Quantum Bilinear Interpolation Algorithms Based on Geometric Centers

Haisheng Li, Jinhui Quan, Shuxiang Song, Yuxing Wei, Li Qing
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引用次数: 1

Abstract

Bilinear interpolation is widely used in classical signal and image processing. Quantum algorithms have been designed for efficiently realizing bilinear interpolation. However, these quantum algorithms have limitations in circuit width and garbage outputs, which block the quantum algorithms applied to noisy intermediate-scale quantum devices. In addition, the existing quantum bilinear interpolation algorithms cannot keep the consistency between the geometric centers of the original and target images. To save the above questions, we propose quantum bilinear interpolation algorithms based on geometric centers using fault-tolerant implementations of quantum arithmetic operators. Proposed algorithms include the scaling-up and scaling-down for signals (grayscale images) and signals with three channels (color images). Simulation results demonstrate that the proposed bilinear interpolation algorithms obtain the same results as their classical counterparts with an exponential speedup. Performance analysis reveals that the proposed bilinear interpolation algorithms keep the consistency of geometric centers and significantly reduce circuit width and garbage outputs compared to the existing works.
基于几何中心的量子双线性插值算法
双线性插值在经典信号和图像处理中有着广泛的应用。为了有效地实现双线性插值,设计了量子算法。然而,这些量子算法在电路宽度和垃圾输出方面存在局限性,阻碍了量子算法应用于有噪声的中等规模量子器件。此外,现有的量子双线性插值算法不能保持原始图像和目标图像几何中心的一致性。为了避免上述问题,我们提出了基于几何中心的量子双线性插值算法,该算法使用量子算术运算符的容错实现。提出的算法包括信号(灰度图像)和三通道信号(彩色图像)的放大和缩小算法。仿真结果表明,本文提出的双线性插值算法与经典插值算法得到了相同的结果,且速度呈指数级提高。性能分析表明,与现有算法相比,所提出的双线性插值算法保持了几何中心的一致性,显著减少了电路宽度和垃圾输出。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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