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Computing graph neural networks: A survey from algorithms to accelerators

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Abadal Cavallé, SergiMés informacióMés informacióMés informació
Jain, AkshayMés informació
Guirado Liñan, Robert
López Alonso, Jorge
Alarcón Cot, Eduardo JoséMés informacióMés informacióMés informació
Document typeArticle
Defense date2022-12-01
PublisherAssociation for Computing Machinery (ACM)
Rights accessOpen Access
Attribution 4.0 International
Except where otherwise noted, content on this work is licensed under a Creative Commons license : Attribution 4.0 International
ProjectWiPLASH - Architecting More Than Moore – Wireless Plasticity for Heterogeneous Massive Computer Architectures (EC-H2020-863337)
DISEÑANDO UNA INFRAESTRUCTURA DE RED 5G DEFINIDA MEDIANTE CONOCIMIENTO HACIA LA PROXIMA SOCIEDAD DIGITAL (AEI-TEC2017-90034-C2-1-R)
Abstract
Graph Neural Networks (GNNs) have exploded onto the machine learning scene in recent years owing to their capability to model and learn from graph-structured data. Such an ability has strong implications in a wide variety of fields whose data are inherently relational, for which conventional neural networks do not perform well. Indeed, as recent reviews can attest, research in the area of GNNs has grown rapidly and has lead to the development of a variety of GNN algorithm variants as well as to the exploration of ground-breaking applications in chemistry, neurology, electronics, or communication networks, among others. At the current stage research, however, the efficient processing of GNNs is still an open challenge for several reasons. Besides of their novelty, GNNs are hard to compute due to their dependence on the input graph, their combination of dense and very sparse operations, or the need to scale to huge graphs in some applications. In this context, this article aims to make two main contributions. On the one hand, a review of the field of GNNs is presented from the perspective of computing. This includes a brief tutorial on the GNN fundamentals, an overview of the evolution of the field in the last decade, and a summary of operations carried out in the multiple phases of different GNN algorithm variants. On the other hand, an in-depth analysis of current software and hardware acceleration schemes is provided, from which a hardware-software, graph-aware, and communication-centric vision for GNN accelerators is distilled.
CitationAbadal, S. [et al.]. Computing graph neural networks: A survey from algorithms to accelerators. "ACM computing surveys", 1 Desembre 2022, vol. 54, núm. 9, p. 191:1-191:38. 
URIhttp://hdl.handle.net/2117/362081
DOI10.1145/3477141
ISSN1557-7341
Publisher versionhttps://dl.acm.org/doi/10.1145/3477141
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  • Departament d'Arquitectura de Computadors - Articles de revista [967]
  • WNG - Wireless Network Group - Articles de revista [132]
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  • EPIC - Energy Processing and Integrated Circuits - Articles de revista [202]
  • CBA - Sistemes de Comunicacions i Arquitectures de Banda Ampla - Articles de revista [154]
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