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超高速相机中的转像机构 被引量:1
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作者 谭显祥 李剑 《光子学报》 EI CAS CSCD 2000年第Z01期47-50,共4页
转镜式超高速相机中增配了别汉棱镜转像机构后,对光学系统像差计算结果表明:相机的成像质量不受影响,甚至略有改善。鉴于转像机构在相机使用中带来的种种方便,提出了把棱镜转像机构作为相机固定组成部分的建议。特别是当高速分幅相... 转镜式超高速相机中增配了别汉棱镜转像机构后,对光学系统像差计算结果表明:相机的成像质量不受影响,甚至略有改善。鉴于转像机构在相机使用中带来的种种方便,提出了把棱镜转像机构作为相机固定组成部分的建议。特别是当高速分幅相机中配置棱镜转像机构后,可以充分利用相机的最高空间分辨方向,从而成倍地提高相机的时间分辨本领。 展开更多
关键词 爆轰实验 转像机构 超高速相机 像差计算 最高分辨方向
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开设光学系统设计CAI实验的做法和体会 被引量:1
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作者 陈小燕 《实验室研究与探索》 CAS 1999年第1期46-48,共3页
计算机辅助教学(CAI)是现代化教学手段的重要组成部分。阐述了开设光学系统设计CAI实验的目的、意义和做法,并结合实例介绍了设计光学系统CAI软件的过程、功能和特点。
关键词 计算机辅助教学 光学系统 光路追迹 像差计算
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Length-Based Vehicle Classification in Multi-lane Traffic Flow 被引量:1
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作者 于洋 于明 +1 位作者 阎刚 翟艳东 《Transactions of Tianjin University》 EI CAS 2011年第5期362-368,共7页
For the realtime classification of moving vehicles in the multi-lane traffic video sequences, a length-based method is proposed. To extract the moving regions of interest, the difference image between the updated back... For the realtime classification of moving vehicles in the multi-lane traffic video sequences, a length-based method is proposed. To extract the moving regions of interest, the difference image between the updated background and current frame is obtained by using background subtraction, and then an edge-based shadow removal algorithm is implemented. Moreover, a tbresholding segmentation method for the region detection of moving vehicle based on lo- cation search is developed. At the estimation stage, a registration line is set up in the detection area, then the vehicle length is estimated with the horizontal projection technique as soon as the vehicle leaves the registration line. Lastly, the vehicle is classified according to its length and the classification threshold. The proposed method is different from traditional methods that require complex camera calibrations. It calculates the pixel-based vehicle length by using uncalibrated traffic video sequences at lower computational cost. Furthermore, only one registration line is set up, which has high flexibility. Experimental results of three traffic video sequences show that the classification accuracies for the large and small vehicles are 97.1% and 96.7% respectively, which demonstrates the effectiveness of the proposed method. 展开更多
关键词 image processing background subtraction vehicle classification virtual line horizontal projection
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