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Object segmentation from consumer videos: a unified framework based on visual attention

机译:消费者视频中的对象细分:基于视觉注意力的统一框架

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摘要

The purpose of video object segmentation is to automatically extract objects of interest from consumer videos. This paper investigates this problem from a novel perspective of human visual attention. We roughly classify visual attentions in video scenes into two categories: static attention and dynamic attention. The static attention model is mainly responsible for segmenting the interesting objects without motion, whereas the dynamic attention model plays an important role in obtaining the interesting objects with motion. The fusion of both models allows us to obtain all interesting objects using a unified framework. This framework is easy to implement and has the great promise to become a basic tool for many content-based consumer video applications. Experimental results demonstrate the good performance of our algorithm.
机译:视频对象分割的目的是从消费者视频中自动提取感兴趣的对象。本文从人类视觉注意力的新视角研究了这个问题。我们将视频场景中的视觉注意力大致分为两类:静态注意力和动态注意力。静态注意力模型主要负责分割运动对象,而动态注意力模型在获取运动对象的过程中起着重要的作用。两种模型的融合使我们能够使用统一框架获得所有有趣的对象。该框架易于实现,并有望成为许多基于内容的消费者视频应用程序的基本工具。实验结果证明了该算法的良好性能。

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