Deep learning approach for hyperspectral image demosaicking, spectral correction and high-resolution RGB reconstruction

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Abstract

Hyperspectral imaging is one of the most promising techniques for intraoperative tissue characterisation. Snapshot mosaic cameras, which can capture hyperspectral data in a single exposure, have the potential to make a real-time hyperspectral imaging system for surgical decision-making possible. However, optimal exploitation of the captured data requires solving an ill-posed demosaicking problem and applying additional spectral corrections. In this work, we propose a supervised learning-based image demosaicking algorithm for snapshot hyperspectral images. Due to the lack of publicly available medical images acquired with snapshot mosaic cameras, a synthetic image generation approach is proposed to simulate snapshot images from existing medical image datasets captured by high-resolution, but slow, hyperspectral imaging devices. Image reconstruction is achieved using convolutional neural networks for hyperspectral image super-resolution, followed by spectral correction using a sensor-specific calibration matrix. The results are evaluated both quantitatively and qualitatively, showing clear improvements in image quality compared to a baseline demosaicking method using linear interpolation. Moreover, the fast processing time of 45 ms of our algorithm to obtain super-resolved RGB or oxygenation saturation maps per image for a state-of-the-art snapshot mosaic camera demonstrates the potential for its seamless integration into real-time surgical hyperspectral imaging applications.

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Li, P., Ebner, M., Noonan, P., Horgan, C., Bahl, A., Ourselin, S., … Vercauteren, T. (2022). Deep learning approach for hyperspectral image demosaicking, spectral correction and high-resolution RGB reconstruction. Computer Methods in Biomechanics and Biomedical Engineering: Imaging and Visualization, 10(4), 409–417. https://doi.org/10.1080/21681163.2021.1997646

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