角膜地形图仪中基于USB2.0传输方式的成像系统设计与实现
Design and Implementation of Image System Based on USB2.0 Transmission Mode in Corneal Topography
DOI: 10.12677/OE.2016.63016, PDF, HTML, XML, 下载: 1,826  浏览: 3,913  科研立项经费支持
作者: 隋成华*, 韩勇浩*, 徐丹阳:浙江工业大学理学院,浙江 杭州
关键词: 角膜地形图仪图像采集传输USB2.0ICX445ALACPLDCorneal Topography Image Acquisition and Transmission USB2.0 ICX445ALA CPLD
摘要: 通过对USB2.0及1394接口数据传输的优缺点比较,结合角膜地形图仪图像采集传输的要求,设计了面阵CCD的驱动及USB2.0数据采集传输系统。在该系统中,选用Sony公司IXC445ALA面阵CCD作为系统图像采集的传感器,根据ICX445ALA的驱动时序要求,利用AD模数转换和CPLD的时序框架及单片机时序控制,实现了驱动电路的设计。针对单片机的USB2.0固件驱动,完成了USB2.0的数据输出。通过控制单片机的I/O口,实现了LED背光源的开闭、左右眼的自动判别及角膜图像的获取。最终检测表明,所获得的角膜图像清晰,USB2.0数据传输快速稳定,单片机辅助功能工作正常。较好地实现了角膜地形图仪中图像采集传输的要求。
Abstract: Through comparing the data transmission advantages and disadvantages of USB2.0 and 1394 in-terface, and combining the data acquisition and transmission requirement of corneal topography, the array CCD driver and USB2.0 data acquisition and transmission system was designed. In the system, Sony ICX445ALA array CCD was chosen as image sensor, according to the ICX445ALA drive timing characters requirements, using CPLD and AD timing framework and MCU timing control, the drivering circuit design was realized. According to MCU’s USB2.0 firmware driver, USB2.0 data output was completed. By controlling the I/O port of the MCU, the open and close of the LED backlight, the automatic discrimination of the left and right eyes and the acquisition of the corneal image were realized. The final test shows that the obtained corneal image is clear; the USB2.0 data transmission is fast and stable. The MCU auxiliary function is effective. It can achieve the requirements of image acquisition and transmission well in corneal topography.
文章引用:隋成华, 韩勇浩, 徐丹阳. 角膜地形图仪中基于USB2.0传输方式的成像系统设计与实现[J]. 光电子, 2016, 6(3): 113-120. http://dx.doi.org/10.12677/OE.2016.63016

参考文献

[1] 陈晓科, 隋成华, 童建平, 等. 角膜图像采集系统中的CCD驱动设计[J]. 仪表技术与传感器, 2012(6): 98-100.
[2] 郑浩, 隋成华, 王河林, 等. 角膜地形图仪中调焦函数的选取及搜索方法[J]. 光学仪器, 2013, 35(3): 25-31.
[3] 马徽冠, 谢培英, 唐琰. 角膜地形图仪分析的数学模型分类及其在圆锥角膜中的意义[J]. 眼视光学, 2008, 10(6): 477-480.
[4] 袁敏杰, 陈骥. 激光位移传感器中线阵CCD驱动方法的设计[J]. 光电子, 2015(4): 23-31.
[5] 王庆有. CCD应用技术[M]. 天津: 天津大学出版社, 2000.
[6] 邹自立, 隋成华, 陈晓明. 基于线阵CCD的色度学测量系统的构建及其算法[J]. 应用物理, 2013(3): 141-148.
[7] 李晓杰, 任建伟, 刘洪兴, 等. 面阵CCD光谱响应测试及不确定度评估[J]. 中国激光, 2014.
[8] 顾一, 叶炜, 许煜. 基于CPLD的面阵CCD驱动时序发生器设计[J]. 光学仪器, 2008: 30-36.
[9] 冉晓强, 汶德胜, 郑培云, 等. 基于CPLD的空间面阵CCD相机驱动时序发生器的设计与硬件实现[J]. 光子学报, 2007, 36(2): 364-367.
[10] 王磊, 童子权. 基于CPLD的面阵CCD驱动电路的设计[J]. 仪表技术与传感器, 66-68, 82.
[11] 罗朝霞, 高书莉. CPLD/FPGA设计及应用[M]. 北京: 人民邮电出版社, 2007.
[12] 李虹, 常丹华, 黄震. 基于USB接口的CCD数据采集系统[J]. 仪表技术与传感器, 2005(8): 56-58.
[13] Streubel, K., Linder, N., Wirth, R., et al. (2002) High Brightness AlGaInP Light-Emitting Diodes. Journal of Selected Topics in Quantum Electonics, 8, 321-332. http://dx.doi.org/10.1109/2944.999187
[14] Ball, C.P., Levick, A.P., et al. (2013) Effect of Polytetrafluoroethylene (PTEE) Phase Transition at 19˚C on the Use of Spectralon as a Reference Standard for Reflectance. Applied Optics, 52, 4806-4812.