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Comparison of classifiers in audio and acceleration based context classification in mobile phones

机译:手机中基于音频和加速的上下文分类中分类器的比较

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This work studies combination of audio and acceleration sensory streams for automatic classification of user context. Instead of performing sensory fusion at a feature level, we study the combination of classifier output distributions using a number of different classifiers. Performance of the algorithms is evaluated using a data set collected with casually worn mobile phones from a variety of real world environments and user activities. Results from the experiments show that combination of audio and acceleration data enhances classification accuracy of physical activities with all classifiers, whereas environment classification does not benefit notably from acceleration features.
机译:这项工作研究了音频和加速度感官流的组合,用于用户上下文的自动分类。与其在特征级别执行感官融合,不如使用许多不同的分类器研究分类器输出分布的组合。使用从各种现实环境和用户活动中随随便便的移动电话收集的数据集来评估算法的性能。实验结果表明,音频和加速度数据的组合可提高所有分类器对体育活动的分类精度,而环境分类不会明显受益于加速度功能。

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