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Particle filter with occlusion handling for visual tracking

机译:具有遮挡处理的粒子过滤器,用于视觉跟踪

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摘要

Visual tracking is widely used in many computer vision applications such as surveillance, traffic monitoring, robot vision, human behaviour analysis, and so on. Thus, visual tracking has attracted much attention in recent years. However, there are still some challenges needed to be solved. The main problems include illumination variation, scale variation, scene change, cluttered background, similar appearance, occlusion, and real time. To solve some issues in visual tracking, the authors propose a visual tracking method using particle filter with occlusion handling. This method contains three major parts: feature extraction, particles weighting, and occlusion handling. The patch-based appearance model is presented for occlusion handling, which contains two main features: colour and motion vector. For tracking failure, the authors also propose error recovery by using speeded up robust feature. In addition, the procedures of occlusion detection and model updating make their tracking more robust. Experimental results demonstrate the robustness and efficiency with challenging sequences. The comparative performance of the proposed method is shown as well.
机译:视觉跟踪广泛用于许多计算机视觉应用程序中,例如监视,交通监控,机器人视觉,人类行为分析等。因此,近年来,视觉跟踪引起了很多关注。但是,仍然需要解决一些挑战。主要问题包括照明变化,比例变化,场景变化,背景混乱,外观相似,遮挡和实时性。为了解决视觉跟踪中的一些问题,作者提出了一种使用带有遮挡处理的粒子过滤器的视觉跟踪方法。该方法包含三个主要部分:特征提取,粒子权重和遮挡处理。提出了基于补丁的外观模型用于遮挡处理,该模型包含两个主要功能:颜色和运动矢量。对于跟踪失败,作者还提出了使用加速健壮功能来进行错误恢复的建议。此外,遮挡检测和模型更新的过程使它们的跟踪更加可靠。实验结果证明了具有挑战性序列的鲁棒性和效率。还显示了所提出方法的比较性能。

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