42 research outputs found

    Capacity Approaching Coding Strategies for Machine-to-Machine Communication in IoT Networks

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    Radio access technologies for mobile communications are characterized by multiple access (MA) strategies. Orthogonal MA techniques were a reasonable choice for achieving good performance with single user detection. With the tremendous growth in the number of mobile users and the new internet of things (IoT) shifting paradigm, it is expected that the monthly mobile data traffic worldwide will exceed 24.3 exabytes by 2019, over 100 billion IoT connections by 2025, and the financial impact of IoT on the global economy varies in the range of 3.9 to 11.1 trillion dollars by 2025. In light of the envisaged exponential growth and new trends, one promising solution to further enhance data rates without increasing the bandwidth is by increasing the spectral efficiency of the channel. Non-orthogonal MA techniques are potential candidates for future wireless communications. The two corner points on the boundary region of the MA channel are known to be achievable by single user decoding followed by successive decoding (SD). Other points can also be achieved using time sharing or rate splitting. On the other hand, machine-to-machine (M2M) communication which is an enabling technology for the IoT, enables massive multipurpose networked devices to exchange information among themselves with minor or no human intervention. This thesis consists of three main parts. In the first part, we propose new practical encoding and joint belief propagation (BP) decoding techniques for 2-user MA erasure channel (MAEC) that achieve any rate pair close to the boundary of the capacity region without using time sharing nor rate splitting. While at the encoders, the corresponding parity check matrices are randomly built from a half-rate LDPC matrix, the joint BP decoder employs the associated Tanner graphs of the parity check matrices to iteratively recover the erasures in the received combined codewords. Specifically, the joint decoder performs two steps in each decoding iteration: 1) simultaneously and independently runs the BP decoding process at each constituent sub-graph to recover some of the common erasures, 2) update the other sub-graph with newly recovered erasures and vice versa. When the number of erasures in the received combined codewords is less than or equal to the number of parity check constraints, the decoder may successfully decode both codewords, otherwise the decoder declares decoding failure. Furthermore, we calculate the probability of decoding failure and the outage capacity. Additionally, we show how the erasure probability evolves with the number of decoding iterations and the maximum tolerable loss. Simulations show that any rate pair close to the capacity boundary is achievable without using time sharing. In the second part, we propose a new cooperative joint network and rateless coding strategy for machine-type communication (MTC) devices in the multicast settings where three or more MTC devices dynamically form a cluster to disseminate messages between themselves. Specifically, in the basic cluster, three MTC devices transmit their respective messages simultaneously to the relay in the first phase. The relay broadcasts back the combined messages to all MTC devices within the basic cluster in the second phase. Given the fact that each MTC device can remove its own message, the received signal in the second phase is reduced to the combined messages coming from the other two MTC devices. Hence, this results in exploiting the interference caused by one message on the other and therefore improving the bandwidth efficiency. Furthermore, each group of three MTC devices in vicinity can form a basic cluster for exchanging messages, and the basic scheme extends to N MTC devices. Furthermore, we propose an efficient algorithm to disseminate messages among a large number of MTC devices. Moreover, we implement the proposed scheme employing practical Raptor codes with the use of two relaying schemes, namely amplify and forward (AF) and de-noise and forward (DNF). We show that with very little processing at the relay using DNF relaying scheme, performance can be further enhanced. We also show that the proposed scheme achieves a near optimal sum rate performance. In the third part, we present a comparative study of joint channel estimation and decoding of factor graph-based codes over flat fading channels and propose a simple channel approximation scheme that performs close to the optimal technique. Specifically, when channel state information (CSI) is not available at the receiver, a simpler approach is to estimate the channel state of a group of received symbols, then use the approximated value of the channel with the received signal to compute the log likelihood ratio. Simulation results show that the proposed scheme exhibits about 0.4 dB loss compared to the optimal solution when perfect CSI is available at the receiver

    Mobile Ad Hoc Networks

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    Guiding readers through the basics of these rapidly emerging networks to more advanced concepts and future expectations, Mobile Ad hoc Networks: Current Status and Future Trends identifies and examines the most pressing research issues in Mobile Ad hoc Networks (MANETs). Containing the contributions of leading researchers, industry professionals, and academics, this forward-looking reference provides an authoritative perspective of the state of the art in MANETs. The book includes surveys of recent publications that investigate key areas of interest such as limited resources and the mobility of mobile nodes. It considers routing, multicast, energy, security, channel assignment, and ensuring quality of service. Also suitable as a text for graduate students, the book is organized into three sections: Fundamentals of MANET Modeling and Simulation—Describes how MANETs operate and perform through simulations and models Communication Protocols of MANETs—Presents cutting-edge research on key issues, including MAC layer issues and routing in high mobility Future Networks Inspired By MANETs—Tackles open research issues and emerging trends Illustrating the role MANETs are likely to play in future networks, this book supplies the foundation and insight you will need to make your own contributions to the field. It includes coverage of routing protocols, modeling and simulations tools, intelligent optimization techniques to multicriteria routing, security issues in FHAMIPv6, connecting moving smart objects to the Internet, underwater sensor networks, wireless mesh network architecture and protocols, adaptive routing provision using Bayesian inference, and adaptive flow control in transport layer using genetic algorithms

    Mobile Ad Hoc Networks

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    Guiding readers through the basics of these rapidly emerging networks to more advanced concepts and future expectations, Mobile Ad hoc Networks: Current Status and Future Trends identifies and examines the most pressing research issues in Mobile Ad hoc Networks (MANETs). Containing the contributions of leading researchers, industry professionals, and academics, this forward-looking reference provides an authoritative perspective of the state of the art in MANETs. The book includes surveys of recent publications that investigate key areas of interest such as limited resources and the mobility of mobile nodes. It considers routing, multicast, energy, security, channel assignment, and ensuring quality of service. Also suitable as a text for graduate students, the book is organized into three sections: Fundamentals of MANET Modeling and Simulation—Describes how MANETs operate and perform through simulations and models Communication Protocols of MANETs—Presents cutting-edge research on key issues, including MAC layer issues and routing in high mobility Future Networks Inspired By MANETs—Tackles open research issues and emerging trends Illustrating the role MANETs are likely to play in future networks, this book supplies the foundation and insight you will need to make your own contributions to the field. It includes coverage of routing protocols, modeling and simulations tools, intelligent optimization techniques to multicriteria routing, security issues in FHAMIPv6, connecting moving smart objects to the Internet, underwater sensor networks, wireless mesh network architecture and protocols, adaptive routing provision using Bayesian inference, and adaptive flow control in transport layer using genetic algorithms

    Towards reliable communication in LTE-A connected heterogeneous machine to machine network

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    Machine to machine (M2M) communication is an emerging technology that enables heterogeneous devices to communicate with each other without human intervention and thus forming so-called Internet of Things (IoTs). Wireless cellular networks (WCNs) play a significant role in the successful deployment of M2M communication. Specially the ongoing massive deployment of long term evolution advanced (LTE-A) makes it possible to establish machine type communication (MTC) in most urban and remote areas, and by using LTE-A backhaul network, a seamless network communication is being established between MTC-devices and-applications. However, the extensive network coverage does not ensure a successful implementation of M2M communication in the LTE-A, and therefore there are still some challenges. Energy efficient reliable transmission is perhaps the most compelling demand for various M2M applications. Among the factors affecting reliability of M2M communication are the high endto-end delay and high bit error rate. The objective of the thesis is to provide reliable M2M communication in LTE-A network. In this aim, to alleviate the signalling congestion on air interface and efficient data aggregation we consider a cluster based architecture where the MTC devices are grouped into number of clusters and traffics are forwarded through some special nodes called cluster heads (CHs) to the base station (BS) using single or multi-hop transmissions. In many deployment scenarios, some machines are allowed to move and change their location in the deployment area with very low mobility. In practice, the performance of data transmission often degrades with the increase of distance between neighboring CHs. CH needs to be reselected in such cases. However, frequent re-selection of CHs results in counter effect on routing and reconfiguration of resource allocation associated with CH-dependent protocols. In addition, the link quality between a CH-CH and CH-BS are very often affected by various dynamic environmental factors such as heat and humidity, obstacles and RF interferences. Since CH aggregates the traffic from all cluster members, failure of the CH means that the full cluster will fail. Many solutions have been proposed to combat with error prone wireless channel such as automatic repeat request (ARQ) and multipath routing. Though the above mentioned techniques improve the communication reliability but intervene the communication efficiency. In the former scheme, the transmitter retransmits the whole packet even though the part of the packet has been received correctly and in the later one, the receiver may receive the same information from multiple paths; thus both techniques are bandwidth and energy inefficient. In addition, with retransmission, overall end to end delay may exceed the maximum allowable delay budget. Based on the aforementioned observations, we identify CH-to-CH channel is one of the bottlenecks to provide reliable communication in cluster based multihop M2M network and present a full solution to support fountain coded cooperative communications. Our solution covers many aspects from relay selection to cooperative formation to meet the user’s QoS requirements. In the first part of the thesis, we first design a rateless-coded-incremental-relay selection (RCIRS) algorithm based on greedy techniques to guarantee the required data rate with a minimum cost. After that, we develop fountain coded cooperative communication protocols to facilitate the data transmission between two neighbor CHs. In the second part, we propose joint network and fountain coding schemes for reliable communication. Through coupling channel coding and network coding simultaneously in the physical layer, joint network and fountain coding schemes efficiently exploit the redundancy of both codes and effectively combat the detrimental effect of fading conditions in wireless channels. In the proposed scheme, after correctly decoding the information from different sources, a relay node applies network and fountain coding on the received signals and then transmits to the destination in a single transmission. Therefore, the proposed schemes exploit the diversity and coding gain to improve the system performance. In the third part, we focus on the reliable uplink transmission between CHs and BS where CHs transmit to BS directly or with the help of the LTE-A relay nodes (RN). We investigate both type-I and type-II enhanced LTE-A networks and propose a set of joint network and fountain coding schemes to enhance the link robustness. Finally, the proposed solutions are evaluated through extensive numerical simulations and the numerical results are presented to provide a comparison with the related works found in the literature

    Leveraging Resources on Anonymous Mobile Edge Nodes

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    Smart devices have become an essential component in the life of mankind. The quick rise of smartphones, IoTs, and wearable devices enabled applications that were not possible few years ago, e.g., health monitoring and online banking. Meanwhile, smart sensing laid the infrastructure for smart homes and smart cities. The intrusive nature of smart devices granted access to huge amounts of raw data. Researchers seized the moment with complex algorithms and data models to process the data over the cloud and extract as much information as possible. However, the pace and amount of data generation, in addition to, networking protocols transmitting data to cloud servers failed short in touching more than 20% of what was generated on the edge of the network. On the other hand, smart devices carry a large set of resources, e.g., CPU, memory, and camera, that sit idle most of the time. Studies showed that for plenty of the time resources are either idle, e.g., sleeping and eating, or underutilized, e.g. inertial sensors during phone calls. These findings articulate a problem in processing large data sets, while having idle resources in the close proximity. In this dissertation, we propose harvesting underutilized edge resources then use them in processing the huge data generated, and currently wasted, through applications running at the edge of the network. We propose flipping the concept of cloud computing, instead of sending massive amounts of data for processing over the cloud, we distribute lightweight applications to process data on users\u27 smart devices. We envision this approach to enhance the network\u27s bandwidth, grant access to larger datasets, provide low latency responses, and more importantly involve up-to-date user\u27s contextual information in processing. However, such benefits come with a set of challenges: How to locate suitable resources? How to match resources with data providers? How to inform resources what to do? and When? How to orchestrate applications\u27 execution on multiple devices? and How to communicate between devices on the edge? Communication between devices at the edge has different parameters in terms of device mobility, topology, and data rate. Standard protocols, e.g., Wi-Fi or Bluetooth, were not designed for edge computing, hence, does not offer a perfect match. Edge computing requires a lightweight protocol that provides quick device discovery, decent data rate, and multicasting to devices in the proximity. Bluetooth features wide acceptance within the IoT community, however, the low data rate and unicast communication limits its use on the edge. Despite being the most suitable communication protocol for edge computing and unlike other protocols, Bluetooth has a closed source code that blocks lower layer in front of all forms of research study, enhancement, and customization. Hence, we offer an open source version of Bluetooth and then customize it for edge computing applications. In this dissertation, we propose Leveraging Resources on Anonymous Mobile Edge Nodes (LAMEN), a three-tier framework where edge devices are clustered by proximities. On having an application to execute, LAMEN clusters discover and allocate resources, share application\u27s executable with resources, and estimate incentives for each participating resource. In a cluster, a single head node, i.e., mediator, is responsible for resource discovery and allocation. Mediators orchestrate cluster resources and present them as a virtually large homogeneous resource. For example, two devices each offering either a camera or a speaker are presented outside the cluster as a single device with both camera and speaker, this can be extended to any combination of resources. Then, mediator handles applications\u27 distribution within a cluster as needed. Also, we provide a communication protocol that is customizable to the edge environment and application\u27s need. Pushing lightweight applications that end devices can execute over their locally generated data have the following benefits: First, avoid sharing user data with cloud server, which is a privacy concern for many of them; Second, introduce mediators as a local cloud controller closer to the edge; Third, hide the user\u27s identity behind mediators; and Finally, enhance bandwidth utilization by keeping raw data at the edge and transmitting processed information. Our evaluation shows an optimized resource lookup and application assignment schemes. In addition to, scalability in handling networks with large number of devices. In order to overcome the communication challenges, we provide an open source communication protocol that we customize for edge computing applications, however, it can be used beyond the scope of LAMEN. Finally, we present three applications to show how LAMEN enables various application domains on the edge of the network. In summary, we propose a framework to orchestrate underutilized resources at the edge of the network towards processing data that are generated in their proximity. Using the approaches explained later in the dissertation, we show how LAMEN enhances the performance of applications and enables a new set of applications that were not feasible

    Low-latency network coding for streaming video multicast

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    Thesis (M. Eng.)--Massachusetts Institute of Technology, Dept. of Electrical Engineering and Computer Science, 2008.Includes bibliographical references (p. 95-98).Network coding has been successfully employed to increase throughput for data transfers. However, coding inherently introduces packet inter-dependencies and adds decoding delays which increase latency. This makes it difficult to apply network coding to real-time video streaming where packets have tight arrival deadlines. This thesis presents FLOSS, a wireless protocol for streaming video multicast. At the core of FLOSS is a novel network code. This code maximizes the decoding opportunities at every receiver, and at the same time minimizes redundancy and decoding latency. Instead of sending packets plainly to a single receiver, a sender mixes in packets that are immediately beneficial to other receivers. This simple technique not only allows us to achieve the coding benefits of increased throughput, it also decreases delivery latency, unlike other network coding approaches. FLOSS performs coding over a rolling window of packets from a video flow, and determines with feedback the optimal set of packet transmissions needed to get video across in a timely and reliable manner. A second important characteristic of FLOSS is its ability to perform both interand intra-flow network coding at the same time. Our technique extends easily to support multiple video streams, enabling us to effectively and transparently apply network coding and opportunistic routing to video multicast in a wireless mesh. We devise VSSIM*, an improved video quality metric based on [46]. Our metric addresses a significant limitation of prior art and allows us to evaluate video with streaming errors like skipped and repeated frames. We have implemented FLOSS using Click [22]. Through experiments on a 12-node testbed, we demonstrate that our protocol outperforms both a protocol that does not use network coding and one that does so naively. We show that the improvement in video quality comes from increased throughput, decreased latency and opportunistic receptions from our scheme.by Kah Keng Tay.M.Eng

    Instantly Decodable Network Coding: From Centralized to Device-to-Device Communications

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    From its introduction to its quindecennial, network coding has built a strong reputation for enhancing packet recovery and achieving maximum information flow in both wired and wireless networks. Traditional studies focused on optimizing the throughput of the system by proposing elaborate schemes able to reach the network capacity. With the shift toward distributed computing on mobile devices, performance and complexity become both critical factors that affect the efficiency of a coding strategy. Instantly decodable network coding presents itself as a new paradigm in network coding that trades off these two aspects. This paper review instantly decodable network coding schemes by identifying, categorizing, and evaluating various algorithms proposed in the literature. The first part of the manuscript investigates the conventional centralized systems, in which all decisions are carried out by a central unit, e.g., a base-station. In particular, two successful approaches known as the strict and generalized instantly decodable network are compared in terms of reliability, performance, complexity, and packet selection methodology. The second part considers the use of instantly decodable codes in a device-to-device communication network, in which devices speed up the recovery of the missing packets by exchanging network coded packets. Although the performance improvements are directly proportional to the computational complexity increases, numerous successful schemes from both the performance and complexity viewpoints are identified

    Enabling Technologies for Ultra-Reliable and Low Latency Communications: From PHY and MAC Layer Perspectives

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    © 1998-2012 IEEE. Future 5th generation networks are expected to enable three key services-enhanced mobile broadband, massive machine type communications and ultra-reliable and low latency communications (URLLC). As per the 3rd generation partnership project URLLC requirements, it is expected that the reliability of one transmission of a 32 byte packet will be at least 99.999% and the latency will be at most 1 ms. This unprecedented level of reliability and latency will yield various new applications, such as smart grids, industrial automation and intelligent transport systems. In this survey we present potential future URLLC applications, and summarize the corresponding reliability and latency requirements. We provide a comprehensive discussion on physical (PHY) and medium access control (MAC) layer techniques that enable URLLC, addressing both licensed and unlicensed bands. This paper evaluates the relevant PHY and MAC techniques for their ability to improve the reliability and reduce the latency. We identify that enabling long-term evolution to coexist in the unlicensed spectrum is also a potential enabler of URLLC in the unlicensed band, and provide numerical evaluations. Lastly, this paper discusses the potential future research directions and challenges in achieving the URLLC requirements

    Computer-network Solutions for Pervasive Computing

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    Lo scenario delle reti di comunicazione di tipo wireless sta rapidamente evolvendo verso i sistemi pervasivi in cui i dispositivi wireless, di diversi tipi e grandezze, costituiscono parte integrante dell’ambiente in cui sono immersi, ed interagiscono continuamente ed in maniera trasparente con gli utenti che vi vivono o che lo attraversano. Si parla a tal proposito anche di ambienti intelligenti. Seguendo l’evoluzione dai sistemi mobili a quelli pervasivi, questa tesi rivisita diversi tipi di ambienti wireless che si sono sviluppati e diffusi negli ultimi 20 anni: a partire dalle wireless LANs, proseguendo con le reti ad hoc, per finire con le reti opportunistiche. Sebbene molte problematiche delle reti wireless si ripropongano in quasi tutti gli scenari (ad esempio il risparmio energetico), a scenari wireless diversi corrispondono in genere utilizzi differenti e diversi fabbisogni degli utenti, come pure problemi specifici che richiedono soluzioni dedicate. Alcune soluzioni specifiche sono analizzate e proposte in questa tesi. Le reti WLANs basate su infrastruttura sono usate generalmente per fornire accesso alla rete Internet ed infatti lo scenario che le comprende è solitamente riferito come Wireless Internet. Nonostante la presenza dell’infrastruttuta fissa garantisca in generale una trasmissione di dati affidabile, l’utilizzo di questo tipo di reti per fornire esattamente gli stessi tipi di servizi delle reti fisse provoca un elevato consumo di risorse che all’interno delle WLANs sono invece limitate. Inoltre l’utilizzo dei protocolli dello stack TCP/IP sui link wireless è di solito fonte di inefficienze viste le profonde differenze esistenti fra i link wireless e quelli fissi. La progettazione di servizi in uno scenario di wireless Internet ha come primario obiettivo quello di garantire la fruizione da parte degli utenti mobili senza soluzione di continuità, mascherando così la presenza del link wireless che ha banda nominale inferiore rispetto ai link fissi ed è soggetto a maggiori perdite, e supportando la mobilità degli utenti all’interno delle zone di copertura (handoff). La gestione dei servizi di wireless Internet deve sempre essere integrata con soluzioni di risparmio energetico tese ad allungare il più possibile l’autonomia energetica dei dispositivi degli utenti (alimentati a batteria) garantendo così loro un servizio duraturo nel tempo. Abbiamo studiato una soluzione per servizi di streaming audio-video verso terminali mobili in un ambiente di wireless LAN. Oltre a garantire la continuità della riproduzione multimediale con buona qualità, questa soluzione ottimizza il consumo energetico del terminale wireless agendo sulla scheda di rete wireless. Durante lo streaming infatti, la scheda di rete viene periodicamente messa in uno stato a basso consumo energetico (sleep). I periodi di sleep della scheda vengono calcolati adattivamente in funzione dello stato di avanzamento della riproduzione multimediale e della banda disponibile istantaneamente sul canale wireless opportunamente monitorato. Il riposo della scheda di rete non incide sul processo di riproduzione e quindi sulla qualità del servizio percepita dall’utente mobile. A differenza delle WLANs, le reti MANETs sono prive di infrastruttura fissa ed i nodi che vi partecipano si autoconfigurano ed autoorganizzano tra di loro. Le MANETs si mostrano particolarmente adatte ad esigenze temporanee di gruppi di utenti che vogliano condividere dati, scambiarsi messaggi, o altro. Uno dei principali interessi di ricerca nell’ambito delle reti MANETs ha riguardato storicamente lo studio dei protocolli di routing per l’instradamento delle informazioni fra nodi sorgente e nodi destinatari. In una rete MANET infatti, vista l’assenza di infrastruttura, ogni nodo è coinvolto nella funzione di instradamento. Negli ultimi anni tuttavia, un nuovo aspetto di ricerca sta acquistando sempre maggiore attenzione e riguarda la sperimentazione su testbed reali. Le poche esperienze sperimentali eseguite su MANETs hanno dimostrato l’inadeguatezza degli studi di tipo analitico-simulativo nel giudicare l’efficacia delle soluzioni progettate per reti MANETs. Questo è principalmente dovuto al fatto che gli scenari wireless sono estremamente complessi e soggetti a fenomeni di diversa natura che influiscono sulle comunicazioni ma che sono difficilmente condensabili in un modello analitico completo. I modelli esistenti nei simulatori attualmente diffusi sono spesso causa di errori nel validare o al contrario bocciare le soluzioni ed i protocolli testati. Le attività di sperimentazione su testbed reali hanno dunque un duplice scopo: i) validare protocolli e soluzioni proposte attualmente, e ii) gettare le basi per la costruizione di nuovi modelli analitici e simulativi che siano maggiormente attendibili di quelli attuali. L’esperienza condotta su di un testbed reale per reti ad hoc comprendente portatili e palmari fino ad un totale di 12 nodi, ha dimostrato l’efficacia delle implementazioni di due protocolli di routing: AODV (Ad hoc On demand Distance Vector) ed OLSR (Optimized Link State Routing). Tuttavia, benchè entrambi siano funzionalmente corretti, mostrano comportamenti differenti quando usati per supportare servizi di livello middleware ed applicativi (vedi ad esempio file sharing o trasferimenti ftp). In particolare, i ritardi causati dalla scoperta delle rotte in AODV sono spesso causa di inefficienze o addirittura di interruzione del servizio. OLSR invece, seppure responsabile di un overhead di traffico maggiore, si mostra maggiormente adatto alle interazioni con i servizi dei livelli superiori. Infine, l’esperienza ha dimostrato la necessità di ripensare molti dei servizi disponibili su rete fissa per adeguarli alle caratteristiche delle reti wireless e particolarmente di quelle ad hoc. Una nuova tipologia di reti wireless sta emergendo attualmente e si sta rivelando di particolare interesse: quella delle reti opportunistiche. Le reti opportunistiche non si appoggiano su alcuna infrastruttura fissa, né cercano di autoconfigurarsi in una infrastruttura wireless temporanea costituita da nodi vicini. Sfruttano le opportunità di contatto che si verificano fra i nodi (dispositivi wireless di piccola taglia) trasportati dagli utenti nelle loro attività quotidiane (ad esempio a lavoro, sugli autobus, a scuola o all’università, ecc.). I messaggi sono scambiati ogni qualvolta si renda possibile, ovunque sia possibile ed il successo della loro trasmissione è strettamente legato alle dinamiche sociali in cui sono coinvolti gli utenti che trasportano i dispositivi ed alla storia degli incontri tra individui. Data la mobilità estremamente elevata che caratterizza questo nuovo scenario di reti, e la nota rumorosità delle comunicazioni wireless, l’affidabilità delle trasmissioni emerge come uno dei fattori di principale interesse. Infatti, le comunicazioni possono aver luogo soltanto durante i periodi di contatto tra i nodi e devono essere estremamente veloci ed efficaci. Questo porta a dover fare uno sforzo di progettazione per nuovi protocolli di comunicazione che si diversifichino da quelli oggi più diffusi e basati sulla ritrasmissione dei dati mancanti. Le ritrasmissioni infatti, nella maggior parte dei casi potrebbero non poter essere eseguite per mancanza di tempo. Una strategia valida per gestire l’affidabilità delle comunicazioni opportunistiche in simili scenari estremi (caratterizzati cioè da scarse risorse e scarsa connettività) prevede l’utilizzo combinato di tecniche di codifica dei dati e strategie di instradamento di tipo epidemico. Questo approccio sfrutta la ridondanza sia delle informazioni, sia dei percorsi. La ridondanza delle informazioni dà robustezza a fronte della perdita dei dati in rete poiché è necessario che soltanto un sottoinsieme dei codici generati arrivi a destinazione per consentire al ricostruzione corretta delle informazioni. La ridondanza dei percorsi invece è necessaria poichè non è possibile predirre in anticipo la sequenza dei contatti che può portare i dati a destinazione e pertanto è necessario distribuire l’informazione in più direzioni. Le reti opportunistiche caratterizzate dalla presenza di dispositivi con limitata autonomia energetica e risorse limitate, offrono attualmente lo scenario che meglio traduce il concetto di sistemi pervasivi. Di particolare interesse è il caso delle reti di sensori sparse in cui i sensori sono disposti nell’ambiente con funzione di monitoraggio ed i dati che collezionano vengono raccolti da degli agenti mobili che passano nelle vicinanze e che sono noti come data MULEs. I data MULEs possono utilizzare le informazioni acquisite dai sensori per eseguire applicazioni dipendenti dal contesto o possono semplicemente inoltrarle fino a quando raggiungono l’infrastruttura dove vengono elaborati e memorizzati. Le interazioni fra i sensori immersi nell’ambiente ed i data MULEs sono soltanto un primo passo di un sistema di comunicazione globale completamente opportunistico in cui i data MULEs scambiano l’un l’altro le informazioni che trasportano fino a quando infine, i dati pervengono alle destinazioni più lontane. In questo scenario, le comunicazioni wireless completano naturalmente le interazioni fra gli utenti e si verificano ogni qualvolta gli utenti si incontrano oppure si avvicinano casualmente l’un l’altro, dovunque questa interazione avvenga. Per supportare un simile framework, è necessario sviluppare nuovi paradigmi di comunicazione che tengano in considerazione l’assenza di link stabili tra i nodi che comunicano (connettività intermittente) e che assumano quindi la disponibilità di brevi periodi di contatto per comunicare. Inoltre i nuovi paradigmi di comunicazione devono generalmente assumere l’assenza di un percorso completo fra i nodi sorgente e destinatario e sfruttare invece forme di instradamento delle informazioni che sono simili al modo in cui avvengono le interazioni sociali fra le persone. Strategie di instradamento basate su codifica dei dati offrono una valida soluzione per supportare il framework emergente dei sistemi pervasivi
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