基于内容的神经外科远程监控视频预处理

J. Xu, R. Sclabassi, Bing Liu, M. Sun
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引用次数: 3

摘要

在分布式诊断系统中,如何通过互联网传输高质量视频是一个具有挑战性的问题。我们提出了一种基于内容的视频数据预处理方案,该方案适用于术中监控过程中获取的视频数据,并且基本上可以与任何视频编解码器级联。首先将IOM视频分解为时间小波子带帧,并在这些变换中加入运动补偿,有效地利用帧间冗余。然后根据重要性图自适应加权高通子带帧,该重要性图指定视频内容对临床观察的重要性。该图在手术部位附近价值较高,而在手术周围价值较低。手术部位可以通过手术工具跟踪系统自动定位
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Content-Based Video Preprocessing for Remote Monitoring of Neurosurgery
Transmitting high-quality video via the Internet is a challenging problem in distributed diagnosis system. We propose a content-based video data preprocessing scheme, which is adaptive to the video data acquired during intraoperative monitoring and can cascade with essentially any video codec. IOM video is first decomposed into temporal wavelet subband frames and motion compensation is incorporated into these transforms to exploit inter-frame redundancy efficiently. Highpass subband frames are then adaptively weighted according to an importance map, which specifies the importance of the video contents for clinical observation. This map has higher value near the surgical site and lower value at the surrounding area. The surgical site can be located automatically by a surgical tool tracking system
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