首页> 外文会议>Image reconstruction from incomplete data VI >Classification of cryo electron microscopy images, noisytomographic images recorded with unknown projectiondirections, by simultaneously estimating reconstructions andapplication to an assembly mutant of Cowpea ChloroticMottle Virus and po
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Classification of cryo electron microscopy images, noisytomographic images recorded with unknown projectiondirections, by simultaneously estimating reconstructions andapplication to an assembly mutant of Cowpea ChloroticMottle Virus and po

机译:冷冻电子显微镜图像的分类,通过未知投影 r n方向记录的嘈杂 r n断层扫描图像,同时评估重建和 r n应用到Cow豆绿藻病毒 r n斑驳病毒和po

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摘要

Cryo electron microscopy is frequently used on biological specimens that show a mixture of different types of object. Because the electron beam rapidly destroys the specimen, the beam current is minimized which leads to noisy images (SNR substantially less than 1) and only one projection image per object (with an unknown projection direction) is collected. For situations where the objects can reasonably be described as coming from a finite set of classes, an approach based on joint maximum likelihood estimation of the reconstruction of each class and then use of the reconstructions to label the class of each image is described and demonstrated on two challenging problems: an assembly mutant of Cowpea Chlorotic Mottle Virus and portals of the bacteriophage P22.
机译:低温电子显微镜常用于显示不同类型物体混合的生物样本。由于电子束会迅速破坏标本,因此将束流最小化,这会导致产生噪点图像(SNR基本上小于1),并且每个对象(投影方向未知)仅收集一个投影图像。对于可以合理地将对象描述为来自一组有限的类的情况,将描述并演示一种方法,该方法基于对每个类的重构进行联合最大似然估计,然后使用重构来标记每个图像的类。两个具有挑战性的问题:Cow豆绿斑驳病毒的装配突变体和噬菌体P22的门户。

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