Spatial frequency-based correction of the spherical aberration in living brain imaging.

Aoi Gohma, Naoya Adachi, Yasuo Yonemaru, Daiki Horiba, Kaori Higuchi, Daisuke Nishiwaki, Eiji Yokoi, Yoshihiro Ue, Atsushi Miyawaki, Hiromu Monai
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Abstract

Optical errors, including spherical aberrations, hinder high-resolution imaging of biological samples due to biochemical components and physical properties. We developed the Deep-C microscope system to achieve aberration-free images, employing a motorized correction collar and contrast-based calculations. However, current contrast-maximization techniques, such as the Brenner gradient method, inadequately assess specific frequency bands. The Peak-C method addresses this issue, but its arbitrary neighbor selection and susceptibility to the noise limit its effectiveness. In this paper, we emphasize the importance of a broad spatial frequency range for accurate spherical aberration correction and propose Peak-F. This spatial frequency-based system utilizes a fast Fourier transform as a bandpass filter. This approach overcomes Peak-C's limitations and comprehensively covers the low-frequency domain of image spatial frequencies.

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基于空间频率的活体脑成像球差校正。
由于生物化学成分和物理特性的影响,包括球差在内的光学误差阻碍了生物样本的高分辨率成像。我们开发了 Deep-C 显微镜系统,利用电动校正环和基于对比度的计算来实现无像差成像。然而,目前的对比度最大化技术,如布伦纳梯度法,对特定频段的评估不足。Peak-C 方法解决了这一问题,但其任意选择邻域和易受噪声影响的特性限制了其有效性。在本文中,我们强调了宽广的空间频率范围对准确校正球差的重要性,并提出了 Peak-F。这种基于空间频率的系统利用快速傅立叶变换作为带通滤波器。这种方法克服了 Peak-C 的局限性,全面覆盖了图像空间频率的低频域。
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