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Robotized Testing of Camera Positions to Determine Ideal Configuration for Stereo 3D Visualization of Open-Heart Surgery
Published on: August 12, 2021
4D monocular surgical reconstruction under arbitrary camera motions.
Jiwei Shan1, Zeyu Cai2, Cheng-Tai Hsieh3
1Department of Mechanical and Automation Engineering, T Stone Robotics Institute, The Chinese University of Hong Kong, Hong Kong; Shenyang Institute of Automation, Chinese Academy of Sciences, Shenyang, China; State Key Laboratory of Robotics and Intelligent Systems, Shenyang, China.
Local-EndoGS reconstructs deformable surgical scenes from monocular endoscopic videos, even with large camera movements. This framework improves 4D scene reconstruction quality and geometric accuracy for clinical applications.
Area of Science:
- Computer Vision
- Medical Imaging
- Surgical Robotics
Background:
- Reconstructing deformable surgical scenes from endoscopic videos is crucial for clinical applications.
- Current methods struggle with monocular sequences and significant camera motion due to reliance on stereo depth or accurate structure-from-motion.
- Existing approaches are limited to fixed endoscope viewpoints, restricting real-world clinical utility.
Purpose of the Study:
- To develop a high-quality 4D reconstruction framework for monocular endoscopic sequences with arbitrary camera motion.
- To address limitations of existing methods in handling large camera movements and lack of stereo depth priors.
- To enable scalable and robust reconstruction of deformable surgical scenes.
Main Methods:
- Proposed Local-EndoGS, a progressive, window-based global scene representation framework.
- Introduced a coarse-to-fine initialization strategy integrating multi-view geometry, cross-window information, and monocular depth priors.
- Incorporated long-range 2D pixel trajectory constraints and physical motion priors for enhanced deformation plausibility.
Main Results:
- Local-EndoGS achieved superior performance in appearance quality and geometric accuracy on deformable endoscopic datasets.
- Consistently outperformed state-of-the-art methods in reconstructing scenes with varying camera motions.
- Ablation studies validated the effectiveness of the proposed framework's key components.
Conclusions:
- Local-EndoGS offers a robust and scalable solution for 4D reconstruction of deformable surgical scenes from monocular endoscopic videos.
- The framework effectively handles arbitrary camera motion and overcomes initialization challenges.
- This advancement holds significant potential for improving surgical planning and navigation.
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