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IonQ Sends Strong Signal on Quantum Computing - Yahoo Finance
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IonQ Sends Strong Signal on Quantum Computing - Yahoo Finance

IonQ Sends Strong Signal on Quantum Computing Moz Farooque ACCA Wed, September 23, 2026 at 11:36 AM EDT 2 min read 2 IONQ +4.42% This article first appeared on GuruFocus. IonQ (NYSE:IONQ) shares surged 11% in early trading Wednesday after the quantum-computing company announced what it called a major breakthrough in real-time error correction, tackling one of the biggest technical obstacles standing between today's experimental systems and practical fault-tolerant quantum computers. IonQ develops quantum computers using trapped-ion technology and provides access to its systems through major cloud platforms. The company is trying to move quantum computing beyond research experiments toward machines capable of solving commercially useful problems reliably. Warning! GuruFocus has detected 4 Warning Signs with IONQ. Is IONQ fairly valued? Test your thesis with our free DCF calculator. IONQ GF Value chart The latest development targets a fundamental weakness in quantum computing: errors. Qubits are extremely sensitive to environmental noise, meaning useful quantum computers must continuously detect and correct errors without disrupting calculations. Doing that quickly enough in real time has historically required significant computing resources. IonQ said its researchers successfully developed and tested the industry's first end-to-end real-time quantum error correction decoder that runs on a single standard off-the-shelf central processing unit. That last piece is potentially important. Running the decoder on a conventional CPU suggests error-correction processing may not require highly specialized external computing hardware, potentially simplifying how fault-tolerant systems are eventually built and scaled. Still, the milestone does not mean IonQ has suddenly achieved a fully fault-tolerant commercial quantum computer.

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Quantum Computing Leaps Back Into the Scene - TheStreet Pro
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Quantum Computing Leaps Back Into the Scene - TheStreet Pro

trade-ideasQuantum Computing Leaps Back Into the SceneIonQ announced a major milestone in fault-tolerant quantum computing. Let’s see what it could mean for the technology and which I stock I’m eyeing now.Stephen Guilfoyle·Sep 23, 2026, 11:30 AM EDTYou've reached your free article limitYou've read 0 of 1 free Pro articles.Register free to read more Pro articlesUnlock unlimited Pro access — 50% off Today. Offer Ends soonAlready registered or a Pro member? Log in Quantum Computing stocks have been quiet for several months now after broadly selling off earlier this year. Readers know that I had made IBM (IBM) my name for quantum computing exposure after touring through the world of IonQ (IONQ), D-Wave (QBTS) and Infleqtion (INFQ). None of these names have done especially well since. IBM sold off and has worked its way sideways to higher. The sales that we made in the other names all ended up being good sales. Now, out of the blue, there is news. On Wednesday morning, IonQ announced a major milestone in fault-tolerant quantum computing. Researchers at IonQ demonstrated the development and successful testing of the industry’s first end-to-end real-time quantum error correction decoder that runs on a single standard off-the-shelf CPU (central processing unit). Why is this a big deal? According to the company, “Quantum error correction is essential for building practical, fault-tolerant quantum computers because physical qubits are inherently sensitive to environmental noise.” “However, finding and fixing those errors in real time has historically presented a significant computing challenge. In conventional approaches, the classical computers tasked with decoding errors can easily become overwhelmed. That creates a processing bottleneck that forces the quantum computer to pause and wait.” According to the company, this “breakthrough demonstrates that a single, standard computer processor can manage this complex workload continuously in the background, keeping the quantum s

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Quantum computing stocks rally after IonQ reports a fresh technical breakthrough - businessinsider.com
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Quantum computing stocks rally after IonQ reports a fresh technical breakthrough - businessinsider.com

GPU Technology Conference 2026-09-23T14:55:00.068Z Read in app Copy link Email Facebook WhatsApp X LinkedIn Bluesky Threads lighning bolt icon An icon in the shape of a lightning bolt. Impact Link Save Saved Listen to this story This story is available exclusively to Business Insider subscribers. Become an Insider and start reading now. Have an account? Log in. Quantum computing stocks jumped on Wednesday, with IonQ leading a rally in the sector after reporting a breakthrough and a new deal to install its quantum tech in Nvidia's Accelerated Quantum Research Center.After a burst of burst of momentum throughout 2025, IonQ stock has struggled this year, down about 4% year to date after Wednesday's gain. The stock popped as much as 13% before paring.IonQ's peers in the sector also got a boost. Here were the big moves intraday in other quantum stocks: Here's where some of the sector's top movers were as markets opened on Wednesday.Infleqtion: +7%D-Wave Quantum: +7%Quantum Computing Inc: 7%Rigetti Computing: +7% The rally in the space on Wednesday was being driven by an announcement from IonQ regarding a breakthrough in "real-time quantum error-correction," marking a major technical milestone for the nascent technology.While the company's researchers showcased their work in this area in a paper published on September 3, they released a statement detailing further progress on Tuesday, highlighting what it describes as a significant milestone in quantum advancements. The gain was also being driven by news of a deal for IonQ to bring its quantum computing technology to an Nvidia research center meanto to "help drive the new breakthroughs needed to turn qubits into useful, large-scale quantum supercomputers capable of solving the world's hardest problems."Wednesday's momentum sparked enthusiasm from retail traders in online forums. The day trader crowd piled into quantum stocks during their big 2025 rally, and have been angling for a repeat this year, with little to show for

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Free-fermion spectral structure enables strange nonchaotic attractor classification in Aubry-Andre-Harper quantum reservoirsquantum-computing

Free-fermion spectral structure enables strange nonchaotic attractor classification in Aubry-Andre-Harper quantum reservoirs

--> Quantum Physics arXiv:2609.26825 (quant-ph) [Submitted on 20 Sep 2026] Title:Free-fermion spectral structure enables strange nonchaotic attractor classification in Aubry-Andre-Harper quantum reservoirs Authors:Suresh Kumarasamy, Dianavinnarasi Joseph, Manish Dev Shrimali, Awadhesh Prasad View a PDF of the paper titled Free-fermion spectral structure enables strange nonchaotic attractor classification in Aubry-Andre-Harper quantum reservoirs, by Suresh Kumarasamy and 3 other authors View PDF HTML (experimental) Abstract:An Aubry-André-Harper (AAH) quantum reservoir classifies strange nonchaotic attractors (SNAs) against chaos, substantially outperforming reservoirs built from dense random matrices on the full Fock space. Ablations and controlled interventions identify \emph{free-fermion one-body transition sparsity}, rather than proximity to a quantum phase transition, as the dominant factor under our controls, since $H_0$ is quadratic in fermion operators and only $N(N-1)2^{N-2}=3584$ of the $65{,}280$ Fock-space transitions carry weight. Random on-site disorder, which preserves this quadratic structure, matches AAH accuracy, whereas full-Hilbert-space random matrices and eigenvector permutations, which break it, collapse to the random baseline. We characterize the resulting frequency-selective filtering with a Hamiltonian transition kernel, validate it to $N=8$ qubits, and reproduce it in a second dynamical system. We also use the reservoir as a training-free screen for strange-nonchaotic structure in Kepler RR Lyrae light curves. Comments: Subjects: Quantum Physics (quant-ph) Cite as: arXiv:2609.26825 [quant-ph]   (or arXiv:2609.26825v1 [quant-ph] for this version)   https://doi.org/10.48550/arXiv.2609.26825 Focus to learn more arXiv-issued DOI via DataCite Submission history From: Suresh Kumarasamy [view email] [v1] Sun, 20 Sep 2026 15:43:49 UTC (2,532 KB) Full-text links: Access Paper: View a PDF of the paper titled Free-fermion spectral structure

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Bosonic Error Correction with Fluxoniumquantum-computing

Bosonic Error Correction with Fluxonium

--> Quantum Physics arXiv:2609.26880 (quant-ph) [Submitted on 22 Sep 2026] Title:Bosonic Error Correction with Fluxonium Authors:Shantanu R. Jha, Shoumik D. Chowdhury, Gabriele Rolleri, Anaida Ali, Lev-Arcady Sellem, Réouven Assouly, David Pahl, Lukas Pahl, Junyoung An, Farid Hassani, Hung-Yu Tsao, Chia-Chin Tsai, Aranya Goswami, Jeremie Boudreault, Jeffrey M. Gertler, Michael A. Gingras, Bethany M. Niedzielski, Jeffrey M. Knecht, Mollie E. Schwartz, Kyle Serniak, Jeffrey A. Grover, Baptiste Royer, Max Hays, William D. Oliver View a PDF of the paper titled Bosonic Error Correction with Fluxonium, by Shantanu R. Jha and 23 other authors View PDF HTML (experimental) Abstract:Bosonic quantum error correction (QEC) offers a hardware-efficient route to fault-tolerant quantum computing. To date, however, superconducting circuit implementations of bosonic codes have utilized centimeter-scale 3D microwave cavities controlled by fixed-frequency transmon qubits, with logical lifetimes limited by transmon bit-flip errors. Here, we realize bosonic QEC in a fully planar architecture by pairing a heavy fluxonium, whose $451 \pm 70~\mu\mathrm{s}$ bit-flip lifetime exceeds that of any control qubit in previous demonstrations, with an on-chip Archimedean spiral resonator several orders of magnitude smaller in mode volume than prior 3D cavities. We prepare finite-energy Gottesman-Kitaev-Preskill (GKP) states and stabilize them using measurement-free error correction with rapid fluxonium reset, extending the logical lifetime by a factor of $1.59 \pm 0.05$. These results provide the first demonstration of resonator control using a weakly coupled fluxonium and, with it, the first realization of standalone bosonic QEC in a fully planar superconducting circuit architecture. Comments: Subjects: Quantum Physics (quant-ph) Cite as: arXiv:2609.26880 [quant-ph]   (or arXiv:2609.26880v1 [quant-ph] for this version)   https://doi.org/10.48550/arXiv.2609.26880 Focus to learn more arXiv-

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