首页> 外文会议>Conference on Optomechatronic Systems Ⅱ Oct 29-31, 2001, Newton, USA >3D image reconstruction using optical sectioning in confocal scanning microscopy
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3D image reconstruction using optical sectioning in confocal scanning microscopy

机译:共焦扫描显微镜中使用光学切片的3D图像重建

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Confocal scanning microscopy (CSM) has been used in biological application, materials science, semiconductor quality measurement and other non-destructive microscopic application. Small spot of light illuminates a sample, and a small detector that is ideally a point detector collects the reflected or transmitted light having the information of specimen. An image distribution can be reconstructed by a correlation analysis of spots with the high bandwidth. The mechanism for two-dimensional beam scanning and optical sectioning has an important role in CSM as the three-dimensional profiler. The parasitic motion of focus on the detector gives rise to the fatal distortion of an image profile named the extinction effect while using acousto-optical (AO) deflector. We propose the progressive methods for the high quality image as the following. At first, for having the corrected image, small spot and long scan range, this paper shows that the optimal design having the multi-objects can be used by choosing the unitary lens device in CSM. At second, in order to compensate for the intensity cancellation at the end profile that may be the cause of waviness for the optical image, this paper shows that it is efficient to schedule the frequency of scan. According to characteristics of the extinction curve and axial/lateral response having the error property, we can define the frequency and sensitivity of as their robustness. Finally, the axial response gives an important motive for the optical section, and the limit of object depth. The edge enhancement may be a fatal defeat to the reconstruction of image and sensitive to the conditions of specimen such as slope, irregular reflectivity, shape, etc. That means that the intensity profile for the open loop scanning method should be matched with its response to a perfect mirror as specimen, which can be minimized with the optical sectioning or the optical probe of the closed loop control.
机译:共聚焦扫描显微镜(CSM)已用于生物应用,材料科学,半导体质量测量和其他非破坏性显微镜应用。一小束光照亮了样品,理想的是一个点检测器的小检测器收集反射的或透射的具有样品信息的光。可以通过对具有高带宽的斑点进行相关性分析来重建图像分布。二维光束扫描和光学切片的机制在CSM中作为三维轮廓仪具有重要作用。当使用声光(AO)偏转器时,检测器上聚焦的寄生运动会引起称为消光效应的图像轮廓的致命畸变。我们提出以下用于高质量图像的渐进方法。首先,为了获得校正后的图像,较小的斑点和较长的扫描范围,本文表明,通过在CSM中选择单一透镜设备,可以使用具有多目标的最佳设计。其次,为了补偿可能导致光学图像起伏的最终轮廓上的强度消除,本文显示了安排扫描频率是有效的。根据消光曲线的特性和具有误差特性的轴向/横向响应,我们可以将频率和灵敏度定义为它们的鲁棒性。最后,轴向响应为光学部分和物体深度的限制提供了重要动力。边缘增强可能是图像重建的致命失败,并且对标本的条件(例如倾斜度,不规则反射率,形状等)敏感。这意味着开环扫描方法的强度曲线应与其响应相匹配。完美的镜子作为样品,可以通过闭环控制的光学切片或光学探头将其最小化。

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