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Comparison of Classification Algorithms for Physical Activity Recognition

机译:体育识别分类算法的比较

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The main aim of this work is to compare different algorithms for human physical activity recognition from accelerometric and gyroscopic data which are recorded by a smartphone. Three classification algorithms were compared: the Linear Discriminant Analysis, the Random Forest, and the K-Nearest Neighbours. For better classification performance, two feature extraction methods were tested: the Correlation Subset Evaluation Method and the Principal Component Analysis. The results of experiment were expressed by confusion matrixes.
机译:这项工作的主要目的是比较来自智能手机记录的加速度和陀螺数据的人体体力活动识别的不同算法。比较了三种分类算法:线性判别分析,随机林和K最近邻居。为了更好的分类性能,测试了两个特征提取方法:相关子集评估方法和主成分分析。实验结果用混乱血管表达。

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