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Hybrid Skip: A Biologically Inspired Skip Connection for the UNet Architecture
2022
IEEE Access
In this work we introduce a biologically inspired long-range skip connection for the UNet architecture that relies on the perceptual illusion of hybrid images, being images that simultaneously encode two images. The fusion of early encoder features with deeper decoder ones allows UNet models to produce finer-grained dense predictions. While proven in segmentation tasks, the network's benefits are down-weighted for dense regression tasks as these long-range skip connections additionally result
doi:10.1109/access.2022.3175864
fatcat:qalzirpfirfvnfa7ts5xm67vle