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How do deep convolutional features affect tracking performance: an experimental study

机译:深度卷积特征如何影响跟踪性能:一项实验研究

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摘要

Visual tracking is an import topic in computer vision with many practical applications. Recently, deep learning methods have been introduced into the tracking community to improve tracking performance. How deep features affect tracking performance, however, has not been studied thoroughly. In this paper, we carry out an experimental study to deeply investigate the impact of convolutional features on tracking performance. We adopt the most influential and representative Convolutional Neural Network (CNN) models that are widely used in computer vision to equip our baseline tracking framework. Firstly, we carry out experiments on each CNN to reveal the relationship between tracking performance and different CNN layers. Secondly, we have a vertical comparison of tracking performance between different CNN models. In addition, we explore the effect of ensemble strategies of CNN features on tracking performance. Our work has got several valuable findings on the relationship between tracking performance and convolutional features. Based on our findings, we have derived a few useful guidelines for designing trackers with better performance. We have also developed a simple baseline tracker with the guidelines and it outperforms several state-of-the-art trackers very easily on challenging benchmark video sequences.
机译:视觉跟踪是计算机视觉在许多实际应用中的重要主题。最近,深度学习方法已被引入跟踪社区,以提高跟踪性能。但是,尚未深入研究深度特征如何影响跟踪性能。在本文中,我们进行了一项实验研究,以深入研究卷积特征对跟踪性能的影响。我们采用最具影响力和代表性的卷积神经网络(CNN)模型,该模型广泛用于计算机视觉中,以装备我们的基线跟踪框架。首先,我们对每个CNN进行实验,以揭示跟踪性能与不同CNN层之间的关系。其次,我们对不同的CNN模型之间的跟踪性能进行了纵向比较。此外,我们探索了CNN功能的整体策略对跟踪性能的影响。在跟踪性能和卷积特征之间的关系上,我们的工作获得了一些有价值的发现。根据我们的发现,我们得出了一些有用的指南,用于设计性能更好的跟踪器。我们还根据指南开发了一个简单的基线跟踪器,在具有挑战性的基准视频序列上,它非常容易胜过几个最新的跟踪器。

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