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Design of a Sign Language-to-Natural Language Translator Using Artificial Intelligence

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Abstract:

This paper describes the results obtained from the design and validation of translation gloves for Colombian sign language (LSC) to natural language. The MPU6050 sensors capture finger movements, and the TCA9548a card enables data multiplexing. Additionally, an Arduino Uno board preprocesses the data, and the Raspberry Pi interprets it using central tendency statistics, principal component analysis (PCA), and a neural network structure for pattern recognition. Finally, the sign is reproduced in audio format. The methodology developed below focuses on translating specific preselected words, achieving an average classification accuracy of 88.97%.

Tópico:

Hand Gesture Recognition Systems

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Citations: 2
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Información de la Fuente:

SCImago Journal & Country Rank
FuenteInternational Journal of Online and Biomedical Engineering (iJOE)
Cuartil año de publicaciónNo disponible
Volumen20
Issue03
Páginas89 - 98
pISSNNo disponible
ISSN2626-8493

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