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Intelligent video editing system using a neural network coding scheme

机译:使用神经网络编码方案的智能视频编辑系统

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Abstract: Video editors are frequently required to access sections of a video sequence which contain a particular scene. This may be regarded as an image retrieval-by-content problem where the user wishes to select images from within a large database according to a measure of similarity to a target. We present an intelligent video editing system based on a neural network coding scheme. The transformation learnt by the neural network maps each image into a very compact index which supports rapid fuzzy matching of video images. The neural network is trained using a learning law which produces an information preserving transform. Trained in this way, the node learns features which characterize the distribution of scenes within the video sequence. Each image frame in the sequence is coded with respect to these features. We show how the system performs on a typical sequence of newsreel footage and discuss the factors affecting the performance of both the training and the retrieval mechanism. !7
机译:摘要:经常需要视频编辑器访问包含特定场景的视频片段。这可以被认为是按内容检索图像的问题,在该问题中,用户希望根据与目标的相似性度量从大型数据库中选择图像。我们提出了一种基于神经网络编码方案的智能视频编辑系统。神经网络学习到的变换将每个图像映射到一个非常紧凑的索引中,该索引支持视频图像的快速模糊匹配。使用学习定律来训练神经网络,该学习定律产生信息保留变换。通过这种方式进行训练,该节点将学习表征视频序列中场景分布特征的特征。关于这些特征对序列中的每个图像帧进行编码。我们将展示系统如何在典型的新闻镜头片段序列上执行操作,并讨论影响培训和检索机制性能的因素。 !7

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