Similarity Learning for CNN-Based ASL Alphabet Recognition

被引:0
|
作者
Fierro Radilla, Atoany Nazareth [3 ]
Perez Daniel, Karina Ruby [3 ]
Benitez-Garcia, Gibran [2 ]
Najera Garcia, Pedro [1 ]
Valdez, Ramona Fuentes [1 ]
机构
[1] Univ Panamer, Engn Fac, Mexico City, DF, Mexico
[2] Univ Electrocommun, Grad Sch Informat & Engn, Tokyo, Japan
[3] Tecnol Monterrey, Engn & Sci Sch, Cuernavaca, Morelos, Mexico
关键词
ASL Recognition; CNN; Siamese Network; Similarity Learning; Educational Innovation; Higher Education; HAND-GESTURE RECOGNITION;
D O I
10.3233/FAIA210060
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Sign language is an important communication way to convey information among the deaf community, and it is primarily used by people who have hearing or speech impairments. Besides, sign language represents a direct Human-Computer-Interaction (HCI) similar to voice commands. Therefore, the purpose of this study is to investigate and develop a system for American Sign Language (ASL) alphabet recognition using convolutional neural networks. Our proposal is based on semantic similarity learning using Siamese Convolutional Neural Network to reduce the intra-class variation and inter-class similarity among sign images in a Euclidean space. The results of the siamese architecture applied to the ASL alphabet dataset outperform previous works found in the literature. From these results, using t-SNE visualization, we demonstrate that our hypothesis is correct; the ASL recognition improves when increasing the similarity among encoding of the images belonging to the same class and reducing it otherwise.
引用
收藏
页码:633 / 645
页数:13
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