Jeon Sangseo, Chien Jongho, Song Chanho, Hong Jaesung
Department of Robotics Engineering, DGIST, 333 Techno Jungang-daero, Hyeonpung-myeon, Dalseong-gun, Daegu, 42988, Republic of Korea.
Brain Topogr. 2018 Mar;31(2):174-185. doi: 10.1007/s10548-017-0610-y. Epub 2017 Dec 4.
Conventional methods for positioning electroencephalography electrodes according to the international 10/20 system are based on the manual identification of the principal 10/20 landmarks via visual inspection and palpation, inducing intersession variations in their determined locations due to structural ambiguity or poor visibility. To address the variation issue, we propose an image guidance system for precision electrode placement. Following the electrode placement according to the 10/20 system, affixed electrodes are laser-scanned together with the facial surface. For subsequent procedures, the laser scan is conducted likewise after positioning the electrodes in an arbitrary manner, and following the measurement of fiducial electrode locations, frame matching is performed to determine a transformation from the coordinate frame of the position tracker to that of the laser-scanned image. Finally, by registering the intra-procedural scan of the facial surface to the reference scan, the current tracking data of the electrodes can be visualized relative to the reference goal positions without manually measuring the four principal landmarks for each trial. The experimental results confirmed that use of the electrode navigation system significantly improved the electrode placement precision compared to the conventional 10/20 system (p < 0.005). The proposed system showed the possibility of precise image-guided electrode placement as an alternative to the conventional manual 10/20 system.
根据国际10/20系统定位脑电图电极的传统方法是基于通过视觉检查和触诊手动识别主要的10/20地标,由于结构模糊或可见性差,会导致其确定位置在不同检查之间存在差异。为了解决变异问题,我们提出了一种用于精确电极放置的图像引导系统。按照10/20系统放置电极后,将粘贴好的电极与面部表面一起进行激光扫描。对于后续程序,在以任意方式放置电极后同样进行激光扫描,并在测量基准电极位置后,进行帧匹配以确定从位置跟踪器的坐标框架到激光扫描图像的坐标框架的变换。最后,通过将面部表面的术中扫描与参考扫描配准,可以相对于参考目标位置可视化电极的当前跟踪数据,而无需在每次试验中手动测量四个主要地标。实验结果证实,与传统的10/20系统相比,使用电极导航系统显著提高了电极放置精度(p < 0.005)。所提出的系统显示了精确图像引导电极放置作为传统手动10/20系统替代方法的可能性。