A Comprehensive Systematic Review of YOLO for Medical Object Detection (2018 to 2023)

YOLO (You Only Look Once) is an extensively utilized object detection algorithm that has found applications in various medical object detection tasks. This has been accompanied by the emergence of numerous novel variants in recent years, such as YOLOv7 and YOLOv8. This study encompasses a systematic...

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Published inIEEE access Vol. 12; pp. 57815 - 57836
Main Authors Ragab, Mohammed Gamal, Abdulkadir, Said Jadid, Muneer, Amgad, Alqushaibi, Alawi, Sumiea, Ebrahim Hamid, Qureshi, Rizwan, Al-Selwi, Safwan Mahmood, Alhussian, Hitham
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LanguageEnglish
Published Piscataway IEEE 2024
The Institute of Electrical and Electronics Engineers, Inc. (IEEE)
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Abstract YOLO (You Only Look Once) is an extensively utilized object detection algorithm that has found applications in various medical object detection tasks. This has been accompanied by the emergence of numerous novel variants in recent years, such as YOLOv7 and YOLOv8. This study encompasses a systematic exploration of the PubMed database to identify peer-reviewed articles published between 2018 and 2023. The search procedure found 124 relevant studies that employed YOLO for diverse tasks including lesion detection, skin lesion classification, retinal abnormality identification, cardiac abnormality detection, brain tumor segmentation, and personal protective equipment detection. The findings demonstrated the effectiveness of YOLO in outperforming alternative existing methods for these tasks. However, the review also unveiled certain limitations, such as well-balanced and annotated datasets, and the high computational demands. To conclude, the review highlights the identified research gaps and proposes future directions for leveraging the potential of YOLO for medical object detection.
AbstractList YOLO (You Only Look Once) is an extensively utilized object detection algorithm that has found applications in various medical object detection tasks. This has been accompanied by the emergence of numerous novel variants in recent years, such as YOLOv7 and YOLOv8. This study encompasses a systematic exploration of the PubMed database to identify peer-reviewed articles published between 2018 and 2023. The search procedure found 124 relevant studies that employed YOLO for diverse tasks including lesion detection, skin lesion classification, retinal abnormality identification, cardiac abnormality detection, brain tumor segmentation, and personal protective equipment detection. The findings demonstrated the effectiveness of YOLO in outperforming alternative existing methods for these tasks. However, the review also unveiled certain limitations, such as well-balanced and annotated datasets, and the high computational demands. To conclude, the review highlights the identified research gaps and proposes future directions for leveraging the potential of YOLO for medical object detection.
Author Alqushaibi, Alawi
Alhussian, Hitham
Abdulkadir, Said Jadid
Sumiea, Ebrahim Hamid
Qureshi, Rizwan
Ragab, Mohammed Gamal
Muneer, Amgad
Al-Selwi, Safwan Mahmood
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Snippet YOLO (You Only Look Once) is an extensively utilized object detection algorithm that has found applications in various medical object detection tasks. This has...
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SubjectTerms Algorithms
Artificial intelligence
Biomedical imaging
Deep learning
Feature extraction
healthcare applications
Lesions
medical imaging
medical object detection
Medical services
Object detection
Object recognition
Real-time systems
Reviews
Surgery
systematic review
YOLO
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  priority: 102
  providerName: IEEE
Title A Comprehensive Systematic Review of YOLO for Medical Object Detection (2018 to 2023)
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Volume 12
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