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Automatic Segmentation Framework for Fluorescence in Situ Hybridization Cancer Diagnosis

机译:荧光自动分割框架原位杂交癌诊断

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In this paper we address a problem of HER2 and CEN-17 reactions detection in fluorescence in situ hybridization images. These images are very often used in situation where typical biopsy examination is not able to provide enough information to decide on the type of treatment the patient should undergo. Here the main focus is placed on the automatization of the procedure. Using an unsupervised neural network and principal component analysis, we present a segmentation framework that is able to keep the high segmentation accuracy. For comparison purposes we test the neural network approach against an automatic threshold method.
机译:本文在原位杂交图像中解决了荧光中的HER2和CEN-17反应检测的问题。这些图像通常通常用于典型的活检检查无法提供足够的信息来决定患者应经历的治疗类型。这里主要重点放在程序的自动化上。使用无监督的神经网络和主成分分析,我们提出了一种能够保持高分割精度的分段框架。为了比较目的,我们测试神经网络方法以自动阈值方法。

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