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Disparity Estimation for Image Fusion in a Multi-aperture Camera

机译:多孔径相机中图像融合的视差估计

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In this paper, an image fusion algorithm is proposed for a multi-aperture camera. Such camera is a worthy alternative to traditional Bayer filter camera in terms of image quality, camera size and camera features. The camera consists of several camera units, each having dedicated optics and color filter. The main challenge of a multi-aperture camera arises from the fact that each camera unit has a slightly different viewpoint. Our image fusion algorithm corrects the parallax error between the sub-images using a disparity map, which is estimated from the multi-spectral images. We improve the disparity estimation by combining matching costs over multiple views with help of trifocal tensors. Images are matched using two alternative matching costs, mutual information and Census transform. We also compare two different disparity estimation methods, graph cuts and semi-global matching. The results show that the overall quality of the fused images is near the reference images.
机译:本文提出了一种用于多孔径相机的图像融合算法。就图像质量,相机尺寸和相机功能而言,这种相机是传统拜耳滤镜相机的理想替代品。摄像头由几个摄像头单元组成,每个摄像头单元都有专用的光学元件和滤色镜。多孔径相机的主要挑战来自每个相机单元的视点略有不同的事实。我们的图像融合算法使用视差图校正子图像之间的视差误差,该视差图是从多光谱图像估计的。通过在三焦点张量的帮助下将多个视图上的匹配成本相结合,我们改善了视差估计。使用两个替代匹配成本(互信息和人口普查)对图像进行匹配。我们还比较了两种不同的视差估计方法:图割和半全局匹配。结果表明,融合图像的整体质量接近参考图像。

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