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Axial resolution performances of Gaussian beam with pupil filters

机译:带光瞳滤波器的高斯光束的轴向分辨率性能

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Pupil filters designed to overcome the resolution limits imposed by diffraction imaging systems have been the aim of many research efforts. A great number of previous efforts have been chiefly focused on improving the resolving capacity of imaging systems such as optical pickups and laser printers in the transverse direction while a low number of publications have been addressed to achieve super-resolution along the axial direction. However, when dealing with imaging systems in which optical sectioning is important there is of great interest to improve the axial resolution. The high depth-discrimination feature allows the formation of three-dimensional images by sectioning only a thin slice of a sample at a time. Presently, most super-resolution performances based on the pupil filters are analyzed by the assumpran that the incident beam of the imaging system is Uniform amplitude beam. However, from a practical perspective, the incident beam from a laser is a Gaussian beam with a Gaussian field amplitude distribution. The focusing lens cannot be overfilled and the spot size will tend to be larger. Therefore, it is necessary to research the axial resolution performances of Gaussian beam. In this work, we assume the incident beam of the imaging system is Gaussian beam and theoretically investigate the axial intensity point spread function (PSF) of Gaussian beam with the specified pupil filters. As our previous work, several parameters such as the Strehl ratio, the axial super-resolving gain and side-lobe to peak intensity ratio are introduced to describe the super-resolution performance. The Strehl ratio S is a relevant parameter for analyzing image quality and is defined as the ratio of the intensity at the focal point to that corresponding to an unobstructed pupil. The axial super-resolving gain GA gives a measure of the super-resolution performance in the axial direction and is defined as the ratio between the first minimum of the super-resolution pattern-- and the first minimum of the clear pupil pattern. In a particular direction, a filter is super-resolving when the corresponding gain is greater than unity and it is an apodizer when the corresponding gain is lower than unity. The side-lobe to peak intensity ratio M is to evaluate the impact of the side-lobe on the central-lobe and is given by the maximum intensity of side-lobes to the intensity of central peak.
机译:为了克服衍射成像系统所施加的分辨率限制而设计的瞳孔过滤器已经成为许多研究工作的目标。先前的许多努力主要集中在提高成像系统(例如光学拾取器和激光打印机)在横向方向上的分辨能力上,而解决了很少的出版物以在轴向方向上实现超分辨率。但是,在处理光学截面很重要的成像系统时,对提高轴向分辨率非常感兴趣。高深度区分功能允许通过一次仅对样品的薄片进行切片来形成三维图像。当前,通过假设成像系统的入射光束是均匀振幅光束来分析基于瞳孔滤波器的大多数超分辨率性能。然而,从实际的角度来看,来自激光器的入射光束是具有高斯场振幅分布的高斯光束。聚焦透镜不能装满,并且光斑尺寸会变大。因此,有必要研究高斯光束的轴向分辨率性能。在这项工作中,我们假设成像系统的入射光束是高斯光束,并且在理论上使用指定的光瞳滤镜研究了高斯光束的轴向强度点扩展函数(PSF)。作为我们以前的工作,介绍了几个参数,例如Strehl比,轴向超分辨增益和旁瓣峰强度比,以描述超分辨率性能。斯特列尔比S是用于分析图像质量的相关参数,并且被定义为焦点处的强度与对应于通畅的瞳孔的强度之比。轴向超分辨率增益G A 给出了轴向超分辨率性能的度量,并定义为超分辨率图案的第一个最小值与 -- 以及清晰瞳孔图案的第一个最小值。在特定方向上,当相应的增益大于1时,滤波器是超分辨的;当相应的增益小于1时,滤波器是切趾器。旁瓣与峰值的强度比M用于评估旁瓣对中心瓣的影响,并由旁瓣的最大强度表示为中心峰值的强度。

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