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Evaluating state-of-the-art classifiers for human activity recognition using smartphones

机译:使用智能手机评估人类活动识别的最新分类器

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Human activity recognition using smartphones and wearables is a field gathering a lot of attention. Although a plethora of systems have been proposed in the literature, comparing their results is not an easy task. As a universal evaluation framework is absent, direct comparison is not feasible. This paper compares state-of-the-art classifiers already used on mobile human activity recognition, under the same conditions. In addition, an Android application was developed and the method yielding the best results was evaluated in real world in a semi-supervised environment. Results shown that deep learning techniques have better performance and could be transferred to a phone without many modifications.
机译:使用智能手机和可穿戴设备进行人类活动识别是一个吸引了很多注意力的领域。尽管在文献中已经提出了许多系统,但是比较它们的结果并不是一件容易的事。由于缺乏通用的评估框架,因此直接比较是不可行的。本文比较了在相同条件下已经用于移动人类活动识别的最新分类器。此外,开发了一个Android应用程序,并在半监督环境下的实际环境中评估了产生最佳结果的方法。结果表明,深度学习技术具有更好的性能,无需进行很多修改就可以转移到电话中。

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