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C2FNAS: Coarse-to-Fine Neural Architecture Search for 3D Medical Image Segmentation.

, , , , , , and . CVPR, page 4125-4134. Computer Vision Foundation / IEEE, (2020)

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Can Temporal Information Help with Contrastive Self-Supervised Learning?, , , , , , , , and . CoRR, (2020)CAKES: Channel-wise Automatic KErnel Shrinking for Efficient 3D Networks., , , , and . AAAI, page 3225-3233. AAAI Press, (2021)A reconfigurable parallel FPGA accelerator for the kernel affine projection algorithm., , , , and . DSP, page 906-910. IEEE, (2015)CMT-DeepLab: Clustering Mask Transformers for Panoptic Segmentation., , , , , , , , and . CVPR, page 2550-2560. IEEE, (2022)COCONut: Modernizing COCO Segmentation., , , , and . CoRR, (2024)Alleviating Distortion in Image Generation via Multi-Resolution Diffusion Models., , , , , and . CoRR, (2024)An intelligent detection method for assembly based on multi-model cascade., , , , and . ICMLC, page 280-286. ACM, (2024)C2FNAS: Coarse-to-Fine Neural Architecture Search for 3D Medical Image Segmentation., , , , , , and . CVPR, page 4125-4134. Computer Vision Foundation / IEEE, (2020)Mask Guided Matting via Progressive Refinement Network., , , , , , , and . CVPR, page 1154-1163. Computer Vision Foundation / IEEE, (2021)Mask Guided Matting via Progressive Refinement Network., , , , , , , and . CoRR, (2020)