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A Kalman-Filtering Approach to High Dynamic Range Imaging for Measurement Applications

机译:用于测量应用的高动态范围成像的卡尔曼滤波方法

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High dynamic range imaging (HDRI) methods in computational photography address situations where the dynamic range of a scene exceeds what can be captured by an image sensor in a single exposure. HDRI techniques have also been used to construct radiance maps in measurement applications; unfortunately, the design and evaluation of HDRI algorithms for use in these applications have received little attention. In this paper, we develop a novel HDRI technique based on pixel-by-pixel Kalman filtering and evaluate its performance using objective metrics that this paper also introduces. In the presented experiments, this new technique achieves as much as 9.4-dB improvement in signal-to-noise ratio and can achieve as much as a 29% improvement in radiometric accuracy over a classic method.
机译:计算摄影中的高动态范围成像(HDRI)方法解决了场景的动态范围超过一次曝光中图像传感器可以捕获的范围的情况。 HDRI技术也已用于构建测量应用中的辐射图;不幸的是,用于这些应用的HDRI算法的设计和评估很少受到关注。在本文中,我们开发了一种基于逐像素卡尔曼滤波的新颖HDRI技术,并使用本文还介绍的客观指标对其性能进行了评估。在提出的实验中,这项新技术的信噪比提高了9.4-dB,与传统方法相比,辐射测量精度提高了29%。

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