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Fast and Reliable Detection of Hockey Players?

机译:快速可靠地检测曲棍球运动员?

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Current popularity of augmented reality (AR) stems from its ability to enhance the perceived environment in real-time with additional information of semantic context, such as sports scores shown on TV during match broadcasting. Its other application areas range from industry and medicine to military, commerce and entertainment. Advanced AR technologies obviously rely on accurate, yet fast enough algorithms for multimedia processing and object recognition. In this paper, we will study the possibility of using convolutional neural networks (CNNs) for real-time detection of hockey players from video streams of broadcasted ice-hockey matches. Supporting experiments performed so far yield sufficient accuracy for this task (above 98.5%), while maintaining reasonable computational demands and acceptable robustness both with regard to noise and minor image transformations like translation, rotation and scaling.
机译:增强现实(AR)的当前普及源于其实时增强感知环境的能力,以及在匹配广播期间在电视上显示的体育比分等体育比赛。 其其他应用领域的范围从工业和医学到军事,商业和娱乐。 高级AR技术显然依赖于准确,但足够快的多媒体处理和对象识别的算法。 在本文中,我们将研究利用卷积神经网络(CNNS)的可能性,用于从广播的冰球匹配的视频流实时检测曲棍球运动员。 支持实验到目前为止,为此任务(98.5%以上)产生了足够的准确性,同时在转换,旋转和缩放等噪声和次要图像转换中保持合理的计算需求和可接受的稳健性。

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