校正项在改进基于梯度的拜耳CFA去马赛克算法中的应用

Kinyua Wachira
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引用次数: 3

摘要

本文对校正项在基于梯度的去马赛克算法中的作用以及如何使用它们来改进图像重建进行了新颖的研究。分析了非零校正项ε和新的面间加权项β。使用这些术语提出了两种新技术来突出它们的贡献。使用了四个性能指标(PSNR, CPSNR, SSIM和FSIM)在四个不同的图像集上进行测试。将所提出的算法与现有的技术进行了比较,并在多个图像集上观察到图像保真度的提高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Corrective term usage in the improvement of gradient-based bayer CFA demosaicking algorithms
This paper presents a novel scrutiny into the role of corrective terms in gradient-based demosaicking algorithms and how they can be used to improve image reconstruction. The terms analysed are the non-zero corrective term ε and a new inter-plane weighting term β. Two new techniques are proposed using these terms to highlight their contribution. Four performance metrics have been used (PSNR, CPSNR, SSIM and FSIM) for testing over four different image sets. Comparison of one the proposed algorithms is made with established current techniques and an improvement in image fidelity is observed over several image sets.
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