Depth Estimation for Integral Imaging Microscopy Using a 3D-2D CNN with a Weighted Median Filter

被引:3
|
作者
Imtiaz, Shariar Md [1 ]
Kwon, Ki-Chul [1 ]
Hossain, Biddut [1 ]
Alam, Shahinur [2 ]
Jeon, Seok-Hee [3 ]
Kim, Nam [1 ]
机构
[1] Chungbuk Natl Univ, Sch Informat & Commun Engn, Cheongju 28644, Chungcheongbuk, South Korea
[2] Gallaudet Univ, VL2 Ctr, 800 Florida Ave NE, Washington, DC 20002 USA
[3] Incheon Natl Univ, Dept Elect Engn, 119 Acad Ro, Incheon Si 22012, Gyeonggi Do, South Korea
基金
新加坡国家研究基金会;
关键词
depth estimation; integral imaging microscopy; light-filed microscopy; deep learning; machine intelligence; 3D convolutional neural network; LIGHT-FIELD; OF-FIELD; EPIPOLAR GEOMETRY; DISPLAY; RESOLUTION;
D O I
10.3390/s22145288
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
This study proposes a robust depth map framework based on a convolutional neural network (CNN) to calculate disparities using multi-direction epipolar plane images (EPIs). A combination of three-dimensional (3D) and two-dimensional (2D) CNN-based deep learning networks is used to extract the features from each input stream separately. The 3D convolutional blocks are adapted according to the disparity of different directions of epipolar images, and 2D-CNNs are employed to minimize data loss. Finally, the multi-stream networks are merged to restore the depth information. A fully convolutional approach is scalable, which can handle any size of input and is less prone to overfitting. However, there is some noise in the direction of the edge. A weighted median filtering (WMF) is used to acquire the boundary information and improve the accuracy of the results to overcome this issue. Experimental results indicate that the suggested deep learning network architecture outperforms other architectures in terms of depth estimation accuracy.
引用
收藏
页数:15
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