Vision-Based Dirt Detection and Adaptive Tiling Scheme for Selective Area Coverage

Author:

Ramalingam Balakrishnan1ORCID,Veerajagadheswar Prabakaran1,Ilyas Muhammad12ORCID,Elara Mohan Rajesh1ORCID,Manimuthu Arunmozhi13

Affiliation:

1. Engineering Product Development Pillar, Singapore University of Technology and Design (SUTD), Singapore 487372

2. Department of Electrical Engineering, UET, Lahore, 54890 NWL Campus, Pakistan

3. Department of Electrical and Electronics Engineering, College of Engineering, Anna University, Chennai, 6000025 Tamilnadu, India

Abstract

This paper proposes a visual dirt detection algorithm and a novel adaptive tiling-based selective dirt area coverage scheme for reconfigurable morphology robot. The visual dirt detection technique utilizes a three-layer filtering framework which includes a periodic pattern detection filter, edge detection, and noise filtering to effectively detect and segment out the dirt area from the complex floor backgrounds. Then adaptive tiling-based area coverage scheme has been employed to generate the tetromino morphology to cover the segmented dirt area. The proposed algorithms have been validated in Matlab environment with real captured dirt images and simulated tetrominoes tile set. Experimental results show that the proposed three-stage filtering significantly enhances the dirt detection ratio in the incoming images with complex floors with different backgrounds. Further, the selective dirt area coverage is performed by excluding the already cleaned area from the unclean area on the floor map by incorporating the tiling pattern generated by adaptive tetromino tiling algorithm.

Funder

University of Engineering and Technology Lahore (UET)

Publisher

Hindawi Limited

Subject

Electrical and Electronic Engineering,Instrumentation,Control and Systems Engineering

Cited by 10 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. A Versatile Robotic Device Designed to Perform Cleaning Tasks on Floor Surfaces;2023 International Conference on Sustainable Communication Networks and Application (ICSCNA);2023-11-15

2. Optimal selective floor cleaning using deep learning algorithms and reconfigurable robot hTetro;Scientific Reports;2022-09-24

3. SaDiTect: Dirt Detection in Salt Using YOLOv3;2022 Second International Conference on Power, Control and Computing Technologies (ICPC2T);2022-03-01

4. An Innovative Vision System for Floor-Cleaning Robots Based on YOLOv5;Pattern Recognition and Image Analysis;2022

5. Depth-Image Segmentation Based on Evolving Principles for 3D Sensing of Structured Indoor Environments;Sensors;2021-06-27

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