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Vision based moving object tracking through enhanced color image segmentation using Haar classifiers

机译:使用Haar分类器通过增强的彩色图像分割实现基于视觉的运动对象跟踪

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In this paper we implement a vision based moving Object Tracking system with Wireless Surveillance Camera which uses a color image segmentation and color histogram with background subtraction for tracking any objects in non-ideal environment. The implementation of the moving video objects can be based on any one of the tracking algorithms such as Template matching, Continuously Adaptive Mean Shift (CAMSHIFT), SIFT, Mean Shift, SIFT, Cross correlation algorithm is presented by optimizing the kernel variants by adjusting the HSV value for various environmental conditions. The object occlusions are also removed by calculating the minimal distance between the two objects using Bhattacharya coefficients and it is robust to changes in shape with complete occlusion. The object to be tracked can also be classified using HAAR classifier through machine learning. A software approach for real time implementation of moving object tracking is done through MATLAB.
机译:在本文中,我们使用无线监控摄像头实现了基于视觉的运动对象跟踪系统,该系统使用彩色图像分割和颜色直方图以及背景减法来跟踪非理想环境中的任何对象。运动视频对象的实现可以基于以下任何一种跟踪算法,例如模板匹配,连续自适应均值漂移(CAMSHIFT),SIFT,均值漂移,SIFT,交叉相关算法,通过调整内核变量来优化内核变体。各种环境条件下的HSV值。通过使用Bhattacharya系数计算两个对象之间的最小距离,还可以消除对象的遮挡,并且对于完全遮挡的形状变化,鲁棒性强。还可以使用HAAR分类器通过机器学习对要跟踪的对象进行分类。通过MATLAB实现了一种用于实时执行运动对象跟踪的软件方法。

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