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Adaptive Discriminative Deep Correlation Filter for Visual Object Tracking

机译:用于视觉对象跟踪的自适应辨别深度相关滤波器

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Correlation filter trackers building on deep convolution neural networks (CNNs) contribute efficient visual object trackers but remain challenged with severe target appearance variations. The reason for this is that CNNs trained for image classification tasks are less discriminative to the dynamic variations of targets and backgrounds. In this paper, we propose an adaptive discriminative deep correlation filter (adaDDCF), which, by incorporating discriminative feature fine-tuning with adaptive appearance modeling, pursues stable object tracking in complex backgrounds. In adaDDCF, a convolutional Fisher discriminative analysis (FDA) layer is implemented for positive and negative instance mining and scene-specific feature learning. A correlation layer is then embedded to learn the correlation response of consecutive frames for target appearance modeling. With an online learning procedure using forward-backward propagation, the FDA layer and the correlation layer are effectively coupled, leading to effective and discriminative fine-tuning for the proposed tracker, which consequently alleviates the target drifting problem. Extensive experiments on the challenging benchmarks OTB2013, OTB2015, and OTB50 demonstrate that the proposed adaDDCF tracker outperforms many state-of-the-art trackers.
机译:深度卷积神经网络(CNNS)在深度卷积神经网络上建立相关滤波器跟踪器贡献有效的视觉对象跟踪器,但保持挑战严重的目标外观变化。其原因是用于图像分类任务的CNNS对目标和背景的动态变化的判别较小。在本文中,我们提出了一种自适应鉴别的深度相关滤波器(ADADDCF),通过结合自适应外观建模的鉴别特征微调,在复杂背景中追求稳定的对象跟踪。在Adaddcf中,卷积渔业歧视性分析(FDA)层是为正面和消极的挖掘和现场特征学习实施的。然后嵌入相关层以了解目标外观建模的连续帧的相关响应。利用使用前向后传播的在线学习过程,FDA层和相关层有效地耦合,导致所提出的跟踪器的有效和识别的微调,从而减轻了目标漂移问题。对挑战基准测试OTB2013,OTB2015和OTB50的广泛实验证明,所提出的AdDDCF跟踪器优于许多最先进的跟踪器。

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