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This paper explores a novel approach to error correction in topological quantum computing (TQC) leveraging its inherent fault-tolerance. The core idea centers on dynamically adapting the parameters of error-correcting codes based on real-time monitoring of err…
datacite
Zhang, Jincheng
2026
置信度 0.66
-
Quantum Topological Error Correction (Q-TEC) represents a paradigm shift in quantum information security, offering a promising avenue for enhancing the robustness of quantum systems against errors. Traditional quantum error correction relies heavily on classic…
datacite
Zhang, Jincheng
2026
置信度 0.66
-
Quantum Topological Error Correction (Q-TEC) represents a paradigm shift in quantum information security, offering a promising avenue for enhancing the robustness of quantum systems against errors. Traditional quantum error correction relies heavily on classic…
datacite
Zhang, Jincheng
2026
置信度 0.66
-
This paper investigates the application of a novel approach to chaos prediction – a robust and adaptive quantum error correction system – to enhance the accuracy of chaotic system forecasts. Traditional chaos prediction methods often rely on static models, fai…
datacite
Zhang, Jincheng
2026
置信度 0.66
-
crossref
Juan Ignacio Cirac
2007-07-16T16:17:19Z
置信度 0.70
-
crossref
FRANK GAITAN, RAN LI
2010-03-24T04:32:17Z
置信度 0.70
-
Abstract Quantum simulations of lattice gauge theories (LGTs) are often formulated on an enlarged Hilbert space containing both physical and unphysical sectors in order to retain a local Hamiltonian. We provide simple fault-tolerant procedures that exploit suc…
crossref
Abhishek Rajput, Alessandro Roggero, Nathan Wiebe
2023-04-25T07:16:07Z
置信度 0.70
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crossref
2011-06-24T22:48:56Z
置信度 0.70
-
crossref
Julio Gea-Banacloche
2014-10-14T18:47:20Z
置信度 0.70
-
crossref
Rodrigo San José Rubio
2024-12-12T21:27:38Z
置信度 0.70
-
crossref
Philip Ball
2022-03-04T17:37:10Z
置信度 0.70
-
crossref
Martin Rötteler, Pawel Wocjan
2013-09-05T05:03:20Z
置信度 0.70
-
This paper is no longer maintained, succeeded by a new paper that combines ideas from multiple works. Please refer to the new paper.
crossref
William Icefield
2020-03-16T01:18:32Z
置信度 0.70
-
crossref
2020-09-29T15:30:35Z
置信度 0.70
-
Abstract Recent progress in quantum computing has enabled systems with tens of reliable logical qubits, built from thousands of noisy physical qubits 1 . However, many impactful applications demand quantum computations with millions of logical qubits 2 , neces…
crossref
Daiki Komoto, Kenta Kasai
2025-09-30T08:36:00Z
置信度 0.70
-
Quantum computing has demonstrated the potential to transform our world, with applications ranging from drug discovery to logistics. One of the largest problems standing in the way of practical quantum computers is the fragility of the quantum states that powe…
crossref
Oğuz Kaan Üstün
2025-12-23T22:05:47Z
置信度 0.70
-
crossref
Charles Day
2024-05-01T15:36:15Z
置信度 0.70
-
Abstract We review an experimental technique used to correct state preparation and measurement errors on gate-based quantum computers, and discuss its rigorous justification. Within a specific biased quantum measurement model, we prove that nonideal measuremen…
crossref
Michael R Geller
2020-06-09T10:14:06Z
置信度 0.70
-
Thermodynamique de la correction d'erreur quantique : La production d'entropie d'une mémoire quantique bit-flip tolérante aux pannes et sans mesures Le but de la correction d’erreurs quantiques (QEC) est de contrebalancer la décohérence des qubits, qui provien…
crossref
Elisa Bossard
2026-06-19T10:28:11Z
置信度 0.70
-
crossref
Ivan B. Djordjevic
2015-10-05T08:56:11Z
置信度 0.70
-
In this paper we introduce a general fault-tolerant quantum error correction protocol using flag circuits for measuring stabilizers of arbitrary distance codes. In addition to extending flag error correction beyond distance-three codes for the first time, our …
crossref
Christopher Chamberland, Michael E. Beverland
2018-02-08T13:30:32Z
置信度 0.70
-
crossref
András Mihály, Laszlo Bacsardi
2025-01-31T21:06:56Z
置信度 0.70
-
crossref
Daniel A. Lidar, Todd A. Brun
2013-09-05T05:03:20Z
置信度 0.70
-
crossref
Peng Hu, Xiusheng Liu
2024-10-03T04:01:58Z
置信度 0.70
-
Abstract Digital communication, both classical and quantum, requires a method to detect and correct errors. The classical error correction technique of adding ancillary bits is handled first in this chapter, followed by an analogous method for quantum systems.…
crossref
Alice Flarend, Robert Hilborn
2026-07-22T23:57:09Z
置信度 0.70
-
crossref
Masahito Hayashi
2016-10-31T10:01:11Z
置信度 0.70
-
crossref
2022-04-15T21:52:57Z
置信度 0.70
-
crossref
Vikram Singh Thakur, Atul Kumar, Kapal Dev
2025-06-23T01:44:43Z
置信度 0.70
-
crossref
Lefliti Mohamed
2025-08-07T17:14:49Z
置信度 0.70
-
crossref
2026-01-02T07:50:51Z
置信度 0.70
-
crossref
THOMAS PELLIZZARI
2010-04-21T08:04:10Z
置信度 0.70
-
Abstract Now that ever more sophisticated devices for quantum computing are being developed, we require ever more sophisticated benchmarks. This includes a need to determine how well these devices support the techniques required for quantum error correction. I…
crossref
James R Wootton
2020-06-26T16:27:09Z
置信度 0.70
-
<div> <span>Conventional quantum error correction (QEC) operates under a foundational assumption that has never been dissolved to bedrock: that error syndromes are stochastic noise requiring probabilistic sampling and massive physical-to-logical qu…
crossref
Michael Aaron Russell
2026-05-11T15:01:30Z
置信度 0.70
-
crossref
Nicolas Fabre
2024-06-10T16:36:13Z
置信度 0.70
-
crossref
2012-06-19T17:11:45Z
置信度 0.70
-
crossref
Rushui Fang, Vladimir Nikulin
2019-09-03T16:07:00Z
置信度 0.70
-
crossref
Zhen-Yu Wang, Ren-Bao Liu
2013-09-05T05:03:20Z
置信度 0.70
-
crossref
Martin Rötteler
2008-06-26T18:30:59Z
置信度 0.70
-
crossref
Wolfgang Scherer
2019-11-13T01:02:55Z
置信度 0.70
-
crossref
2012-06-18T17:59:28Z
置信度 0.70
-
Real-time quantum error correction requires a classical decoder to consume syndrome measurements at the rate the quantum hardware produces them, roughly one round per microsecond on superconducting devices. The standard stability requirement is a utilization c…
europepmc
Jean-Jacques Dubray
2026
置信度 0.80
-
crossref
2012-06-19T17:11:45Z
置信度 0.70
-
We ask what is the general framework for a quantum error correcting code that is defined by a sequence of measurements. Recently, there has been much interest in Floquet codes and space-time codes. In this work, we define and study the distance of a dynamical …
crossref
Esther Xiaozhen Fu, Daniel Gottesman
2025-10-20T09:23:07Z
置信度 0.70
-
crossref
2025-03-09T17:55:22Z
置信度 0.70
-
crossref
2006-10-19T20:53:14Z
置信度 0.70
-
crossref
Guilherme Camargo Fiusa
2022-10-14T17:17:07Z
置信度 0.70
-
Real-time quantum error correction requires a classical decoder to consume syndrome measurements at the rate the quantum hardware produces them, roughly one round per microsecond on supercon-ducting devices. The standard stability requirement is a utilization …
europepmc
Jean-Jacques Dubray
2026
置信度 0.80
-
crossref
Bernard Zygelman
2018-09-21T15:27:00Z
置信度 0.70
-
crossref
Jincao Li
2020-03-02T20:52:20Z
置信度 0.70
-
crossref
H. F. Chau
2007-08-16T13:07:37Z
置信度 0.70
-
In this paper, a quantum error correction scheme combined with quantum feedback control is proposed, which can achieve the Heisenberg limit even if the Hamiltonian-Not-in-Lindblad-Span condition in the optimal error correction protocol is not satisfied. Compar…
crossref
Haiyuan Hong, Xiujuan Lu, Sen Kuang
2022-02-23T02:59:33Z
置信度 0.70
-
Majorana-based quantum computing seeks to use the non-local nature of Majorana zero modes to store and manipulate quantum information in a topologically protected way. While noise is anticipated to be significantly suppressed in such systems, finite temperatur…
crossref
Christina Knapp, Michael Beverland, Dmitry I. Pikulin, Torsten Karzig
2018-09-03T12:57:37Z
置信度 0.70
-
We propose a fault-tolerant quantum error correction architecture consisting of a linear array of emitters and delay lines. In our scheme, a resource state for fault-tolerant quantum computation is generated by letting the emitters interact with a stream of ph…
crossref
Jintae Kim, Jung Hoon Han, Isaac H. Kim
2025-03-26T14:40:31Z
置信度 0.70
-
crossref
Mikio Nakahara
2011-08-26T12:54:15Z
置信度 0.70
-
Abstract Superdense coding promises increased classical capacity and communication security but this advantage may be undermined by noise in the quantum channel. We present a numerical study of how forward error correction (FEC) applied to the encoded classica…
crossref
Ronald J. Sadlier, Travis S. Humble
2016-05-13T11:11:44Z
置信度 0.70
-
crossref
Archisman Ghosh, Avimita Chatterjee, Swaroop Ghosh
2026-04-05T00:22:14Z
置信度 0.70
-
crossref
Ada John, ifeoluwa Mossa, Asa Don
2025-05-08T19:10:27Z
置信度 0.70
-
Error corrected quantum computers have the potential to change the way we solve computational problems. Quantum error correction involves repeated rounds of carefully scheduled gates to measure the stabilizers of a code. A set of scheduling rules is typically …
crossref
György P. Gehér, Ophelia Crawford, Earl T. Campbell
2024-03-20T15:04:35Z
置信度 0.70
-
crossref
Daniel Gottesman
2024-10-03T05:34:23Z
置信度 0.70
-
crossref
Laszlo Gyongyosi, Sandor Imre
2013-10-02T18:32:54Z
置信度 0.70
-
crossref
Sami Rashid Mohammed Shibah
2025-12-23T16:50:36Z
置信度 0.70
-
crossref
Matteo Rini, Michael Schirber
2025-02-20T14:10:15Z
置信度 0.70
-
crossref
T.B. Pittman, B.C. Jacobs, J.D. Franson
2013-11-05T12:21:56Z
置信度 0.70
-
crossref
Kevin Young
2023-11-08T03:19:30Z
置信度 0.70
-
Abstract Imperfect measurements are a prevalent source of error across quantum computing platforms, significantly degrading the logical error rates achievable on current hardware. To mitigate this issue, rich measurement data referred to as soft information ha…
crossref
Joonas Majaniemi, Elisha S Matekole
2026-03-06T22:50:54Z
置信度 0.70
-
In recent years quantum error correction (QEC) has become an important part of AdS/CFT. Unfortunately, there are no field-theoretic arguments about why QEC holds in known holographic systems. The purpose of this paper is to fill this gap by studying the error …
crossref
Alexey Milekhin
2021-11-19T15:36:58Z
置信度 0.70
-
We derive a necessary and sufficient condition for the possibility of achieving the Heisenberg scaling in general adaptive multi-parameter estimation schemes in presence of Markovian noise. In situations where the Heisenberg scaling is achievable, we provide a…
crossref
Wojciech Górecki, Sisi Zhou, Liang Jiang, Rafał Demkowicz-Dobrzański
2020-07-02T17:47:57Z
置信度 0.70
-
crossref
Xiang Zhan, Peng Xue
2026-02-03T15:29:51Z
置信度 0.70
-
crossref
Daniel A. Lidar
2013-09-05T05:03:20Z
置信度 0.70
-
crossref
A. J. Scott
2005-10-11T14:10:02Z
置信度 0.70
-
crossref
Mark M. Wilde, David Fattal
2010-03-31T07:13:33Z
置信度 0.70
-
crossref
Shiro Kawabata
2005-02-18T12:42:07Z
置信度 0.70
-
crossref
Ray LaPierre
2021-09-27T03:18:43Z
置信度 0.70
-
crossref
2025-05-03T00:06:23Z
置信度 0.70
-
crossref
2012-07-18T18:53:33Z
置信度 0.70
-
crossref
Colin P. Williams
2010-12-06T07:54:08Z
置信度 0.70
-
crossref
Ray LaPierre
2025-10-24T08:18:23Z
置信度 0.70
-
The surface code is a powerful quantum error correcting code that can be defined on a 2-D square lattice of qubits with only nearest neighbor interactions. Syndrome and data qubits form a checkerboard pattern. Information about errors is obtained by repeatedly…
crossref
Austin G. Fowler, David S. Wang, Lloyd C. L. Hollenberg
2021-03-05T21:37:10Z
置信度 0.70
-
crossref
Patrick Hayden, Sepehr Nezami, Sandu Popescu, Grant Salton
2021-02-18T16:21:38Z
置信度 0.70
-
We argue that nuclear binding energy is information deduplication in a quantum error-correcting vacuum. In the Mass-Energy-Information (M/E/I) framework of Part I, particle mass equals fault-tolerant verification cost on a [[192,130,3]] CSS code. If mass is ve…
crossref
Raghu Kulkarni
2026-05-04T12:40:07Z
置信度 0.70
-
crossref
Jian Zhao, Yu-Chun Wu, Ping Guo
2023-03-13T11:53:57Z
置信度 0.70
-
crossref
Anonymous
2026-08-04T19:23:16Z
置信度 0.70
-
Fault-tolerant quantum computing with the surface code requires a classical decoder that returns a correction in less than one syndrome extraction round-a latency budget of approximately 1 µs on superconducting hardware that is below what software decoders ach…
crossref
Yash Desale
2026-07-01T10:45:18Z
置信度 0.70
-
crossref
Daniel Lidar, Aephraim Steinberg
2017-08-11T17:41:45Z
置信度 0.70
-
crossref
2012-06-19T17:11:45Z
置信度 0.70
-
crossref
Rochus Klesse
2007-06-14T05:09:38Z
置信度 0.70
-
crossref
Feng Lu, Dan C. Marinescu
2007-07-17T01:59:30Z
置信度 0.70
-
We present a unified approach to quantum error correction, called operator quantum error correction. This scheme relies on a generalized notion of noiseless subsystems that is not restricted to the commutant of the interaction algebra. We arrive at the unified…
arxiv
David Kribs, Raymond Laflamme, David Poulin
2004-12-09T23:23:50Z
置信度 0.78
quant-phmath.FAmath.OA
-
Quantum error correction is required to compensate for the fragility of the state of a quantum computer. We report the first experimental implementations of quantum error correction and confirm the expected state stabilization. In NMR computing, however, a net…
arxiv
D. G. Cory, W. Mass, M. Price, E. Knill 等
1998-02-06T01:00:26Z
置信度 0.78
quant-ph
-
We propose and prove an existential theorem for entanglement-assisted asymmetric quantum error correction. Then we demonstrate its superiority over the conventional one.
arxiv
Ryutaroh Matsumoto
2020-03-02T05:20:08Z
置信度 0.78
quant-phcs.ITmath.CO
-
This study considers implementations of error correction in a simulation language on a classical computer. Error correction will be necessarily in quantum computing and quantum information. We will give some examples of the implementations of some error correc…
arxiv
Peter Nyman
2008-09-19T06:55:29Z
置信度 0.78
quant-ph
-
The Shor fault-tolerant error correction (FTEC) scheme uses transversal gates and ancilla qubits prepared in the cat state in syndrome extraction circuits to prevent propagation of errors caused by gate faults. For a stabilizer code of distance $d$ that can co…
arxiv
Theerapat Tansuwannont, Balint Pato, Kenneth R. Brown
2022-08-11T01:45:02Z
置信度 0.78
quant-ph
-
Probabilistic quantum error correction is an error-correcting procedure which uses postselection to determine if the encoded information was successfully restored. In this work, we deeply analyze probabilistic version of the error-correcting procedure for gene…
arxiv
Ryszard Kukulski, Łukasz Pawela, Zbigniew Puchała
2022-06-10T17:08:54Z
置信度 0.78
quant-ph
-
Fault-tolerant quantum error correction is essential for implementing quantum algorithms of significant practical importance. In this work, we propose a highly effective use of the surface-GKP code, i.e., the surface code consisting of bosonic GKP qubits inste…
arxiv
Kyungjoo Noh, Christopher Chamberland, Fernando G. S. L. Brandão
2021-03-11T23:07:52Z
置信度 0.78
quant-ph
-
Universal fault-tolerant quantum computation requires overcoming the Eastin--Knill theorem on quantum error correction (QEC) codes that protect information from noise. This is often accomplished through strategies like magic state distillation, which prepares …
arxiv
Derek Khu, Andrew Tanggara, Chao Jin, Kishor Bharti
2025-02-04T18:23:24Z
置信度 0.78
quant-phmath-ph
-
In this paper, we will analyze a finite temperature BIon, which is a finite temperature brane-anti-brane wormhole configuration. We will analyze the quantum fluctuations to this BIon solution using the Euclidean quantum gravity. It will be observed that these …
arxiv
Behnam Pourhassan, Sanjib Dey, Sumeet Chougule, Mir Faizal
2019-05-08T17:15:04Z
置信度 0.78
hep-th
-
There are well known necessary and sufficient conditions for a quantum code to correct a set of errors. We study weaker conditions under which a quantum code may correct errors with probabilities that may be less than one. We work with stabilizer codes and as …
arxiv
Jesse Fern, John Terilla
2002-09-06T20:55:20Z
置信度 0.78
quant-ph
-
We investigate the relationship between superselection rules and quantum error correcting codes. We demonstrate that the existence of a superselection rule implies the Knill-Laflamme condition in quantum error correction. As an example, we examine quantum chro…
arxiv
Ning Bao, ChunJun Cao, Aidan Chatwin-Davies, Gong Cheng 等
2023-06-29T18:00:55Z
置信度 0.78
quant-phhep-th
-
In quantum information processing quantum operations are often processed alongside measurements which result in classical data. Due to the information gain of classical measurement outputs non-unitary dynamical processes can take place on the system, for which…
arxiv
Roman Stricker, Davide Vodola, Alexander Erhard, Lukas Postler 等
2021-10-13T18:00:13Z
置信度 0.78
quant-ph
-
Boltzmann machines are the basis of several deep learning methods that have been successfully applied to both supervised and unsupervised machine learning tasks. These models assume that a dataset is generated according to a Boltzmann distribution, and the goa…
arxiv
Richard Y. Li, Tameem Albash, Daniel A. Lidar
2019-10-03T02:29:51Z
置信度 0.78
quant-ph