4.5 Article

Effect of curvature correction on parameters extracted from hyperspectral images

Journal

JOURNAL OF BIOMEDICAL OPTICS
Volume 26, Issue 9, Pages -

Publisher

SPIE-SOC PHOTO-OPTICAL INSTRUMENTATION ENGINEERS
DOI: 10.1117/1.JBO.26.9.096003

Keywords

hyperspectral imaging; three-dimensional profilometry; Lambert cosine law; curvature correction; tissue phantom

Funding

  1. Slovenian Research Agency [P1-0389, J2-8171]

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In this study, hyperspectral images were corrected using 3D surface data and the correction method was evaluated for its impact on extracted sample properties. The combination of HSI and 3D profilometry using the Lambert cosine law showed promising results on different tissue phantoms and human hands. The correction method proved to be successful in accurately extracting sample parameters from curved surfaces.
Significance: Hyperspectral imaging (HSI) has emerged as a promising optical technique. Besides optical properties of a sample, other sample physical properties also affect the recorded images. They are significantly affected by the sample curvature and sample surface to camera distance. A correction method to reduce the artifacts is necessary to reliably extract sample properties. Aim: Our aim is to correct hyperspectral images using the three-dimensional (3D) surface data and assess how the correction affects the extracted sample properties. Approach: We propose the combination of HSI and 3D profilometry to correct the images using the Lambert cosine law. The feasibility of the correction method is presented first on hemispherical tissue phantoms and next on human hands before, during, and after the vascular occlusion test (VOT). Results: Seven different phantoms with known optical properties were created and imaged with a hyperspectral system. The correction method worked up to 60 deg inclination angle, whereas for uncorrected images the maximum angles were 20 deg. Imaging hands before, during, and after VOT shows good agreement between the expected and extracted skin physiological parameters. Conclusions: The correction method was successfully applied on the images of tissue phantoms of known optical properties and geometry and VOT. The proposed method could be applied to any reflectance optical imaging technique and should be used whenever the sample parameters need to be extracted from a curved surface sample. (C) The Authors. Published by SPIE under a Creative Commons Attribution 4.0 Unported License.

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