EvolvED: Evolutionary Embeddings to Understand the Generation Process of Diffusion Models
Vidya Prasad, Hans van Gorp, Christina Humer, Ruud J. G. van Sloun,, Anna Vilanova, Nicola Pezzotti

TL;DR
EvolvED is a novel method that visualizes and analyzes the iterative generative process of diffusion models, offering holistic insights into image evolution and attribute changes.
Contribution
The paper introduces EvolvED, a new evolutionary embedding technique that captures and visualizes the high-dimensional, iterative data evolution in diffusion models.
Findings
EvolvED effectively visualizes the generative process of diffusion models.
It reveals semantic attribute evolution during image generation.
The method enhances understanding of model behavior and data progression.
Abstract
Diffusion models, widely used in image generation, rely on iterative refinement to generate images from noise. Understanding this data evolution is important for model development and interpretability, yet challenging due to its high-dimensional, iterative nature. Prior works often focus on static or instance-level analyses, missing the iterative and holistic aspects of the generative path. While dimensionality reduction can visualize image evolution for few instances, it does preserve the iterative structure. To address these gaps, we introduce EvolvED, a method that presents a holistic view of the iterative generative process in diffusion models. EvolvED goes beyond instance exploration by leveraging predefined research questions to streamline generative space exploration. Tailored prompts aligned with these questions are used to extract intermediate images, preserving iterative…
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Taxonomy
TopicsEvolutionary Game Theory and Cooperation
MethodsFocus · ALIGN · Diffusion · Guided Language to Image Diffusion for Generation and Editing
