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Performance Evaluation of YOLO Models for Detecting Bangladeshi License Plates

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dc.contributor.author Sultan, Shahriar
dc.contributor.author Alo, Alaya Parvin
dc.contributor.author Shaqib, SM
dc.contributor.author Khan, Sadman Sadik
dc.contributor.author Rupak, Afraz Ul Haque
dc.contributor.author Rahman, Mr. Md. Sadekur
dc.date.accessioned 2025-03-05T05:31:18Z
dc.date.available 2025-03-05T05:31:18Z
dc.date.issued 2024-01-15
dc.identifier.uri http://dspace.daffodilvarsity.edu.bd:8080/handle/123456789/13735
dc.description.abstract This research paper presents a comprehensive investigation into the effectiveness of YOLO (You Only Look Once) models, namely YOLOv5, YOLOv7, and YOLOv8, in the domain of Bangladeshi license plate detection. With the escalating demand for precise license plate recognition systems to facilitate efficient traffic management and bolster law enforcement efforts, this study conducts an in-depth evaluation of these models. Central to our methodology is the development of a specialized dataset comprising Bangladeshi license plate images, reflecting the unique characteristics and challenges prevalent in this geographical context. Through meticulous dataset curation, model training, and rigorous testing procedures, we ascertain the performance metrics of each YOLO variant. Notably, our findings reveal YOLOv8 as the most proficient model, achieving a remarkable mean average precision (mAP) score of 0.934 with precision 0.93 and recall 0.906. The insights gleaned from this research contribute significantly to the advancement of intelligent transportation systems and public safety initiatives in Bangladesh, offering tailored solutions for license plate detection challenges in this specific locale. en_US
dc.language.iso en_US en_US
dc.publisher IEEE en_US
dc.subject Traffic management en_US
dc.subject Performance evaluation en_US
dc.subject Transportation systems en_US
dc.title Performance Evaluation of YOLO Models for Detecting Bangladeshi License Plates en_US
dc.type Article en_US


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