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具有5自由度眼部跟踪功能的机器人对准光学相干断层扫描,用于补偿受试者运动和注视。

Robotically aligned optical coherence tomography with 5 degree of freedom eye tracking for subject motion and gaze compensation.

作者信息

Ortiz Pablo, Draelos Mark, Viehland Christian, Qian Ruobing, McNabb Ryan P, Kuo Anthony N, Izatt Joseph A

机构信息

Department of Biomedical Engineering, Duke University, Durham, NC 27708, USA.

Department of Ophthalmology, Duke University, Durham, NC 27708, USA.

出版信息

Biomed Opt Express. 2021 Nov 8;12(12):7361-7376. doi: 10.1364/BOE.443537. eCollection 2021 Dec 1.

Abstract

Optical coherence tomography (OCT) has revolutionized diagnostics in ophthalmology. However, OCT requires a trained operator and patient cooperation to carefully align a scanner with the subject's eye and orient it in such a way that it images a desired region of interest at the retina. With the goal of automating this process of orienting and aligning the scanner, we developed a robot-mounted OCT scanner that automatically aligned with the pupil while matching its optical axis with the target region of interest at the retina. The system used two 3D cameras for face tracking and three high-resolution 2D cameras for pupil and gaze tracking. The tracking software identified 5 degrees of freedom for robot alignment and ray aiming through the ocular pupil: 3 degrees of translation and 2 degrees of orientation (, ). We evaluated the accuracy, precision, and range of our tracking system and demonstrated imaging performance on free-standing human subjects. Our results demonstrate that the system stabilized images and that the addition of gaze tracking and aiming allowed for region-of-interest specific alignment at any gaze orientation within a 28° range.

摘要

光学相干断层扫描(OCT)彻底改变了眼科诊断。然而,OCT需要训练有素的操作人员以及患者的配合,以便将扫描仪与受试者的眼睛仔细对准,并以这样一种方式进行定位,即对视网膜上所需的感兴趣区域进行成像。为了实现扫描仪定位和对准过程的自动化,我们开发了一种安装在机器人上的OCT扫描仪,它能在使自身光轴与视网膜上的目标感兴趣区域匹配的同时自动与瞳孔对准。该系统使用两个3D摄像头进行面部跟踪,三个高分辨率2D摄像头进行瞳孔和注视跟踪。跟踪软件确定了通过眼瞳进行机器人对准和光线瞄准的5个自由度:3个平移自由度和2个定向自由度(,)。我们评估了跟踪系统的准确性、精度和范围,并展示了在独立人体受试者上的成像性能。我们的结果表明,该系统稳定了图像,并且添加注视跟踪和瞄准功能可在28°范围内的任何注视方向上实现针对感兴趣区域的特定对准。

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