Effect of Gaussian filtered images on Mask RCNN in detection and segmentation of potholes in smart cities

Author:

Mubarak Auwalu Saleh12,Ameen Zubaida Said13,Al-Turjman Fadi14

Affiliation:

1. Artificial Intelligence Engineering Dept., AI and Robotics Institute, Near East University, Mersin 10, Turkey

2. Electrical Engineering Dept., Kano University of Science and Technology, Wudil, Kano, Nigeria

3. Biochemistry Dept., Maitama Sule University, Kano, Nigeria

4. Research Center for AI and IoT, Faculty of Engineering, University of Kyrenia, Kyrenia, Mersin 10, Turkey

Abstract

<abstract> <p>Accidents have contributed a lot to the loss of lives of motorists and serious damage to vehicles around the globe. Potholes are the major cause of these accidents. It is very important to build a model that will help in recognizing these potholes on vehicles. Several object detection models based on deep learning and computer vision were developed to detect these potholes. It is very important to develop a lightweight model with high accuracy and detection speed. In this study, we employed a Mask RCNN model with ResNet-50 and MobileNetv1 as the backbone to improve detection, and also compared the performance of the proposed Mask RCNN based on original training images and the images that were filtered using a Gaussian smoothing filter. It was observed that the ResNet trained on Gaussian filtered images outperformed all the employed models.</p> </abstract>

Publisher

American Institute of Mathematical Sciences (AIMS)

Subject

Applied Mathematics,Computational Mathematics,General Agricultural and Biological Sciences,Modeling and Simulation,General Medicine

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