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All-Automatic Swimmer Tracking System Based on an Optimized Scaled Composite JTC Technique

机译:基于优化比例复合JTC技术的全自动游泳者跟踪系统

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In this paper, an all-automatic optimized JTC based swimmer tracking system is proposed and evaluated on real video database outcome from national and international swimming competitions (French National Championship, Limoges 2015, FINA World Championships, Barcelona 2013 and Kazan 2015). First, we proposed to calibrate the swimming pool using the DLT algorithm (Direct Linear Transformation). DLT calculates the homography matrix given a sufficient set of correspondence points between pixels and metric coordinates : i.e. DLT takes into account the dimensions of the swimming pool and the type of the swim. Once the swimming pool is calibrated, we extract the lane. Then we apply a motion detection approach to detect globally the swimmer in this lane. Next, we apply our optimized Scaled Composite JTC which consists of creating an adapted input plane that contains the predicted region and the head reference image. This latter is generated using a composite filter of n images chosen from the database. The dimension of this reference will be scaled according to the ratio between the head's dimension and the width of the swimming lane. Finally, applying the proposed approach improves the performances of our previous tracking method by adding a detection module in order to achieve an all-automatic swimmer tracking system.
机译:在本文中,提出了一种基于JTC的全自动优化游泳运动员跟踪系统,并根据国家和国际游泳比赛(法国国家锦标赛,里摩日2015年,国际泳联世界锦标赛,巴塞罗那2013年和喀山2015年)的真实视频数据库结果进行了评估。首先,我们建议使用DLT算法(直接线性变换)校准游泳池。 DLT在像素和度量坐标之间有足够的对应点集合的情况下计算单应矩阵:即DLT考虑到游泳池的大小和游泳的类型。游泳池校准完毕后,我们将提取泳道。然后,我们应用运动检测方法来全局检测该泳道中的游泳者。接下来,我们应用优化的Scaled Composite JTC,该过程包括创建包含预测区域和头部参考图像的自适应输入平面。后者是使用从数据库中选择的n张图像的复合过滤器生成的。该参考的尺寸将根据头部尺寸与泳道宽度之间的比例进行缩放。最后,应用所提出的方法通过添加检测模块来改善我们以前的跟踪方法的性能,以实现全自动游泳者跟踪系统。

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