4.6 Article

Choroidal vasculature characteristics based choroid segmentation for enhanced depth imaging optical coherence tomography images

Journal

MEDICAL PHYSICS
Volume 43, Issue 4, Pages 1649-1661

Publisher

AMER ASSOC PHYSICISTS MEDICINE AMER INST PHYSICS
DOI: 10.1118/1.4943382

Keywords

choroidal vasculature characteristics; choroid segmentation; EDI-OCT image; maximum intensity image

Funding

  1. Fundamental Research Funds for the Central Universities [30920140111004]
  2. six talent peaks project in Jiangsu Province [2014-SWYY-024]
  3. Qing Lan Project

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Purpose: In clinical research, it is important to measure choroidal thickness when eyes are affected by various diseases. The main purpose is to automatically segment choroid for enhanced depth imaging optical coherence tomography (EDI-OCT) images with five B-scans averaging. Methods: The authors present an automated choroid segmentation method based on choroidal vasculature characteristics for EDI-OCT images with five B-scans averaging. By considering the large vascular of the Haller's layer neighbor with the choroid-sclera junction (CSJ), the authors measured the intensity ascending distance and a maximum intensity image in the axial direction from a smoothed and normalized EDI-OCT image. Then, based on generated choroidal vessel image, the authors constructed the CSJ cost and constrain the CSJ search neighborhood. Finally, graph search with smooth constraints was utilized to obtain the CSJ boundary. Results: Experimental results with 49 images from 10 eyes in 8 normal persons and 270 images from 57 eyes in 44 patients with several stages of diabetic retinopathy and age-related macular degeneration demonstrate that the proposed method can accurately segment the choroid of EDI-OCT images with five B-scans averaging. The mean choroid thickness difference and overlap ratio between the authors' proposed method and manual segmentation drawn by experts were -11.43 mu m and 86.29%, respectively. Conclusions: Good performance was achieved for normal and pathologic eyes, which proves that the authors' method is effective for the automated choroid segmentation of the EDI-OCT images with five B-scans averaging. (C) 2016 American Association of Physicists in Medicine.

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