Warehouse optimization using a trapped-ion quantum processor

Fuente: arXiv
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Bibliographic Details
Main Authors: Ricardo, Alexandre C., Fernandes, Gabriel P. L. M., Valério, Amanda G., Farias, Tiago de S., Fonseca, Matheus da S., Carpio, Nicolás A. C., Bezerra, Paulo C. C., Maier, Christine, Ulmanis, Juris, Monz, Thomas, Villas-Boas, Celso J.
Format: Preprint
Published: 2024
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author Ricardo, Alexandre C.
Fernandes, Gabriel P. L. M.
Valério, Amanda G.
Farias, Tiago de S.
Fonseca, Matheus da S.
Carpio, Nicolás A. C.
Bezerra, Paulo C. C.
Maier, Christine
Ulmanis, Juris
Monz, Thomas
Villas-Boas, Celso J.
author_facet Ricardo, Alexandre C.
Fernandes, Gabriel P. L. M.
Valério, Amanda G.
Farias, Tiago de S.
Fonseca, Matheus da S.
Carpio, Nicolás A. C.
Bezerra, Paulo C. C.
Maier, Christine
Ulmanis, Juris
Monz, Thomas
Villas-Boas, Celso J.
contents Warehouse optimization stands as a critical component for enhancing operational efficiency within the industrial sector. By strategically streamlining warehouse operations, organizations can achieve significant reductions in logistical costs such as the necessary footprint or traveled path, and markedly improve overall workflow efficiency including retrieval times or storage time. Despite the availability of numerous algorithms designed to identify optimal solutions for such optimization challenges, certain scenarios demand computational resources that exceed the capacities of conventional computing systems. In this context, we adapt a formulation of a warehouse optimization problem specifically tailored as a binary optimization problem and implement it in a trapped-ion quantum computer.
format Preprint
id arxiv_https___arxiv_org_abs_2411_17575
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Warehouse optimization using a trapped-ion quantum processor
Ricardo, Alexandre C.
Fernandes, Gabriel P. L. M.
Valério, Amanda G.
Farias, Tiago de S.
Fonseca, Matheus da S.
Carpio, Nicolás A. C.
Bezerra, Paulo C. C.
Maier, Christine
Ulmanis, Juris
Monz, Thomas
Villas-Boas, Celso J.
Quantum Physics
Warehouse optimization stands as a critical component for enhancing operational efficiency within the industrial sector. By strategically streamlining warehouse operations, organizations can achieve significant reductions in logistical costs such as the necessary footprint or traveled path, and markedly improve overall workflow efficiency including retrieval times or storage time. Despite the availability of numerous algorithms designed to identify optimal solutions for such optimization challenges, certain scenarios demand computational resources that exceed the capacities of conventional computing systems. In this context, we adapt a formulation of a warehouse optimization problem specifically tailored as a binary optimization problem and implement it in a trapped-ion quantum computer.
title Warehouse optimization using a trapped-ion quantum processor
topic Quantum Physics
url https://arxiv.org/abs/2411.17575