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Efficient Depth Image Compression Using Accurate Depth Discontinuity Detection and Prediction

机译:使用精确深度不连续性检测和预测的有效深度图像压缩

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摘要

This paper presents a novel depth image compression algorithm for both 3D Television (3DTV) and Free Viewpoint Television (FVTV) services. The proposed scheme adopts the K-means clustering algorithm to segment the depth image into K segments. The resulting segmented image is losslessly compressed and transmitted to the decoder. The depth image is then compressed using a bi-modal block encoder, where the smooth blocks are predicted using direct spatial prediction. On the other hand, blocks containing depth discontinuities are approximated using a novel depth discontinuity predictor. The residual information is then compressed using a lossy compression strategy and transmitted to the receiver. Simulation results indicate that the proposed scheme outperforms the state of the art spatial video coding systems available today such as JPEG and H.264/AVC Intra. Moreover, the proposed scheme manages to outperform specialized depth image compression algorithms such as the one proposed by Zanuttigh and Cortelazzo.
机译:本文为3D电视(3DTV)和自由视点电视(FVTV)服务提供了一种新颖的深度图像压缩算法。提出的方案采用K-means聚类算法将深度图像分割为K段。得到的分割图像被无损压缩并传输到解码器。然后使用双峰块编码器压缩深度图像,其中使用直接空间预测来预测平滑块。另一方面,使用新颖的深度不连续性预测器来近似包含深度不连续性的块。然后,使用有损压缩策略压缩残留信息,并将其发送到接收器。仿真结果表明,所提出的方案优于目前可用的现有技术的空间视频编码系统,例如JPEG和H.264 / AVC Intra。此外,所提出的方案设法优于专用的深度图像压缩算法,例如Zanuttigh和Cortelazzo提出的算法。

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