REDESIGN · distRibutED, sElf-adaptable, and Scalable wIreless foG Networks
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2019-01-01 → 2021-01-09
- EU contribution
- €173,076
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
Lines connect the coordinator with its partners.
Results in brief
distRibutED, sElf-adaptable, and Scalable wIreless foG Networks
The Internet of Things (loT) epitomizes the cutting edge technology to realize theoretical and practical facets of computer networking, and has initiated a prominent transition in the how communication and interactions of our world. The strong need to remedy the growing concerns regarding dealing with the huge data influx in real-time and functioning the available bandwidth bounds led to the birth of fog computing, which, intensively but not exclusively, operate along the network edge. Fog computing is a novel paradigm realizing distributed computing, network services and storage from beyond Cloud Computing Data Centers up until the devices along the network edge. This notion extends the inherent operations and services of Cloud computing, thus enabling new applications and services. As Fog-based processing occurs along the network edge, the end results reflect highly improved location awareness, low latency and QoS in streaming and real-time applications. In addition, to better satisfy future communication demands, fog-based wireless networks are proposed to achieve high spectral efficiency, energy efficiency and low latency by fully utilizing the signal processing, resource management and storage capabilities of edge devices. Owing to fog computing, cloud computing and heterogenous networking, fog-based networks have great potentials in meeting diverse demands. A fog-based network allows the efficiency of the solution to be improved while reducing latency and energy consumption of traditional IoT-based solutions by reducing the amount of data that need to be exchanged with the cloud. This is a crucial aspect in the fog-based networks paradigm since the local processing of data at IoT objects and fog nodes allows avoiding their transmission to the cloud, hence reducing the (relevant) energy consumption for the requested transmission. To fully support this novel fog-based networks paradigm, existing classical solutions must be rethought and tackled from different points of view. In particular, network components forming this novel paradigm must be augmented with self-configuration, management, healing, and energy awareness functionalities to locally process data and make autonomous decisions. These requirements have led fog-based network designers to consider self- adaptive solutions with fog nodes endowed with intelligent mechanisms able to process data and autonomously adapt their behaviors in response to changes affecting either the system itself or the environment in which they are deployed. To this end, the purpose of REDESIGN is to aid the design of new communication techniques for wireless fog-based networks and to examine and verify their usefulness to improve the network performances in terms of self-adaptability, energy efficiency, and service latency. During the action, the applications of game theory and machine learning to fog-based networks are investigated. The resource allocation problem in fog-based networks, reconfigurable intelligent surface-based communications, and dense mm-Wave communications are studied, and novel efficient algorithms are devised.
Data: CORDIS, © European Union
Project objective
The long-term vision of this project is to kick-start wireless communications paradigm toward developing distributed, self-adaptable, and scalable fog networks and guaranteeing requirements of multitude of the Internet of Things applications including: high energy-efficiency, high data-rate, and high reliability. The goal is to develop wireless fog networks (WFNs) by using network slicing technology and deep learning techniques to integrate ground and drone fog nodes into cellular networks. The project will design WFNs integrated into cellular networks composed by smart cells which are able to continuously sense the network topology and to autonomously learn how to configure network parameters and to slice their own network resources to guarantee the required quality of services by fog nodes. Each cell could also add configuration parameters to enable device-to-device and multicast communications among wireless fog nodes themselves. This project enables a shift from centralised core-centric cellular networks toward distributed, software-based, and self-adaptable cell-centric ones to support new fog computing applications. These advancements will make the vision of smarter cities by applying ground and drone fog nodes, almost zeroing the operational expenses related to network configuration and hence revolutionizing the existing business models for fog computing by radically reducing energy and operational costs. This will also facilitate the rise of new fog networks markets and applications including healthcare, security, smarter power grids, and disaster management.
Original text from CORDIS.
Participants
- CENTRE NATIONAL DE LA RECHERCHE SCIENTIFIQUE CNRS · ParisCoordinatorFrance
Links
Data: CORDIS, © European Union
