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Evolving Hardware-Efficient Grover Circuits with Grammatical Evolution

  • Arinze Obidiegwu
  • , Douglas Mota Dias
  • , Emmanuel Obidiegwu
  • , Conor Ryan
  • University of Limerick
  • Atlantic Technological University

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Canonical quantum algorithms often achieve low execution fidelities on current Noisy Intermediate-Scale Quantum (NISQ) hardware. The standard implementation of Grover's search algorithm, designed for theoretical generality, produces deep, gate-heavy circuits that are susceptible to noise. This paper challenges the "one-size-fits-all"design paradigm by using Grammatical Evolution (GE) to automatically discover hardware-efficient, state-specific quantum circuits. We demonstrate this approach by evolving bespoke circuits for all eight 3-qubit computational basis states and executing them on a 133-qubit IBM Heron quantum processor. To our knowledge, this is the first hardware-validated application of GE for this task. The results indicate significant performance gains: evolved circuits achieve hardware-executed fidelities up to 96.9% (vs. 66.3% baseline) while reducing circuit depth by 82.5-96.6% and gate count by 77.4-94.6% compared to canonical implementations. These findings suggest that automated symbolic search is a viable approach to designing algorithms that can execute on today's NISQ devices.

Original languageEnglish
Title of host publicationGECCO 2026 - Proceedings of the 2026 Genetic and Evolutionary Computation Conference
PublisherAssociation for Computing Machinery, Inc
Pages799-807
Number of pages9
ISBN (Electronic)9798400724879
DOIs
Publication statusPublished - 10 Jul 2026
EventGenetic and Evolutionary Computation Conference, GECCO 2026 - San Jose, Costa Rica
Duration: 13 Jul 202617 Jul 2026

Publication series

NameGECCO 2026 - Proceedings of the 2026 Genetic and Evolutionary Computation Conference

Conference

ConferenceGenetic and Evolutionary Computation Conference, GECCO 2026
Country/TerritoryCosta Rica
CitySan Jose
Period13/07/2617/07/26

Keywords

  • evolvable hardware
  • genetic programming
  • hardware realization
  • indirect encoding
  • quantum computing

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