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Real-Time Visual Tracking Using a New Weight Distribution

机译:使用新的权重分布进行实时视觉跟踪

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This paper presents a real-time visual tracking algorithm which uses a new weight distribution for color space. Firstly, first-order Kalman filter model is introduced to update video backgrounds and obtain the targets. HSV color space is used to measure the similarity between the supposed targets and match targets. In this process, a weighting function based on pixel confidence and pixel position is proposed to weigh the pixel values in the rectangle area of tracking. The experimental results show that the algorithm is robust to scale invariant, partial occlusion and interactions of non-rigid objects, especially similar objects. The proposed algorithm is computationally efficient and it can satisfy the real-time requirements for visual tracking.
机译:本文提出了一种实时视觉跟踪算法,该算法将新的权重分布用于色彩空间。首先,引入一阶卡尔曼滤波模型来更新视频背景并获得目标。 HSV颜色空间用于测量假定目标和匹配目标之间的相似性。在此过程中,提出了一种基于像素置信度和像素位置的加权函数,以对跟踪矩形区域中的像素值进行加权。实验结果表明,该算法在缩放非刚性物体(尤其是相似物体)的不变,部分遮挡和相互作用方面具有鲁棒性。该算法计算效率高,可以满足视觉跟踪的实时性要求。

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