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利用图像处理技术的瞳孔成像技术的发展。

Development of pupillography using image processing.

作者信息

Lee InBum, Choi Byunghun, Park Kwang Suk, Kim Sang Sik, Hwang Jeong-Min

机构信息

Department of Biomedical Engineering, Seoul National University College of Medicine, Seoul, Korea.

出版信息

Korean J Ophthalmol. 2005 Jun;19(2):149-52. doi: 10.3341/kjo.2005.19.2.149.

Abstract

PURPOSE

Pupillary examination is an important objective method to diagnose lesions of the anterior visual pathways. However, errors and faults may easily alter the interpretation and value of the test as it is highly dependent on the examiner's skills. Therefore, we tried to develop a pupillography which is independent of the examiner.

METHODS

Hardware composed of a binocularly measuring instrument adapted for an infrared charge coupled device (CCD) was developed. Two arrays of infrared light emitting diodes (LED) were supplied in front of each of the subject's eyes. A microcontroller to modulate these LED was developed, as was software to save and analyze the pupil images. The hardware was able to deliver a light to either eye or to both eyes, and to change the time, frequency, and intensity of the stimulus. The software automatically analyzed the pupil size and location by image processing. Pupil size was calculated continuously. After artifact elimination, the response amplitudes of the pupils were determined for the right and left pupils.

RESULTS

Pupillary images of size 320 x 240, at 30 frames/second, were saved and processed to evaluate the change of the actual pupil size and the velocity of pupillary response.

CONCLUSIONS

A pupillography to measure, save and analyze the pupillary response using image processing was developed. Further detailed clinical studies with a large number of patients will be required to validate this new method.

摘要

目的

瞳孔检查是诊断前视觉通路病变的重要客观方法。然而,由于该检查高度依赖检查者的技能,错误和失误可能很容易改变检查结果的解读及其价值。因此,我们试图开发一种独立于检查者的瞳孔描记法。

方法

开发了一种由适用于红外电荷耦合器件(CCD)的双目测量仪器组成的硬件。在受试者每只眼睛前方设置两排红外发光二极管(LED)。开发了一个用于调制这些LED的微控制器以及用于保存和分析瞳孔图像的软件。该硬件能够向单眼或双眼提供光线,并改变刺激的时间、频率和强度。软件通过图像处理自动分析瞳孔大小和位置。连续计算瞳孔大小。在消除伪影后,确定左右瞳孔的反应幅度。

结果

以每秒30帧的速度保存并处理大小为320×240的瞳孔图像,以评估实际瞳孔大小的变化和瞳孔反应速度。

结论

开发了一种利用图像处理来测量、保存和分析瞳孔反应的瞳孔描记法。需要对大量患者进行进一步详细的临床研究来验证这种新方法。

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