DOE OSTI · 3366228
Translation-Invariant Quantum Algorithms for Ordered Search are Optimal
Abstract
Ordered search is the task of finding an item in an ordered list using comparison queries. The best exact classical algorithm for this fundamental problem uses [log 2 n] queries for a list of length n. Quantum computers can achieve a constant-factor speedup, but the best possible coefficient of log 2 n for exact quantum algorithms is only known to lie between (ln2)/π ≈ 0.221 and 4/log 2 605 ≈ 0.4333. We consider a special class of translation-invariant algorithms with no workspace, introduced by Farhi, Goldstone, Gutmann, and Sipser, that has been used to find the best known upper bounds. First, we show that any bounded-error, k-query quantum algorithm for ordered search can be implemented by a k-query algorithm in this special class. Second, we use linear programming to show that the best exact 5-query quantum algorithm can search a list of length 7265, giving an ordered search algorithm that asymptotically uses 5 log 7265 n ≈ 0.390 log 2 n quantum queries.
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Carolan, Joseph [University of Maryland, College Park, MD (United States)] (ORCID:0000000228919436), Childs, Andrew [University of Maryland, College Park, MD (United States)] (ORCID:000000029903837X), Kovacs-Deak, Matt [University of Maryland, College Park, MD (United States)] (ORCID:0009000211327052), Schaeffer, Luke [University of Waterloo (Canada)] (ORCID:0000000254138131). 2026-04-20. Translation-Invariant Quantum Algorithms for Ordered Search are Optimal. https://doi.org/10.1145/3800579
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