From Bits to Qubits: Challenges in Classical-Quantum Integration

Fuente: arXiv
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Autori principali: Kulkarni, Sudhanshu Pravin, Huang, Daniel E., Bethel, E. Wes
Natura: Preprint
Pubblicazione: 2025
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author Kulkarni, Sudhanshu Pravin
Huang, Daniel E.
Bethel, E. Wes
author_facet Kulkarni, Sudhanshu Pravin
Huang, Daniel E.
Bethel, E. Wes
contents While quantum computing holds immense potential for tackling previously intractable problems, its current practicality remains limited. A critical aspect of realizing quantum utility is the ability to efficiently interface with data from the classical world. This research focuses on the crucial phase of quantum encoding, which enables the transformation of classical information into quantum states for processing within quantum systems. We focus on three prominent encoding models: Phase Encoding, Qubit Lattice, and Flexible Representation of Quantum Images (FRQI) for cost and efficiency analysis. The aim of quantifying their different characteristics is to analyze their impact on quantum processing workflows. This comparative analysis offers valuable insights into their limitations and potential to accelerate the development of practical quantum computing solutions.
format Preprint
id arxiv_https___arxiv_org_abs_2501_18905
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle From Bits to Qubits: Challenges in Classical-Quantum Integration
Kulkarni, Sudhanshu Pravin
Huang, Daniel E.
Bethel, E. Wes
Emerging Technologies
Quantum Physics
While quantum computing holds immense potential for tackling previously intractable problems, its current practicality remains limited. A critical aspect of realizing quantum utility is the ability to efficiently interface with data from the classical world. This research focuses on the crucial phase of quantum encoding, which enables the transformation of classical information into quantum states for processing within quantum systems. We focus on three prominent encoding models: Phase Encoding, Qubit Lattice, and Flexible Representation of Quantum Images (FRQI) for cost and efficiency analysis. The aim of quantifying their different characteristics is to analyze their impact on quantum processing workflows. This comparative analysis offers valuable insights into their limitations and potential to accelerate the development of practical quantum computing solutions.
title From Bits to Qubits: Challenges in Classical-Quantum Integration
topic Emerging Technologies
Quantum Physics
url https://arxiv.org/abs/2501.18905