JOURNAL ARTICLE

An efficient single shot detector with weight-based feature fusion for small object detection

Ming LiDechang PiShuo Qin

Year: 2023 Journal:   Scientific Reports Vol: 13 (1)Pages: 9883-9883   Publisher: Nature Portfolio

Abstract

Abstract Object detection has been widely applied in various fields with the rapid development of deep learning in recent years. However, detecting small objects is still a challenging task because of the limited information in features and the complex background. To further enhance the detection accuracy of small objects, this paper proposes an efficient single-shot detector with weight-based feature fusion (WFFA-SSD). First, a weight-based feature fusion block is designed to adaptively fuse information from several multi-scale feature maps. The feature fusion block can exploit contextual information for feature maps with large resolutions. Then, a context attention block is applied to reinforce the local region in the feature maps. Moreover, a pyramids aggregation block is applied to combine the two feature pyramids to classify and locate target objects. The experimental results demonstrate that the proposed WFFA-SSD achieves higher mean Average Precision (mAP) under the premise of ensuring real-time performance. WFFA-SSD increases the mAP of the car by 4.12% on the test set of the CARPK.

Keywords:
Computer science Feature (linguistics) Artificial intelligence Block (permutation group theory) Pattern recognition (psychology) Context (archaeology) Detector Object detection Fuse (electrical) Object (grammar) Exploit Computer vision Engineering Mathematics

Metrics

12
Cited By
2.18
FWCI (Field Weighted Citation Impact)
34
Refs
0.85
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Advanced Neural Network Applications
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition
Adversarial Robustness in Machine Learning
Physical Sciences →  Computer Science →  Artificial Intelligence
Domain Adaptation and Few-Shot Learning
Physical Sciences →  Computer Science →  Artificial Intelligence
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