音调映射的基于显著性的参数调优

Xihe Gao, Stephen Brooks, D. Arnold
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引用次数: 5

摘要

提出了一种基于显著性的参数调整算法,该算法通过最小化音调映射过程中引起的显著性失真,自动优化音调映射算子的参数。该算法采用改进的HDR图像显著性检测模型,将显著性失真量化为色调映射图像与相应HDR图像显著性分布之间的Kullback-Leibler散度。我们表明,通过采用一种进化策略,个体代表参数设置和基于显著性扭曲的适应度值,可以实现最小化。通过若干色调映射算子和测试图像的实验,验证了算法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Saliency-based parameter tuning for tone mapping
We present a saliency-based parameter tuning algorithm that can optimize the parameters of tone mapping operators automatically by minimizing the saliency distortion caused by the process of tone mapping. The algorithm employs an improved saliency detection model for HDR images, and the saliency distortion is quantified as the Kullback-Leibler divergence between the saliency distributions of the tone mapped images and those of the corresponding HDR images. We show that the minimization can be accomplished by employing an evolution strategy with individuals representing parameter settings and fitness values based on saliency distortion. The effectiveness of our algorithm is demonstrated through experiments using several tone mapping operators and test images.
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