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Titel: Ten years after ImageNet: a 360° perspective on artificial intelligence
VerfasserIn: Chawla, Sanjay
Nakov, Preslav
Ali, Ahmed
Hall, Wendy
Khalil, Issa
Ma, Xiaosong
Taha Sencar, Husrev
Weber, Ingmar
Wooldridge, Michael
Yu, Ting
Sprache: Englisch
Titel: Royal Society Open Science
Bandnummer: 10
Heft: 3
Verlag/Plattform: The Royal Society Publishing
Erscheinungsjahr: 2023
Freie Schlagwörter: ImageNet
supervised learning
artificial intelligence winter
Big Tech
transformers
DDC-Sachgruppe: 004 Informatik
Dokumenttyp: Journalartikel / Zeitschriftenartikel
Abstract: It is 10 years since neural networks made their spectacular comeback. Prompted by this anniversary, we take a holistic perspective on artificial intelligence (AI). Supervised learning for cognitive tasks is effectively solved—provided we have enough high-quality labelled data. However, deep neural network models are not easily interpretable, and thus the debate between blackbox and whitebox modelling has come to the fore. The rise of attention networks, self-supervised learning, generative modelling and graph neural networks has widened the application space of AI. Deep learning has also propelled the return of reinforcement learning as a core building block of autonomous decision-making systems. The possible harms made possible by new AI technologies have raised socio-technical issues such as transparency, fairness and accountability. The dominance of AI by Big Tech who control talent, computing resources, and most importantly, data may lead to an extreme AI divide. Despite the recent dramatic and unexpected success in AI-driven conversational agents, progress in much-heralded flagship projects like self-driving vehicles remains elusive. Care must be taken to moderate the rhetoric surrounding the field and align engineering progress with scientific principles.
DOI der Erstveröffentlichung: 10.1098/rsos.221414
URL der Erstveröffentlichung: https://doi.org/10.1098/rsos.221414
Link zu diesem Datensatz: urn:nbn:de:bsz:291--ds-408169
hdl:20.500.11880/36677
http://dx.doi.org/10.22028/D291-40816
ISSN: 2054-5703
Datum des Eintrags: 24-Okt-2023
Fakultät: MI - Fakultät für Mathematik und Informatik
Fachrichtung: MI - Informatik
Professur: MI - Prof. Dr. Ingmar Weber
Sammlung:SciDok - Der Wissenschaftsserver der Universität des Saarlandes

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