A novel CNN method for the accurate spatial data recovery from digital images

被引:7
作者
Murugan G. [1 ]
Moyal V. [2 ]
Nandankar P. [3 ]
Pandithurai O. [4 ]
John Pimo E.S. [5 ]
机构
[1] St John College Of Engineering and Management, Maharashtra, Palghar
[2] SVKMs Institute of Technology, Maharastra, Dhule
[3] Electrical Engineering Dept. Government College of Engineering, Nagpur
[4] Computer Science and Engineering, Rajalakshmi Institute of Technology, Poonamallee, Tamilnadu, Chennai
[5] Department of CSE, St. Xavier's Catholic College of Engineering, Chunkankadai, Tamil Nadu, Nagercoil
来源
Materials Today: Proceedings | 2023年 / 80卷
关键词
Digital images; Machine learning; R-CNN;
D O I
10.1016/j.matpr.2021.05.351
中图分类号
学科分类号
摘要
The parsing of floorplans has been an issue for a long time in automated document processing and with algorithmic methods until recent years. This problem has also improved output with the emergence of convolutionary neural networks (CNN). The job here is to obtain spatial and geometrical data from floorplans as accurately as possible. The aim of this project is to extract the most information from a floor plan image around instance segmentation models like Cascade Mask R-CNN. A new style of key point CNN is being implemented to supplement the segmentation to find correct corner positions. Then the resulting segmentation is combined in a post-processing stage. With a mean IoU of 72.7 percent versus 57.5 percent, the resulting segmentation scores surpass the existing baseline of the CubiCasa5k floorplan data base. Moreover, for almost every class, the mean IoU for each class is increased. Cascade Mask R-CNN has also been shown to be better suited to this role than Mask R-CNN. © 2021
引用
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页码:1706 / 1712
页数:6
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