42 research outputs found

    On the Design of Federated Learning in Latency and Energy Constrained Computation Offloading Operations in Vehicular Edge Computing Systems

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    With the advent of smart vehicles, several new latency-critical and data-intensive applications are emerged in Vehicular Networks (VNs). Computation offloading has emerged as a viable option allowing to resort to the nearby edge servers for remote processing within a requested service latency requirement. Despite several advantages, computation offloading over resource-limited edge servers, together with vehicular mobility, is still a challenging problem to be solved. In particular, in order to avoid additional latency due to out-of-coverage operations, Vehicular Users (VUs) mobility introduces a bound on the amount of data to be offloaded towards nearby edge servers. Therefore, several approaches have been used for finding the correct amount of data to be offloaded. Among others, Federated Learning (FL) has been highlighted as one of the most promising solving techniques, given the data privacy concerns in VNs and limited communication resources. However, FL consumes resources during its operation and therefore incurs an additional burden on resource-constrained VUs. In this work, we aim to optimize the VN performance in terms of latency and energy consumption by considering both the FL and the computation offloading processes while selecting the proper number of FL iterations to be implemented. To this end, we first propose an FL-inspired distributed learning} framework for computation offloading in VNs, and then develop a constrained optimization problem to jointly minimize the overall latency and the energy consumed. An evolutionary Genetic Algorithm is proposed for solving the problem in-hand and compared with some benchmarks. The simulation results show the effectiveness of the proposed approach in terms of latency and energy consumption

    Holistic resource management in UAV-assisted wireless networks

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    Unmanned aerial vehicles (UAVs) are considered as a promising solution to assist terrestrial networks in future wireless networks (i.e., beyond fifth-generation (B5G) and sixth-generation (6G)). The convergence of various technologies requires future wireless networks to provide multiple functionalities, including communication, computing, control, and caching (4C), necessary for applications such as connected robotics and autonomous systems. The majority of existing works consider the developments in 4C individually, which limits the cooperation among 4C for potential gains. UAVs have been recently introduced to supplement mobile edge computing (MEC) in terrestrial networks to reduce network latency by providing mobile resources at the network edge in future wireless networks. However, compared to ground base stations (BSs), the limited resources at the network edge call for holistic management of the resources, which requires joint optimization. We provide a comprehensive review of holistic resource management in UAV-assisted wireless networks. Integrated resource management considers the challenges associated with aerial networks (such as three-dimensional (3D) placement of UAVs, trajectory planning, channel modelling, and backhaul connectivity) and terrestrial networks (such as limited bandwidth, power, and interference). We present architectures (source-UAV-destination and UAV-destination architecture) and 4C in UAV-assisted wireless networks. We then provide a detailed discussion on resource management by categorizing the optimization problems into individual or combinations of two (communication and computation) or three (communication, computation and control). Moreover, solution approaches and performance metrics are discussed and analyzed for different objectives and problem types. We formulate a mathematical framework for holistic resource management to minimize the linear combination of network latency and cost for user association while guaranteeing the offloading, computing, and caching constraints. Binary decision variables are used to allocate offloading and computing resources. Since the decision variables are binary and constraints are linear, the formulated problem is a binary linear programming problem. We propose a heuristic algorithm based on the interior point method by exploiting the optimization structure of the problem to get a sub-optimal solution with less complexity. Simulation results show the effectiveness of the proposed work when compared to the optimal results obtained using branch and bound. Finally, we discuss insight into the potential future research areas to address the challenges of holistic resource management in UAV-assisted wireless networks

    In pursuit of autonomous distributed satellite systems

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    Satellite imagery has become an essential resource for environmental, humanitarian, and industrial endeavours. As a means to satisfy the requirements of new applications and user needs, novel Earth Observation (EO) systems are exploring the suitability of Distributed Satellite Systems (DSS) in which multiple observation assets concurrently sense the Earth. Given the temporal and spatial resolution requirements of EO products, DSS are often envisioned as large-scale systems with multiple sensing capabilities operating in a networked manner. Enabled by the consolidation of small satellite platforms and fostered by the emerging capabilities of distributed systems, these new architectures pose multiple design and operational challenges. Two of them are the main pillars of this research, namely, the conception of decision-support tools to assist the architecting process of a DSS, and the design of autonomous operational frameworks based on decentralised, on-board decision-making. The first part of this dissertation addresses the architecting of heterogeneous, networked DSS architectures that hybridise small satellite platforms with traditional EO assets. We present a generic design-oriented optimisation framework based on tradespace exploration methodologies. The goals of this framework are twofold: to select the most optimal constellation design; and to facilitate the identification of design trends, unfeasible regions, and tensions among architectural attributes. Oftentimes in EO DSS, system requirements and stakeholder preferences are not only articulated through functional attributes (i.e. resolution, revisit time, etc.) or monetary constraints, but also through qualitative traits such as flexibility, evolvability, robustness, or resiliency, amongst others. In line with that, the architecting framework defines a single figure of merit that aggregates quantitative attributes and qualitative ones-the so-called ilities of a system. With that, designers can steer the design of DSS both in terms of performance or cost, and in terms of their high-level characteristics. The application of this optimisation framework has been illustrated in two timely use-cases identified in the context of the EU-funded ONION project: a system that measures ocean and ice parameters in Polar regions to facilitate weather forecast and off-shore operations; and a system that provides agricultural variables crucial for global management of water stress, crop state, and draughts. The analysis of architectural features facilitated a comprehensive understanding of the functional and operational characteristics of DSS. With that, this thesis continues to delve into the design of DSS by focusing on one particular functional trait: autonomy. The minimisation of human-operator intervention has been traditionally sought in other space systems and can be especially critical for large-scale, structurally dynamic, heterogeneous DSS. In DSS, autonomy is expected to cope with the likely inability to operate very large-scale systems in a centralised manner, to improve the science return, and to leverage many of their emerging capabilities (e.g. tolerance to failures, adaptability to changing structures and user needs, responsiveness). We propose an autonomous operational framework that provides decentralised decision-making capabilities to DSS by means of local reasoning and individual resource allocation, and satellite-to-satellite interactions. In contrast to previous works, the autonomous decision-making framework is evaluated in this dissertation for generic constellation designs the goal of which is to minimise global revisit times. As part of the characterisation of our solution, we stressed the implications that autonomous operations can have upon satellite platforms with stringent resource constraints (e.g. power, memory, communications capabilities) and evaluated the behaviour of the solution for a large-scale DSS composed of 117 CubeSat-like satellite units.La imatgeria per sat猫l路lit ha esdevingut un recurs essencial per assolir tasques ambientals, humanit脿ries o industrials. Per tal de satisfer els requeriments de les noves aplicacions i usuaris, els sistemes d鈥檕bservaci贸 de la Terra (OT) estan explorant la idone茂tat dels Sistemes de Sat猫l路lit Distribu茂ts (SSD), on m煤ltiples observatoris espacials mesuren el planeta simult脿niament. Degut al les resolucions temporals i espacials requerides, els SSD sovint es conceben com sistemes de gran escala que operen en xarxa. Aquestes noves arquitectures promouen les capacitats emergents dels sistemes distribu茂ts i, tot i que s贸n possibles gr脿cies a l鈥檃cceptaci贸 de les plataformes de sat猫l路lits petits, encara presenten molts reptes en quant al disseny i operacions. Dos d鈥檈lls s贸n els pilars principals d鈥檃questa tesi, en concret, la concepci贸 d鈥檈ines de suport a la presa de decisions pel disseny de SSD, i la definici贸 d鈥檕peracions aut貌nomes basades en gesti贸 descentralitzada a bord dels sat猫l路lits. La primera part d鈥檃questa dissertaci贸 es centra en el disseny arquitectural de SSD heterogenis i en xarxa, imbricant tecnologies de petits sat猫l路lits amb actius tradicionals. Es presenta un entorn d鈥檕ptimitzaci贸 orientat al disseny basat en metodologies d鈥檈xploraci贸 i comparaci贸 de solucions. Els objectius d鈥檃quest entorn s贸n: la selecci贸 el disseny de constel路laci贸 m茅s 貌ptim; i facilitar la identificaci贸 de tend猫ncies de disseny, regions d鈥檌ncompatibilitat, i tensions entre atributs arquitecturals. Sovint en els SSD d鈥橭T, els requeriments del sistema i l鈥檈xpressi贸 de prioritats no nom茅s s鈥檃rticulen en quant als atributs funcionals o les restriccions monet脿ries, sin贸 tamb茅 a trav茅s de les caracter铆stiques qualitatives com la flexibilitat, l鈥檈volucionabilitat, la robustesa, o la resili猫ncia, entre d鈥檃ltres. En l铆nia amb aix貌, l鈥檈ntorn d鈥檕ptimitzaci贸 defineix una 煤nica figura de m猫rit que agrega rendiment, cost i atributs qualitatius. Aix铆 l鈥檈quip de disseny pot influir en les solucions del proc茅s d鈥檕ptimitzaci贸 tant en els aspectes quantitatius, com en les caracter铆stiques dalt nivell. L鈥檃plicaci贸 d鈥檃quest entorn d鈥檕ptimitzaci贸 s鈥檌l路lustra en dos casos d鈥櫭簊 actuals identificats en context del projecte europeu ONION: un sistema que mesura par脿metres de l鈥檕ce脿 i gel als pols per millorar la predicci贸 meteorol貌gica i les operacions marines; i un sistema que obt茅 mesures agron貌miques vitals per la gesti贸 global de l鈥檃igua, l鈥檈stimaci贸 d鈥檈stat dels cultius, i la gesti贸 de sequeres. L鈥檃n脿lisi de propietats arquitecturals ha perm猫s copsar de manera exhaustiva les caracter铆stiques funcionals i operacionals d鈥檃quests sistemes. Amb aix貌, la tesi ha seguit aprofundint en el disseny de SSD centrant-se, particularment, en un tret funcional: l鈥檃utonomia. Minimitzar la intervenci贸 de l鈥檕perador hum脿 茅s com煤 en altres sistemes espacials i podria ser especialment cr铆tic pels SSD de gran escala, d鈥檈structura din脿mica i heterogenis. En els SSD s鈥檈spera que l鈥檃utonomia solucioni la possible incapacitat d鈥檕perar sistemes de gran escala de forma centralitzada, que millori el retorn cient铆fic i que n鈥檃puntali les seves propietats emergents (e.g. toler脿ncia a errors, adaptabilitat a canvis estructural i de necessitats d鈥檜suari, capacitat de resposta). Es proposa un sistema d鈥檕peracions aut貌nomes que atorga la capacitat de gestionar els sistemes de forma descentralitzada, a trav茅s del raonament local, l鈥檃ssignaci贸 individual de recursos, i les interaccions sat猫l路lit-a-sat猫l路lit. Al contrari que treballs anteriors, la presa de decisions aut貌noma s鈥檃valua per constel路lacions que tenen com a objectius de missi贸 la minimitzaci贸 del temps de revisita global

    In pursuit of autonomous distributed satellite systems

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    A la p脿gina 265 diu: "In an effort to facilitate the reproduction of results, both the source code of the simulation environment and the configuration files that were prepared for the design characterisation are available in an open repository: https://github.com/carlesaraguz/aeossSatellite imagery has become an essential resource for environmental, humanitarian, and industrial endeavours. As a means to satisfy the requirements of new applications and user needs, novel Earth Observation (EO) systems are exploring the suitability of Distributed Satellite Systems (DSS) in which multiple observation assets concurrently sense the Earth. Given the temporal and spatial resolution requirements of EO products, DSS are often envisioned as large-scale systems with multiple sensing capabilities operating in a networked manner. Enabled by the consolidation of small satellite platforms and fostered by the emerging capabilities of distributed systems, these new architectures pose multiple design and operational challenges. Two of them are the main pillars of this research, namely, the conception of decision-support tools to assist the architecting process of a DSS, and the design of autonomous operational frameworks based on decentralised, on-board decision-making. The first part of this dissertation addresses the architecting of heterogeneous, networked DSS architectures that hybridise small satellite platforms with traditional EO assets. We present a generic design-oriented optimisation framework based on tradespace exploration methodologies. The goals of this framework are twofold: to select the most optimal constellation design; and to facilitate the identification of design trends, unfeasible regions, and tensions among architectural attributes. Oftentimes in EO DSS, system requirements and stakeholder preferences are not only articulated through functional attributes (i.e. resolution, revisit time, etc.) or monetary constraints, but also through qualitative traits such as flexibility, evolvability, robustness, or resiliency, amongst others. In line with that, the architecting framework defines a single figure of merit that aggregates quantitative attributes and qualitative ones-the so-called ilities of a system. With that, designers can steer the design of DSS both in terms of performance or cost, and in terms of their high-level characteristics. The application of this optimisation framework has been illustrated in two timely use-cases identified in the context of the EU-funded ONION project: a system that measures ocean and ice parameters in Polar regions to facilitate weather forecast and off-shore operations; and a system that provides agricultural variables crucial for global management of water stress, crop state, and draughts. The analysis of architectural features facilitated a comprehensive understanding of the functional and operational characteristics of DSS. With that, this thesis continues to delve into the design of DSS by focusing on one particular functional trait: autonomy. The minimisation of human-operator intervention has been traditionally sought in other space systems and can be especially critical for large-scale, structurally dynamic, heterogeneous DSS. In DSS, autonomy is expected to cope with the likely inability to operate very large-scale systems in a centralised manner, to improve the science return, and to leverage many of their emerging capabilities (e.g. tolerance to failures, adaptability to changing structures and user needs, responsiveness). We propose an autonomous operational framework that provides decentralised decision-making capabilities to DSS by means of local reasoning and individual resource allocation, and satellite-to-satellite interactions. In contrast to previous works, the autonomous decision-making framework is evaluated in this dissertation for generic constellation designs the goal of which is to minimise global revisit times. As part of the characterisation of our solution, we stressed the implications that autonomous operations can have upon satellite platforms with stringent resource constraints (e.g. power, memory, communications capabilities) and evaluated the behaviour of the solution for a large-scale DSS composed of 117 CubeSat-like satellite units.La imatgeria per sat猫l路lit ha esdevingut un recurs essencial per assolir tasques ambientals, humanit脿ries o industrials. Per tal de satisfer els requeriments de les noves aplicacions i usuaris, els sistemes d鈥檕bservaci贸 de la Terra (OT) estan explorant la idone茂tat dels Sistemes de Sat猫l路lit Distribu茂ts (SSD), on m煤ltiples observatoris espacials mesuren el planeta simult脿niament. Degut al les resolucions temporals i espacials requerides, els SSD sovint es conceben com sistemes de gran escala que operen en xarxa. Aquestes noves arquitectures promouen les capacitats emergents dels sistemes distribu茂ts i, tot i que s贸n possibles gr脿cies a l鈥檃cceptaci贸 de les plataformes de sat猫l路lits petits, encara presenten molts reptes en quant al disseny i operacions. Dos d鈥檈lls s贸n els pilars principals d鈥檃questa tesi, en concret, la concepci贸 d鈥檈ines de suport a la presa de decisions pel disseny de SSD, i la definici贸 d鈥檕peracions aut貌nomes basades en gesti贸 descentralitzada a bord dels sat猫l路lits. La primera part d鈥檃questa dissertaci贸 es centra en el disseny arquitectural de SSD heterogenis i en xarxa, imbricant tecnologies de petits sat猫l路lits amb actius tradicionals. Es presenta un entorn d鈥檕ptimitzaci贸 orientat al disseny basat en metodologies d鈥檈xploraci贸 i comparaci贸 de solucions. Els objectius d鈥檃quest entorn s贸n: la selecci贸 el disseny de constel路laci贸 m茅s 貌ptim; i facilitar la identificaci贸 de tend猫ncies de disseny, regions d鈥檌ncompatibilitat, i tensions entre atributs arquitecturals. Sovint en els SSD d鈥橭T, els requeriments del sistema i l鈥檈xpressi贸 de prioritats no nom茅s s鈥檃rticulen en quant als atributs funcionals o les restriccions monet脿ries, sin贸 tamb茅 a trav茅s de les caracter铆stiques qualitatives com la flexibilitat, l鈥檈volucionabilitat, la robustesa, o la resili猫ncia, entre d鈥檃ltres. En l铆nia amb aix貌, l鈥檈ntorn d鈥檕ptimitzaci贸 defineix una 煤nica figura de m猫rit que agrega rendiment, cost i atributs qualitatius. Aix铆 l鈥檈quip de disseny pot influir en les solucions del proc茅s d鈥檕ptimitzaci贸 tant en els aspectes quantitatius, com en les caracter铆stiques dalt nivell. L鈥檃plicaci贸 d鈥檃quest entorn d鈥檕ptimitzaci贸 s鈥檌l路lustra en dos casos d鈥櫭簊 actuals identificats en context del projecte europeu ONION: un sistema que mesura par脿metres de l鈥檕ce脿 i gel als pols per millorar la predicci贸 meteorol貌gica i les operacions marines; i un sistema que obt茅 mesures agron貌miques vitals per la gesti贸 global de l鈥檃igua, l鈥檈stimaci贸 d鈥檈stat dels cultius, i la gesti贸 de sequeres. L鈥檃n脿lisi de propietats arquitecturals ha perm猫s copsar de manera exhaustiva les caracter铆stiques funcionals i operacionals d鈥檃quests sistemes. Amb aix貌, la tesi ha seguit aprofundint en el disseny de SSD centrant-se, particularment, en un tret funcional: l鈥檃utonomia. Minimitzar la intervenci贸 de l鈥檕perador hum脿 茅s com煤 en altres sistemes espacials i podria ser especialment cr铆tic pels SSD de gran escala, d鈥檈structura din脿mica i heterogenis. En els SSD s鈥檈spera que l鈥檃utonomia solucioni la possible incapacitat d鈥檕perar sistemes de gran escala de forma centralitzada, que millori el retorn cient铆fic i que n鈥檃puntali les seves propietats emergents (e.g. toler脿ncia a errors, adaptabilitat a canvis estructural i de necessitats d鈥檜suari, capacitat de resposta). Es proposa un sistema d鈥檕peracions aut貌nomes que atorga la capacitat de gestionar els sistemes de forma descentralitzada, a trav茅s del raonament local, l鈥檃ssignaci贸 individual de recursos, i les interaccions sat猫l路lit-a-sat猫l路lit. Al contrari que treballs anteriors, la presa de decisions aut貌noma s鈥檃valua per constel路lacions que tenen com a objectius de missi贸 la minimitzaci贸 del temps de revisita global.Postprint (published version
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