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A 3DCNN-LSTM Multi-Class Temporal Segmentation for Hand Gesture Recognition
[post]
2022
unpublished
This paper introduces a multi-class hand gesture recognition model developed to identify a set of defined hand gesture sequences in two-dimensional RGB video recordings. The work presents an action detection classifier that looks at both appearance and spatiotemporal parameters of consecutive frames. The classifier utilizes a convolutional-based network combined with a long-short-term memory unit. To leverage the need for a large-scale dataset, the model uses an available dataset to then adopt
doi:10.20944/preprints202206.0368.v1
fatcat:wbp77wftdbfshp2lwnev3awq6a