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Related Experiment Video

Updated: Apr 28, 2026

Non-fluoroscopic Catheter Tracking for Fluoroscopy Reduction in Interventional Electrophysiology
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Toward real-time autonomous navigation: transformer-based catheter tip tracking in fluoroscopy.

Harry Robertshaw1, Yanghe Hao1, Weiyuan Deng1

  • 1Surgical & Interventional Engineering, School of Biomedical Engineering & Imaging Sciences, Kings College London, London, UK.

International Journal of Computer Assisted Radiology and Surgery
|April 27, 2026
PubMed
Summary

This study developed a real-time catheter tip tracking system for autonomous robotic navigation in mechanical thrombectomy (MT). The system achieves high accuracy in challenging fluoroscopic conditions, enabling safer and more accessible stroke treatments.

Keywords:
Catheter tip trackingDeep learning segmentationFluoroscopyMechanical thrombectomy

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Area of Science:

  • Medical Imaging
  • Robotics
  • Artificial Intelligence

Background:

  • Mechanical thrombectomy (MT) is crucial for stroke treatment but faces access limitations.
  • Reinforcement learning (RL) based robotic systems offer potential for autonomous navigation in MT.
  • Accurate real-time catheter tip tracking is essential for current RL methods.

Purpose of the Study:

  • Develop and evaluate a real-time catheter tip tracking pipeline under fluoroscopy.
  • Address challenges like low contrast, noise, and device occlusion in fluoroscopic images.
  • Provide a foundation for RL-based autonomous navigation in MT.

Main Methods:

  • Designed a multi-threaded pipeline including frame reading, preprocessing, inference, and post-processing.
  • Trained and benchmarked deep learning segmentation models (U-Net, U-Net+Transformer, SegFormer).
  • Utilized two-step component filtering, medial skeletonization, and arc-length path following for post-processing.

Main Results:

  • The two-class SegFormer model achieved a mean absolute error of 4.44 mm on manually labeled data.
  • This outperformed U-Net (4.60 mm), U-Net+Transformer (6.20 mm), and three-class models (5.19-7.74 mm).
  • The system surpassed state-of-the-art CathAction results, improving Dice scores by up to +5% for three-segmentation.

Conclusions:

  • The proposed tracking framework demonstrates stable performance in challenging imaging conditions.
  • It outperforms prior benchmarks, offering a reliable and efficient solution.
  • This technology supports the advancement of RL-based autonomous mechanical thrombectomy navigation.