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Augmented reality fluoroscopy simulation of the guide-wire insertion in DHS surgery: A proof of concept study
B H van Duren1, K Sugand2, R Wescott3
1Institute of Orthopaedics & Musculoskeletal Sciences, University College London, London, UK.
Insights
This study introduces an augmented reality fluoroscopic simulator for dynamic hip screw surgery. The system accurately tracks guide-wire placement, potentially improving surgical outcomes and reducing revision rates for hip fractures.
Area of Science:
- Orthopedic surgery
- Medical simulation
- Augmented reality in medicine
Background:
- Hip fractures pose a significant global health burden, with high mortality and morbidity.
- Dynamic hip screw (DHS) fixation is a common treatment for extracapsular hip fractures.
- Inadequate DHS fixation can lead to complications like poor mobility, chronic pain, and implant cut-out.
Purpose of the Study:
- To develop and evaluate a novel augmented reality (AR) fluoroscopic simulation system for guide-wire insertion in DHS surgery.
- To assess the accuracy of the AR system in measuring the tip-apex distance (TAD).
- To determine the optimal parameters for the AR algorithm to balance accuracy and speed.
Main Methods:
- Developed a digital fluoroscopic imaging simulator using orthogonal cameras to track guide-wire markers.
- Utilized a workshop femur model for system calibration and accuracy testing.
- Compared AR-calculated TAD with physically measured TAD to evaluate system performance.
Main Results:
- The AR system demonstrated an average root mean square error of 4.2 mm in calculated TAD.
- Algorithm accuracy improved with up to 20 iterations, converging to an error of 2 mm.
- The system successfully simulated fluoroscopy while allowing interaction with real instruments on bone models.
Conclusions:
- This work presents a novel AR simulation for DHS guide-wire insertion, a previously unachieved advancement.
- AR simulation offers a realistic and interactive training tool, distinct from virtual reality.
- The developed system has the potential to improve surgical training and patient outcomes for hip fracture fixation.
Background:
Hip fractures contribute to a significant clinical burden globally with over 1.6 million cases per annum and up to 30% mortality rate within the first year. Insertion of a dynamic hip screw (DHS) is a frequently performed procedure to treat extracapsular neck of femur fractures. Poorly performed DHS fixation of extracapsular neck of femur fractures can result in poor mobilisation, chronic pain, and increased cut-out rate requiring revision surgery. A realistic, affordable, and portable fluoroscopic simulation system can improve performance metrics in trainees, including the tip-apex distance (the only clinically validated outcome), and improve outcomes.
Method:
We developed a digital fluoroscopic imaging simulator using orthogonal cameras to track coloured markers attached to the guide-wire which created a virtual overlay on fluoroscopic images of the hip. To test the accuracy with which the augmented reality system could track a guide-wire, a standard workshop femur was used to calibrate the system with a positional marker fixed to indicate the apex; this allowed for comparison between guide-wire tip-apex distance (TAD) calculated by the system to be compared to that physically measured. Tests were undertaken to determine: (1) how well the apex could be targeted; (2) the accuracy of the calculated TAD. (3) The number of iterations through the algorithm giving the optimal accuracy-time relationship.
Results:
The calculated TAD was found to have an average root mean square error of 4.2 mm. The accuracy of the algorithm was shown to increase with the number of iterations up to 20 beyond which the error asymptotically converged to an error of 2 mm.
Conclusion:
This work demonstrates a novel augmented reality simulation of guide-wire insertion in DHS surgery. To our knowledge this has not been previously achieved. In contrast to virtual reality, augmented reality is able to simulate fluoroscopy while allowing the trainee to interact with real instrumentation and performing the procedure on workshop bone models.
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