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Consistent Volumetric Warping Using Floating Boundaries for Stereoscopic Video Retargeting

机译:使用浮动边界进行立体视频重定向的一致体积变形

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The key to content-aware warping and cropping is adapting data to fit displays with various aspect ratios while preserving visually salient contents. Most previous studies achieve this objective by cropping insignificant contents near frame boundaries and consistently resizing frames through an optimization technique with various preservation constraints and fixed boundary conditions. These strategies significantly improve retargeting quality. However, warping under fixed boundary conditions may bound/limit the preservation of visually salient contents. Moreover, dynamic frame cropping and frame alignment may result in unnatural object/camera motions. In this paper, a floating boundary with volumetric warping and object-aware cropping is proposed to address these problems. In the proposed scheme, visually salient objects in the space-time domain are deformed as rigidly and as consistently as possible using information from matched objects and content-aware boundary constraints. The content-aware boundary constraints can retain visually salient contents in a fixed region with a desired resolution and aspect ratio, called critical region, during warping. Volumetric cropping with the fixed critical region is then performed to adjust stereoscopic videos to the desired aspect ratios. The strategies of warping and cropping using floating boundaries and spatiotemporal constraints enable our method to consistently preserve the temporal motions and spatial shapes of visually salient volumetric objects in the left and right videos as much as possible, thus leading to good content-aware retargeting. In addition, by considering shape, motion, and disparity preservation, the proposed scheme can be applied to various media, including images, stereoscopic images, videos, and stereoscopic videos. Qualitative and quantitative analyses of stereoscopic videos with diverse camera and considerable motions demonstrate a clear superiority of the proposed method over related methods in te- ms of retargeting quality.
机译:内容感知变形和裁剪的关键是调整数据以适合具有各种纵横比的显示,同时保留视觉上显着的内容。以前的大多数研究都是通过在帧边界附近裁剪不重要的内容并通过具有各种保存约束和固定边界条件的优化技术来不断调整帧大小来实现此目标的。这些策略显着提高了重新定向的质量。但是,在固定边界条件下翘曲可能会限制/限制视觉上显着内容的保存。此外,动态帧裁剪和帧对齐可能会导致不自然的对象/相机运动。在本文中,提出了具有体积扭曲和对象感知裁剪的浮动边界来解决这些问题。在提出的方案中,使用来自匹配对象的信息和内容感知的边界约束,使时空域中的视觉显着对象发生尽可能严格的变形。内容感知边界约束可以在翘曲期间将视觉显着内容保留在具有所需分辨率和纵横比的固定区域(称为关键区域)中。然后执行具有固定关键区域的体积裁剪,以将立体视频调整为所需的宽高比。使用浮动边界和时空约束进行变形和裁剪的策略使我们的方法能够尽可能一致地保留左右视频中视觉上显着的体积对象的时间运动和空间形状,从而实现良好的内容感知重定向。另外,通过考虑形状,运动和视差保留,所提出的方案可以应用于各种媒体,包括图像,立体图像,视频和立体视频。定性和定量分析具有各种摄像机和大量动作的立体视频,证明了该方法在重定位质量方面明显优于相关方法。

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