Open Access
Open access
volume 12 pages 100507

A deep learning model to assist visually impaired in pothole detection using computer vision

Jegan Sivaraman 1
J Sivaraman 1
Prasanna Venkatesan Theerthagiri 2
B. Vijayakumar 1
B. Vijayakumar 1
Baskaran Vignesh 1
Publication typeJournal Article
Publication date2024-09-01
scimago Q1
SJR1.354
CiteScore10.9
Impact factor
ISSN27726622
Abstract
Visually impaired individuals encounter numerous impediments when traveling, such as navigating unfamiliar routes, accessing information, and transportation, which can limit their mobility and restrict their access to opportunities. However, assistive technologies and infrastructure solutions such as tactile paving, audio cues, voice announcements, and smartphone applications have been developed to mitigate these challenges. Visually impaired individuals also face difficulties when encountering potholes while traveling. Potholes can pose a significant safety hazard, as they can cause individuals to trip and fall, potentially leading to injury. For visually impaired individuals, identifying and avoiding potholes can be particularly challenging. The solutions ensure that all individuals can travel safely and independently, regardless of their visual abilities. An innovative approach that leverages the You Only Look Once (YOLO) algorithm to detect potholes and provide auditory or haptic feedback to visually impaired individuals has been proposed in this paper. The dataset of pothole images was trained and integrated into an application for detecting potholes in real-time image data using a camera. The app provides feedback to the user, allowing them to navigate potholes and increasing their mobility and safety. This approach highlights the potential of YOLO for pothole detection and provides a valuable tool for visually impaired individuals. According to the testing, the model achieved 82.7% image accuracy and 30 Frames Per Second (FPS) accuracy in live video. The model is trained to detect potholes close to the user, but it may be hard to detect potholes far away from the user. The current model is only trained to detect potholes, but visually impaired people face other challenges. The proposed technology is a portable option for visually impaired people.
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GOST Copy
Paramarthalingam A. et al. A deep learning model to assist visually impaired in pothole detection using computer vision // Decision Analytics Journal. 2024. Vol. 12. p. 100507.
GOST all authors (up to 50) Copy
Paramarthalingam A., Sivaraman J., Sivaraman J., Theerthagiri P. V., Vijayakumar B., Vijayakumar B., Vignesh B. A deep learning model to assist visually impaired in pothole detection using computer vision // Decision Analytics Journal. 2024. Vol. 12. p. 100507.
RIS |
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RIS Copy
TY - JOUR
DO - 10.1016/j.dajour.2024.100507
UR - https://linkinghub.elsevier.com/retrieve/pii/S2772662224001115
TI - A deep learning model to assist visually impaired in pothole detection using computer vision
T2 - Decision Analytics Journal
AU - Paramarthalingam, Arjun
AU - Sivaraman, Jegan
AU - Sivaraman, J
AU - Theerthagiri, Prasanna Venkatesan
AU - Vijayakumar, B.
AU - Vijayakumar, B.
AU - Vignesh, Baskaran
PY - 2024
DA - 2024/09/01
PB - Elsevier
SP - 100507
VL - 12
SN - 2772-6622
ER -
BibTex
Cite this
BibTex (up to 50 authors) Copy
@article{2024_Paramarthalingam,
author = {Arjun Paramarthalingam and Jegan Sivaraman and J Sivaraman and Prasanna Venkatesan Theerthagiri and B. Vijayakumar and B. Vijayakumar and Baskaran Vignesh},
title = {A deep learning model to assist visually impaired in pothole detection using computer vision},
journal = {Decision Analytics Journal},
year = {2024},
volume = {12},
publisher = {Elsevier},
month = {sep},
url = {https://linkinghub.elsevier.com/retrieve/pii/S2772662224001115},
pages = {100507},
doi = {10.1016/j.dajour.2024.100507}
}