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Super-resolution microscopy for biological specimens: lensless phase retrieval in noisy conditions

机译:生物样品的超分辨率显微镜:嘈杂条件下的无透镜相检索

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摘要

The paper is devoted to a computational super-resolution microscopy. A complex-valued wavefront of a transparent biological cellular specimen is restored from multiple intensity diffraction patterns registered with noise. For this problem, the recently developed lensless super-resolution phase retrieval algorithm [Optica, 4(7), 786 (2017) []] is modified and tuned. This algorithm is based on a random phase coding of the wavefront and on a sparse complex-domain approximation of the specimen. It is demonstrated in experiments, that the reliable phase and amplitude imaging of the specimen is achieved for the low signal-to-noise ratio provided a low dynamic range of observations. The filterings in the observation domain and specimen variables are specific features of the applied algorithm. If these filterings are omitted the algorithm becomes a super-resolution version of the standard iterative phase retrieval algorithms. In comparison with this simplified algorithm with no filterings, our algorithm shows a valuable improvement in imaging with much smaller number of observations and shorter exposure time. In this way, presented algorithm demonstrates ability to work in a low radiation photon-limited mode.
机译:本文致力于计算超分辨率显微镜。透明生物细胞标本的复数值波前是从记录有噪声的多个强度衍射图恢复的。针对此问题,对最近开发的无镜头超分辨率相位检索算法[Optica,4(7),786(2017)[]]进行了修改和调整。该算法基于波前的随机相位编码和样本的稀疏复域近似。实验证明,在低动态信噪比的情况下,低信噪比可实现标本的可靠相位和幅度成像。观察域中的过滤和样本变量是所应用算法的特定功能。如果省略这些过滤,则该算法将成为标准迭代相位检索算法的超分辨率版本。与没有过滤器的简化算法相比,我们的算法在成像方面表现出了宝贵的改进,观察次数更少,曝光时间更短。以这种方式,提出的算法证明了在低辐射光子限制模式下工作的能力。

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