15 research outputs found

    Multi-partner Demonstration of BGPLS enabled multi-domain EON control and instantiation with H-PCE

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    The control of multidomain elastic optical networks (EONs) is possible by combining Hierarchical Path Computation Element (H-PCE)-based computation, Border Gateway Protocol with Extensions for Traffic Engineering Link State Information (BGP-LS) topology discovery, remote instantiation via Path Computation Element Communication Protocol (PCEP), and signaling via Resource Reservation Protocol with Extensions for Traffic Engineering (RSVP-TE). Two evolutionary architectures are considered, one based on stateless H-PCE, PCEP instantiation, and end-to-end RSVP-TE signaling (SL-E2E), and a second one based on stateful active H-PCE with per-domain instantiation and stitching. This paper presents the first multiplatform demonstration that fully validates both control architectures achieving multiprotocol interoperability. SL-E2E leads to slightly faster provisioning but needs to keep the state of the stitching of the end-to-end label-switched paths in the parent PCE

    A Survey on the Contributions of Software-Defined Networking to Traffic Engineering

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    Since the appearance of OpenFlow back in 2008, software-defined networking (SDN) has gained momentum. Although there are some discrepancies between the standards developing organizations working with SDN about what SDN is and how it is defined, they all outline traffic engineering (TE) as a key application. One of the most common objectives of TE is the congestion minimization, where techniques such as traffic splitting among multiple paths or advanced reservation systems are used. In such a scenario, this manuscript surveys the role of a comprehensive list of SDN protocols in TE solutions, in order to assess how these protocols can benefit TE. The SDN protocols have been categorized using the SDN architecture proposed by the open networking foundation, which differentiates among data-controller plane interfaces, application-controller plane interfaces, and management interfaces, in order to state how the interface type in which they operate influences TE. In addition, the impact of the SDN protocols on TE has been evaluated by comparing them with the path computation element (PCE)-based architecture. The PCE-based architecture has been selected to measure the impact of SDN on TE because it is the most novel TE architecture until the date, and because it already defines a set of metrics to measure the performance of TE solutions. We conclude that using the three types of interfaces simultaneously will result in more powerful and enhanced TE solutions, since they benefit TE in complementary ways.European Commission through the Horizon 2020 Research and Innovation Programme (GN4) under Grant 691567 Spanish Ministry of Economy and Competitiveness under the Secure Deployment of Services Over SDN and NFV-based Networks Project S&NSEC under Grant TEC2013-47960-C4-3-

    Experimental Demonstration of Multivendor and Multidomain EON With Data and Control Interoperability Over a Pan-European Test Bed

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    The operation of multidomain and multivendor EONs can be achieved by interoperable sliceable bandwidth variable transponders (S-BVTs), a GMPLS/BGP-LS-based control plane, and a planning tool. The control plane is extended to include the control of S-BVTs and elastic cross connects, which combine a large port-count fiber-switch (optical backplane) and bandwidth-variable wavelength-selective switches, enabling the end-to-end provisioning and recovery of network services. A multipartner testbed is built to demonstrate and validate the proposed end-to-end architecture. Interoperability among S-BVTs is experimentally tested between different implementations. In this case, transponders are configured using the proposed control plane. The achieved performance with hard-decision and soft-decision FECs using only the information distributed by the control plane is measured against the performance of the single-vendor implementation, where proprietary information is used, demonstrating error-free transmission up to 300 km.Peer ReviewedPostprint (author's final draft

    Introducing database communication technologies for TED replication in multi-domain networks

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    In multi-domain transport networks, exchange of Traffic Engineering information is required to enable effective end-to-end service provisioning and restoration by efficiently utilizing network resources. So far, several solutions have been proposed by the communication community such as the Hierarchical Path Computation Element (H-PCE) architecture. Using the H-PCE architecture a parent PCE is responsible for inter-domain path computation, while a dedicated child PCE performs intra-domain path computation within each domain. However, this approach can introduce scalability concerns especially under dynamic traffic condition such as during restoration because all path computation procedures are coordinated by the parent PCE and may require the exchange of many control messages. This paper proposes a standard communication among database systems located at the child PCEs, to exchange and share YANG-based Traffic Engineering information in multi-domain networks. By exploiting currently available database technologies, scalable and predictable performance is demonstrated for both replication mechanisms among child PCEs and information retrieval from the stored databases. Thus, this proposal enables the sharing of intra-domain information at each cPCE that can be locally used, upon failure, to speed-up the recovery procedure

    Dynamic Virtual Network Reconfiguration Over SDN Orchestrated Multitechnology Optical Transport Domains

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    Network virtualization is an emerging technique that enables multiple tenants to share an underlying physical infrastructure, isolating the traffic running over different virtual infrastructures/tenants. This technique aims to improve network utilization, while reducing the complexities in terms of network management for operators. Applied to this context, software defined networking (SDN) paradigm can ease network configurations by enabling network programmability and automation, which reduces the amount of operations required from both service and infrastructure providers. SDN techniques are decreasing vendor lock-in issues due to specific configuration methods or protocols. Application-based Network Operations (ABNO) is a toolbox of key network functional components with the goal of offering application-driven network management. Service provisioning using ABNO may involve direct configuration of data plane elements or delegate it to several control plane modules. We validate the applicability of ABNO to multi-tenant virtual networks in multi-technology optical domains based on two scenarios, in which multiple control plane instances are orchestrated by the architecture. Congestion Detection and Failure Recovery, are chosen to demonstrate fast recalculation and reconfiguration, while hiding the configurations in the physical layer from the upper layer.Grant numbers : supported by the Spanish Ministry of Economy and Competitiveness through the project FARO (TEC2012-38119)

    Segment routing for effective recovery and multi-domain traffic engineering

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    Segment routing is an emerging traffic engineering technique relying on Multi-protocol Label-Switched (MPLS) label stacking to steer traffic using the source-routing paradigm. Traffic flows are enforced through a given path by applying a specifically designed stack of labels (i.e., the segment list). Each packet is then forwarded along the shortest path toward the network element represented by the top label. Unlike traditional MPLS networks, segment routing maintains a per-flow state only at the ingress node; no signaling protocol is required to establish new flows or change the routing of active flows. Thus, control plane scalability is greatly improved. Several segment routing use cases have recently been proposed. As an example, it can be effectively used to dynamically steer traffic flows on paths characterized by low latency values. However, this may suffer from some potential issues. Indeed, deployed MPLS equipment typically supports a limited number of stacked labels. Therefore, it is important to define the proper procedures to minimize the required segment list depth. This work is focused on two relevant segment routing use cases: dynamic traffic recovery and traffic engineering in multi-domain networks. Indeed, in both use cases, the utilization of segment routing can significantly simplify the network operation with respect to traditional Internet Protocol (IP)/MPLS procedures. Thus, two original procedures based on segment routing are proposed for the aforementioned use cases. Both procedures are evaluated including a simulative analysis of the segment list depth. Moreover, an experimental demonstration is performed in a multi-layer test bed exploiting a software-defined-networking-based implementation of segment routing

    Auto-bandwidth control in dynamically reconfigured hybrid-SDN MPLS networks

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    The proposition of this work is based on the steady evolution of bandwidth demanding technology, which currently and more so in future, requires operators to use expensive infrastructure capability smartly to maximise its use in a very competitive environment. In this thesis, a traffic engineering control loop is proposed that dynamically adjusts the bandwidth and route of flows of Multi-Protocol Label Switching (MPLS) tunnels in response to changes in traffic demand. Available bandwidth is shifted to where the demand is, and where the demand requirement has dropped, unused allocated bandwidth is returned to the network. An MPLS network enhanced with Software-defined Networking (SDN) features is implemented. The technology known as hybrid SDN combines the programmability features of SDN with the robust MPLS label switched path features along with traffic engineering enhancements introduced by routing protocols such as Border Gateway Patrol-Traffic Engineering (BGP-TE) and Open Shortest Path First-Traffic Engineering (OSPF-TE). The implemented mixed-integer linear programming formulation using the minimisation of maximum link utilisation and minimum link cost objective functions, combined with the programmability of the hybrid SDN network allows for source to destination demand fluctuations. A key driver to this research is the programmability of the MPLS network, enhanced by the contributions that the SDN controller technology introduced. The centralised view of the network provides the network state information needed to drive the mathematical modelling of the network. The path computation element further enables control of the label switched path's bandwidths, which is adjusted based on current demand and optimisation method used. The hose model is used to specify a range of traffic conditions. The most important benefit of the hose model is the flexibility that is allowed in how the traffic matrix can change if the aggregate traffic demand does not exceed the hose maximum bandwidth specification. To this end, reserved hose bandwidth can now be released to the core network to service demands from other sites

    Integrated IT and SDN Orchestration of multi-domain multi-layer transport networks

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    Telecom operators networks' management and control remains partitioned by technology, equipment supplier and networking layer. In some segments, the network operations are highly costly due to the need of the individual, and even manual, configuration of the network equipment by highly specialized personnel. In multi-vendor networks, expensive and never ending integration processes between Network Management Systems (NMSs) and the rest of systems (OSSs, BSSs) is a common situation, due to lack of adoption of standard interfaces in the management systems of the different equipment suppliers. Moreover, the increasing impact of the new traffic flows introduced by the deployment of massive Data Centers (DCs) is also imposing new challenges that traditional networking is not ready to overcome. The Fifth Generation of Mobile Technology (5G) is also introducing stringent network requirements such as the need of connecting to the network billions of new devices in IoT paradigm, new ultra-low latency applications (i.e., remote surgery) and vehicular communications. All these new services, together with enhanced broadband network access, are supposed to be delivered over the same network infrastructure. In this PhD Thesis, an holistic view of Network and Cloud Computing resources, based on the recent innovations introduced by Software Defined Networking (SDN), is proposed as the solution for designing an end-to-end multi-layer, multi-technology and multi-domain cloud and transport network management architecture, capable to offer end-to-end services from the DC networks to customers access networks and the virtualization of network resources, allowing new ways of slicing the network resources for the forthcoming 5G deployments. The first contribution of this PhD Thesis deals with the design and validation of SDN based network orchestration architectures capable to improve the current solutions for the management and control of multi-layer, multi-domain backbone transport networks. These problems have been assessed and progressively solved by different control and management architectures which has been designed and evaluated in real evaluation environments. One of the major findings of this work has been the need of developed a common information model for transport network's management, capable to describe the resources and services of multilayer networks. In this line, the Control Orchestration Protocol (COP) has been proposed as a first contriution towards an standard management interface based on the main principles driven by SDN. Furthermore, this PhD Thesis introduces a novel architecture capable to coordinate the management of IT computing resources together with inter- and intra-DC networks. The provisioning and migration of virtual machines together with the dynamic reconfiguration of the network has been successfully demonstrated in a feasible timescale. Moreover, a resource optimization engine is introduced in the architecture to introduce optimization algorithms capable to solve allocation problems such the optimal deployment of Virtual Machine Graphs over different DCs locations minimizing the inter-DC network resources allocation. A baseline blocking probability results over different network loads are also presented. The third major contribution is the result of the previous two. With a converged cloud and network infrastructure controlled and operated jointly, the holistic view of the network allows the on-demand provisioning of network slices consisting of dedicated network and cloud resources over a distributed DC infrastructure interconnected by an optical transport network. The last chapters of this thesis discuss the management and orchestration of 5G slices based over the control and management components designed in the previous chapters. The design of one of the first network slicing architectures and the deployment of a 5G network slice in a real Testbed, is one of the major contributions of this PhD Thesis.La gesti贸n y el control de las redes de los operadores de red (Telcos), todav铆a hoy, est谩 segmentado por tecnolog铆a, por proveedor de equipamiento y por capa de red. En algunos segmentos (por ejemplo en IP) la operaci贸n de la red es tremendamente costosa, ya que en muchos casos a煤n se requiere con guraci贸n individual, e incluso manual, de los equipos por parte de personal altamente especializado. En redes con m煤ltiples proveedores, los procesos de integraci贸n entre los sistemas de gesti贸n de red (NMS) y el resto de sistemas (p. ej., OSS/BSS) son habitualmente largos y extremadamente costosos debido a la falta de adopci贸n de interfaces est谩ndar por parte de los diferentes proveedores de red. Adem谩s, el impacto creciente en las redes de transporte de los nuevos flujos de tr谩fico introducidos por el despliegue masivo de Data Centers (DC), introduce nuevos desaf铆os que las arquitecturas de gesti贸n y control de las redes tradicionales no est谩n preparadas para afrontar. La quinta generaci贸n de tecnolog铆a m贸vil (5G) introduce nuevos requisitos de red, como la necesidad de conectar a la red billones de dispositivos nuevos (Internet de las cosas - IoT), aplicaciones de ultra baja latencia (p. ej., cirug铆a a distancia) y las comunicaciones vehiculares. Todos estos servicios, junto con un acceso mejorado a la red de banda ancha, deber谩n ser proporcionados a trav茅s de la misma infraestructura de red. Esta tesis doctoral propone una visi贸n hol铆stica de los recursos de red y cloud, basada en los principios introducidos por Software Defined Networking (SDN), como la soluci贸n para el dise帽o de una arquitectura de gesti贸n extremo a extremo (E2E) para escenarios de red multi-capa y multi-dominio, capaz de ofrecer servicios de E2E, desde las redes intra-DC hasta las redes de acceso, y ofrecer ademas virtualizaci贸n de los recursos de la red, permitiendo nuevas formas de segmentaci贸n en las redes de transporte y la infrastructura de cloud, para los pr贸ximos despliegues de 5G. La primera contribuci贸n de esta tesis consiste en la validaci贸n de arquitecturas de orquestraci贸n de red, basadas en SDN, para la gesti贸n y control de redes de transporte troncales multi-dominio y multi-capa. Estos problemas (gestion de redes multi-capa y multi-dominio), han sido evaluados de manera incremental, mediante el dise帽o y la evaluaci贸n experimental, en entornos de pruebas reales, de diferentes arquitecturas de control y gesti贸n. Uno de los principales hallazgos de este trabajo ha sido la necesidad de un modelo de informaci贸n com煤n para las interfaces de gesti贸n entre entidades de control SDN. En esta l铆nea, el Protocolo de Control Orchestration (COP) ha sido propuesto como interfaz de gesti贸n de red est谩ndar para redes SDN de transporte multi-capa. Adem谩s, en esta tesis presentamos una arquitectura capaz de coordinar la gesti贸n de los recursos IT y red. La provisi贸n y la migraci贸n de m谩quinas virtuales junto con la reconfiguraci贸n din谩mica de la red, han sido demostradas con 茅xito en una escala de tiempo factible. Adem谩s, la arquitectura incorpora una plataforma para la ejecuci贸n de algoritmos de optimizaci贸n de recursos capaces de resolver diferentes problemas de asignaci贸n, como el despliegue 贸ptimo de Grafos de M谩quinas Virtuales (VMG) en diferentes DCs que minimizan la asignaci贸n de recursos de red. Esta tesis propone una soluci贸n para este problema, que ha sido evaluada en terminos de probabilidad de bloqueo para diferentes cargas de red. La tercera contribuci贸n es el resultado de las dos anteriores. La arquitectura integrada de red y cloud presentada permite la creaci贸n bajo demanda de "network slices", que consisten en sub-conjuntos de recursos de red y cloud dedicados para diferentes clientes sobre una infraestructura com煤n. El dise帽o de una de las primeras arquitecturas de "network slicing" y el despliegue de un "slice" de red 5G totalmente operativo en un Testbed real, es una de las principales contribuciones de esta tesis.La gesti贸 i el control de les xarxes dels operadors de telecomunicacions (Telcos), encara avui, est脿 segmentat per tecnologia, per prove茂dors d鈥檈quipament i per capes de xarxa. En alguns segments (Per exemple en IP) l鈥檕peraci贸 de la xarxa 茅s tremendament costosa, ja que en molts casos encara es requereix de configuraci贸 individual, i fins i tot manual, dels equips per part de personal altament especialitzat. En xarxes amb m煤ltiples prove茂dors, els processos d鈥檌ntegraci贸 entre els Sistemes de gesti贸 de xarxa (NMS) i la resta de sistemes (per exemple, Sistemes de suport d鈥檕peracions - OSS i Sistemes de suport de negocis - BSS) s贸n habitualment interminables i extremadament costosos a causa de la falta d鈥檃dopci贸 d鈥檌nterf铆cies est脿ndard per part dels diferents prove茂dors de xarxa. A m茅s, l鈥檌mpacte creixent en les xarxes de transport dels nous fluxos de tr脿nsit introdu茂ts pel desplegament massius de Data Centers (DC), introdueix nous desafiaments que les arquitectures de gesti贸 i control de les xarxes tradicionals que no estan llestes per afrontar. Per acabar de descriure el context, la cinquena generaci贸 de tecnologia m貌bil (5G) tamb茅 presenta nous requisits de xarxa altament exigents, com la necessitat de connectar a la xarxa milers de milions de dispositius nous, dins el context de l鈥橧nternet de les coses (IOT), o les noves aplicacions d鈥檜ltra baixa lat猫ncia (com ara la cirurgia a dist脿ncia) i les comunicacions vehiculars. Se suposa que tots aquests nous serveis, juntament amb l鈥檃cc茅s millorat a la xarxa de banda ampla, es lliuraran a trav茅s de la mateixa infraestructura de xarxa. Aquesta tesi doctoral proposa una visi贸 hol铆stica dels recursos de xarxa i cloud, basada en els principis introdu茂ts per Software Defined Networking (SDN), com la soluci贸 per al disseny de una arquitectura de gesti贸 extrem a extrem per a escenaris de xarxa multi-capa, multi-domini i consistents en m煤ltiples tecnologies de transport. Aquesta arquitectura de gesti贸 i control de xarxes transport i recursos IT, ha de ser capa莽 d鈥檕ferir serveis d鈥檈xtrem a extrem, des de les xarxes intra-DC fins a les xarxes d鈥檃cc茅s dels clients i oferir a m茅s virtualitzaci贸 dels recursos de la xarxa, obrint la porta a noves formes de segmentaci贸 a les xarxes de transport i la infrastructura de cloud, pels propers desplegaments de 5G. La primera contribuci贸 d鈥檃questa tesi doctoral consisteix en la validaci贸 de diferents arquitectures d鈥檕rquestraci贸 de xarxa basades en SDN capaces de millorar les solucions existents per a la gesti贸 i control de xarxes de transport troncals multi-domini i multicapa. Aquests problemes (gesti贸 de xarxes multicapa i multi-domini), han estat avaluats de manera incremental, mitjan莽ant el disseny i l鈥檃valuaci贸 experimental, en entorns de proves reals, de diferents arquitectures de control i gesti贸. Un dels principals troballes d鈥檃quest treball ha estat la necessitat de dissenyar un model d鈥檌nformaci贸 com煤 per a les interf铆cies de gesti贸 de xarxes, capa莽 de descriure els recursos i serveis de la xarxes transport multicapa. En aquesta l铆nia, el Protocol de Control Orchestration (COP, en les seves sigles en angl猫s) ha estat proposat en aquesta Tesi, com una primera contribuci贸 cap a una interf铆cie de gesti贸 de xarxa est脿ndard basada en els principis b脿sics de SDN. A m茅s, en aquesta tesi presentem una arquitectura innovadora capa莽 de coordinar la gesti贸 de els recursos IT juntament amb les xarxes inter i intra-DC. L鈥檃provisionament i la migraci贸 de m脿quines virtuals juntament amb la reconfiguraci贸 din脿mica de la xarxa, ha estat demostrat amb 猫xit en una escala de temps factible. A m茅s, l鈥檃rquitectura incorpora una plataforma per a l鈥檈xecuci贸 d鈥檃lgorismes d鈥檕ptimitzaci贸 de recursos, capa莽os de resoldre diferents problemes d鈥檃ssignaci贸, com el desplegament 貌ptim de Grafs de M脿quines Virtuals (VMG) en diferents ubicacions de DC que minimitzen la assignaci贸 de recursos de xarxa entre DC. Tamb茅 es presenta una soluci贸 b脿sica per a aquest problema, aix铆 com els resultats de probabilitat de bloqueig per a diferents c脿rregues de xarxa. La tercera contribuci贸 principal 茅s el resultat dels dos anteriors. Amb una infraestructura de xarxa i cloud convergent, controlada i operada de manera conjunta, la visi贸 hol铆stica de la xarxa permet l鈥檃provisionament sota demanda de "network slices" que consisteixen en subconjunts de recursos d鈥檟arxa i cloud, dedicats per a diferents clients, sobre una infraestructura de Data Centers distribu茂da i interconnectada per una xarxa de transport 貌ptica. Els 煤ltims cap铆tols d鈥檃questa tesi tracten sobre la gesti贸 i organitzaci贸 de "network slices" per a xarxes 5G en funci贸 dels components de control i administraci贸 dissenyats i desenvolupats en els cap铆tols anteriors. El disseny d鈥檜na de les primeres arquitectures de "network slicing" i el desplegament d鈥檜n "slice" de xarxa 5G totalment operatiu en un Testbed real, 茅s una de les principals contribucions d鈥檃questa tesi.Postprint (published version
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