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A Scalable Pipeline Combining Procedural 3D Graphics and Guided Diffusion for Photorealistic Synthetic Training Data Generation in White Button Mushroom Segmentation
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DOI:10.1016/j.compag.2026.112269.png)
Abstract
En 中文
• Workflow generating annotated, photo-real, synthetic instance segmentation datasets. • 3D graphics and diffusion models for high realism without manual shader setup. • Full control of geometry and annotation while implicitly modeling visual properties. • Two synthetic Agaricus Bisporus mushroom datasets with instance masks and depth maps. • Synthetic data-trained models perform like state-of-the-art on real-world data.
Keywords:
Generative AI
Computer graphics
Diffusion models
Synthetic dataset
Mushroom segmentation
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