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Quantum Resource Comparison for Two Leading Surface Code Lattice Surgery Approaches
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Quantum Resource Comparison for Two Leading Surface Code Lattice Surgery Approaches

AbstractHamiltonian simulation is one of the most promising candidates for the demonstration of quantum advantage within the next ten years, and several studies have proposed end-to-end resource estimates for executing such algorithms on fault-tolerant quantum processors. Usually, these resource estimates are based upon the assumption that quantum error correction is implemented using the surface code, and that the best surface code compilation scheme involves serializing input circuits by eliminating all Clifford gates. This transformation is thought to make best use of the native multi-body measurement (lattice surgery) instruction set available to surface codes. Some work, however, has suggested that direct compilation from Clifford+T to lattice surgery operations may be beneficial for circuits that have high degrees of logical parallelism. In this study, we analyze the resource costs for implementing Hamiltonian simulation using example approaches from each of these leading surface code compilation families. The Hamiltonians whose dynamics we consider are those of the transverse-field Ising model in several geometries, the Kitaev honeycomb model, and the $\mathrm{\alpha-RuCl_3}$ complex under a time-varying magnetic field. We show, among other things, that the optimal scheme depends on whether Hamiltonian simulation is implemented using the quantum signal processing or Trotter-Suzuki algorithms, with Trotterization benefiting by orders of magnitude from direct Clifford+T compilation for these applications. Our results suggest that surface code quantum computers should not have a one-size-fits-all compilation scheme, but that smart compilers should predict the optimal scheme based upon high-level quantities from logical circuits such as average circuit density, numbers of logical qubits, and T fraction.► BibTeX data@article{LeBlond2026quantumresource, doi = {10.22331/q-2026-08-10-2187}, url = {https://doi.org/10.22331/q-2026-08-10-2187}, title = {Quantum {R}esour

Aug 10, 2026

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Conditions for Quantum Advantage in AC Power Flow
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quantum-computing

Conditions for Quantum Advantage in AC Power Flow

--> Quantum Physics arXiv:2608.06711 (quant-ph) [Submitted on 7 Aug 2026] Title:Conditions for Quantum Advantage in AC Power Flow Authors:Parikshit Pareek, Abhijith Jayakumar, Carleton Coffrin, Sidhant Misra View a PDF of the paper titled Conditions for Quantum Advantage in AC Power Flow, by Parikshit Pareek and 3 other authors View PDF HTML (experimental) Abstract:This paper aims to contextualize the requirements for Quantum Computing (QC) algorithms to achieve a quantum advantage in solving the alternating current power flow (ACPF) problem, with a focus on runtime complexity. First, we establish a benchmark for a QC iterative solver to demonstrate an advantage over the classical Newton-Raphson Load Flow (NRLF) algorithm. Next, we derive a baseline expression for the end-to-end runtime complexity of any Gate-based QC algorithm as $\Omega(N \kappa/\varepsilon),$ reflecting dependence on system size $N$, condition number $\kappa$, and error tolerance $\varepsilon$. Finally, we highlight key areas where QC algorithms may offer potential benefits over NRLF in addressing the standard ACPF problem. Subjects: Quantum Physics (quant-ph); Systems and Control (eess.SY) Cite as: arXiv:2608.06711 [quant-ph]   (or arXiv:2608.06711v1 [quant-ph] for this version)   https://doi.org/10.48550/arXiv.2608.06711 Focus to learn more arXiv-issued DOI via DataCite (pending registration) Submission history From: Parikshit Pareek [view email] [v1] Fri, 7 Aug 2026 02:09:46 UTC (250 KB) Full-text links: Access Paper: View a PDF of the paper titled Conditions for Quantum Advantage in AC Power Flow, by Parikshit Pareek and 3 other authorsView PDFHTML (experimental)TeX Source view license Current browse context: quant-ph < prev   |   next > new | recent | 2026-08 Change to browse by: cs cs.SY eess eess.SY References & Citations INSPIRE HEP NASA ADSGoogle Scholar Semantic Scholar export BibTeX citation Loading... BibTeX formatted citation × loading... Data

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SK Hynix and Samsung Just Sent a Major Warning to Micron Investors
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SK Hynix and Samsung Just Sent a Major Warning to Micron Investors

Micron (MU -0.44%), SK Hynix (SKHY -3.92%), and Samsung (SSNLF +0.00%) are some of the highest-flying stocks in the market this year. Their tremendous earnings results have been driven by a massive shortage in memory chips, a market dominated by the three companies. As AI hyperscalers buy up as many chips as possible, memory prices have gone through the roof. Recent earnings results from SK Hynix and Samsung contain a major warning for Micron investors that could affect not just this quarter's results, but results well into the future. It could have a huge effect on the price investors should be willing to pay for the stock today. Image source: Micron. What did SK Hynix and Samsung report? The all-important driver of earnings for the three memory chip stocks over the last year has been pricing. The chipmakers renegotiate pricing for their chips frequently based on supply and demand. It takes years for a new manufacturing plant to start producing chips at scale, which means a spike in demand can send chip prices significantly higher. Once additional supply enters the market or demand falls, prices fall, and with higher operating costs, profits fall even more. That's the cyclical nature of the memory chip market, but the market understands it well. It's why investors are paying single-digit earnings multiples for the chipmakers today. They expect the earnings cycle to approach its peak in the near future. What's worrisome in SK Hynix's and Samsung's earnings releases is that peak earnings might be lower than anticipated. That's evidenced by weakness in pricing relative to expectations for both companies over the last three months. ExpandNASDAQ: SKHYSK HynixToday's Change(-3.92%) $-5.62Current Price$137.91Key Data Points*:nth-last-child(-n+2)]:border-b-0">Market Cap$1.0TMarket cap calculated using publicly traded shares outstanding only. Does not include unlisted, private, or dual-class non-traded shares. Implied market cap may vary.Day's Range$133.80 - $143.6552wk Ran

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University of Ottawa researchers made entangled photons skipping the laser
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quantum-computing

University of Ottawa researchers made entangled photons skipping the laser

Scientists at the University of Ottawa, collaborating with researchers from the Max Planck Institute for the Science of Light and the Max Planck Center for Extreme and Quantum Photonics, have achieved quantum entanglement using sunlight for the first time. The team challenges the decades-long assumption that lasers are essential for creating correlated photon pairs, a key resource for quantum technologies. “As long as the pump beam is perfectly polarized, its spatial or temporal incoherence should not preclude the generation of polarization entanglement,” explains Dr. Cheng Li, a PhD graduate from the University of Ottawa. This breakthrough demonstrates that even the lower intensity and incoherence of sunlight can efficiently drive the necessary nonlinear optical processes, potentially leading to more sustainable photonic quantum systems. Sunlight Challenges Laser Dominance in SPDC Entanglement Achieving 94% fidelity, researchers have, for the first time, successfully generated quantum-entangled photons using only sunlight as a pump source, a result that challenges the decades-long reliance on lasers for this process. This breakthrough, detailed recently in Optica, demonstrates that the high optical coherence traditionally considered essential for spontaneous parametric down-conversion (SPDC) is not, in fact, indispensable, opening avenues for more sustainable quantum technologies. Previously, scientists believed that the intense, coherent beams produced by lasers were uniquely capable of driving the nonlinear optical processes necessary for efficient SPDC, where photons from the pump beam are converted into entangled pairs within a nonlinear crystal. However, the team’s work reveals that sunlight, despite being significantly less intense and inherently incoherent, can achieve comparable results when properly harnessed. The researchers focused on maintaining polarization while accommodating the inherent incoherence of sunlight in other degrees of freedom. To overcom

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Approaching the Fundamental Limit of Single-Shot Qubit Frequency Tracking with an Adiabatic Tangentially-Modulated Pulsequantum-computing

Approaching the Fundamental Limit of Single-Shot Qubit Frequency Tracking with an Adiabatic Tangentially-Modulated Pulse

--> Quantum Physics arXiv:2608.06636 (quant-ph) [Submitted on 6 Aug 2026] Title:Approaching the Fundamental Limit of Single-Shot Qubit Frequency Tracking with an Adiabatic Tangentially-Modulated Pulse Authors:Itamar Oren, Luke I. Dyer, Gerardo A. Paz-Silva, Chih Hwan Yang View a PDF of the paper titled Approaching the Fundamental Limit of Single-Shot Qubit Frequency Tracking with an Adiabatic Tangentially-Modulated Pulse, by Itamar Oren and 3 other authors View PDF Abstract:Understanding and mitigating noise in two level quantum systems is essential for achieving high fidelity qubit control. Conventional frequency tracking techniques, such as Ramsey interferometry, are fundamentally limited by trade offs between sensitivity, bandwidth, and dynamic range. Here we introduce the adiabatic tangentially-modulated (ATM) pulse, a pulse derived from quantum adiabatic theory that maps qubit detuning onto a sigmoidal, near-binary response. Using numerical simulations supported by analytical modelling, we show that pulse sensitivity and detuning range can be independently engineered through simple design parameters. We derive scaling relations governing these quantities and demonstrate their agreement with simulation. A single shot ATM measurement achieves sensitivity comparable to that obtained from multi-shot Ramsey averaging, enabling tracking of substantially higher frequency noise components with a lower closed-loop white-noise floor. In addition, this pulse exhibits strong robustness to amplitude fluctuations compared with binary response pulses derived from the Shinnar-Le Roux formalism. Together, these properties establish the ATM pulse as a promising approach for robust qubit frequency tracking. Subjects: Quantum Physics (quant-ph) Cite as: arXiv:2608.06636 [quant-ph]   (or arXiv:2608.06636v1 [quant-ph] for this version)   https://doi.org/10.48550/arXiv.2608.06636 Focus to learn more arXiv-issued DOI via DataCite (pending registration) Submission history Fro

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High-Performance Quantum Transduction with Correlated Noisequantum-computing

High-Performance Quantum Transduction with Correlated Noise

--> Quantum Physics arXiv:2608.06683 (quant-ph) [Submitted on 7 Aug 2026] Title:High-Performance Quantum Transduction with Correlated Noise Authors:Yu-Bo Hou, Xiaoan Ai, Pengbo Li, Changchun Zhong View a PDF of the paper titled High-Performance Quantum Transduction with Correlated Noise, by Yu-Bo Hou and Xiaoan Ai and Pengbo Li and Changchun Zhong View PDF HTML (experimental) Abstract:Quantum transduction, which coherently converts quantum states between microwave and optical frequency domains, is a key technology for hybrid quantum architectures. Its performance, however, is fundamentally limited by thermal noise. Direct quantum transduction is particularly susceptible to noise and often fails to achieve positive quantum capacity. Entanglement-based quantum transduction, which realizes state conversion through quantum teleportation assisted by microwave-optical entanglement, is intrinsically more robust against thermal noise. However, generating sufficiently strong entanglement in a realistic thermal environment remains a major challenge. In this paper, we exploit correlated noise as a resource for quantum transduction. For direct quantum transduction, it is shown that the noise correlations give rise to controllable interference terms that substantially suppress the effective channel noise. For entanglement-based quantum transduction, the same correlations enhance the generation of microwave-optical entanglement, thereby improving the fidelity of teleportation-based conversion. As a result, both transduction protocols exhibit broad regions of positive quantum capacity over experimentally relevant ranges of cooperativity. We further discuss a possible physical mechanism for engineering the required noise correlations, providing theoretical guidance for experimental implementations. These results suggest that correlated noise can substantially relax the stringent cryogenic requirements for microwave-optical quantum transduction and facilitate the realization of prac

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