad de transmisión. Es decir, todos los nodos tendrán las mismas oportunidades para transmitir sus datos al centro de control. La solución propuesta es independiente de la red, mac y capas físicas. La última contribución realizada con esta tesis se centra en la aplicación de técnicas de aprendizaje automático para obtener nuevamente un mejor rendimiento de las redes de datos en estudio. En este sentido, se propone un nuevo mecanismo de control de congestión que, al igual que los anteriores, proporciona diferente calidad de servicio a los flujos de datos con diferentes prioridades. Para esto, se propone un marco completo, que incluye la generación, el preprocesamiento y la evaluación de los datos necesarios para la capacitación de los algoritmos de aprendizaje automático que se utilizarán. La propuesta también se implementa y evalúa en el entorno de Smart Grid NANs
    • …
    corecore