首页> 外文期刊>Grana: An International Journal of Palynology and Aerobiology >Semi-automated segmentation of pollen grains in microscopic images: a tool for three imaging modes
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Semi-automated segmentation of pollen grains in microscopic images: a tool for three imaging modes

机译:显微图像中花粉粒的半自动分割:三种成像模式的工具

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Image analysis methods have the potential to increase the accuracy and rates of data collection in palynological research. Automated segmentation of pollen grains is a method that would facilitate image-based palynological analysis by creating large reference image libraries. We developed an executable for the automated segmentation and cropping of pollen grains from microscope images based on pixel intensity values. Our method works with images taken using transmitted-light, widefield-fluorescence, structured illumination (Apotome), and includes a novel approach for cropping the Apotome Z-stack. The system crops pollen grains from sampled fields of view with similar to 97% recall and similar to 97% precision for transmitted-light and widefield-fluorescence images, and similar to 90% recall and similar to 89% precision for Apotome fluorescence images. Results differed between different imaging wavelengths for fluorescence images, with Apotome images showing the greatest difference between red and green emission wavelengths. Recall in cropping of transmitted-light images was comparable to previous segmentation efforts.
机译:图像分析方法有可能提高孢粉研究中数据收集的准确性和速度。花粉粒的自动分割是一种通过创建大型参考图像库来促进基于图像的孢粉分析的方法。我们开发了一个可执行程序,用于基于像素强度值从显微镜图像中自动分割和修剪花粉粒。我们的方法适用于使用透射光,宽场荧光,结构化照明(Apotome)拍摄的图像,并且包括一种裁剪Apotome Z堆栈的新颖方法。该系统从采样的视场中播种花粉粒,对于透射光和宽场荧光图像,其召回率接近97%,精度接近97%,对于Apotome荧光图像,召回率接近90%,精确度达到89%。荧光图像的不同成像波长之间的结果有所不同,Apotome图像显示出红色和绿色发射波长之间的最大差异。召回的透射光图像裁剪与以前的分割工作相当。

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