Augmented Reality Surgical Navigation System for External Ventricular Drain

被引:14
作者
Chiou, Shin-Yan [1 ,2 ,3 ]
Zhang, Zhi-Yue [1 ]
Liu, Hao-Li [4 ]
Yan, Jiun-Lin [3 ]
Wei, Kuo-Chen [5 ]
Chen, Pin-Yuan [3 ,6 ]
机构
[1] Chang Gung Univ, Coll Engn, Dept Elect Engn, Taoyuan 333, Taiwan
[2] Linkou Chang Gung Mem Hosp, Dept Nucl Med, Taoyuan 333, Taiwan
[3] Keelung Chang Gung Mem Hosp, Dept Neurosurg, Keelung 204, Taiwan
[4] Natl Taiwan Univ, Dept Elect Engn, Taipei 106, Taiwan
[5] New Taipei City TuCheng Hosp, Dept Neurosurg, New Taipei 236, Taiwan
[6] Chang Gung Univ, Sch Med, Taoyuan 333, Taiwan
关键词
surgical navigation; augmented reality; neurosurgery; 3-DIMENSIONAL ULTRASOUND; ACCURACY; MOBILE; TIME;
D O I
10.3390/healthcare10101815
中图分类号
R19 [保健组织与事业(卫生事业管理)];
学科分类号
摘要
Augmented reality surgery systems are playing an increasing role in the operating room, but applying such systems to neurosurgery presents particular challenges. In addition to using augmented reality technology to display the position of the surgical target position in 3D in real time, the application must also display the scalpel entry point and scalpel orientation, with accurate superposition on the patient. To improve the intuitiveness, efficiency, and accuracy of extra-ventricular drain surgery, this paper proposes an augmented reality surgical navigation system which accurately superimposes the surgical target position, scalpel entry point, and scalpel direction on a patient's head and displays this data on a tablet. The accuracy of the optical measurement system (NDI Polaris Vicra) was first independently tested, and then complemented by the design of functions to help the surgeon quickly identify the surgical target position and determine the preferred entry point. A tablet PC was used to display the superimposed images of the surgical target, entry point, and scalpel on top of the patient, allowing for correct scalpel orientation. Digital imaging and communications in medicine (DICOM) results for the patient's computed tomography were used to create a phantom and its associated AR model. This model was then imported into the application, which was then executed on the tablet. In the preoperative phase, the technician first spent 5-7 min to superimpose the virtual image of the head and the scalpel. The surgeon then took 2 min to identify the intended target position and entry point position on the tablet, which then dynamically displayed the superimposed image of the head, target position, entry point position, and scalpel (including the scalpel tip and scalpel orientation). Multiple experiments were successfully conducted on the phantom, along with six practical trials of clinical neurosurgical EVD. In the 2D-plane-superposition model, the optical measurement system (NDI Polaris Vicra) provided highly accurate visualization (2.01 +/- 1.12 mm). In hospital-based clinical trials, the average technician preparation time was 6 min, while the surgeon required an average of 3.5 min to set the target and entry-point positions and accurately overlay the orientation with an NDI surgical stick. In the preparation phase, the average time required for the DICOM-formatted image processing and program import was 120 +/- 30 min. The accuracy of the designed augmented reality optical surgical navigation system met clinical requirements, and can provide a visual and intuitive guide for neurosurgeons. The surgeon can use the tablet application to obtain real-time DICOM-formatted images of the patient, change the position of the surgical entry point, and instantly obtain an updated surgical path and surgical angle. The proposed design can be used as the basis for various augmented reality brain surgery navigation systems in the future.
引用
收藏
页数:18
相关论文
共 50 条
[21]   Inside-Out Instrument Tracking for Surgical Navigation in Augmented Reality [J].
Gsaxner, Christina ;
Pepe, Antonio ;
Schmalstieg, Dieter ;
Li, Jianning ;
Egger, Jan .
PROCEEDINGS OF 27TH ACM SYMPOSIUM ON VIRTUAL REALITY SOFTWARE AND TECHNOLOGY, VRST 2021, 2021,
[22]   Augmented reality for endoscopic sinus surgery with surgical navigation: a cadaver study [J].
Citardi, Martin J. ;
Agbetoba, Abib ;
Bigcas, Jo-Lawrence ;
Luong, Amber .
INTERNATIONAL FORUM OF ALLERGY & RHINOLOGY, 2016, 6 (05) :523-528
[23]   Evaluation Metrics for Augmented Reality in Neurosurgical Preoperative Planning, Surgical Navigation, and Surgical Treatment Guidance: A Systematic Review [J].
Kos, Tessa M. ;
Colombo, Elisa ;
Bartels, L. Wilbert ;
Robe, Pierre A. ;
van Doormaal, Tristan P. C. .
OPERATIVE NEUROSURGERY, 2024, 26 (05) :491-501
[24]   Augmented reality surgical navigation system based on the spatial drift compensation method for glioma resection surgery [J].
Zhou, Zeyang ;
Yang, Zhiyong ;
Jiang, Shan ;
Zhuo, Jie ;
Zhu, Tao ;
Ma, Shixing .
MEDICAL PHYSICS, 2022, 49 (06) :3963-3979
[25]   Augmented reality and artificial intelligence-assisted surgical navigation: Technique and cadaveric feasibility study [J].
Siemionow, Kris B. ;
Katchko, Karina M. ;
Lewicki, Paul ;
Luciano, Cristian J. .
JOURNAL OF CRANIOVERTEBRAL JUNCTION AND SPINE, 2020, 11 (02) :81-85
[26]   Development of a surgical navigation system based on augmented reality using an optical see-through head-mounted display [J].
Chen, Xiaojun ;
Xu, Lu ;
Wang, Yiping ;
Wang, Huixiang ;
Wang, Fang ;
Zeng, Xiangsen ;
Wang, Qiugen ;
Egger, Jan .
JOURNAL OF BIOMEDICAL INFORMATICS, 2015, 55 :124-131
[27]   An augmented reality surgical navigation system based on co-axial projection of surgical paths for open liver tumor surgery [J].
Chen, Long ;
Qiu, Tong ;
Ma, Li ;
Zhan, Wei ;
Zhang, Yu ;
Sun, Lining .
MEASUREMENT, 2024, 235
[28]   Augmented Reality Surgical Navigation in Minimally Invasive Spine Surgery: A Preclinical Study [J].
Huang, Xin ;
Liu, Xiaoguang ;
Zhu, Bin ;
Hou, Xiangyu ;
Hai, Bao ;
Yu, Dongfang ;
Zheng, Wenhao ;
Li, Ranyang ;
Pan, Junjun ;
Yao, Youjie ;
Dai, Zailin ;
Zeng, Haijun .
BIOENGINEERING-BASEL, 2023, 10 (09)
[29]   Frameless Patient Tracking With Adhesive Optical Skin Markers for Augmented Reality Surgical Navigation in Spine Surgery [J].
Burstrom, Gustav ;
Nachabe, Rami ;
Homan, Robert ;
Hoppenbrouwers, Jurgen ;
Holthuizen, Ronald ;
Persson, Oscar ;
Edstrom, Erik ;
Elmi-Terander, Adrian .
SPINE, 2020, 45 (22) :1598-1604
[30]   Augmented reality surgical navigation with ultrasound-assisted registration for pedicle screw placement: a pilot study [J].
Ma, Longfei ;
Zhao, Zhe ;
Chen, Fang ;
Zhang, Boyu ;
Fu, Ligong ;
Liao, Hongen .
INTERNATIONAL JOURNAL OF COMPUTER ASSISTED RADIOLOGY AND SURGERY, 2017, 12 (12) :2205-2215