Extraction of building footprint using MASK-RCNN for high resolution aerial imagery

被引:1
|
作者
Vincent, M. Jenila [1 ]
Varalakshmi, P. [1 ]
机构
[1] Anna Univ, Dept Comp Technol, Chennai, India
来源
关键词
instance segmentation; high-resolution satellite image; convolutional neural networks; building extraction; MASK-RCNN; NETWORK;
D O I
10.1088/2515-7620/ad5b3d
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Extracting individual buildings from satellite images is crucial for various urban applications, including population estimation, urban planning, and other related fields. However, Extracting building footprints from remote sensing data is a challenging task because of scale differences, complex structures and different types of building. Addressing these issues, an approach that can efficiently detect buildings in images by generating a segmentation mask for each instance is proposed in this paper. This approach incorporates the Regional Convolutional Neural Network (MASK-RCNN), which combines Faster R-CNN for object mask prediction and boundary box recognition and was evaluated against other models like YOLOv5, YOLOv7 and YOLOv8 in a comparative study to assess its effectiveness. The findings of this study reveals that our proposed method achieved the highest accuracy in building extraction. Furthermore, we performed experiments on well-established datasets like WHU and INRIA, and our method consistently outperformed other existing methods, producing reliable results.
引用
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页数:16
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