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Information Journal Paper

Title

Comparative Analysis on YOLO Object Detection with OpenCV

Pages

  46-64

Abstract

 Computer Vision is a field of study that helps to develop techniques to identify images and displays. It has various features like image recognition, object detection and image creation, etc. Object detection is used for face detection, vehicle detection, web images, and safety systems. Its algorithms are Region-based Convolutional neural networks (RCNN), Faster-RCNN and You Only Look Once Method (YOLO) that have shown state-of-the-art performance. Of these, YOLO is better in speed compared to accuracy. It has efficient object detection without compromising on performance.

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  • Cite

    APA: Copy

    Deshpande, H., SINGH, A., & Herunde, H.. (2020). Comparative Analysis on YOLO Object Detection with OpenCV. INTERNATIONAL JOURNAL OF RESEARCH IN INDUSTRIAL ENGINEERING, 9(1), 46-64. SID. https://sid.ir/paper/768504/en

    Vancouver: Copy

    Deshpande H., SINGH A., Herunde H.. Comparative Analysis on YOLO Object Detection with OpenCV. INTERNATIONAL JOURNAL OF RESEARCH IN INDUSTRIAL ENGINEERING[Internet]. 2020;9(1):46-64. Available from: https://sid.ir/paper/768504/en

    IEEE: Copy

    H. Deshpande, A. SINGH, and H. Herunde, “Comparative Analysis on YOLO Object Detection with OpenCV,” INTERNATIONAL JOURNAL OF RESEARCH IN INDUSTRIAL ENGINEERING, vol. 9, no. 1, pp. 46–64, 2020, [Online]. Available: https://sid.ir/paper/768504/en

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