Developing a bangla currency recognizer for visually impaired people

Hasan Murad, Nafis Irtiza Tripto, Mohammed Eunus Ali
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引用次数: 7

Abstract

Deep learning based assistive technologies for the visually impaired and blind people have gained increasing attention from various research communities in recent years. In this paper, we have developed a camera-based automatic currency recognizer for Bangladeshi bank notes that assists visually impaired people in Bangladesh. We have exploited the deep learning architecture MobileNet for classification of bank notes. We have evaluated the performance of our model using a novel dataset consisting of nearly 8000 images of Bangladeshi bank notes. To verify the effectiveness and efficacy of the proposed solution, we have developed a mobile Android application, and evaluated and validated the application with the users from a blind community. The validation shows that our proposed system is robust and highly effective with heterogeneous environment.
为视障人士开发孟加拉货币识别器
近年来,基于深度学习的视障和盲人辅助技术越来越受到各研究界的关注。在本文中,我们开发了一种基于摄像头的孟加拉钞票自动识别器,以帮助孟加拉的视障人士。我们利用MobileNet的深度学习架构对纸币进行分类。我们使用一个由近8000张孟加拉国钞票图像组成的新数据集评估了我们的模型的性能。为了验证所提出的解决方案的有效性和有效性,我们开发了一个移动Android应用程序,并与来自盲人社区的用户进行了评估和验证。验证结果表明,该系统在异构环境下具有良好的鲁棒性和有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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