H2020Индивидуална стипендия2022–2024

SURFER · SUrface waves in smart Radio Frequency EnviRonments

„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“

Период
2022-03-01 → 2024-03-10
Финансиране от ЕС
184 708 €
Участници
1
Схема
MSCA-IF

Линиите свързват координатора с партньорите.

Накратко на български

Метаповърхностите и радиочестотните вълни се изследват, за да се обработва информацията директно в електромагнитния домейн, вместо чрез дигитални процеси. Това помага за намаляване на разхода на енергия и опростяване на хардуера при бъдещите 6G мрежи.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

SUrface waves in smart Radio Frequency EnviRonments

The radio communication division of the international telecommunication union (ITU-R) has recently drafted new recommendations for the international mobile telecommunication 2030 (IMT-2030) framework, which is referred to as the sixth generation (6G) of telecommunication standards. In the past decade, several advanced wireless technologies, including small cells, millimeter-wave communications, and massive multiple-input multiple-output (MIMO) systems, have been proposed to enhance the network capacity and to enable ubiquitous wireless connectivity. The practical implementation and deployment of these technologies is, however, often limited by the associated prohibitive energy consumption and expensive hardware equipment. As a result, it has become apparent that 6G communication networks need to undergo a fundamental shift of design paradigm, which requires to include aspects of (energy) sustainability, besides those of network capacity and connectivity, at the design stage. This change of design paradigm requires radically new physical layer technologies. In this context, we are assisting to the upsurge in brand-new technologies for the physical layer, which rely on encoding, processing, and decoding information in the wave domain, i.e., at the electromagnetic level, as opposed to conventional physical layer technologies that rely on digital information processing. The advantages of wave domain information processing include improved computational efficiency, simplified hardware architectures, and reduced energy consumption. This emerging trend has been facilitated by recent results in the field of configurable antennas and, especially, metasurfaces, which are engineered materials capable of processing the electromagnetic waves in the wave domain without the need of analog-to-digital and digital-to-analog conversions. Examples of emerging technologies include (i) spatial, index, media-based, metasurface modulation, which encode information onto physical characteristics of antennas and metasurfaces; (ii) reconfigurable intelligent surfaces (RISs), which improve the transmission of data by appropriately shaping the propagation of electromagnetic waves at the electromagnetic level, turning radio propagation environments into smart radio propagation environments; (iii) holographic surfaces (HoloSs), which are continuous-aperture hybrid MIMO systems, where the data encoding and decoding is performed in the wave domain; (iv) stacked intelligent surfaces (SIMs), which are multi-layer metasurface-based devices, which resemble deep neural networks, where the data encoding and encoding is realized through signal processing operations in the wave domain; (v) fluid antenna systems; and (vi) surface wave communications (SWC), which are aimed to capitalize on the properties of surface waves (evanescent waves) for realizing efficient wave transformations. Despite the potential performance gains and applications that these technologies may provide in future wireless networks, the major limiting factor preventing information, communication, and signal processing theorists from realizing their full potential and unveiling their ultimate performance limits lies in understanding the electromagnetic and physical properties and limitations underpinning them. Key open problems include how to appropriately model the physics of signal propagation and the processing of signals performed by these emerging devices in the wave domain. To overcome this status quo, it is necessary to cut across the current and established disciplinary boundaries between information, signal, and electromagnetic theories. The objective of the SURFER project lies in developing a framework for modeling and optimizing wireless systems that use free-space waves and surface waves in order to enhance the performance of future networks and making them sustainable by design thanks to wave domain processing.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

Reconfigurable intelligent surfaces (RISs) have emerged as the new wireless communication research frontier with the goal of realizing smart and reconfigurable radio propagation environments via passive and tunable signal transformations. Featured by orders-of-magnitude lower hardware and energy cost than traditional active arrays and yet superior performance, RISs are the new driving technology for future 6G wireless networks, especially for enabling them to migrate to higher frequency bands. RISs will fundamentally transform today’s wireless networks with active nodes solely to a new hybrid network comprising active and passive components co-working in an intelligent way, so as to achieve a sustainable capacity growth with low and affordable cost and power consumption. Current wireless networks based on RISs are, however, based on the free-space communication (FSC) paradigm: The radio waves occupy the entire space, naturally propagate in all directions, and are reflected, refracted, and scattered after hitting objects. In contrast with FSC-based RISs, an emerging technology for enabling reliable, energy-efficient, and interference-free communications in indoor environments is surface wave communication (SWC). Surface waves glide at the interface of materials and their propagation is inherently confined on their surface. Compared with FSC, the unique advantages of SWC are a much more favorable pathloss, a much easier interference management, and an inherent low probability of intercept if appropriate anti-wiretapping schemes are used, since the radio waves propagate along surfaces without leaving them and creating unwanted interference. Supervised and trained by a team of five internationally renowned researchers from academia and industry, Surfer’s experienced researcher aims to pioneer the theoretic foundation and experimental validation of SWC for indoor communications and to unveil its ultimate performance limits, optimized design, and integration with FSC.

Оригинален текст от CORDIS (на английски).

Участници

  • CENTRE NATIONAL DE LA RECHERCHE SCIENTIFIQUE CNRS · ParisКоординаторФранция

Връзки

Данни: CORDIS, © Европейски съюз