Guide-and-Rescale: Self-Guidance Mechanism for Effective Tuning-Free Real Image Editing
Vadim Titov, Madina Khalmatova, Alexandra Ivanova, Dmitry Vetrov, and, Aibek Alanov

TL;DR
This paper introduces Guide-and-Rescale, a self-guidance method for effective, tuning-free real image editing using diffusion models, which preserves image structure and appearance without fine-tuning or hyperparameter tuning.
Contribution
The authors propose a novel self-guidance technique with layout-preserving energy functions and a noise rescaling mechanism that enables high-quality, fast image editing without model fine-tuning.
Findings
Produces more human-preferred edits in experiments.
Achieves better trade-off between editing quality and image preservation.
Does not require fine-tuning or exact inversion of diffusion models.
Abstract
Despite recent advances in large-scale text-to-image generative models, manipulating real images with these models remains a challenging problem. The main limitations of existing editing methods are that they either fail to perform with consistent quality on a wide range of image edits or require time-consuming hyperparameter tuning or fine-tuning of the diffusion model to preserve the image-specific appearance of the input image. We propose a novel approach that is built upon a modified diffusion sampling process via the guidance mechanism. In this work, we explore the self-guidance technique to preserve the overall structure of the input image and its local regions appearance that should not be edited. In particular, we explicitly introduce layout-preserving energy functions that are aimed to save local and global structures of the source image. Additionally, we propose a noise…
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Taxonomy
TopicsAdvanced Vision and Imaging · Robotics and Sensor-Based Localization · Robotic Path Planning Algorithms
MethodsDiffusion
