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Research on Target Tracking Based on Improved SURF Algorithm and Kalman Prediction

机译:基于改进SURF算法和卡尔曼预测的目标跟踪研究

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摘要

For the problem of ignoring color information and computing complexity and so on, a new target tracking algorithm based on improved SURF(Speed Up Robust Features) algorithm and Kalman filter fusion is studied. First, the color invariants are added in the generation process of SURF. And then the current position is predicted by using the Kalman filter and establishing the search window. Finally, the feature vectors in the search window are extracted by using the improved SURF algorithm for matching. The experiments prove that the algorithm can always track targets stably when the target appears scale changed, rotation and partial occlusion, and the tracking speed is greatly improved than that of the SURF algorithm.
机译:针对忽略色彩信息和计算复杂度等问题,研究了一种基于改进的SURF算法和卡尔曼滤波融合的目标跟踪算法。首先,在SURF的生成过程中添加颜色不变性。然后,通过使用卡尔曼滤波器并建立搜索窗口来预测当前位置。最后,使用改进的SURF算法进行匹配,提取出搜索窗口中的特征向量。实验证明,该算法能够在目标出现尺度变化,旋转和部分遮挡时始终稳定地跟踪目标,与SURF算法相比,跟踪速度大大提高。

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