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http://hdl.handle.net/10397/113090
Title: | Drug recognition detection based on deep learning and improved YOLOv8 | Authors: | Zhu, DJ Huang, ZX Yung, KL Ip, AWH |
Issue Date: | Dec-2024 | Source: | Journal of organizational and end user computing, 13 Jan.-Dec. 2024, v. 36, no. 1, p. 1-21 | Abstract: | Identifying drugs from surveillance or other videos presents challenges such as small target sizes, class imbalance, and similarities to other objects. Additionally, the hardware used to capture videos and the video resolution and clarity limit model scalability, leading to poor detection accuracy in traditional models. To address this issue, we propose an improved YOLOv8s-based model. The experimental outcomes reveal that the improved YOLOv8s model attains a precision of 95.1% and a mAP@50 of 87.4% in drug detection and identification, representing improvements of 3.0% and 2.2% over the original YOLOv8s model. The proposed improvements to YOLOv8s effectively boost detection accuracy and recognition rates while preserving high efficiency. This model demonstrates superior overall detection performance compared to other algorithms, providing fresh perspectives and methods for advancing research and applications in drug detection and recognition. | Keywords: | Attention Mechanism Drug Detection Inner-Shape IoU Large Separable Kernel Attention SA-NET YOLOv8s |
Publisher: | IGI Global | Journal: | Journal of organizational and end user computing | ISSN: | 1546-2234 | EISSN: | 1546-5012 | DOI: | 10.4018/JOEUC.359770 | Rights: | This article published as an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) which permits unrestricted use, distribution, and production in any medium, provided the author of the original work and original publication source are properly credited. The following publication Zhu, D., Huang, Z., Yung, K., & Ip, A. W. (2024). Drug Recognition Detection Based on Deep Learning and Improved YOLOv8. Journal of Organizational and End User Computing (JOEUC), 36(1), 1-21 is available at https://dx.doi.org/10.4018/JOEUC.359770. |
Appears in Collections: | Journal/Magazine Article |
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