eess.IVApr 24, 2026

Multimodal Diffusion to Mutually Enhance Polarized Light and Low Resolution EBSD Data

Authors: Harry DongTimofey EfimovMegna ShahJeff SimmonsSean DoneganMarc De GraefYuejie Chi

Organizations: Department of Electrical and Computer Engineering, Carnegie Mellon University, USA · Materials and Manufacturing Directorate, Air Force Research Laboratory, USA · Department of Materials Science and Engineering, Carnegie Mellon University, USA · Department of Statistics and Data Science, Yale University, USA

Abstract

In spite of the utility of 3-D electron back-scattered diffraction (EBSD) microscopy, the data collection process can be time-consuming with serial-sectioning. Hence, it is natural to look at other modalities, such as polarized light (PL) data, to accelerate EBSD data collection, supplemented with shared information. Complementarily, features in chaotic PL data could even be enriched with a handful of EBSD measurements. To inherently learn the complex dynamics between EBSD and PL to solve these inverse problems, we use an unconditional multimodal diffusion model, motivated by progress in diffusion models for inverse problems. Although trained solely on synthetic data once, our model has strong generalizable capabilities on real data which can be low-resolution, noisy, corrupted, and misregistered. With inference-time scaling, we show gains in performance on a variety of objectives including grain boundary prediction, super-resolution, and denoising. With our model, we demonstrate that there is little difference from full resolution performance with only 25% (1/4 the resolution) of EBSD data and corrupted PL data.

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