Base-Anchored Model for Highly Scalable and Accessible Compression of Multiview Imagery

We present a compression scheme for multiview imagery that facilitates high scalability and accessibility of the compressed content. Our scheme relies upon constructing at a single base view, a disparity model for a group of views, and then utilizing this base-anchored model to infer disparity at al...

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Veröffentlicht in:IEEE transactions on image processing 2019-07, Vol.28 (7), p.3205-3218
Hauptverfasser: Ruefenacht, Dominic, Naman, Aous Thabit, Mathew, Reji, Taubman, David
Format: Artikel
Sprache:eng
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Zusammenfassung:We present a compression scheme for multiview imagery that facilitates high scalability and accessibility of the compressed content. Our scheme relies upon constructing at a single base view, a disparity model for a group of views, and then utilizing this base-anchored model to infer disparity at all views belonging to the group. We employ a hierarchical disparity-compensated inter-view transform where the corresponding analysis and synthesis filters are applied along the geometric flows defined by the base-anchored disparity model. The output of this inter-view transform along with the disparity information is subjected to spatial wavelet transforms and embedded block-based coding. Rate-distortion results reveal superior performance to the x.265 anchor chosen by the JPEG Pleno standards activity for the coding of multiview imagery captured by high-density camera arrays.
ISSN:1057-7149
1941-0042
DOI:10.1109/TIP.2019.2894968