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Computer Vision and Deep Learning (Project)

Superpixel Clustering and Post-Hoc correction to improve the performance of cloud segmentation from satellite images

Abstract:

We implement a 1D-SEUNet model on Superpixel vectors of satelite images to segment out the cloud from the background. Our method aims to reduce the parameters and increase the speed of a conventional segmentation model.

Main Libraries used

  • Pytorch
  • Fast-SLIC
  • Rasterio
  • Sklearn (MDS and PCA)

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