32 research outputs found
Survivable Virtual Network Embedding in Transport Networks
Network Virtualization (NV) is perceived as an enabling technology for the future Internet and the 5th Generation (5G) of mobile networks. It is becoming increasingly difficult to keep up with emerging applications’ Quality of Service (QoS) requirements in an ossified Internet. NV addresses the current Internet’s ossification problem by allowing the co-existence of multiple Virtual Networks (VNs), each customized to a specific purpose on the shared Internet. NV also facilitates a new business model, namely, Network-as-a-Service (NaaS), which provides a separation between applications and services, and the networks supporting them. 5G mobile network operators have adopted the NaaS model to partition their physical network resources into multiple VNs (also called network slices) and lease them to service providers. Service providers use the leased VNs to offer customized services satisfying specific QoS requirements without any investment in deploying and managing a physical network infrastructure.
The benefits of NV come at additional resource management challenges. A fundamental problem in NV is to efficiently map the virtual nodes and virtual links of a VN to physical nodes and paths, respectively, known as the Virtual Network Embedding (VNE) problem. A VNE that can survive physical resource failures is known as the survivable VNE (SVNE) problem, and has received significant attention recently. In this thesis, we address variants of the SVNE problem with different bandwidth and reliability requirements for transport networks. Specifically, the thesis includes four main contributions. First, a connectivity-aware VNE approach that ensures VN connectivity without bandwidth guarantee in the face of multiple link failures. Second, a joint spare capacity allocation and VNE scheme that provides bandwidth guarantee against link failures by augmenting VNs with necessary spare capacity. Third, a generalized recovery mechanism to re-embed the VNs that are impacted by a physical node failure. Fourth, a reliable VNE scheme with dedicated protection that allows tuning of available bandwidth of a VN during a physical link failure. We show the effectiveness of the proposed SVNE schemes through extensive simulations. We believe that the thesis can set the stage for further research specially in the area of automated failure management for next generation networks
Resilient optical multicasting utilizing cycles in WDM optical networks
High capacity telecommunications of today is possible only because of the presence of optical networks. At the heart of an optical network is an optical fiber whose data carrying capabilities are unparalleled. Multicasting is a form of communication in wavelength division multiplexed (WDM) networks that involves one source and multiple destinations. Light trees, which employ light splitting at various nodes, are used to deliver data to multiple destinations. A fiber cut has been estimated to occur, on an average, once every four days by TEN, a pan-European carrier network. This thesis presents algorithms to make multicast sessions survivable against component failures. We consider multiple link failures and node failures in this work. The two algorithms presented in this thesis use a hybrid approach which is a combination of proactive and reactive approaches to recover from failures. We introduce the novel concept of minimal-hop cycles to tolerate simultaneous multiple link failures in a multicast session. While the first algorithm deals only with multiple link failures, the second algorithm considers the case of node failure and a link failure. Two different versions of the first algorithm have been implemented to thoroughly understand its behavior. Both algorithms were studied through simulators on two different networks, the USA Longhaul network and the NSF network. The input multicast sessions to all our algorithms were generated from power efficient multicast algorithms that make sure the power in the receiving nodes are at acceptable levels. The parameters used to evaluate the performance of our algorithms include computation times, network usage and power efficiency. Two new parameters, namely, recovery times and recovery success probability, have been introduced in this work. To our knowledge, this work is the first to introduce the concept of minimal hop cycles to recover from simultaneous multiple link failures in a multicast session in optical networks
Survivability aspects of future optical backbone networks
In huidige glasvezelnetwerken kan een enkele vezel een gigantische hoeveelheid data dragen, ruwweg het equivalent van 25 miljoen gelijktijdige telefoongesprekken. Hierdoor zullen netwerkstoringen, zoals breuken van een glasvezelkabel, de communicatie van een groot aantal eindgebruikers verstoren. Netwerkoperatoren kiezen er dan ook voor om hun netwerk zo te bouwen dat zulke grote storingen automatisch opgevangen worden. Dit proefschrift spitst zich toe op twee aspecten rond de overleefbaarheid in toekomstige optische netwerken. De eerste doelstelling die beoogd wordt is het tot stand brengen vanrobuuste dataverbindingen over meerdere netwerken. Door voldoende betrouwbare verbindingen tot stand te brengen over een infrastructuur die niet door een enkele entiteit wordt beheerd kan men bv. weredwijd Internettelevisie van hoge kwaliteit aanbieden. De bestudeerde oplossing heeft niet enkel tot doel om deze zeer betrouwbare verbinding te berekenen, maar ook om dit te bewerkstelligen met een minimum aan gebruikte netwerkcapaciteit. De tweede doelstelling was om een antwoord te formuleren om de vraag hoe het toepassen van optische schakelsystemen gebaseerd op herconfigureerbare optische multiplexers een impact heeft op de overleefbaarheid van een optisch netwerk. Bij lagere volumes hebben optisch geschakelde netwerken weinig voordeel van dergelijke gesofistikeerde methoden. Elektronisch geschakelde netwerken vertonen geen afhankelijkheid van het datavolume en hebben altijd baat bij optimalisatie
Resilient virtual topologies in optical networks and clouds
Optical networks play a crucial role in the development of Internet by providing a high speed infrastructure to cope with the rapid expansion of high bandwidth demand applications such as video, HDTV, teleconferencing, cloud computing, and so on. Network virtualization has been proposed as a key enabler for the next generation networks and the future Internet because it allows diversification the underlying architecture of Internet and lets multiple heterogeneous network architectures coexist.
Physical network failures often come from natural disasters or human errors, and thus cannot be fully avoided. Today, with the increase of network traffic and the popularity of virtualization and cloud computing, due to the sharing nature of network virtualization, one single failure in the underlying physical network can affect thousands of customers and cost millions of dollars in revenue. Providing resilience for virtual network topology over optical network infrastructure thus becomes of prime importance.
This thesis focuses on resilient virtual topologies in optical networks and cloud computing. We aim at finding more scalable models to solve the problem of designing survivable logical topologies for more realistic and meaningful network instances while meeting the requirements on bandwidth, security, as well as other quality of service such as recovery time.
To address the scalability issue, we present a model based on a column generation decomposition. We apply the cutset theorem with a decomposition framework and lazy constraints. We are able to solve for much larger network instances than the ones in literature. We extend the model to address the survivability problem in the context of optical networks where the characteristics of optical networks such as lightpaths and wavelength continuity and traffic grooming are taken into account.
We analyze and compare the bandwidth requirement between the two main approaches in providing resiliency for logical topologies. In the first approach, called optical protection, the resilient mechanism is provided by the optical layer. In the second one, called logical restoration, the resilient mechanism is done at the virtual layer. Next, we extend the survivability problem into the context of cloud computing where the major complexity arises from the anycast principle. We are able to solve the problem for much larger network instances than in the previous studies. Moreover, our model is more comprehensive that takes into account other QoS criteria, such that recovery time and delay requirement
Survivable multicasting in WDM optical networks
Opportunities abound in the global content delivery service market and it is here that multicasting is proving to be a powerful feature. In WDM networks, optical splitting is widely used to achieve multicasting. It removes the complications of optical-electronic-optical conversions [1]. Several multicasting algorithms have been proposed in the literature for building light trees. As the amount of fiber deployment increases in networks, the risk of losing large volumes of data traffic due to a fiber span cut or due to node failure also increases. In this thesis we propose heuristic schemes to make the primary multicast trees resilient to network impairments. We consider single link failures only, as they are the most common cause of service disruptions. Thus our heuristics make the primary multicast session survivable against single link failures by offering alternate multicast trees. We propose three algorithms for recovering from the failures with proactive methodologies and two algorithms for recovering from failures by reactive methodologies. We introduce the new and novel concept of critical subtree. Through our new approach the proactive and reactive approaches can be amalgamated together using a criticality threshold to provide recovery to the primary multicast tree. By varying the criticality threshold we can control the amount of protection and reaction that will be used for recovery. The performance of these five algorithms is studied in combinations and in standalone modes. The input multicast trees to all of these recovery heuristics come from a previous work on designing power efficient multicast algorithms for WDM optical networks [1]. Measurement of the power levels at receiving nodes is indeed indicative of the power efficiency of these recovery algorithms. Other parameters that are considered for the evaluation of the algorithms are network usage efficiency, (number of links used by the backup paths) and the computation time for calculating these backup paths. This work is the first to propose metrics for evaluating recovery algorithms for multicasting in WDM optical networks. It is also the first to introduce the concept of hybrid proactive and reactive approach and to propose a simple technique for achieving the proper mix
Differentiated quality-of-recovery and quality-of-protection in survivable WDM mesh networks
In the modern telecommunication business, there is a need to provide different Quality-of-Recovery (QoR) and Quality-of-Protection (QoP) classes in order to accommodate as many customers as possible, and to optimize the protection capacity cost. Prevalent protection methods to provide specific QoS related to protection are based on pre-defined shape protection structures (topologies), e.g., p -cycles and p -trees. Although some of these protection patterns are known to provide a good trade-off among the different protection parameters, their shapes can limit their deployment in some specific network conditions, e.g., a constrained link spare capacity budget and traffic distribution. In this thesis, we propose to re-think the design process of protection schemes in survivable WDM networks by adopting a hew design approach where the shapes of the protection structures are decided based on the targeted QoR and QoP guarantees, and not the reverse. We focus on the degree of pre-configuration of the protection topologies, and use fully and partially pre-cross connected p -structures, and dynamically cross connected p -structures. In QoR differentiation, we develop different approaches for pre-configuring the protection capacity in order to strike different balances between the protection cost and the availability requirements in the network; while in the QoP differentiation, we focus on the shaping of the protection structures to provide different grades of protection including single and dual-link failure protection. The new research directions proposed and developed in this thesis are intended to help network operators to effectively support different Quality-of-Recovery and Quality-of-Protection classes. All new ideas have been translated into mathematical models for which we propose practical and efficient design methods in order to optimize the inherent cost to the different designs of protection schemes. Furthermore, we establish a quantitative relation between the degree of pre-configuration of the protection structures and their costs in terms of protection capacity. Our most significant contributions are the design and development of Pre-Configured Protection Structure (p-structure) and Pre-Configured Protection Extended-Tree (p -etree) based schemes. Thanks to the column generation modeling and solution approaches, we propose a new design approach of protection schemes where we deploy just enough protection to provide different quality of recovery and protection classe
Domain/Multi-Domain Protection and Provisioning in Optical Networks
L’évolution récente des commutateurs de sélection de longueurs d’onde (WSS -Wavelength Selective Switch) favorise le développement du multiplexeur optique d’insertionextraction reconfigurable (ROADM - Reconfigurable Optical Add/Drop Multiplexers) à plusieurs degrés sans orientation ni coloration, considéré comme un équipement fort prometteur pour les réseaux maillés du futur relativement au multiplexage en longueur d’onde (WDM -Wavelength Division Multiplexing ). Cependant, leur propriété de commutation asymétrique complique la question de l’acheminement et de l’attribution des longueur d’ondes (RWA - Routing andWavelength Assignment). Or la plupart des algorithmes de RWA existants ne tiennent pas compte de cette propriété d’asymétrie.
L’interruption des services causée par des défauts d’équipements sur les chemins
optiques (résultat provenant de la résolution du problème RWA) a pour conséquence la
perte d’une grande quantité de données. Les recherches deviennent ainsi incontournables afin d’assurer la survie fonctionnelle des réseaux optiques, à savoir, le maintien des services, en particulier en cas de pannes d’équipement. La plupart des publications antérieures portaient particulièrement sur l’utilisation d’un système de protection permettant de garantir le reroutage du trafic en cas d’un défaut d’un lien. Cependant, la conception de la protection contre le défaut d’un lien ne s’avère pas toujours suffisante en termes de survie des réseaux WDM à partir de nombreux cas des autres types de pannes devenant courant de nos jours, tels que les bris d’équipements, les pannes de deux ou trois liens, etc. En outre, il y a des défis considérables pour protéger les grands réseaux optiques multidomaines composés de réseaux associés à un domaine simple, interconnectés par des liens interdomaines, où les détails topologiques internes d’un domaine ne sont généralement pas partagés à l’extérieur.
La présente thèse a pour objectif de proposer des modèles d’optimisation de grande
taille et des solutions aux problèmes mentionnés ci-dessus. Ces modèles-ci permettent de générer des solutions optimales ou quasi-optimales avec des écarts d’optimalité mathématiquement prouvée. Pour ce faire, nous avons recours à la technique de génération de colonnes afin de résoudre les problèmes inhérents à la programmation linéaire de
grande envergure.
Concernant la question de l’approvisionnement dans les réseaux optiques, nous proposons
un nouveau modèle de programmation linéaire en nombres entiers (ILP - Integer
Linear Programming) au problème RWA afin de maximiser le nombre de requêtes acceptées
(GoS - Grade of Service). Le modèle résultant constitue celui de l’optimisation
d’un ILP de grande taille, ce qui permet d’obtenir la solution exacte des instances RWA
assez grandes, en supposant que tous les noeuds soient asymétriques et accompagnés
d’une matrice de connectivité de commutation donnée. Ensuite, nous modifions le modèle
et proposons une solution au problème RWA afin de trouver la meilleure matrice de
commutation pour un nombre donné de ports et de connexions de commutation, tout en
satisfaisant/maximisant la qualité d’écoulement du trafic GoS.
Relativement à la protection des réseaux d’un domaine simple, nous proposons des
solutions favorisant la protection contre les pannes multiples. En effet, nous développons
la protection d’un réseau d’un domaine simple contre des pannes multiples, en utilisant
les p-cycles de protection avec un chemin indépendant des pannes (FIPP - Failure Independent
Path Protecting) et de la protection avec un chemin dépendant des pannes
(FDPP - Failure Dependent Path-Protecting). Nous proposons ensuite une nouvelle formulation
en termes de modèles de flots pour les p-cycles FDPP soumis à des pannes
multiples. Le nouveau modèle soulève un problème de taille, qui a un nombre exponentiel
de contraintes en raison de certaines contraintes d’élimination de sous-tour. Par
conséquent, afin de résoudre efficacement ce problème, on examine : (i) une décomposition
hiérarchique du problème auxiliaire dans le modèle de décomposition, (ii) des
heuristiques pour gérer efficacement le grand nombre de contraintes.
À propos de la protection dans les réseaux multidomaines, nous proposons des systèmes
de protection contre les pannes d’un lien. Tout d’abord, un modèle d’optimisation
est proposé pour un système de protection centralisée, en supposant que la gestion du
réseau soit au courant de tous les détails des topologies physiques des domaines. Nous
proposons ensuite un modèle distribué de l’optimisation de la protection dans les réseaux
optiques multidomaines, une formulation beaucoup plus réaliste car elle est basée
sur l’hypothèse d’une gestion de réseau distribué. Ensuite, nous ajoutons une bande pasiv
sante partagée afin de réduire le coût de la protection. Plus précisément, la bande passante
de chaque lien intra-domaine est partagée entre les p-cycles FIPP et les p-cycles
dans une première étude, puis entre les chemins pour lien/chemin de protection dans une
deuxième étude. Enfin, nous recommandons des stratégies parallèles aux solutions de
grands réseaux optiques multidomaines.
Les résultats de l’étude permettent d’élaborer une conception efficace d’un système
de protection pour un très large réseau multidomaine (45 domaines), le plus large examiné
dans la littérature, avec un système à la fois centralisé et distribué.Recent developments in the wavelength selective switch (WSS) technology enable
multi-degree reconfigurable optical add/drop multiplexers (ROADM) architectures with
colorless and directionless switching, which is regarded as a very promising enabler for
future reconfigurable wavelength division multiplexing (WDM) mesh networks. However,
its asymmetric switching property complicates the optimal routing and wavelength
assignment (RWA) problem, which is NP-hard. Most of the existing RWA algorithms
do not consider such property.
Disruption of services through equipment failures on the lightpaths (output of RWA
problem) is consequential as it involves the lost of large amounts of data. Therefore,
substantial research efforts are needed to ensure the functional survivability of optical
networks, i.e., the continuation of services even when equipment failures occur. Most
previous publications have focused on using a protection scheme to guarantee the traffic
connections in the event of single link failures. However, protection design against single
link failures turns out not to be always sufficient to keep the WDM networks away from
many downtime cases as other kinds of failures, such as node failures, dual link failures,
triple link failures, etc., become common nowadays. Furthermore, there are challenges
to protect large multi-domain optical networks which are composed of several singledomain
networks, interconnected by inter-domain links, where the internal topological
details of a domain are usually not shared externally.
The objective of this thesis is to propose scalable models and solution methods for
the above problems. The models enable to approach large problem instances while producing
optimal or near optimal solutions with mathematically proven optimality gaps.
For this, we rely on the column generation technique which is suitable to solve large
scale linear programming problems.
For the provisioning problem in optical networks, we propose a new ILP (Integer
Linear Programming) model for RWA problem with the objective of maximizing the
Grade of Service (GoS). The resulting model is a large scale optimization ILP model,
which allows the exact solution of quite large RWA instances, assuming all nodes are
asymmetric and with a given switching connectivity matrix. Next, we modify the model
and propose a solution for the RWA problem with the objective of finding the best switching
connectivity matrix for a given number of ports and a given number of switching
connections, while satisfying/maximizing the GoS.
For protection in single domain networks, we propose solutions for the protection
against multiple failures. Indeed, we extent the protection of a single domain network
against multiple failures, using FIPP and FDPP p-cycles. We propose a new generic
flow formulation for FDPP p-cycles subject to multiple failures. Our new model ends
up with a complex pricing problem, which has an exponential number of constraints due
to some subtour elimination constraints. Consequently, in order to efficiently solve the
pricing problem, we consider: (i) a hierarchical decomposition of the original pricing
problem; (ii) heuristics in order to go around the large number of constraints in the
pricing problem.
For protection in multi-domain networks, we propose protection schemes against
single link failures. Firstly, we propose an optimization model for a centralized protection
scheme, assuming that the network management is aware of all the details of the
physical topologies of the domains. We then propose a distributed optimization model
for protection in multi-domain optical networks, a much more realistic formulation as it
is based on the assumption of a distributed network management. Then, we add bandwidth
sharing in order to reduce the cost of protection. Bandwidth of each intra-domain
link is shared among FIPP p-cycles and p-cycles in a first study, and then among paths
for link/path protection in a second study. Finally, we propose parallel strategies in order
to obtain solutions for very large multi-domain optical networks.
The result of this last study allows the efficent design of a protection scheme for a
very large multi-domain network (45 domains), the largest one by far considered in the
literature, both with a centralized and distributed scheme
Supporting differentiated classes of resilience in multilayer networks
Services provided over telecommunications networks typically have different resilience requirements and networks need to be able to support different levels of resilience in an efficient manner. This dissertation investigates the problem of supporting differentiated classes of resilience in multilayer networks, including the most stringent resilience class required by critical services. We incorporate an innovative technique of embedding a subnetwork, termed the spine, with comparatively higher availability values at the physical layer. The spine lays a foundation for differentiation between multiple classes of flows that can be leveraged to achieve both high resilience and differentiation. The aim of this research is mainly to explore, design, and evaluate the proposed spine concept model in multilayer networks. The dissertation has four major parts. First, we explore the spine concept through numerical analysis of simple topologies illustrating the potential benefits and the cost considerations of the spine. We develop heuristics algorithms to find suitable spines for a network based on the structural properties of the network topology. Second, an optimization problem is formulated to determine the spine. The problem encompasses estimates of link availability improvements, associated costs, and a total budget. Third, we propose a crosslayer mapping and spine-aware routing design problem with protection given mainly at the lower layer. The problem is designed to transfer lower layer differentiation capability to the upper layer network and flows. We provide two joint routing-mapping optimization formulations and evaluate their performance in a multilayer scenario. Fourth, the joint routing-mapping problem is redesigned with protection given in the upper network layer instead. This will create two isolated logical networks; one mapped to the spine and the other is mapped freely on the network. Flows are assigned a path or path-pair based on their class of resilience. This approach can provide more routing options yielding different availability levels. The joint routing-mapping design problems are formulated as Integer Linear Programming (ILP) models. The goal is to achieve a wider range of availability values across layers and high availability levels for mission-critical services without the need to use higher order protection configurations. The proposed models are evaluated with extensive numerical results using real network topologies
A Survey on the Path Computation Element (PCE) Architecture
Quality of Service-enabled applications and services rely on Traffic Engineering-based (TE) Label Switched Paths (LSP) established in core networks and controlled by the GMPLS control plane. Path computation process is crucial to achieve the desired TE objective. Its actual effectiveness depends on a number of factors. Mechanisms utilized to update topology and TE information, as well as the latency between path computation and resource reservation, which is typically distributed, may affect path computation efficiency. Moreover, TE visibility is limited in many network scenarios, such as multi-layer, multi-domain and multi-carrier networks, and it may negatively impact resource utilization. The Internet Engineering Task Force (IETF) has promoted the Path Computation Element (PCE) architecture, proposing a dedicated network entity devoted to path computation process. The PCE represents a flexible instrument to overcome visibility and distributed provisioning inefficiencies. Communications between path computation clients (PCC) and PCEs, realized through the PCE Protocol (PCEP), also enable inter-PCE communications offering an attractive way to perform TE-based path computation among cooperating PCEs in multi-layer/domain scenarios, while preserving scalability and confidentiality. This survey presents the state-of-the-art on the PCE architecture for GMPLS-controlled networks carried out by research and standardization community. In this work, packet (i.e., MPLS-TE and MPLS-TP) and wavelength/spectrum (i.e., WSON and SSON) switching capabilities are the considered technological platforms, in which the PCE is shown to achieve a number of evident benefits
Resilience mechanisms for carrier-grade networks
In recent years, the advent of new Future Internet (FI) applications is creating ever-demanding requirements. These requirements are pushing network carriers for high transport capacity, energy efficiency, as well as high-availability services with low latency. A widespread practice to provide FI services is the adoption of a multi-layer network model consisting in the use of IP/MPLS and optical technologies such as Wavelength Division Multiplexing (WDM).
Indeed, optical transport technologies are the foundation supporting the current telecommunication network backbones, because of the high transmission bandwidth achieved in fiber optical networks. Traditional optical networks consist of a fixed 50 GHz grid, resulting in a low Optical Spectrum (OS) utilization, specifically with transmission rates above 100 Gbps. Recently, optical networks have been undergoing significant changes with the purpose of providing a flexible grid that can fully exploit the potential of optical networks. This has led to a new network paradigm termed as Elastic Optical Network (EON).
In recent years, the advent of new Future Internet (FI) applications is creating ever-demanding requirements. A widespread practice to provide FI services is the adoption of a multi-layer network model consisting in the use of IP/MPLS and optical technologies such as Wavelength Division Multiplexing (WDM). Traditional optical networks consist of a fixed 50 GHz grid, resulting in a low Optical Spectrum (OS) utilization. Recently, optical networks have been undergoing significant changes with the purpose of providing a flexible grid that can fully exploit the potential of optical networks. This has led to a new network paradigm termed as Elastic Optical Network (EON). Recently, a new protection scheme referred to as Network Coding Protection (NCP) has emerged as an innovative solution to proactively enable protection in an agile and efficient manner by means of throughput improvement techniques such as Network Coding. It is an intuitive reasoning that the throughput advantages of NCP might be magnified by means of the flexible-grid provided by EONs.
The goal of this thesis is three-fold. The first, is to study the advantages of NCP schemes in planning scenarios. For this purpose, this thesis focuses on the performance of NCP assuming both a fixed as well as a flexible spectrum grid. However, conversely to planning scenarios, in dynamic scenarios the accuracy of Network State Information (NSI) is crucial since inaccurate NSI might substantially affect the performance of an NCP scheme. The second contribution of this thesis is to study the performance of protection schemes in dynamic scenarios considering inaccurate NSI. For this purpose, this thesis explores prediction techniques in order to mitigate the negative effects of inaccurate NSI.
On the other hand, Internet users are continuously demanding new requirements that cannot be supported by the current host-oriented communication model.This communication model is not suitable for future Internet architectures such as the so-called Internet of Things (IoT). Fortunately, there is a new trend in network research referred to as ID/Locator Split Architectures (ILSAs) which is a non-disruptive technique to mitigate the issues related to host-oriented communications. Moreover, a new routing architecture referred to as Path Computation Element (PCE) has emerged with the aim of overcoming the well-known issues of the current routing schemes. Undoubtedly, routing and protection schemes need to be enhanced to fully exploit the advantages provided by new network architectures.In light of this, the third goal of this thesis introduces a novel PCE-like architecture termed as Context-Aware PCE. In a context-aware PCE scenario, the driver of a path computation is not a host/location, as in conventional PCE architectures, rather it is an interest for a service defined within a context.En los Ăşltimos años la llegada de nuevas aplicaciones del llamado Internet del Futuro (FI) está creando requerimientos sumamente exigentes. Estos requerimientos están empujando a los proveedores de redes a incrementar sus capacidades de transporte, eficiencia energĂ©tica, y sus prestaciones de servicios de alta disponibilidad con baja latencia. Es una práctica sumamente extendida para proveer servicios (FI) la adopciĂłn de un modelo multi-capa el cual consiste en el uso de tecnologĂas IP/MPLS asĂ como tambiĂ©n Ăłpticas como por ejemplo Wavelength Division Multiplexing (WDM). De hecho, las tecnologĂas de transporte son el sustento del backbone de las redes de telecomunicaciones actuales debido al gran ancho de banda que proveen las redes de fibra Ăłptica. Las redes Ăłpticas tradicionales consisten en el uso de un espectro fijo de 50 GHz. Esto resulta en una baja utilizaciĂłn del espectro Ă“ptico, especĂficamente con tasas de transmisiones superiores a 100 Gbps. Recientemente, las redes Ăłpticas están experimentado cambios significativos con el propĂłsito de proveer un espectro flexible que pueda explotar el potencial de las redes Ăłpticas. Esto ha llevado a un nuevo paradigma denominado Redes Ă“pticas Elásticas (EON). Por otro lado, un nuevo esquema de protecciĂłn llamado Network Coding Protection (NCP) ha emergido como una soluciĂłn innovadora para habilitar de manera proactiva protecciĂłn eficiente y ágil usando tĂ©cnicas de mejora de throughput como es Network Coding (NC). Es un razonamiento lĂłgico pensar que las ventajas relacionadas con throughput de NCP pueden ser magnificadas mediante el espectro flexible proveĂdo por las redes EONs. El objetivo de esta tesis es triple. El primero es estudiar las ventajas de esquemas NCP en un escenario de planificaciĂłn. Para este propĂłsito, esta tesis se enfoca en el rendimiento de NCP asumiendo un espectro fijo y un espectro flexible. Sin embargo, contrario a escenarios de planificaciĂłn, en escenarios dinámicos la precisiĂłn relacionada de la InformaciĂłn de Estado de Red (NSI) es crucial, ya que la imprecisiĂłn de NSI puede afectar sustancialmente el rendimiento de un esquema NCP. La segunda contribuciĂłn de esta tesis es el estudio del rendimiento de esquemas de protecciĂłn en escenarios dinámicos considerando NSI no precisa. Para este propĂłsito, esta tesis explora tĂ©cnicas predictivas con el propĂłsito de mitigar los efectos negativos de NSI impreciso. Por otro lado, los usuarios de Internet están demandando continuamente nuevos requerimientos los cuales no pueden ser soportados por el modelo de comunicaciĂłn orientado a hosts. Este modelo de comunicaciones no es factible para arquitecturas FI como es el Internet de las cosas (IoT). Afortunadamente, existe un nueva lĂnea investigativa llamada ID/Locator Split Architectures (ILSAs) la cual es una tĂ©cnica no disruptiva para mitigar los problemas relacionadas con el modelo de comunicaciĂłn orientado a hosts. Además, un nuevo esquema de enrutamiento llamado as Path Computation Element (PCE) ha emergido con el propĂłsito de superar los problemas bien conocidos de los esquemas de enrutamiento tradicionales. Indudablemente, los esquemas de enrutamiento y protecciĂłn deben ser mejorados para que estos puedan explotar las ventajas introducidas por las nuevas arquitecturas de redes. A luz de esto, el tercer objetivo de esta tesis es introducir una nueva arquitectura PCE denominada Context-Aware PCE. En un escenario context-aware PCE, el objetivo de una acciĂłn de computaciĂłn de camino no es un host o localidad, como es el caso en lo esquemas PCE tradicionales. Más bien, es un interĂ©s por un servicio definido dentro de una informaciĂłn de contexto