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Scale-Adaptive Context-Aware Correlation Filter with Output Constraints for Visual Target Tracking

机译:具有输出约束的尺度自适应上下文感知相关滤波器,用于视觉目标跟踪

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摘要

Context-aware correlation filter tracker is one of the most advanced target trackers, and it has significant improvement in tracking accuracy and success rate compared with traditional trackers. However, because the complexity of background in the process of tracking can lead to inaccurate output response of target tracking, an accurate tracking model is difficult to be established. Moreover, the drift problem is easy to occur during the tracking process due to the imprecise tracking model, especially when the target has large area occlusion, fast motion, and deformation. Aiming at the drift problem in the target tracking process, a novel algorithm is proposed in this paper. The developed method derives the specific representation of constraint output by assuming that the output response is Gaussian distribution, and a variable update parameter is obtained based on the output constraint relationship at first, then the tracking filter is selectively updated with changeable update parameters and fixed update parameters, and finally, the target scale is updated with maximizing posterior probability distribution. The effectiveness of developed algorithm is verified by comparing with other trackers on OTB-50 and OTB-100 evaluation benchmark datasets, and the experimental results have shown that the suggested tracker has higher overall object tracking performance than other trackers.
机译:情境感知相关过滤器跟踪器是目前最先进的目标跟踪器之一,与传统跟踪器相比,它在跟踪精度和成功率方面都有显著提升。然而,由于跟踪过程中背景的复杂性会导致目标跟踪的输出响应不准确,因此难以建立准确的跟踪模型。此外,由于跟踪模型不精确,在跟踪过程中容易出现漂移问题,特别是当目标存在大面积遮挡、快速运动和变形时。针对目标跟踪过程中的漂移问题,该文提出一种新的算法。该方法假设输出响应为高斯分布,推导约束输出的具体表示,首先基于输出约束关系得到变量更新参数,然后使用可变更新参数和固定更新参数选择性地更新跟踪滤波器,最后以最大化后验概率分布更新目标尺度。通过在OTB-50和OTB-100评估基准数据集上与其他跟踪器进行对比,验证了所开发算法的有效性,实验结果表明,所提出的跟踪器比其他跟踪器具有更高的整体目标跟踪性能。

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