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  • title: Few Shot Generative Domain Adaptation Via Inference-Stage Latent Learning in GANs
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            Few Shot Generative Domain Adaptation Via Inference-Stage Latent Learning in GANs
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            Few Shot Generative Domain Adaptation Via Inference-Stage Latent Learning in GANs

            Dec 2, 2022

            Speakers

            AKM

            Arnab Kumar Mondal

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            PT

            Piyush Tiwary

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            PS

            Parag Singla

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            About

            In this study, we adapt generative models trained on large source datasets to scarce target domains. We adapt a pre-trained Generative Adversarial Network (GAN) without retraining the generator, avoiding catastrophic forgetting and over-fitting. Starting from the observation that target images can be `embedded' onto the latent space of a pre-trained source-GAN, our method finds the latent code corresponding to the target domain on the source latent manifold. Optimizing a latent learner network d…

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            NeurIPS 2022

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