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Exponential Quantum Speedup on Structured Hard Instances of Maximum Independent Set

Vicky Choi
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⚡ Quantum Brief
Vicky Choi’s January 2026 study demonstrates the first exponential quantum speedup for a structured class of maximum independent set (MIS) problems, a key combinatorial optimization challenge, using a non-stoquastic adiabatic algorithm. The algorithm exploits a novel XX-driver Hamiltonian to access a sign-structured quantum subspace, enabling interference-based paths that bypass classical tunneling barriers, achieving polynomial-time solutions where classical methods fail exponentially. Numerical and analytical evidence shows this approach outperforms both transverse-field quantum annealing and state-of-the-art classical solvers, with no known efficient classical analogue due to its reliance on quantum interference. Scalable small-scale models derived from the structural reduction allow near-term verification of the quantum advantage mechanism on current universal quantum computers, bridging theory and experimental validation. This work identifies a distinct quantum speedup mechanism—sign-generating interference via non-stoquastic drivers—offering a template for tackling other classically intractable optimization problems.
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Quantum Physics arXiv:2601.17686 (quant-ph) [Submitted on 25 Jan 2026] Title:Exponential Quantum Speedup on Structured Hard Instances of Maximum Independent Set Authors:Vicky Choi View a PDF of the paper titled Exponential Quantum Speedup on Structured Hard Instances of Maximum Independent Set, by Vicky Choi View PDF HTML (experimental) Abstract:Establishing quantum speedup for computationally hard problems of practical relevance, particularly combinatorial optimization problems, remains a central challenge in quantum computation. In this work, we identify a structurally defined family of classically hard maximum independent set (MIS) instances, and design and analyze a non-stoquastic adiabatic quantum optimization algorithm that exploits this structure. The algorithm runs in polynomial time and achieves an exponential speedup over both transverse-field quantum annealing and state-of-the-art classical solvers on these instances, under assumptions supported by analytical and numerical evidence. We identify the essential quantum mechanism enabling the speedup as the use of a non-stoquastic XX-driver to access a larger sign-structured admissible subspace beyond the stoquastic regime, which allows sign-generating quantum interference to create smooth evolution paths that bypass tunneling. This identifies a distinctive quantum mechanism underlying the speedup and explains why no efficient classical analogue is likely to exist. In addition, our analysis produces scalable small-scale models, derived from our structural reduction, that capture the essential dynamics of the algorithm. These models provide a concrete opportunity for verification of the quantum advantage mechanism on currently available universal quantum computers. Comments: Subjects: Quantum Physics (quant-ph) Cite as: arXiv:2601.17686 [quant-ph] (or arXiv:2601.17686v1 [quant-ph] for this version) https://doi.org/10.48550/arXiv.2601.17686 Focus to learn more arXiv-issued DOI via DataCite (pending registration) Submission history From: Vicky Choi [view email] [v1] Sun, 25 Jan 2026 04:18:35 UTC (21,023 KB) Full-text links: Access Paper: View a PDF of the paper titled Exponential Quantum Speedup on Structured Hard Instances of Maximum Independent Set, by Vicky ChoiView PDFHTML (experimental)TeX Source view license Current browse context: quant-ph new | recent | 2026-01 References & Citations INSPIRE HEP NASA ADSGoogle Scholar Semantic Scholar export BibTeX citation Loading... BibTeX formatted citation × loading... Data provided by: Bookmark Bibliographic Tools Bibliographic and Citation Tools Bibliographic Explorer Toggle Bibliographic Explorer (What is the Explorer?) Connected Papers Toggle Connected Papers (What is Connected Papers?) Litmaps Toggle Litmaps (What is Litmaps?) scite.ai Toggle scite Smart Citations (What are Smart Citations?) Code, Data, Media Code, Data and Media Associated with this Article alphaXiv Toggle alphaXiv (What is alphaXiv?) Links to Code Toggle CatalyzeX Code Finder for Papers (What is CatalyzeX?) DagsHub Toggle DagsHub (What is DagsHub?) GotitPub Toggle Gotit.pub (What is GotitPub?) Huggingface Toggle Hugging Face (What is Huggingface?) Links to Code Toggle Papers with Code (What is Papers with Code?) ScienceCast Toggle ScienceCast (What is ScienceCast?) Demos Demos Replicate Toggle Replicate (What is Replicate?) Spaces Toggle Hugging Face Spaces (What is Spaces?) Spaces Toggle TXYZ.AI (What is TXYZ.AI?) Related Papers Recommenders and Search Tools Link to Influence Flower Influence Flower (What are Influence Flowers?) Core recommender toggle CORE Recommender (What is CORE?) Author Venue Institution Topic About arXivLabs arXivLabs: experimental projects with community collaborators arXivLabs is a framework that allows collaborators to develop and share new arXiv features directly on our website. Both individuals and organizations that work with arXivLabs have embraced and accepted our values of openness, community, excellence, and user data privacy. arXiv is committed to these values and only works with partners that adhere to them. Have an idea for a project that will add value for arXiv's community? Learn more about arXivLabs. Which authors of this paper are endorsers? | Disable MathJax (What is MathJax?)

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quantum-advantage
quantum-annealing
quantum-computing
quantum-investment
quantum-optimization

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Source: arXiv Quantum Physics

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