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Asymmetric Contextual Modulation for Infrared Small Target Detection

About

Single-frame infrared small target detection remains a challenge not only due to the scarcity of intrinsic target characteristics but also because of lacking a public dataset. In this paper, we first contribute an open dataset with high-quality annotations to advance the research in this field. We also propose an asymmetric contextual modulation module specially designed for detecting infrared small targets. To better highlight small targets, besides a top-down global contextual feedback, we supplement a bottom-up modulation pathway based on point-wise channel attention for exchanging high-level semantics and subtle low-level details. We report ablation studies and comparisons to state-of-the-art methods, where we find that our approach performs significantly better. Our dataset and code are available online.

Yimian Dai, Yiquan Wu, Fei Zhou, Kobus Barnard• 2020

Related benchmarks

TaskDatasetResultRank
Infrared Small Target DetectionNUDT-MIRSDT (test)
mIoU36.94
25
Infrared Small Target DetectionIRSatVideo-LEO (test)
mIoU30.53
25
Infrared Small Target DetectionNUAA-SIRST
IoU72.33
20
SegmentationIRSTD-1K
IoU59.23
18
SegmentationNUAA-SIRST
mIoU70.77
18
Infrared Small Target DetectionNUAA-SIRST (test)
Precision76.5
11
Infrared Small Target SegmentationSIRST
mIoU63.5
10
Infrared Small Target SegmentationIRSTD-1K
IoU60.3
10
Infrared Small Target DetectionNUAA-SIRST
Precision76.5
9
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