-
crossref
Andreas Klappenecker
2013-09-05T05:03:20Z
置信度 0.70
-
crossref
Dipankar Bhattacharyya, Jyotirmoy Guha
2022-02-02T13:27:06Z
置信度 0.70
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crossref
Mona Meghdari Miardan
2018-10-04T20:16:05Z
置信度 0.70
-
Quantum computers herald the arrival of a new era in which previously intractable computational problems will be solved efficiently. However, quantum technology is held down by decoherence, a phenomenon that is omnipresent in the quantum paradigm and that rend…
crossref
Patricio Fuentes
2022-03-11T07:51:08Z
置信度 0.70
-
crossref
2021-02-26T10:53:38Z
置信度 0.70
-
crossref
DANIEL RIBAS TANDEITNIK
2022-07-01T16:26:14Z
置信度 0.70
-
crossref
2021-02-26T10:53:39Z
置信度 0.70
-
crossref
2013-12-19T23:58:16Z
置信度 0.70
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crossref
Rafael Oliveira, Jameson Joseph Bednarski
2025-10-02T17:14:03Z
置信度 0.70
-
Correction d’erreurs quantiques avec des qubits de chats Au cours des deux dernières décennies, les circuits supraconducteurs se sont imposés comme une plateforme prometteuse pour la construction d’un ordinateur quantique. Cependant, ils demeurent limités par …
crossref
Antoine Marquet
2026-04-08T08:04:33Z
置信度 0.70
-
crossref
2021-02-26T10:53:51Z
置信度 0.70
-
crossref
Ivan B. Djordjevic
2021-02-26T10:52:37Z
置信度 0.70
-
crossref
Jacob Taylor
2013-09-05T05:03:20Z
置信度 0.70
-
crossref
Debbie Leung
2013-09-05T05:03:20Z
置信度 0.70
-
crossref
2021-02-26T10:53:40Z
置信度 0.70
-
Variational quantum algorithms (VQAs) represent the most promising approach for achieving quantum advantage in near-term supervised learning, yet they face two fundamental challenges that severely limit their practical deployment: device noise degrades classif…
crossref
Yalla Jnan Devi Satya Prasad
2025-09-09T15:40:32Z
置信度 0.70
-
Quantum error correction (QEC) is crucial for mitigating noise and decoherence in quantum systems. However, its effectiveness depends on the underlying qubit hardware. This poster compares surface codes, which require many physical qubits, with bosonic codes, …
crossref
Saurabh Suman
2025-03-28T14:07:19Z
置信度 0.70
-
crossref
Ivan Djordjevic
2012-04-10T21:53:05Z
置信度 0.70
-
crossref
Shikhar Uttam
2012-04-10T22:21:15Z
置信度 0.70
-
Vers le calcul quantique tolérant à l’erreur adapté aux expériences en circuit QED Dans cette thèse, nous développons plusieurs outils pour la Correction d’Erreur Quantique (CEQ) autonome avec les qubits supraconducteurs.Nous proposons un schéma de CEQ autonom…
crossref
Joachim Cohen
2026-04-02T13:32:07Z
置信度 0.70
-
crossref
Anonymous
2026-06-23T17:37:58Z
置信度 0.70
-
The introduction of quantum computing has presented algorithmic solutions to computationally difficult challenges that are far more efficient than those of classical computers. These algorithms leverage the properties of quantum mechanics to manipulate the qua…
crossref
Derek Rodriguez
2025-06-26T00:12:29Z
置信度 0.70
-
The construction of a large-scale fault-tolerant quantum computer is an outstanding scientific and technological goal. It holds the promise to allow us to solve a variety of complex problems such as factoring large numbers, quick database search, and the quantu…
crossref
Pedro Parrado Rodríguez
2022-06-22T15:03:04Z
置信度 0.70
-
crossref
Ivan B. Djordjevic
2022-07-22T17:59:52Z
置信度 0.70
-
crossref
2021-02-26T10:53:43Z
置信度 0.70
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crossref
Daowen Qiu
2025-08-29T07:52:13Z
置信度 0.70
-
crossref
Ivan Djordjevic
2012-04-10T18:21:46Z
置信度 0.70
-
crossref
Ivan Djordjevic
2012-04-10T22:00:51Z
置信度 0.70
-
crossref
Panos Aliferis
2013-09-05T05:03:20Z
置信度 0.70
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crossref
Lorenza Viola
2013-09-05T05:03:20Z
置信度 0.70
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crossref
Eduardo R. Mucciolo
2025-08-06T18:21:16Z
置信度 0.70
-
crossref
Markus Grassl, Martin Rötteler
2013-09-05T05:03:20Z
置信度 0.70
-
The limits of classical information theory are stretched at several points by the consideration of quantum mechanics. Entanglement in itself is a unique phenomenon, and its application has enabled solutions such as super-dense compression, teleportation or sup…
crossref
Sandor Imre
2025-08-12T20:14:32Z
置信度 0.70
-
crossref
2012-06-18T17:56:47Z
置信度 0.70
-
Quantum technologies have shown immeasurable potential to effectively solve several information processing tasks such as prime number factorization, unstructured database search or complex macromolecule simulation. As a result of such capability to solve certa…
crossref
Josu Etxezarreta, Universidad de Navarra
2022-03-07T08:56:08Z
置信度 0.70
-
crossref
Ivan B. Djordjevic
2021-02-26T10:53:27Z
置信度 0.70
-
crossref
Ivan B. Djordjevic
2021-02-26T10:52:35Z
置信度 0.70
-
crossref
Ivan B. Djordjevic
2022-07-22T18:00:44Z
置信度 0.70
-
crossref
Ivan B. Djordjevic
2021-02-26T10:51:35Z
置信度 0.70
-
crossref
Ivan B. Djordjevic
2021-02-26T10:52:18Z
置信度 0.70
-
crossref
Lorenza Viola
2013-09-05T05:03:20Z
置信度 0.70
-
crossref
2013-12-19T18:58:16Z
置信度 0.70
-
crossref
Ivan B. Djordjevic
2021-02-26T10:51:16Z
置信度 0.70
-
crossref
Ivan Djordjevic
2012-04-10T21:57:05Z
置信度 0.70
-
crossref
Ivan B. Djordjevic
2021-02-26T10:53:33Z
置信度 0.70
-
crossref
Ivan B. Djordjevic
2021-02-26T10:53:22Z
置信度 0.70
-
crossref
Shikhar Uttam
2012-04-10T22:21:46Z
置信度 0.70
-
crossref
Wael Korani, Malek Mouhoub
2021-02-10T15:06:21Z
置信度 0.70
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crossref
Ivan B. Djordjevic
2021-02-26T10:51:16Z
置信度 0.70
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crossref
S. Rajasekar, R. Velusamy
2022-10-05T19:01:33Z
置信度 0.70
-
Abstract Quantum error correction is a very advanced field, and researchers have invested a great deal of time in trying to find the best ways of combating errors in quantum computers, winch occur when the computer is not properly isolated from its environment…
crossref
Vlatko Vedral
2010-01-19T15:36:20Z
置信度 0.70
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europepmc
2026
置信度 0.80
-
europepmc
2026
置信度 0.80
-
Abstract We present a general-purpose quantum error correction primitive based on state purification via the SWAP test, which we refer to as purification quantum error correction (PQEC). This method operates on N noisy copies, requires minimally O(Mlog 2 N) da…
europepmc
Jonathan Raghoonanan, Tim Byrnes
2026
置信度 0.80
-
europepmc
2026
置信度 0.80
-
europepmc
2026
置信度 0.80
-
europepmc
2026
置信度 0.80
-
europepmc
2026
置信度 0.80
-
europepmc
2026
置信度 0.80
-
europepmc
2026
置信度 0.80
-
europepmc
2026
置信度 0.80
-
europepmc
2026
置信度 0.80
-
Abstract Whether quantum coherence plays a functional role in neural information processing remains contested, largely because biological environments are deemed too noisy for quantum states to sur- vive at relevant timescales. We construct a three-layer model…
europepmc
Hikaru Wakaura
2026
置信度 0.80
-
europepmc
2026
置信度 0.80
-
europepmc
2026
置信度 0.80
-
europepmc
2026
置信度 0.80
-
europepmc
2025
置信度 0.80
-
europepmc
2026
置信度 0.80
-
europepmc
2026
置信度 0.80
-
europepmc
2025
置信度 0.80
-
europepmc
2026
置信度 0.80
-
europepmc
2025
置信度 0.80
-
Hilbert space dimension is a key resource for quantum information processing1,2. Not only is a large overall Hilbert space an essential requirement for quantum error correction, but a large local Hilbert space can also be advantageous for realizing gates and a…
europepmc
B. L. Brock, Shraddha Singh, Alec Eickbusch, Volodymyr Sivak 等
2025
置信度 0.80
QuantumError detection and correctionQuantum error correctionComputer scienceTheoretical physics
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europepmc
2025
置信度 0.80
-
europepmc
2025
置信度 0.80
-
europepmc
2025
置信度 0.80
-
europepmc
2025
置信度 0.80
-
europepmc
2025
置信度 0.80
-
europepmc
2025
置信度 0.80
-
pubmed
Pan J
2024
置信度 0.82
-
Abstract We present a unified equation for modeling quantum error correction that connects logical fidelity, error amplitude, and the intrinsic geometry of quantum systems. The total error E is defined as: E = ρ * (1 + ε) + γ * π In this expression: ● ρ (rho) …
europepmc
Hisham Baroudi
2025
置信度 0.80
-
europepmc
2025
置信度 0.80
-
To solve problems of practical importance1,2, quantum computers probably need to incorporate quantum error correction, in which a logical qubit is redundantly encoded in many noisy physical qubits3–5. The large physical-qubit overhead associated with error cor…
europepmc
Harald Putterman, Kyungjoo Noh, Connor T. Hann, Gregory S. MacCabe 等
2025
置信度 0.80
QubitComputer scienceError detection and correctionQuantum error correctionQuantum computer
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europepmc
2025
置信度 0.80
-
The Bloch sphere is a powerful geometrical representation of qubit states, fundamental to understanding quantum information theory. This paper explores the stereographic projection of the Bloch sphere, focusing on its utility in addressing decoherence and quan…
europepmc
Unnathi Venkatesh
2024
置信度 0.80
-
europepmc
2024
置信度 0.80
-
europepmc
2025
置信度 0.80
-
europepmc
2024
置信度 0.80
-
europepmc
2024
置信度 0.80
-
europepmc
2024
置信度 0.80
-
Abstract Quantum error correction (QEC) codes are vital for scalable and robust computations of quantum operations. The main challenge lies in introducing ancilla qubits with minimal side effect in the resultant computation, particularly considering state-of-t…
europepmc
Ilan Cohn, Sebastian Fraga, Lucas Reyes, Efrain Buksman 等
2024
置信度 0.80
-
europepmc
2025
置信度 0.80
-
The Gottesman-Kitaev-Preskill (GKP) code encodes a logical qubit into a bosonic system with resilience against single-photon loss, the predominant error in most bosonic systems. Here we present experimental results demonstrating quantum error correction of GKP…
europepmc
Dany Lachance-Quirion, Marc-Antoine Lemonde, Jean Olivier Simoneau, Lucas St-Jean 等
2024
置信度 0.80
TransmonQubitError detection and correctionQuantum error correctionQuantum
-
Abstract The Mach-Zehnder interferometer is a simple device that demonstrates the clear path-choice problem in quantum mechanics through amplitude division. Experiments carried out in labs often encounter noise due to component inefficiencies and other environ…
europepmc
Shivam Sawarn, Akhilesh Dubey
2024
置信度 0.80
-
Autonomous quantum error correction (AQEC) protects logical qubits by engineered dissipation and thus circumvents the necessity of frequent, error-prone measurement-feedback loops. Bosonic code spaces, where single-photon loss represents the dominant source of…
europepmc
Ye‐Xiong Zeng, Zhengyang Zhou, Enrico Rinaldi, Clemens Gneiting 等
2023
置信度 0.80
QubitHamiltonian (control theory)Reinforcement learningComputer scienceFock space
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europepmc
2023
置信度 0.80
-
europepmc
2024
置信度 0.80
-
europepmc
2023
置信度 0.80
-
europepmc
2022
置信度 0.80
-
> 1), coupled to a spin-1/2 electronic ancilla for error detection. By thorough numerical simulations we show that a significant gain in the effective phase memory time can be achieved. This is further enhanced by exploiting pulse-shaping techniques to reduce …
europepmc
Mario Chizzini, Luca Crippa, Luca Zaccardi, Emilio Macaluso 等
2022
置信度 0.80
Spin (aerodynamics)QuantumPhysicsQuantum error correctionQuantum mechanics