A novel real-time computational framework for detecting catheters and rigid guidewires in cardiac catheterization

YingLiang Ma1, Mazen Alhrishy2, Srinivas Ananth Narayan3,2

  • 1School of Computing, Electronics and Mathematics, Coventry University, Coventry, CV1 5FB, UK.

Medical Physics
|September 18, 2018
PubMed

Insights

This study presents a novel computational framework for real-time detection of cardiac catheters and guidewires in X-ray images. The automated system achieves sub-millimeter accuracy, crucial for minimally invasive cardiac procedures.

Area of Science:

  • Medical Imaging
  • Computational Anatomy
  • Interventional Cardiology

Background:

  • Catheters and guidewires are essential tools in cardiac catheterization procedures like ablation and angioplasty.
  • Accurate detection of these instruments in fluoroscopic X-ray images is vital for clinical applications such as motion compensation and 3D reconstruction.

Purpose of the Study:

  • To develop an automated, real-time computational framework for detecting multiple catheters and guidewires in fluoroscopic X-ray images.
  • To achieve high accuracy and robustness, particularly for low-dose X-ray imaging used during procedures.

Main Methods:

  • A multiscale vessel enhancement filter and adaptive binarization were used to extract centerlines of wire-like structures.
  • Blob detection and machine learning algorithms were incorporated to classify electrode catheters and distinguish guidewires/guiding catheters from artifacts.
  • The framework was validated on 10,624 images from 102 sequences across 63 clinical cases.

Main Results:

  • Sub-millimeter detection errors were achieved for coronary sinus catheters (0.56 ± 0.28 mm), lasso catheter rings (0.64 ± 0.36 mm), and lasso catheter bodies (0.66 ± 0.32 mm).
  • Success rates for catheter detection ranged from 84.8% to 91.4%, while guidewire and guiding catheter detection achieved 83.5% success with 0.62 ± 0.48 mm error.
  • The system demonstrated high accuracy and robustness on low-dose fluoroscopic images.

Conclusions:

  • The proposed framework enables automatic, real-time detection of multiple cardiac catheters and guidewires without user interaction or prior models.
  • The sub-millimeter accuracy and robustness to low-dose imaging make it suitable for clinical application in cardiac procedures.
  • This technology can enhance safety and efficiency in interventional cardiology by providing precise instrument localization.
Abstract

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