Anatomical structure segmentation from early fetal ultrasound sequences using global pollination CAT swarm

M A Femina1, S P Raajagopalan2

  • 1Electrical and Electronics Engineering, KCG College of Technology, Chennai, India. feminaphd@gmail.com.

Insights

This study introduces an improved Chan-Vese model using a novel GPCATS optimizer for accurate fetal heart ultrasound segmentation, significantly enhancing boundary detection and reducing iterations for defect diagnosis.

Area of Science:

  • Medical Imaging
  • Computational Biology
  • Image Processing

Background:

  • Accurate segmentation of early fetal heart structures is crucial for diagnosing congenital defects.
  • Ultrasound image segmentation faces challenges due to small size, low signal-to-noise ratio, and motion artifacts.
  • Traditional region-based Chan-Vese (RCV) models struggle with local minima and sensitivity to initial contour placement.

Purpose of the Study:

  • To develop an improved region-based Chan-Vese model for robust fetal heart ultrasound segmentation.
  • To address the limitations of the traditional RCV model, particularly its susceptibility to improper initial contours.
  • To enhance the accuracy and reliability of anatomical structure segmentation in early fetal ultrasound images.

Main Methods:

  • Formulation of a novel hybrid meta-heuristic optimization algorithm: global pollination-based CAT swarm (GPCATS) optimizer.
  • Integration of the global pollination step from the flower pollination algorithm (FPA) to enhance the CATS algorithm for energy minimization.
  • Application and validation of the proposed GPCATS-based Chan-Vese model on fetal heart ultrasound videos from 12 subjects, with manual annotation for ground truth.

Main Results:

  • The proposed GPCATS-based Chan-Vese model significantly improved boundary localization precision compared to the traditional RCV model.
  • The new method achieved convergence in 75% fewer iterations than the conventional RCV model.
  • Experimental results demonstrated enhanced accuracy and robustness over other active contour methods for fetal ultrasound segmentation.

Conclusions:

  • The GPCATS-based Chan-Vese model offers a more accurate and efficient solution for segmenting early fetal heart structures.
  • This improved model overcomes the limitations of traditional active contour methods, providing reliable results irrespective of initial contour placement.
  • The method holds promise for improving the diagnosis of fetal heart defects through enhanced ultrasound image analysis.

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