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Accelerating the drive towards energy-efficient generative AI with quantum computing algorithms

delete2025-12-01
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PRE
AI
F
Frederik Floether *
J
Jan Mikolon
M
Maria Longobardi
DOI:10.1088/2058-9565/ae0eacdelete
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Abstract

Abstract

En 中文
Research and usage of artificial intelligence, particularly generative and large language models, have rapidly progressed over the last years. This has, however, given rise to issues due to high energy consumption. While quantum computing is not (yet) mainstream, its intersection with machine learning is especially promising, and the technology could alleviate some of these energy challenges. In this perspective article, we break down the lifecycle stages of large language models and discuss relevant enhancements based on quantum algorithms that may aid energy efficiency and sustainability, including industry application examples and open research problems.
Keywords:
LLM
quantum computing
energy
AI
sustainability

Journal

Quantum Science and Technology cover
Quantum Science and Technology
IF:
5
Papers:
1.4K
Citations:
5.1K

Organization

U
University of Basel
Scholars:
3.1W
Papers: 2.4W
Citations: 38
Cited Papers

Cited Papers

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errPeral-Garcia, David; Cruz-Benito, Juan; Garcia-Penalvo, Francisco Jose
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Anomaly detection with variational quantum generative adversarial networks
err2021-07-09
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errOAAI
errHerr, Daniel; Obert, Benjamin; Rosenkranz, Matthias
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Encoding patterns for quantum algorithms
err2021-12-10
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errOAAI
errManuela Weigold; Johanna Barzen; Frank Leymann; Marie Salm
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The effects of quantum hardware properties on the performances of variational quantum learning algorithms
err2024-02-05
err4
errOAAI
errBuonaiuto, Giuseppe; Gargiulo, Francesco; De Pietro, Giuseppe; Esposito, Massimo; Pota, Marco
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Quantum Random Access Memory for Dummies
errSENSORS
IF3.5
err2023-08-28
err10
errOAAI
errPhalak, Koustubh; Chatterjee, Avimita; Ghosh, Swaroop
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Compacting AI: In Search of the Small Language Model
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IF0
err2024-08-01
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PREAI
errMlađan Jovanović; Mark Campbell
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The dark side of generative artificial intelligence: A critical analysis of controversies and risks of ChatGPT
err2023-01-01
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errOAAI
errKrzysztof Wach; Cong Doanh Duong; Joanna Ejdys; Rūta Kazlauskaitė; Pawel Korzynski; Grzegorz Mazurek; Joanna Paliszkiewicz; Ewa Ziemba
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Generative artificial intelligence: a systematic review and applications
err2024-08-14
err0
errOAAI
errSandeep Singh Sengar; Affan Bin Hasan; Sanjay Kumar; Fiona Carroll
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