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用于光声远程感应的快速高分辨率镶嵌采集。

Rapid High-Resolution Mosaic Acquisition for Photoacoustic Remote Sensing.

机构信息

PhotoMedicine Labs, Department of Systems Design Engineering, University of Waterloo, Waterloo, ON N2L 3G1, Canada.

IllumiSonics Inc., Department of Systems Design Engineering, University of Waterloo, Waterloo, ON N2L 3G1, Canada.

出版信息

Sensors (Basel). 2020 Feb 14;20(4):1027. doi: 10.3390/s20041027.

Abstract

Mechanical stages are routinely used to scan large expanses of biological specimens in photoacoustic imaging. This is primarily due to the limited field of view (FOV) provided by optical scanning. However, stage scanning becomes impractical at higher scanning speeds, or potentially unfeasible with heavier samples. Also, the slow scan-rate of the stages makes high resolution scanning a time-consuming process. Some clinical applications such as microsurgery require submicron resolution in a reflection-mode configuration necessitating a method that can acquire large field of views with a small raster scanning step size. In this study, we describe a method that combines mechanical stages with optical scanning for the rapid acquisition of high-resolution large FOVs. Optical scanning is used to acquire small frames in a two-dimensional grid formed by the mechanical stages. These frames are captured with specific overlap for effective image registration. Using a step size of 200 nm, we demonstrate mosaics of carbon fiber networks with FOVs of 0.8 × 0.8 mm captured in under 70 s with 1.2 µm image resolution. Larger mosaics yielding an imaging area of 3 × 3 mm are also shown. The method is validated by imaging a 1 × 1 mm section of unstained histopathological human tissue.

摘要

机械台通常用于在光声成象中扫描生物标本的大区域。这主要是由于光学扫描提供的有限视场(FOV)。然而,在较高的扫描速度下,或者对于较重的样本,台扫描变得不切实际。此外,台的缓慢扫描速率使得高分辨率扫描成为一个耗时的过程。一些临床应用,如微创手术,需要在反射模式配置下达到亚微米分辨率,这就需要一种能够以小的光栅扫描步长获取大视场的方法。在这项研究中,我们描述了一种结合机械台和光学扫描的方法,用于快速获取高分辨率大视场。光学扫描用于在机械台形成的二维网格中获取小帧。这些帧以特定的重叠进行捕获,以实现有效的图像配准。使用 200nm 的步长,我们演示了碳纤维网络的马赛克,其 FOV 为 0.8×0.8mm,在 1.2µm 的图像分辨率下,在不到 70s 的时间内捕获。还展示了更大的马赛克,其成像面积为 3×3mm。该方法通过对未经染色的人体组织的 1×1mm 切片进行成像得到验证。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4cd4/7071083/d6e05728c6e9/sensors-20-01027-g001.jpg

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