Once for All: a Two-flow Convolutional Neural Network for Visual Tracking.

IEEE Transactions on Circuits and Systems for Video Technology(2018)

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摘要
The main challenges of visual object tracking arise from the arbitrary appearance of the objects that need to be tracked. Most existing algorithms try to solve this problem by training a new model to regenerate or classify each tracked object. As a result, the model needs to be initialized and retrained for each new object. In this paper, we propose to track different objects in an object-independ...
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关键词
Search problems,Target tracking,Feature extraction,Visualization,Convolutional neural networks,Neural networks
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