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Human activity recognition in indoor environments by means of fusing information extracted from intensity of WiFi signal and accelerations

机译:通过融合从WiFi信号强度和加速度中提取的信息来识别室内环境中的人类活动

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摘要

In this work, we propose an activity recognition system based on the use of a topology-based WiFi localization system combined with accelerometers for body posture recognition. The WiFi localization system is developed using a fuzzy rule-based classifier while the recognition of the body posture and its integration with the WiFi localization system is developed using two fuzzy finite state machines. These tools for modeling dynamical processes allow us to handle imprecise and uncertain data in the form of linguistic labels and fuzzy rules producing a linguistic description of the human activity. A practical application that consists of recognizing different activities of an office worker in her/his environment is developed. It yields high accuracy (83.7%, in average regarding all experimental trials). Interpretability and robustness of the proposal are also analyzed and alternative classifiers for the WiFi localization system are tested and compared obtaining competitive performance in terms of interpretability-accuracy trade-off.
机译:在这项工作中,我们提出了一种活动识别系统,该系统基于基于拓扑的WiFi定位系统与加速度计相结合来进行人体姿势识别。 WiFi定位系统是使用基于模糊规则的分类器开发的,而身体姿势的识别及其与WiFi定位系统的集成是使用两个模糊有限状态机开发的。这些用于动态过程建模的工具使我们能够以语言标签和模糊规则的形式处理不精确和不确定的数据,从而产生人类活动的语言描述。开发了一种实际应用,该应用包括识别上班族在他/他的环境中的不同活动。它具有很高的准确性(所有实验试验的平均值为83.7%)。还分析了该提案的可解释性和鲁棒性,并测试和比较了WiFi本地化系统的替代分类器,从而在可解释性-准确性的权衡方面获得了竞争优势。

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