[1]

[1] KIM C J, WYANT J C. Subaperture test of a large flat on a fast spherical surface[J]. Opt. Soc. Am., 1981, 71:15-87.
[2] 侯溪, 伍凡, 杨力, 等. 子孔径拼接干涉测试技术现状及发展趋势[J]. 光学与光电技术, 2005, 3(3):50-53. HOU X, WU F, YANG L, et al. Status and development t rend of sub-aperture stitching interferometric testing technique[J]. Opt. Optoelectronic Technology, 2005, 3(3):50-53.(in Chinese)
[3] CHEN SH Y, DAI Y F. Error reductions for stitching test of large optical flats[J]. Opt. Laser Technology, 2012, 44(5):1543-1550.
[4] CHEN SH Y, LIAO W L. Self-calibrated subaperture stitching test of hyper-hemispheres using latitude and longitude coordinates[J]. Optical Society America, 2012, 51(17):3817-3825.
[5] 张鹏飞, 赵宏, 周翔, 等. 采用立体视觉实现子孔径拼接测量的工件定位[J]. 光学 精密工程, 2010, 18(2):503-511. ZHANG P F, ZHAO H, ZHOU X, et al. Work-piece localization in sub-aperture stitching test based on stereo vision[J]. Opt. Precision Eng., 2010, 18(2):503-511.(in Chinese).
[6] 汪利华, 吴时彬, 任戈, 等. 子孔径拼接检测光学系统波前机械定位误差补偿算法[J]. 光学学报, 2012, 32(1):113-118. WANG L H, WU SH B, REN G, et al. Location error compensation algorithm for measure optical system wave front[J]. Acta Optica Sinica, 2012, 32(1):113-118.(in Chinese)
[7] 王孝坤, 王丽辉, 邓伟杰, 等. 用非零位补偿法检测大口径非球面反射镜[J]. 光学 精密工程, 2011, 19(3):520-528. WANG X K, WANG L H, DENG W J, et al. Measurement of large aspheric mirrors by non-null testing[J]. Opt. Precision Eng., 2011, 19(3):520-528.(in Chinese).
[8] 陈一巍, 王飞, 王高文, 等. 基于变换的子孔径拼接新算法[J]. 光学学报, 2013, 33(9):0912004. CHEN Y W, WANG F, WANG G W, et al. New sub-aperture stitching algorithm based on transformation[J]. Acta Optica Sinica, 2013, 33(9):0912004.(in Chinese)
[9] ROLAND M, FLORIAN S, CHRISTIAN V, et al. Physical marker based stitching process of circular and non-circular interferograms[J]. SPIE, 2011, 8083:80830Q.
[10] LIN P C, CHEN Y A, CHANG H SH, et al. Aberration compensation and position scanning of a subaperture stitching algorithm[J]. SPIE, 2012, 8494:84940L.
[11] 许策, 马杰, 赵全明, 等. 改进的圆形标志亚像素级中心检测方法[J]. 计算机工程, 2013, 39(1):217-220. XU C, MA J, ZHAO Q M, et al. Improved method of sub-pixel centre detection in circle mark[J]. Computer Engineering, 2013, 39(1):217-220.(in Chinese)
[12] CANNY J F. A computational approach to edge detection[J]. IEEE Trans, Pattern Analysis and Machine Intelligence, 1986, 8(6):679-698.
[13] YANG J, ZHANG Q. An improved Canny edge detection algorithm combined with steering kernel regression[J]. SPIE, 2013, 8768:87687L.
[14] 薛丽霞, 李涛, 王佐成. 一种自适应的Canny 边缘检测算法[J]. 计算机应用研究, 2010, 27(90):3588-3590. XUE L X, LI T, WANG Z CH. Adaptive Canny edge detection algorithm[J]. Appl. Res. Computers, 2010, 27(90):3588-3590.(in Chinese)
[15] 殷永凯, 刘晓利, 李阿蒙, 等. 圆形标志点的亚像素定位及其应用[J]. 红外与激光工程, 2008, 37(增刊):47-50. YIN Y K, LIU X L, LI A M, et al. Sub-pixel location of circle target and its application[J]. Infrared and Laser Engineering, 2008, 37(Supp.):47-50.(in Chinese)
[16] HARALICK R M. Digital step edges from zero crossing of second directional derivatives[J]. IEEE Trans, Pattern Analysis and Machine Intelligence, 1984, 6(1):58-68.
[17] DONALD G, GREG F, PAUL M. Method for selfcalibrated subaperture stitching for surface figure measurement:USA, 69566572B2[P].2005.