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Kinetic depth images: flexible generation of depth perception

机译:动态深度图像:深度感知的灵活生成

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In this paper we present a systematic approach to create smoothly varying images from a pair of photographs to facilitate enhanced awareness of the depth structure of a given scene. Since our system does not rely on sophisticated display technologies such as stereoscopy or auto-stereoscopy for depth awareness, it (a) is inexpensive and widely accessible, (b) does not suffer from vergence - accommodation fatigue, and (c) works entirely with monocular depth cues. Our approach enhances the depth awareness by optimizing across a number of features such as depth perception, optical flow, saliency, centrality, and disocclusion artifacts. We report the results of user studies that examine the relationship between depth perception, relative velocity, spatial perspective effects, and the positioning of the pivot point and use them when generating kinetic-depth images. We also present a novel depth re-mapping method guided by perceptual relationships based on the results of our user study. We validate our system by presenting a user study that compares the output quality of our proposed method against other existing alternatives on a wide range of images.
机译:在本文中,我们提出了一种从一对照片创建平滑变化的图像的系统方法,以增强对给定场景的深度结构的认识。由于我们的系统不依赖于诸如立体镜或自动立体镜之类的复杂显示技术来进行深度感知,因此(a)价格便宜且可广泛使用,(b)不会发散-适应疲劳,并且(c)单眼深度提示。我们的方法通过优化许多功能(例如深度感知,光流,显着性,中心性和遮挡伪像)来增强深度意识。我们报告了用户研究的结果,这些研究检查了深度感知,相对速度,空间透视效果和枢轴点的位置之间的关系,并在生成动力学深度图像时使用了它们。我们还根据我们的用户研究结果,提出了一种基于感知关系的新颖深度重新映射方法。我们通过提供一项用户研究来验证我们的系统,该研究将我们提出的方法的输出质量与其他现有替代方法在各种图像上进行比较。

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