Download PDFOpen PDF in browserMulti Deep Learning Model for Building Footprint Extraction from High Resolution Remote Sensing ImageEasyChair Preprint 77267 pages•Date: April 6, 2022Abstract3D city modeling is a new development trend in cartography that has a lot of practical and scientific value. The project necessitates the extraction of a building footprint using remote sensing images. This research examined how to solve the Building Footprint problem using automatic segmentation methods. To begin, we experiment with popular segmentation models such as Mask-RCNN, U-net, and U2-net. After that, we developed two multi-models that produced more stable and good results than the single models. Keyphrases: Convolution Neural Networks, Segmentation, building footprint, remote sensing
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