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brownvc/R3GAN-ImgNet-64x64
R3GAN-ImgNet-64x64 is a unconditional image generation model from brownvc. Use it for the unconditional image generation task on the model card, and read the license before you ship it in a product.
This model card provides details about the R3GAN model trained on the ImageNet dataset found in the NeurIPS 2024 paper R3GAN: https://arxiv.org/abs/2501.05441
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Updated Jan 10, 2025
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From the Hugging Face model README
This model card provides details about the R3GAN model trained on the ImageNet dataset found in the NeurIPS 2024 paper R3GAN: https://arxiv.org/abs/2501.05441
The model achieves 2.09 Frechet Inception Distance-50k on ImageNet64x64 class conditional ImgNet generation.
This model is a generative adversarial network (GAN) based on the R3GAN architecture, specifically trained to synthesize high-quality and realistic images from the ImageNet dataset.
This model can be used to generate high-resolution images similar to those in the ImageNet dataset. Its primary application includes research in generative models and image synthesis.
The model can be fine-tuned for specific subsets of the ImageNet dataset or other similar datasets for domain-specific image generation tasks.
The model should not be used for generating deceptive or misleading content, malicious purposes, or tasks where realistic image synthesis could cause harm.
The model inherits biases present in the ImageNet dataset, including potential overrepresentation or underrepresentation of certain classes. Users should critically evaluate and mitigate biases before deploying the model.
Below is an example of how to use the model for image generation: