Design and Implementation of a Natural Processing Language Model to Solve Language Barriers in the Healthcare Sector
Student: Faith Omowumi Ogunleye (Project, 2025)
Department of Computer and Information Science
Bamidele Olumilua University of Edu. Science and Tech. Ikere Ekiti, Ekiti State
Abstract
This project presents the design and implementation of a Natural Language Processing (NLP) model developed to overcome language barriers in Nigeria’s healthcare sector. The system integrates speech recognition and machine translation to facilitate communication between Yoruba-speaking patients and English-speaking healthcare providers. Using transformer-based architectures such as Whisper and Helsinki, the model accurately converts Yoruba speech into English text. The research demonstrates that NLP can significantly enhance diagnosis accuracy, treatment adherence, and patient satisfaction in multilingual healthcare environments. This solution promotes inclusivity, improves healthcare accessibility, and contributes to the advancement of artificial intelligence applications for low-resource languages in Africa.
Keywords
For the full publication, please contact the author directly at: faithogunleye5@gmail.com
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Institutions
- UMA UKPAI SCHOOL OF THEOLOGY, UYO, AKWA IBOM STATE (AFFL TO UNIVERSITY OF UYO) 1
- Umaru Ali Shinkafi Polytechnic, Sokoto, Sokoto State 24
- Umaru Musa Yaradua University, Katsina, Katsina State 28
- Umca, Ilorin (Affiliated To University of Ibadan), Kwara State 1
- University of Abuja, Abuja, Fct 116
- University of Africa, Toru-Orua, Bayelsa State 4
- University of Benin, Benin City, Edo State 362
- University of Calabar Teaching Hospital School of Health Information Mgt. 1
- University of Calabar, Calabar, Cross River State 240
- University of Ibadan, Ibadan, Oyo State 14