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    Please use this identifier to cite or link to this item: https://ir.lib.ncu.edu.tw/handle/987654321/107208


    Title: Exploring contextual redundancy in improving object-based video coding for video sensor networks surveillance
    Authors: 蔡宗漢;Tsai, Tsung-Han;Lin, Chung-Yuan
    Contributors: 資訊電機學院電機工程學系
    Keywords: Algorithmics. Computability. Computer arithmetics;Applied sciences;Artificial intelligence;Computer science;control theory;systems;Computer systems and distributed systems. User interface;Context;Contextual redundancy coding;Encoding;Exact sciences and technology;intelligent video surveillance;Lighting;object-based video coding;operational rate-distortion theory;Pattern recognition. Digital image processing. Computational geometry;Redundancy;Software;Surveillance;Theoretical computing;Transform coding;visual sensor network;Visualization
    Date: 2012-05-22
    Issue Date: 2026-04-23 13:59:54 (UTC+8)
    Publisher: Institute of Electrical and Electronics Engineers Inc.;New York, NY: IEEE
    Abstract: 摘要: In recent years, intelligent video surveillance attempts to provide content analysis tools to understand and predict the actions via video sensor networks (VSN) for automated wide-area surveillance. In this emerging network, visual object data is transmitted through different devices to adapt to the needs of the specific content analysis task. Therefore, they raise a new challenge for video delivery: how to efficiently transmit visual object data to various devices such as storage device, content analysis server, and remote client server through the network. Object-based video encoder can be used to reduce transmission bandwidth with minor quality loss. However, the involved motion-compensated technique often leads to high computational complexity and consequently increases the cost of VSN. In this paper, contextual redundancy associated with background and foreground objects in a scene is explored. A scene analysis method is proposed to classify macroblocks (MBs) by type of contextual redundancy. The motion search is only performed on the specific type of context of MB which really involves salient motion. To facilitate the encoding by context of MB, an improved object-based coding architecture, namely dual-closed-loop encoder, is derived. It encodes the classified context of MB in an operational rate-distortion-optimized sense. The experimental results show that the proposed coding framework can achieve higher coding efficiency than MPEG-4 coding and related object-based coding approaches, while significantly reducing coding complexity.
    其他題名: TMM
    出版者: New York, NY: IEEE
    出版日期: 2012-06-01
    出處: IEEE transactions on multimedia, 2012-06, Vol.14 (3), p.669-682
    資源來源: IEEE Xplore (NTUSG)
    版權: 2015 INIST-CNRS
    識別號: ISSN: 1520-9210
    識別號: EISSN: 1941-0077
    識別號: DOI: 10.1109/TMM.2011.2180705
    識別號: CODEN: ITMUF8
    Appears in Collections:[Department of Electrical Engineering] journal & Dissertation

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