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Efficient Multi Subject Visual Reconstruction from fMRI Using Aligned Representations

Published 3 May 2025 in eess.IV, cs.CV, and cs.LG | (2505.01670v1)

Abstract: This work introduces a novel approach to fMRI-based visual image reconstruction using a subject-agnostic common representation space. We show that the brain signals of the subjects can be aligned in this common space during training to form a semantically aligned common brain. This is leveraged to demonstrate that aligning subject-specific lightweight modules to a reference subject is significantly more efficient than traditional end-to-end training methods. Our approach excels in low-data scenarios. We evaluate our methods on different datasets, demonstrating that the common space is subject and dataset-agnostic.

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