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Extraction of Knowledge from the Topographic Attentive Mapping Network and its Application in Skill Analysis of Table Tennis

机译:地形注意映射网络中知识的提取及其在乒乓球技术分析中的应用。

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The Topographic Attentive Mapping (TAM) network is a biologically-inspired classifier that bears similarities to the human visual system. In case of wrong classification during training, an attentional top-down signal modulates synaptic weights in intermediate layers to reduce the difference between the desired output and the classifier’s output. When used in a TAM network, the proposed pruning algorithm improves classification accuracy and allows extracting knowledge as represented by the network structure. In this paper, sport technique evaluation of motion analysis modelled by the TAM network was discussed. The trajectory pattern of forehand strokes of table tennis players was analyzed with nine sensor markers attached to the right upper arm of players. With the TAM network, input attributes and technique rules were extracted in order to classify the skill level of players of table tennis from the sensor data. In addition, differences between the elite player, middle level player and beginner were clarified; furthermore, we discussed how to improve skills specific to table tennis from the view of data analysis.
机译:地形关注地图(TAM)网络是一种具有生物启发性的分类器,与人类的视觉系统具有相似性。如果在训练过程中分类错误,注意的自上而下信号会调制中间层中的突触权重,以减小所需输出与分类器输出之间的差异。当在TAM网络中使用时,提出的修剪算法提高了分类准确性,并允许提取网络结构所代表的知识。本文讨论了以TAM网络为模型对运动分析的运动技术评估。使用附着在运动员右上臂的九个传感器标记分析了乒乓球运动员正手击球的轨迹模式。利用TAM网络,提取输入属性和技术规则,以便根据传感器数据对乒乓球运动员的技术水平进行分类。此外,澄清了精英玩家,中级玩家和初学者之间的区别;此外,我们从数据分析的角度讨论了如何提高乒乓球特有的技能。

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