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A Generalized Space-Efficient Algorithm for Quantum Bit String Comparators

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arxiv 2311.06573 v2 pith:VRUBSEKE submitted 2023-11-11 quant-ph cs.ETcs.LOcs.SE

classification quant-phcs.ETcs.LOcs.SE
keywords quantumcomparatorsgeneralizeddesignqubitalgorithmalgorithmsancillary
verification ladder T0 review T1 audit T2 compute T3 formal

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abstract

Quantum Bit String Comparators (QBSC) operate on two sequences of n-qubits, enabling the determination of their relationships, such as equality, greater than, or less than. This is analogous to the way conditional statements are used in programming languages. Consequently, QBSCs play a crucial role in various algorithms that can be executed or adapted for quantum computers. The development of efficient and generalized comparators for any $n$-qubit length has long posed a challenge, as they have a high-cost footprint and lead to quantum delays. Comparators that are efficient are associated with inputs of fixed length. As a result, comparators without a generalized circuit cannot be employed at a higher level, though they are well-suited for problems with limited size requirements. In this paper, we introduce a generalized design for the comparison of two $n$-qubit logic states using just two ancillary bits. The design is examined on the basis of qubit requirements, ancillary bit usage, quantum cost, quantum delay, gate operations, and circuit complexity, and is tested comprehensively on various input lengths. The work allows for sufficient flexibility in the design of quantum algorithms, which can accelerate quantum algorithm development.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Demonstration of a quantum comparator on an ion-trap quantum device

    quant-ph 2025-12 conditional novelty 4.0 of 10

    An ion-trap quantum computer correctly compared 9-bit integers with 95% output success and 69% ancilla-inclusive success.

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