Generic dual-phase classification models through deep learning semantic segmentation method and image gray-level optimization

被引:1
|
作者
Yan, Biaojie [1 ]
Yin, Jiaqing [1 ]
Wang, Yi [1 ]
Li, Mingxing [1 ]
Fa, Tao [1 ]
Bin, Bai [1 ]
Su, Bin [1 ]
Zhang, Pengcheng [1 ]
机构
[1] China Acad Engn Phys, Inst Mat, Mianyang 621907, Sichuan, Peoples R China
关键词
Dual-phase; Microstructure classification; Semantic segmentation; Deep learning; Gray-level range; MICROSTRUCTURES;
D O I
10.1016/j.scriptamat.2023.115948
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Two generic deep learning models for automatic classification of dual-phase microstructures were constructed through the semantic segmentation method of DeepLab v3+, based on a small data including 6 SEM images of the U-2Nb alloys with dual-phase microstructure and the corresponding ground truth. One model is suitable for directly classifying images with different gray-level ranges and has a good average classifying accuracy. Although the other model is only suitable for a specific gray-level range, but it cost less for training and can realize a higher classifying accuracy than the former model combined with optimal gray-level adjustment for images. The two DL models were applied to classify dual-phase microstructures of different morphologies and materials, including the isothermal cooling and continuous cooling microstructures of U-2Nb alloys, and the dual-phase steel microstructure, the results of which manifest that both the two models have high classification accuracy and excellent general applicability.
引用
收藏
页数:6
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