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Data Pre-processing and Model Selection Strategies for Human Posture Recognition

机译:用于人类姿态识别的数据预处理和模型选择策略

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Accelerometers are widely used in many different physical activity surveillance projects. The goal of this study is to investigate better strategies and algorithms for data preprocessing and model training/testing, based on a single writsworn accelerometer. In the data pre-processing section, 6 sampling rates, five feature selection techniques and three feature scaling methods, as well as 14 sub-feature sets were compared and selected via three classification algorithms (NN, SVM, and Bayes). Then three types of models (data from single subject, part of combined subjects and full combined subjects) were trained and compared based on three testing sets (collected from one training subject, 5 training subjects, and 12 new subjects respectively). Moreover a plurality voting mechanism was applied to adjust the original prediction result during the model testing stage. Finally, an individual model with a plurality voting mechanism were suggested for improving the robustness and reliability of an overall system based on our experimental results.
机译:加速度计广泛应用于许多不同的体育活动监测项目。本研究的目标是根据单个Writsworn加速度计调查数据预处理和模型训练/测试的更好的策略和算法。在数据预处理部分中,比较了6个采样率,五个特征选择技术和三种特征缩放方法,以及通过三个分类算法(NN,SVM和Bayes)选择和选择14个子特征集。然后,培训三种类型的模型(来自单个主题的数据,组合受试者的一部分和全组合受试者),并根据三个测试集进行比较(分别从一个培训科目,5个培训科目和12个新科目收集)。此外,应用了多种投票机制来调整模型测试阶段期间的原始预测结果。最后,建议具有多种投票机制的单独模型来提高基于我们的实验结果的整体系统的鲁棒性和可靠性。

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