首页> 外文会议>2011 8th IEEE International Symposium on Biomedical Imaging: From Nano to Macro >Automated cropping and artifact removal for knife-edge scanning microscopy
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Automated cropping and artifact removal for knife-edge scanning microscopy

机译:自动裁切和去除伪影,用于刀口扫描显微镜

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Knife Edge Scanning Microscopy (KESM) is a high-throughput imaging technique used to obtain large-scale anatomical information (≈1cm3) at sub-micrometer resolution. Data acquisition has been fully automated, however significant post-processing and reconstruction must be done manually. KESM is unique in that illumination and tissue sectioning are performed using a diamond knife. Therefore many of the physical forces applied to the knife (e.g., vibration, slip, and light refraction) manifest as image artifacts and must be removed in post-processing. In this paper, we propose a fully automated framework to extract valid data from imaged sections and remove lighting artifacts, allowing reconstruction of the volumetric structures in multiple terabyte-scale data sets.
机译:刀刃扫描显微镜(KESM)是一种高通量成像技术,用于在亚微米分辨率下获取大规模解剖信息(≈1cm 3 )。数据采集​​已完全自动化,但是必须手动进行大量的后处理和重建。 KESM的独特之处在于使用钻石刀进行照明和组织切片。因此,施加在刀上的许多物理力(例如,振动,滑动和光折射)表现为图像伪影,必须在后期处理中去除。在本文中,我们提出了一个全自动框架,可从成像部分提取有效数据并消除照明伪影,从而可以重建多个TB级数据集中的体积结构。

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