Affiliation:
1. Universidade Federal do Ceará, Sobral, Ceará 62010-560, Brazil
Abstract
This paper proposes a gesture recognition method using convolutional neural networks. The procedure involves the application of morphological filters, contour generation, polygonal approximation, and segmentation during preprocessing, in which they contribute to a better feature extraction. Training and testing are performed with different convolutional neural networks, compared with architectures known in the literature and with other known methodologies. All calculated metrics and convergence graphs obtained during training are analyzed and discussed to validate the robustness of the proposed method.
Funder
Fundação Cearense de Apoio ao Desenvolvimento Científico e Tecnológico
Subject
Electrical and Electronic Engineering,General Computer Science,Signal Processing
Cited by
74 articles.
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