Mamba*YOLO: Lightweight and Accurate Object Detection via Regional Attention with Gated Enhancement
Author(s) -
Jinsu An,
Peng Tao,
Muhamad Dwisnanto Putro,
Byeong Woo Kim
Publication year - 2025
Publication title -
ieee access
Language(s) - English
Resource type - Magazines
SCImago Journal Rank - 0.587
H-Index - 127
eISSN - 2169-3536
DOI - 10.1109/access.2025.3616182
Subject(s) - aerospace , bioengineering , communication, networking and broadcast technologies , components, circuits, devices and systems , computing and processing , engineered materials, dielectrics and plasmas , engineering profession , fields, waves and electromagnetics , general topics for engineers , geoscience , nuclear engineering , photonics and electrooptics , power, energy and industry applications , robotics and control systems , signal processing and analysis , transportation
Object detection is a fundamental computer vision task that simultaneously locates and categorizes objects in images and videos. It is utilized in various fields such as autonomous driving, surveillance, and industrial automation. However, object detection tasks must find a balance between accuracy and computational efficiency, particularly in resource-constrained environments. This study proposes Mamba*YOLO, which combines Mamba’s linear complexity with YOLOv12’s attention mechanisms through a novel Regional Attention with Gated Enhancement (RAGE) module. RAGE addresses the locality limitations of existing approaches by integrating regional attention with multiplicative feature enhancement. Experimental results on the MS COCO and PASCAL VOC datasets indicated 3.6% and 2.9% improvements to mean average precision, respectively, compared with MambaYOLO, while achieving 24% fewer parameters than YOLOv11 and a 27% reduction in GFLOPs. These findings demonstrate that the adopted regional adaptive gating approach can effectively bridge the gap between computational efficiency and detection accuracy, enabling its use for object detection in real-time applications.
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