AI Article Synopsis

  • A new deep-learning scatterer density estimator (SDE) was developed to analyze speckle patterns in optical coherence tomography (OCT) images and accurately estimate the density of scatterers.
  • This SDE was trained on a large dataset of simulated OCT images that included a sophisticated noise model, accounting for shot noise, relative-intensity noise, and non-optical noise.
  • Evaluations using scattering phantoms and tumor spheroids showed that the SDE significantly improved estimation accuracy compared to previous versions that used less effective noise models.

Article Abstract

We demonstrate a deep-learning-based scatterer density estimator (SDE) that processes local speckle patterns of optical coherence tomography (OCT) images and estimates the scatterer density behind each speckle pattern. The SDE is trained using large quantities of numerically simulated OCT images and their associated scatterer densities. The numerical simulation uses a noise model that incorporates the spatial properties of three types of noise, i.e., shot noise, relative-intensity noise, and non-optical noise. The SDE's performance was evaluated numerically and experimentally using two types of scattering phantom and tumor spheroids. The results confirmed that the SDE estimates scatterer densities accurately. The estimation accuracy improved significantly when compared with our previous deep-learning-based SDE, which was trained using numerical speckle patterns generated from a noise model that did not account for the spatial properties of noise.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11161371PMC
http://dx.doi.org/10.1364/BOE.519743DOI Listing

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