首页> 外文会议>Unconventional Optical Imaging Conference >Fourier ptychographic microscopy using Fresnel propagation with reduced number of images
【24h】

Fourier ptychographic microscopy using Fresnel propagation with reduced number of images

机译:使用菲涅耳传播的傅立叶指纹图谱显微镜,减少了图像数量

获取原文

摘要

High-throughput microscopy in the sense of large areas imaged at high-resolution demands costly hardware such as objective lenses with high numerical aperture and high sensitivity cameras, typically combined with lateral mechanical scanning of the sample. The field of view and the resolution of an imaging system depend strongly on the applied objective lens, with higher resolution coming at the cost of a smaller field of view. To address this limitation of conventional microscopes, both aperture synthesis and phase retrieval techniques are combined in the recent computational imaging approach of Fourier Ptychographic Microscopy (FPM). Gigapixel space-bandwidth product of FPM is obtained by combining low-resolution images obtained with illumination diversity through phase retrieval, which is facilitated by ensuring that the input images overlap in the Fourier domain. In practice, the illumination is achieved using one lamp at a time from an LED array. A drawback of FPM is that it requires long acquisition times and has significant computational cost. Here, we present a refined FPM procedure by using Fresnel propagation and reducing the number of exposures by multiplexing and symmetry considerations, thus slashing the amount of data and the processing time. The multiplexing strategy works by illuminating groups of three LEDs that are chosen from one-half plane of the LED array - an approach valid for pure amplitude samples. We have experimentally demonstrated that the FPM recovered image has approximately the same resolution as recovery based on one exposure from each of the LEDs.
机译:在高分辨率下成像的大面积意义上的高通量显微镜需要昂贵的硬件,例如具有高数值孔径的物镜和高灵敏度摄像头,通常与样品的横向机械扫描相结合。成像系统的视场和分辨率在很大程度上取决于所应用的物镜,而更高的分辨率则以较小的视场为代价。为了解决传统显微镜的这种局限性,在傅立叶色谱显微镜(FPM)的最新计算成像方法中结合了孔径合成和相位恢复技术。 FPM的千兆像素空带宽乘积是通过将通过相位检索获得的具有照明分集的低分辨率图像组合在一起而获得的,这可以通过确保输入图像在傅立叶域中重叠来实现。实际上,照明是一次使用来自LED阵列的一个灯来实现的。 FPM的一个缺点是它需要很长的获取时间,并且具有很大的计算成本。在这里,我们通过使用菲涅耳传播并通过多路复用和对称性考虑来减少曝光次数,从而提出了一种改进的FPM程序,从而大大减少了数据量和处理时间。多路复用策略通过照亮从LED阵列的一半平面中选择的三个LED的组来工作,这种方法对纯振幅样本有效。我们已通过实验证明,FPM恢复的图像具有与基于每个LED的一次曝光所恢复的分辨率大致相同的分辨率。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号