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The Curious Case of End Token: A Zero-Shot Disentangled Image Editing using CLIP (2406.00457v1)

Published 1 Jun 2024 in cs.CV

Abstract: Diffusion models have become prominent in creating high-quality images. However, unlike GAN models celebrated for their ability to edit images in a disentangled manner, diffusion-based text-to-image models struggle to achieve the same level of precise attribute manipulation without compromising image coherence. In this paper, CLIP which is often used in popular text-to-image diffusion models such as Stable Diffusion is capable of performing disentangled editing in a zero-shot manner. Through both qualitative and quantitative comparisons with state-of-the-art editing methods, we show that our approach yields competitive results. This insight may open opportunities for applying this method to various tasks, including image and video editing, providing a lightweight and efficient approach for disentangled editing.

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Authors (3)
  1. Hidir Yesiltepe (9 papers)
  2. Yusuf Dalva (12 papers)
  3. Pinar Yanardag (34 papers)
Citations (1)

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