Author
Listed:
- Carlos Hurtado-Sánchez
(Ciencias Económico Administrativas, Instituto Tecnológico de Tijuana, Tecnológico Nacional de México, Tijuana 22414, Baja California, Mexico)
- Ricardo Rosales Cisneros
(Ciencias Económico Administrativas, Instituto Tecnológico de Tijuana, Tecnológico Nacional de México, Tijuana 22414, Baja California, Mexico)
- José Ricardo Cárdenas-Valdez
(Departamento de Ingeniería Eléctrica y Electrónica, Instituto Tecnológico de Tijuana, Tecnológico Nacional de México, Tijuana 22414, Baja California, Mexico)
- Andrés Calvillo-Téllez
(Centro de Investigación y Desarrollo de Tecnología Digital, Instituto Politécnico Nacional, Tijuana 22414, Baja California, Mexico)
- Everardo Inzunza-Gonzalez
(Facultad de Ingeniería Arquitectura y Diseño, Universidad Autónoma de Baja California, Ensenada 22860, Baja California, Mexico)
Abstract
Integrating people with hearing disabilities into schools is one of the biggest problems that Latin American societies face. Mexican Sign Language (MSL) is the main language and culture of the deaf community in Mexico. However, its use in formal education is still limited by structural inequalities, a lack of qualified interpreters, and a lack of technology that can support personalized instruction. This study outlines the conceptualization and development of a mobile application designed as an adaptive assistive technology for learning MSL, utilizing a combination of computer vision techniques, deep learning algorithms, and personalized pedagogical interaction. The suggested system uses convolutional neural networks (CNNs) and pose-estimation models to recognize hand gestures in real time with 95.7% accuracy. It then gives the learner instant feedback by changing the difficulty level. A dynamic learning engine automatically changes the level of difficulty based on how well the learner is doing, which helps them learn signs and phrases over time. The Scrum agile methodology was used during the development process. This meant that educators, linguists, and members of the deaf community all worked together to design the product. Early tests show that sign recognition accuracy and indicators of user engagement and motivation show favorable performance and are at appropriate levels. This proposal aims to enhance inclusive digital ecosystems and foster linguistic equity in Mexican education through scalable, mobile, and culturally relevant technologies, in addition to its technical contributions.
Suggested Citation
Carlos Hurtado-Sánchez & Ricardo Rosales Cisneros & José Ricardo Cárdenas-Valdez & Andrés Calvillo-Téllez & Everardo Inzunza-Gonzalez, 2026.
"Adaptive Assistive Technologies for Learning Mexican Sign Language: Design of a Mobile Application with Computer Vision and Personalized Educational Interaction,"
Future Internet, MDPI, vol. 18(1), pages 1-32, January.
Handle:
RePEc:gam:jftint:v:18:y:2026:i:1:p:61-:d:1845424
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