改进的基于堆栈的HDR成像图像选择

P. V. Beek
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引用次数: 5

摘要

基于堆栈的高动态范围(HDR)成像是一种通过组合在不同曝光下获得的多幅低动态范围图像来获得更大动态范围图像的技术。尽量减少要组合的图像集,同时确保最终的HDR图像充分捕捉场景的辐照度,这对于避免长时间的图像采集和后处理非常重要。图像集的选择问题一直备受关注。然而,现有的方法要么不是全自动的,要么很慢,要么不能完全捕捉更具挑战性的场景。在本文中,我们提出了一种自动选择曝光集的方法,该方法既快速又准确。我们在一组广泛的基准场景中显示,我们提出的方法可以改善HDR图像,使用均方误差、基于像素的度量、可见差异预测器和质量分数(两者都是基于感知的度量)来衡量地面真实情况。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improved Image Selection for Stack-Based HDR Imaging
Stack-based high dynamic range (HDR) imaging is a technique for achieving a larger dynamic range in an image by combining several low dynamic range images acquired at different exposures. Minimizing the set of images to combine, while ensuring that the resulting HDR image fully captures the scene's irradiance, is important to avoid long image acquisition and post-processing times. The problem of selecting the set of images has received much attention. However, existing methods either are not fully automatic, can be slow, or can fail to fully capture more challenging scenes. In this paper, we propose a fully automatic method for selecting the set of exposures to acquire that is both fast and more accurate. We show on an extensive set of benchmark scenes that our proposed method leads to improved HDR images as measured against ground truth using the mean squared error, a pixel-based metric, and a visible difference predictor and a quality score, both perception-based metrics.
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