SOTAVerified

Small Object Detection

Small Object Detection is a computer vision task that involves detecting and localizing small objects in images or videos. This task is challenging due to the small size and low resolution of the objects, as well as other factors such as occlusion, background clutter, and variations in lighting conditions.

( Image credit: Feature-Fused SSD )

Papers

Showing 131140 of 152 papers

TitleStatusHype
HRDNet: High-resolution Detection Network for Small Objects0
Progressive Domain Adaptation with Contrastive Learning for Object Detection in the Satellite Imagery0
Infra-YOLO: Efficient Neural Network Structure with Model Compression for Real-Time Infrared Small Object Detection0
Inside-Outside Net: Detecting Objects in Context with Skip Pooling and Recurrent Neural Networks0
Interactive Image-Based Aphid Counting in Yellow Water Traps under Stirring Actions0
Intrinsic Relationship Reasoning for Small Object Detection0
IPG-Net: Image Pyramid Guidance Network for Small Object Detection0
iSmallNet: Densely Nested Network with Label Decoupling for Infrared Small Target Detection0
Joint-YODNet: A Light-weight Object Detector for UAVs to Achieve Above 100fps0
Feature Selective Small Object Detection via Knowledge-based Recurrent Attentive Neural Network0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1Weighted Box Fusion (WBF)AP5030.3Unverified
2GFL + Test Time AugmentationAP5023.7Unverified
3DL method (YOLOv8 + Ensamble)AP5022.9Unverified
4Swin Transformer + Hierarchical designAP5022.6Unverified
5E2 method (Normalized Gaussian Wasserstein Distance + Switch Hard Augmentation + Multi scale train + Weight Moving Average + CenterNet + VarifocalNet)AP5022.1Unverified
#ModelMetricClaimedVerifiedStatus
1Weighted Box Fusion (WBF)AP5077.6Unverified
2GFL + Test Time AugmentationAP5073.1Unverified
3DL method (YOLOv8 + Ensamble)AP5073.1Unverified
4Swin Transformer + Hierarchical designAP5070.2Unverified
5E2 method (Normalized Gaussian Wasserstein Distance + Switch Hard Augmentation + Multi scale train + Weight Moving Average + CenterNet + VarifocalNet)AP5069.6Unverified
#ModelMetricClaimedVerifiedStatus
1BeeDetectorAverage F10.86Unverified
#ModelMetricClaimedVerifiedStatus
1CFINetmAP@0.5:0.9530.7Unverified