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Selfie Stitch: Dual Homography Based Image Stitching for Wide-Angle Selfie

机译:自拍照针迹:基于双线摄影的广角自拍照图像缝合

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This paper proposes an image stitching method for increasing the Field-of-View (FoV) of widely used face photographs called `selfies'. Unlike traditional methods that deal with the far-field object and single dominant plane homography, we focus on the near-field aspect of the face and two dominant planes. In this context, significant depth difference between the face and a background plane poses significant parallax challenges. To mitigate this, we automatically calculate robust homographies for each plane by segmenting images into the foreground and background regions. To address the issue of holes caused by dual homography based stitching, we estimate a per-pixel homography by weighting the foreground and background homographies using distance transform from segmentation boundary. The experimental results show that the proposed method generates aesthetically stitched face photographs under the natural environment with reasonable post-processing time.
机译:本文提出了一种图像拼接方法,用于增加被称为“自拍”的广泛使用的人脸照片的视场(FoV)。与处理远场物体和单主平面单应性的传统方法不同,我们将重点放在人脸和两个主平面的近场方面。在这种情况下,面部和背景平面之间的深度差很大,对视差提出了挑战。为了减轻这种情况,我们通过将图像分为前景和背景区域,自动为每个平面计算鲁棒性单应性。为了解决由基于双重单应性的拼接引起的孔洞问题,我们使用从分割边界的距离变换对前景和背景单应性进行加权,从而估算出每个像素的单应性。实验结果表明,该方法在自然环境下以合理的后处理时间生成了美观的人脸照片。

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