首页> 外国专利> SEGMENTING 3D INTRACELLULAR STRUCTURES IN MICROSCOPY IMAGES USING AN ITERATIVE DEEP LEARNING WORKFLOW THAT INCORPORATES HUMAN CONTRIBUTIONS

SEGMENTING 3D INTRACELLULAR STRUCTURES IN MICROSCOPY IMAGES USING AN ITERATIVE DEEP LEARNING WORKFLOW THAT INCORPORATES HUMAN CONTRIBUTIONS

机译:使用包含人类贡献的迭代深度学习工作流程,对显微图像中的3D细胞内结构进行分段

摘要

A facility for identifying the boundaries of 3-dimensional structures in 3-dimensional images is described. For each of multiple 3-dimensional images, the facility receives results of a first attempt to identify boundaries of structures in the 3-dimensional image, and causes the results of the first attempt to be presented to a person. For each of a number of 3-dimensional images, the facility receives input generated by the person providing feedback on the results of the first attempt. The facility then uses the following to train a deep-learning network to identify boundaries of 3-dimensional structures in 3-dimensional images: at least a portion of the plurality of 3-dimensional images, at least a portion of the received results, and at least a portion of provided feedback.
机译:描述了一种用于识别3维图像中的3维结构的边界的工具。对于多个3维图像中的每一个,设施接收识别3维图像中的结构的边界的第一次尝试的结果,并使第一次尝试的结果呈现给人。对于多个3D图像中的每个图像,设施接收由提供有关首次尝试结果的反馈的人员生成的输入。然后,该设施使用以下内容来训练深度学习网络,以识别3维图像中3维结构的边界:多个3维图像中的至少一部分,接收到的结果中的至少一部分以及提供的反馈的至少一部分。

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