首页> 外文期刊>Signal Processing. Image Communication: A Publication of the the European Association for Signal Processing >Investigating 3D holoscopic visual content upsampling using super-resolution for cultural heritage digitization
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Investigating 3D holoscopic visual content upsampling using super-resolution for cultural heritage digitization

机译:使用超分辨率来研究3D全镜视觉含量的文化遗产数字化

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Through this paper, we aim at investigating the impact of using deep learning-based technologies such as super-resolution on Holoscopic 3D (H3D) images. Holoscopic 3D imaging is a technology that aims at providing cost-effective alternatives for 3D content viewing and consumption without requiring a special headgear or posture. The technique is using a special lens array fitted to standard DSLR or mirrorless cameras to generate or capture 3D content. The output is a Holoscopic 3D image that can be displayed in lightfield displays or Multiview displays following a post-processing procedure. The main advantage of this technique is its cost-effectiveness in viewing and interacting with 3D content. However, one of its drawbacks is the low spatial density of the commercial cameras CMOS sensors and the lens induced imperfections. The latter can be fixed in software using some distortion correction techniques. However, the former is still challenging in terms of techniques that result in naturally looking output. Mitigating such issues with hardware will lead to higher costs and the technique loses its main advantage. Our approach consists of designing a framework that leverages software tools in order to upscale the output of H3D cameras whilst solving the low spatial density problem of H3D images. We also investigate the impact of deep learning-based video motion interpolation on the output quality of the cultural H3D imaging framework.
机译:通过本文,我们旨在调查使用基于深度学习的技术的影响,例如超级分辨率在全镜3D(H3D)图像上。全镜3D成像是一种技术,旨在为3D内容查看和消耗提供经济高效的替代方案,而无需特殊的头饰或姿势。该技术采用拟合标准DSLR或无晶体相机的特殊镜头阵列来生成或捕获3D内容。输出是可以在后处理过程之后的灯田显示器或多视图显示中显示的全镜3D图像。这种技术的主要优点是与3D内容进行观察和交互的成本效益。然而,其中一个缺点是商业摄像机CMOS传感器的低空间密度和镜头诱导的缺陷。后者可以使用一些失真校正技术在软件中修复。然而,前者在导致自然输出的技术方面仍然具有挑战性。减轻硬件的这些问题将导致更高的成本,并且该技术失去了其主要优势。我们的方法包括设计一种框架,该框架利用软件工具,以便在解决H3D图像的低空间密度问题时高档H3D摄像机的输出。我们还研究了深度学习的视频运动插值对文化H3D成像框架的输出质量的影响。

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