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A hybrid method to enhance thick and thin vessels for blood vessel segmentation

  • Sonali Dash
  • , Sahil Verma
  • , Kavita
  • , Md Sameeruddin Khan
  • , Marcin Wozniak
  • , Jana Shafi
  • , Muhammad Fazal Ijaz
  • Raghu Institute of Technology
  • Chandigarh University
  • Prince Sattam Bin Abdulaziz University
  • Sejong University

Research output: Contribution to journalArticlepeer-review

53 Citations (Scopus)

Abstract

Retinal blood vessels have been presented to contribute confirmation with regard to tortuosity, branching angles, or change in diameter as a result of ophthalmic disease. Although many enhancement filters are extensively utilized, the Jerman filter responds quite effectively at vessels, edges, and bifurcations and improves the visualization of structures. In contrast, curvelet transform is specifically designed to associate scale with orientation and can be used to recover from noisy data by curvelet shrinkage. This paper describes a method to improve the performance of curvelet transform further. A distinctive fusion of curvelet transform and the Jerman filter is presented for retinal blood vessel segmentation. Mean-C thresholding is employed for the segmentation purpose. The suggested method achieves average accuracies of 0.9600 and 0.9559 for DRIVE and CHASE_DB1, respectively. Simulation results establish a better performance and faster implementation of the suggested scheme in comparison with similar approaches seen in the literature.

Original languageEnglish
Article number2017
JournalDiagnostics
Volume11
Issue number11
DOIs
Publication statusPublished - Nov 2021

Keywords

  • Blood vessel segmentation
  • Curvelet transform
  • Jerman filter
  • Mean-C thresholding

ASJC Scopus subject areas

  • Internal Medicine
  • Clinical Biochemistry

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