Please use this identifier to cite or link to this item: https://repositori.mypolycc.edu.my/jspui/handle/123456789/9471
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dc.contributor.authorJu, Zhiyong-
dc.contributor.authorShui, Jiacheng-
dc.contributor.authorHuang, Jiameng-
dc.date.accessioned2026-04-15T05:00:33Z-
dc.date.available2026-04-15T05:00:33Z-
dc.date.issued2025-09-27-
dc.identifier.issndoi.org/10.3390/electronics14193831-
dc.identifier.urihttps://repositori.mypolycc.edu.my/jspui/handle/123456789/9471-
dc.description.abstractTo enhance small object detection in UAV aerial imagery suffering from low resolution and complex backgrounds, this paper proposes GLDS-YOLO, an improved lightweight detection model. The model integrates four core modules: Group Shuffle Attention (GSA) to strengthen small-scale feature perception, Large Separable Kernel Attention (LSKA) to capture global semantic context, DCNv4 to enhance feature adaptability with reduced parameters, and further proposes a novel Small-object-enhanced Multi-scale and Structure Detail Enhancement (SMSDE) module, which enhances edge-detail representation of small objects while maintaining lightweight efficiency. Experiments on VisDrone2019 and DOTA1.0 demonstrate that GLDS-YOLO achieves superior detection performance. On VisDrone2019, it improves mAP@0.5 and mAP@0.5:0.95 by 12.1% and 7%, respectively, compared with YOLOv11n, while maintaining competitive results on DOTA. These results confirm the model’s effectiveness, robustness, and adaptability for complex small object detection tasks in UAV scenarios.ms_IN
dc.language.isoenms_IN
dc.publisherMDPIms_IN
dc.relation.ispartofseriesElectronics;2025, 14, 3831-
dc.subjectSmall object detectionms_IN
dc.subjectYOLOv11ms_IN
dc.subjectDeformable convolutionms_IN
dc.subjectEdge enhancementms_IN
dc.subjectSpatial pyramid poolingms_IN
dc.titleGLDS-YOLO: AN IMPROVED LIGHTWEIGHT MODEL FOR SMALL OBJECT DETECTION IN UAV AERIAL IMAGERYms_IN
dc.typeArticlems_IN
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