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Erschienen in: Neural Computing and Applications 22/2020

25.01.2019 | Smart Data Aggregation Inspired Paradigm & Approaches in IoT Applns

Research on gesture recognition of smart data fusion features in the IoT

verfasst von: Chong Tan, Ying Sun, Gongfa Li, Guozhang Jiang, Disi Chen, Honghai Liu

Erschienen in: Neural Computing and Applications | Ausgabe 22/2020

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Abstract

With the rapid development of Internet of things technology, the interaction between people and things has become increasingly frequent. Using simple gestures instead of complex operations to interact with the machine, the fusion of smart data feature information and so on has gradually become a research hotspot. Considering that the depth image of the Kinect sensor lacks color information and is susceptible to depth thresholds, this paper proposes a gesture segmentation method based on the fusion of color information and depth information; in order to ensure the complete information of the segmentation image, a gesture feature extraction method based on Hu invariant moment and HOG feature fusion is proposed; and by determining the optimal weight parameters, the global and local features are effectively fused. Finally, the SVM classifier is used to classify and identify gestures. The experimental results show that the proposed fusion features method has a higher gesture recognition rate and better robustness than the traditional method.

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Metadaten
Titel
Research on gesture recognition of smart data fusion features in the IoT
verfasst von
Chong Tan
Ying Sun
Gongfa Li
Guozhang Jiang
Disi Chen
Honghai Liu
Publikationsdatum
25.01.2019
Verlag
Springer London
Erschienen in
Neural Computing and Applications / Ausgabe 22/2020
Print ISSN: 0941-0643
Elektronische ISSN: 1433-3058
DOI
https://doi.org/10.1007/s00521-019-04023-0

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