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An adaptive template matching-based single object tracking algorithm with parallel acceleration

机译:并行加速的基于自适应模板匹配的单目标跟踪算法

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摘要

Existing template matching based visual object tracking algorithms usually require to manually update the template and have high execution cost on general embedded systems. To address these issues, an adaptive template matching-based single object tracking algorithm with parallel acceleration is proposed in this paper. In this algorithm, we propose an adaptive single object tracking algorithm framework to achieve template update online. Based on the Faster-RCNN model, we design a single object capture method to update the template. Meanwhile, we present a parallel strategy to accelerate the process of template matching. To evaluate the proposed algorithm, we use OTB benchmark to compare the performance with several state-of-the-art trackers on TX2 embedded platform. Experimental results show that the proposed method achieves a 5.9 times execution speed and 71.9% accuracy improvement over the comparison methods. (C) 2019 Published by Elsevier Inc.
机译:现有的基于模板匹配的视觉对象跟踪算法通常需要手动更新模板,并且在一般嵌入式系统上具有很高的执行成本。为了解决这些问题,本文提出了一种具有并行加速的基于模板匹配的自适应单目标跟踪算法。在该算法中,我们提出了一种自适应的单目标跟踪算法框架,以实现在线模板更新。基于Faster-RCNN模型,我们设计了一种单一的对象捕获方法来更新模板。同时,我们提出了一种并行策略来加速模板匹配过程。为了评估所提出的算法,我们使用OTB基准将TX2嵌入式平台上的性能与几种最新的跟踪器进行比较。实验结果表明,与比较方法相比,该方法执行速度提高了5.9倍,准确率提高了71.9%。 (C)2019由Elsevier Inc.发布

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