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Fast Personalized Text to Image Synthesis with Attention Injection | IEEE Conference Publication | IEEE Xplore

Fast Personalized Text to Image Synthesis with Attention Injection


Abstract:

Currently, personalized image generation methods mostly require considerable time to finetune and often overfit the concept resulting in generated images that are similar...Show More

Abstract:

Currently, personalized image generation methods mostly require considerable time to finetune and often overfit the concept resulting in generated images that are similar to custom concepts but difficult to edit by prompts. We propose an effective and fast approach that could balance the text-image consistency and identity consistency of the generated image and reference image. Our method can generate personalized images without any fine-tuning while maintaining the inherent text-to-image generation ability of diffusion models. Given a prompt and a reference image, we merge the custom concept into generated images by manipulating cross-attention and self-attention layers of the original diffusion model to generate personalized images that match the text description. Comprehensive experiments highlight the superiority of our method.
Date of Conference: 14-19 April 2024
Date Added to IEEE Xplore: 18 March 2024
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Conference Location: Seoul, Korea, Republic of

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