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Multi-Faceted Knowledge-Driven Graph Neural Network for Iris Segmentation

delete2024-01-01
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PRE
AI
J
Jianze Wei
Y
Yunlong Wang *
X
Xingyu Gao *
R
Ran He
Z
Zhenan Sun
DOI:10.1109/TIFS.2024.3407508delete
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摘要

摘要

En 中文
Accurate iris segmentation, especially around the iris inner and outer boundaries, is still a formidable challenge. Pixels within these areas are difficult to semantically distinguish since they have similar visual characteristics and close spatial positions. To tackle this problem, the paper proposes an iris segmentation graph neural network (ISeGraph) for accurate segmentation. ISeGraph regards individual pixels as nodes within the graph and constructs self-adaptive edges according to multi-faceted knowledge, including visual similarity, positional correlation, and semantic consistency for feature aggregation. Specifically, visual similarity strengthens the connections between nodes sharing similar visual characteristics, while positional correlation assigns weights according to the spatial distance between nodes. In contrast to the above knowledge, semantic consistency maps nodes into a semantic space and learns pseudo-labels to define relationships based on label consistency. ISeGraph leverages multi-faceted knowledge to generate self-adaptive relationships for accurate iris segmentation. Furthermore, a pixel-wise adaptive normalization module is developed to increase the feature discriminability. It takes informative features in the shallow layer as a reference to improve the segmentation features from a statistical perspective. Experimental results on three iris datasets illustrate that the proposed method achieves superior performance in iris segmentation, increasing the segmentation accuracy in areas near the iris boundaries.
Keyword:
Iris
Image segmentation
Visualization
Accuracy
Correlation
Annotations
Semantics
Iris segmentation
multi-faceted knowledge
graph neural network

期刊

IEEE Transactions on Information Forensics and Security 封面图
IEEE Transactions on Information Forensics and Security
IF:
8
论文数:
5.2K
被引数:
2.3W

机构

I
institute of microelectronics, cas
学者数:
896
论文数: 618
被引数: 0
C
chinese academy of sciences
学者数:
56.7W
论文数: 45.0W
被引数: 704
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