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MDP: A Generalized Framework for Text-Guided Image Editing by Manipulating the Diffusion Path

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arxiv 2303.16765 v2 pith:THGYN6MC submitted 2023-03-29 cs.CV

classification cs.CV
keywords diffusionframeworkmanipulationsanalyzeeditingeditsimagemanipulating
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Image generation using diffusion can be controlled in multiple ways. In this paper, we systematically analyze the equations of modern generative diffusion networks to propose a framework, called MDP, that explains the design space of suitable manipulations. We identify 5 different manipulations, including intermediate latent, conditional embedding, cross attention maps, guidance, and predicted noise. We analyze the corresponding parameters of these manipulations and the manipulation schedule. We show that some previous editing methods fit nicely into our framework. Particularly, we identified one specific configuration as a new type of control by manipulating the predicted noise, which can perform higher-quality edits than previous work for a variety of local and global edits.

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Cited by 1 Pith paper

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  1. PromptArtisan: Multi-instruction Image Editing in Single Pass with Complete Attention Control

    cs.CV 2025-02 conditional novelty 5.0 of 10

    PromptArtisan applies multiple mask-prompt edits to an image in one diffusion pass using cross-attention and self-attention control on InstructPix2Pix.

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