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A resource-efficient variational quantum algorithm for mRNA codon optimization

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arxiv 2404.14858 v2 pith:CMT3SUQ5 submitted 2024-04-23 quant-ph cs.CE

A resource-efficient variational quantum algorithm for mRNA codon optimization

classification quant-ph cs.CE
keywords quantumoptimizationcodonmrnasolutionsalgorithmalgorithmsapproximate
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Optimizing the mRNA codon has an essential impact on gene expression for a specific target protein. It is an NP-hard problem; thus, exact solutions to such optimization problems become computationally intractable for realistic problem sizes on both classical and quantum computers. However, approximate solutions via heuristics can substantially impact the application they enable. Quantum approximate optimization is an alternative computation paradigm promising for tackling such problems. Recently, there has been some research in quantum algorithms for bioinformatics, specifically for mRNA codon optimization. This research presents a denser way to encode codons for implementing mRNA codon optimization via the variational quantum eigensolver algorithms on a gate-based quantum computer. This reduces the qubit requirement by half compared to the existing quantum approach, thus allowing longer sequences to be executed on existing quantum processors. The performance of the proposed algorithm is evaluated by comparing its results to exact solutions, showing well-matching results.

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