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首页> 外文期刊>Biomedical and Health Informatics, IEEE Journal of >Keyframe Extraction From Laparoscopic Videos via Diverse and Weighted Dictionary Selection
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Keyframe Extraction From Laparoscopic Videos via Diverse and Weighted Dictionary Selection

机译:通过多样化和加权词典选择从腹腔镜视频中提取关键帧

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摘要

Laparoscopic videos have been increasingly acquired for various purposes including surgical training and quality assurance, due to the wide adoption of laparoscopy in minimally invasive surgeries. However, it is very time consuming to view a large amount of laparoscopic videos, which prevents the values of laparoscopic video archives from being well exploited. In this paper, a dictionary selection based video summarization method is proposed to effectively extract keyframes for fast access of laparoscopic videos. Firstly, unlike the low-level feature used in most existing summarization methods, deep features are extracted from a convolutional neural network to effectively represent video frames. Secondly, based on such a deep representation, laparoscopic video summarization is formulated as a diverse and weighted dictionary selection model, in which image quality is taken into account to select high quality keyframes, and a diversity regularization term is added to reduce redundancy among the selected keyframes. Finally, an iterative algorithm with a rapid convergence rate is designed for model optimization, and the convergence of the proposed method is also analyzed. Experimental results on a recently released laparoscopic dataset demonstrate the clear superiority of the proposed methods. The proposed method can facilitate the access of key information in surgeries, training of junior clinicians, explanations to patients, and archive of case files.
机译:由于微创手术中的腹腔镜检查广泛采用,腹腔镜视频越来越多地获得了各种目的,包括外科培训和质量保证。然而,查看大量腹腔镜视频非常耗时,这可以防止腹腔镜视频档案的价值得到充分利用。在本文中,提出了一种基于词典选择的视频概述方法,以有效提取关键帧以便快速访问腹腔镜视频。首先,与大多数现有摘要方法中使用的低级特征不同,从卷积神经网络中提取深度特征,以有效地表示视频帧。其次,基于这样的深度表示,将腹腔镜视频摘要制定为不同的和加权词典选择模型,其中考虑到图像质量以选择高质量的关键帧,并添加分集正则化术语以减少所选的冗余关键帧。最后,设计了快速收敛速率的迭代算法用于模型优化,并且还分析了所提出的方法的收敛性。最近释放的腹腔镜数据集的实验结果证明了所提出的方法的清晰优势。该方法可以促进手术中的关键信息,初级临床医生的关键信息,对患者的解释以及案例文件的档案。

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