Quantum Linear Algorithm for Edit Distance Using the Word QRAM Model
Massimo Equi, Arianne Meijer-van de Griend, Veli M\"akinen

TL;DR
This paper introduces a quantum algorithm leveraging the word QRAM model to achieve linear time computation of edit distance for constant alphabets, surpassing classical and previous quantum lower bounds.
Contribution
The paper develops a novel quantum algorithm in the word QRAM model that converts classical bit-parallel algorithms into quantum speed-ups, specifically achieving linear time for edit distance.
Findings
Achieves linear time edit distance algorithm for constant alphabet.
Extends the applicability of bit-parallel algorithms to quantum computing.
Provides insights into the limits of the word QRAM model.
Abstract
Many problems that can be solved in quadratic time have bit-parallel speed-ups with factor , where is the computer word size. For example, edit distance of two strings of length can be solved in time. In a reasonable classical model of computation, one can assume . There are conditional lower bounds for such problems stating that speed-ups with factor for any would lead to breakthroughs in complexity theory. However, these conditional lower bounds do not cover quantum models of computing. Indeed, Boroujeni et al. (J. ACM, 2021) showed that edit distance can be approximated within a factor in sub-quadratic time using quantum computing. They also showed that, in their chosen model of quantum computing, the approximation factor cannot be improved using sub-quadractic time. To break through the…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Machine Learning and Algorithms · Computability, Logic, AI Algorithms
