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A performance comparison of auto-encoder and its variants for classification

机译:自动编码器及其分类变体的性能比较

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In this paper, we present auto-encoder (AE), stacked auto-encoder (SAE) and sparse auto-encoder (SPAE) to classify gaits of horse riding for real riding coaching. The parameters of each auto-encoder are adjusted to compare the performance. The data is collected from 16 inertial sensors attached to a motion capture suit to construct a motion database. We build the motion features as the method of gaits classification with the database. The experiment shows that the performance is 95% when applied AE. SPAE was the best in terms of time and AE was the best in performance. We can apply to coaching system by each horse gait for rider under real or horse simulator environments using the SPAE algorithm.
机译:在本文中,我们呈现自动编码器(AE),堆叠的自动编码器(SAE)和稀疏自动编码器(SPAE),以对真正的骑行教练进行分类Gaits的Gaits。调整每个自动编码器的参数以比较性能。从连接到运动捕捉适合的16个惯性传感器收集数据以构建运动数据库。我们使用数据库构建动态分类方法的运动功能。实验表明,应用AE时性能为95 %。 SPAE在时间方面是最好的,AE是最好的表现。我们可以使用SPAE算法根据真实或马模拟器环境下的每匹马步态施用骑手的教练系统。

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