Refined Infrared Small Target Detection Scheme with Single-Point Supervision
Jinmiao Zhao, Zelin Shi, Chuang Yu, Yunpeng Liu

TL;DR
This paper introduces a refined infrared small target detection scheme using single-point supervision, combining label evolution, post-processing strategies, and multi-stage loss to achieve state-of-the-art results and win a challenge.
Contribution
The paper proposes a novel detection framework with label evolution and advanced post-processing, significantly improving accuracy and detection rate over existing methods.
Findings
Achieved state-of-the-art detection performance.
Won third place in ICPR 2024 challenge.
Enhanced segmentation accuracy with combined TTA and CRF.
Abstract
Recently, infrared small target detection with single-point supervision has attracted extensive attention. However, the detection accuracy of existing methods has difficulty meeting actual needs. Therefore, we propose an innovative refined infrared small target detection scheme with single-point supervision, which has excellent segmentation accuracy and detection rate. Specifically, we introduce label evolution with single point supervision (LESPS) framework and explore the performance of various excellent infrared small target detection networks based on this framework. Meanwhile, to improve the comprehensive performance, we construct a complete post-processing strategy. On the one hand, to improve the segmentation accuracy, we use a combination of test-time augmentation (TTA) and conditional random field (CRF) for post-processing. On the other hand, to improve the detection rate, we…
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Taxonomy
TopicsInfrared Target Detection Methodologies · Advanced Measurement and Detection Methods · Optical Systems and Laser Technology
