视障人士物体识别系统

C. Sagana, P. Keerthika, R. Manjula Devi, M. Sangeetha, R. Abhilash, M. Dinesh Kumar, M. Hariharasudhan
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引用次数: 2

摘要

视障人士在日常生活中面临的最大问题之一是物体检测和识别。为对象检测器创建了一个模型,该模型可以通过在特定距离上识别物体来检测VI人员和其他重要用途的物品。现有的目标检测算法需要大量的训练数据,耗时较长,较为复杂,是一个困难的过程。因此,通过导入预训练的数据集模型,使用caffmodel框架开发了将对象转换为文本的计算机视觉概念。然后使用Mobilenet SSD方法将文本翻译成语音。在单个屏幕上,该系统可以检测到许多物体。它帮助视觉障碍的人实时检测物体。这项技术也可以放入任何便携式设备中,以帮助视障人士识别一定距离内的物品。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Object Recognition System for Visually Impaired People
One of the biggest problems that visually Impaired (VI) individuals face in their daily lives is object detection and recognition. A model is created for an object detector that can detect items for VI persons and other important uses by recognizing them at a specific distance. Existing object detection algorithms necessitate a huge amount of training data, which takes longer time, more complicated, and it is a difficult process. As a result, a computer vision notion for converting an object to text was developed using the Caffemodel framework by importing a pretrained dataset model. The Mobilenet SSD method is then used to translate the texts into speech. On a single screen, this system can detect many objects. It aids visually challenged people in detecting objects in real time. This technology can also be put into any portable gadget to assist visually impaired people to recognize items at a certain distance.
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