ConvNext-V2

ConvNext-V2 model pre-trained on ImageNet-1k (1.28 million images, 1,000 classes) at resolution 224x224 in a fully convolutional masked autoencoder framework (FCMAE). It was introduced in the paper ConvNeXt V2: Co-designing and Scaling ConvNets with Masked Autoencoders. The weights were converted from the convnextv2_base_1k_224_fcmae.pt file presented in the official repository.

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