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Device free human gesture recognition using Wi-Fi CSI: A survey

机译:使用Wi-Fi CSI的无设备人类手势识别:一项调查

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Device-free sensing of human gestures has gained tremendous research attention with the recent advancements in wireless technologies. Channel State Information (CSI), a metric of Wi-Fi devices adopted for device-free sensing achieves better recognition performance. This survey classifies the state of the art recognition task into device-based and device-free sensing methods and highlights advancements with Wi-Fi CSI. This paper also comprehensively summarizes the recognition performance of device-free sensing using CSI under two approaches: model-based and learning based approaches. Machine Learning and Deep Learning algorithms are discussed under the learning based approaches with its corresponding recognition accuracy. Various signal pre-processing, feature extraction, selection, and classification techniques that are widely adopted for gesture recognition along with the environmental factors that influence the recognition accuracy are also discussed. This survey presents the conclusion spotting the challenges and opportunities that could be explored in the device free gesture recognition using the CSI metric of Wi-Fi devices.
机译:随着无线技术的最新发展,对人体手势的无设备感测已经引起了极大的研究关注。通道状态信息(CSI)是用于无设备感测的Wi-Fi设备指标,可实现更好的识别性能。这项调查将最先进的识别任务分类为基于设备的检测方法和没有设备的检测方法,并重点介绍了Wi-Fi CSI的进步。本文还全面总结了使用基于模型的方法和基于学习的方法这两种方法使用CSI进行的无设备感知的识别性能。在基于学习的方法下讨论了机器学习和深度学习算法及其相应的识别精度。还讨论了广泛用于手势识别的各种信号预处理,特征提取,选择和分类技术,以及影响识别精度的环境因素。这项调查提出了结论,指出了使用Wi-Fi设备的CSI指标在无设备手势识别中可以探索的挑战和机遇。

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