EP-REx: Evidence-Preserving Receptive-Field Expansion for Efficient Crack Segmentation

  • Lee, Sanghyuck
  • Lee, Jeongwon
  • Khairulov, Timur
  • Kim, Daehyeon
  • Lee, Jaesung
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초록

Crack segmentation plays a vital role in ensuring structural safety, yet practical deployment on resource-limited platforms demands models that balance accuracy with efficiency. While high-accuracy models often rely on computationally heavy designs to expand their receptive fields, recent lightweight approaches typically delay this expansion to the deepest, low-resolution layers to maintain efficiency. This design choice leaves long-range context underutilized, where fine-grained evidence is most intact. In this paper, we propose an evidence-preserving receptive-field expansion network, which integrates a multi-scale dilated block to efficiently capture long-range context from the earliest stages and an input-guided gate that leverages grayscale conversion, average pooling, and gradient extraction to highlight crack evidence directly from raw inputs. Experiments on six benchmark datasets demonstrate that the proposed network achieves consistently higher accuracy under lightweight constraints. Each of the three proposed variants-Base, Small, and Tiny-outperforms its corresponding baselines with larger parameter counts, surpassing a total of 13 models. For example, the Base variant reduces parameters by 66% compared to the second-best CrackFormer II and floating-point operations by 53% on the Ceramic dataset, while still delivering superior accuracy. Pareto analyses further confirm that the proposed model establishes a superior accuracy-efficiency trade-off across parameters and floating-point operations.

키워드

crack segmentationlightweight modelreceptive field expansion
제목
EP-REx: Evidence-Preserving Receptive-Field Expansion for Efficient Crack Segmentation
저자
Lee, SanghyuckLee, JeongwonKhairulov, TimurKim, DaehyeonLee, Jaesung
DOI
10.3390/sym17101653
발행일
2025-10
유형
Article
저널명
Symmetry
17
10

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