A Novel Compression Scheme Based on Hybrid Tucker-Vector Quantization Via Tensor Sketching for Dynamic Light Fields Acquired Through Coded Aperture Camera

Joshitha Ravishankar, Mansi Sharma, Sally Khaidem
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引用次数: 3

Abstract

Emerging computational light field displays are a suitable choice for realistic presentation of 3D scenes on autostereoscopic glasses-free platforms. However, the enormous size of light field limits their utilization for streaming and 3D display applications. In this paper, we propose a novel representation, coding and streaming scheme for dynamic light fields based on a novel Hybrid Tucker TensorSketch Vector Quantization (HTTSVQ) algorithm. A dynamic light field can be generated from a static light field to capture a moving 3D scene. We acquire images through different coded aperture patterns for a dynamic light field and perform their low-rank approximation using our HTTSVQ scheme, followed by encoding with High Efficiency Video Coding (HEVC). The proposed single pass coding scheme can incrementally handle tensor elements and thus enables to stream and compress light field data without the need to store it in full. Additional encoding of low-rank approximated acquired images by HEVC eliminates intra-frame, inter-frame and intrinsic redundancies in light field data. Comparison with state-of-the-art coders HEVC and its multi-view extension (MV-HEVC) exhibits superior compression performance of the proposed scheme for real-world light fields.
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一种基于张量绘制混合矢量量化的编码孔径相机动态光场压缩新方案
新兴的计算光场显示器是在自动立体无眼镜平台上逼真呈现3D场景的合适选择。然而,巨大的光场尺寸限制了它们在流媒体和3D显示应用中的应用。在本文中,我们提出了一种新的基于混合Tucker TensorSketch矢量量化(HTTSVQ)算法的动态光场表示、编码和流处理方案。动态光场可以从静态光场生成,以捕捉移动的3D场景。我们通过不同的编码孔径模式获取动态光场图像,并使用我们的HTTSVQ方案进行低秩近似,然后使用高效视频编码(HEVC)进行编码。提出的单通道编码方案可以增量处理张量元素,从而实现光场数据的流化和压缩,而无需完全存储。利用HEVC对获取的低秩近似图像进行额外编码,消除了光场数据中的帧内、帧间和固有冗余。与最先进的编码器HEVC及其多视图扩展(MV-HEVC)相比,该方案在实际光场中表现出优越的压缩性能。
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