Salvato in:
Dettagli Bibliografici
Autori principali: Zimborás, Zoltán, Koczor, Bálint, Holmes, Zoë, Borrelli, Elsi-Mari, Gilyén, András, Huang, Hsin-Yuan, Cai, Zhenyu, Acín, Antonio, Aolita, Leandro, Banchi, Leonardo, Brandão, Fernando G. S. L., Cavalcanti, Daniel, Cubitt, Toby, Filippov, Sergey N., García-Pérez, Guillermo, Goold, John, Kálmán, Orsolya, Kyoseva, Elica, Rossi, Matteo A. C., Sokolov, Boris, Tavernelli, Ivano, Maniscalco, Sabrina
Natura: Preprint
Pubblicazione: 2025
Soggetti:
Accesso online:https://arxiv.org/abs/2501.05694
Tags: Aggiungi Tag
Nessun Tag, puoi essere il primo ad aggiungerne!!
_version_ 1866912182678061056
author Zimborás, Zoltán
Koczor, Bálint
Holmes, Zoë
Borrelli, Elsi-Mari
Gilyén, András
Huang, Hsin-Yuan
Cai, Zhenyu
Acín, Antonio
Aolita, Leandro
Banchi, Leonardo
Brandão, Fernando G. S. L.
Cavalcanti, Daniel
Cubitt, Toby
Filippov, Sergey N.
García-Pérez, Guillermo
Goold, John
Kálmán, Orsolya
Kyoseva, Elica
Rossi, Matteo A. C.
Sokolov, Boris
Tavernelli, Ivano
Maniscalco, Sabrina
author_facet Zimborás, Zoltán
Koczor, Bálint
Holmes, Zoë
Borrelli, Elsi-Mari
Gilyén, András
Huang, Hsin-Yuan
Cai, Zhenyu
Acín, Antonio
Aolita, Leandro
Banchi, Leonardo
Brandão, Fernando G. S. L.
Cavalcanti, Daniel
Cubitt, Toby
Filippov, Sergey N.
García-Pérez, Guillermo
Goold, John
Kálmán, Orsolya
Kyoseva, Elica
Rossi, Matteo A. C.
Sokolov, Boris
Tavernelli, Ivano
Maniscalco, Sabrina
contents In this perspective article, we revisit and critically evaluate prevailing viewpoints on the capabilities and limitations of near-term quantum computing and its potential transition toward fully fault-tolerant quantum computing. We examine theoretical no-go results and their implications, addressing misconceptions about the practicality of quantum error mitigation techniques and variational quantum algorithms. By emphasizing the nuances of error scaling, circuit depth, and algorithmic feasibility, we highlight viable near-term applications and synergies between error mitigation and early fault-tolerant architectures. Our discussion explores strategies for addressing current challenges, such as barren plateaus in variational circuits and the integration of quantum error mitigation and quantum error correction techniques. We aim to underscore the importance of continued innovation in hardware and algorithmic design to bridge the gap between theoretical potential and practical utility, paving the way for meaningful quantum advantage in the era of late noisy intermediate scale and early fault-tolerant quantum devices.
format Preprint
id arxiv_https___arxiv_org_abs_2501_05694
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Myths around quantum computation before full fault tolerance: What no-go theorems rule out and what they don't
Zimborás, Zoltán
Koczor, Bálint
Holmes, Zoë
Borrelli, Elsi-Mari
Gilyén, András
Huang, Hsin-Yuan
Cai, Zhenyu
Acín, Antonio
Aolita, Leandro
Banchi, Leonardo
Brandão, Fernando G. S. L.
Cavalcanti, Daniel
Cubitt, Toby
Filippov, Sergey N.
García-Pérez, Guillermo
Goold, John
Kálmán, Orsolya
Kyoseva, Elica
Rossi, Matteo A. C.
Sokolov, Boris
Tavernelli, Ivano
Maniscalco, Sabrina
Quantum Physics
In this perspective article, we revisit and critically evaluate prevailing viewpoints on the capabilities and limitations of near-term quantum computing and its potential transition toward fully fault-tolerant quantum computing. We examine theoretical no-go results and their implications, addressing misconceptions about the practicality of quantum error mitigation techniques and variational quantum algorithms. By emphasizing the nuances of error scaling, circuit depth, and algorithmic feasibility, we highlight viable near-term applications and synergies between error mitigation and early fault-tolerant architectures. Our discussion explores strategies for addressing current challenges, such as barren plateaus in variational circuits and the integration of quantum error mitigation and quantum error correction techniques. We aim to underscore the importance of continued innovation in hardware and algorithmic design to bridge the gap between theoretical potential and practical utility, paving the way for meaningful quantum advantage in the era of late noisy intermediate scale and early fault-tolerant quantum devices.
title Myths around quantum computation before full fault tolerance: What no-go theorems rule out and what they don't
topic Quantum Physics
url https://arxiv.org/abs/2501.05694