Deep learning based Braille character to Bangla voice conversion system
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BRAC University
Citation
Abstract
Braille is an essential mode of communication for visually impaired individuals, enabling
them to read and understand contexts through a tactile system of raised dots. However,
certain regions worldwide, especially Bangladesh, have limited access to digital solutions
for Braille conversion, which poses a challenge for those individuals. This thesis presents
a method for converting Braille Characters to Bangla Voice through a deep-learning
based system and thus enhancing accessibility for visually impaired individuals as well as
general individuals who cannot understand Braille. In this research we have addressed
the scarcity of high volume labeled data consisting of more than 10000 high-resolution
labeled data with approximately 1 million labeled braille instances by strictly maintaining
Library of Congress spatial standards. This research simulataniously performs two
different architecture one being a multi-stage segmentation-classification and other one
being YOLO based unified architecture. The unified architecture vastly outperforms the
traditional method by achieving Mean Average Precision (mAP@50) of 98.5 percent in
character extraction. The recognized text is then converted into natural-sounding Bangla
speech using a TTS engine. This system is evaluated through accuracy, processing speed,
and friendly user experience, demonstrating its potential to bridge the communication
gap for the visually impaired in Bangla-speaking communities.
Description
This thesis is submitted in partial fulfillment of the requirements for the degree of Bachelor of Science in Computer Science and Engineering, 2026.
Cataloged from PDF version of thesis.
Includes bibliographical references (pages 70-73).
Cataloged from PDF version of thesis.
Includes bibliographical references (pages 70-73).
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