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The Concept of an Artificial Neural Network for the Classification of Atheromous Plaques from Digitized Segmented Histological Images

机译:从数字化分段组织学图像分类的人工神经网络的概念

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This paper is dedicted to the concept of an artificial neural network (ANN) for the classification of atheromatous plaque based on digitized histological patterns of areas segmented by means of the Region Growing algorithm. For this purpose, a multi-layered feedforward ANN with supervised learning has been used to successfully classify the segmented areas accordingly. The first phase is focused to find an optimal method for image segmentation. The Region Growing algorithm allows us to separate continuously segmented regions. For each region, appropriate features are selected, which are put into the neural network. The goal of the ANN is to classify plaque patterns into four classes according to their features. The classes represent the following types of plaque: homogeneous, heterogeneous, calcified and that with a high ratio of fat.. Successful plaque classification will be a helpful tool for long-term clinical projects, e.g. investigation of plaque composition.
机译:本文在通过该区域生长算法分段的分段的数字化组织学模式,对人工神经网络(ANN)的概念作用于人工神经网络(ANN)的概念。为此目的,已经使用具有监督学习的多层前馈ANN,以相应地成功分类分段区域。第一阶段专注于找到图像分割的最佳方法。该区域生长算法允许我们分离连续分割区域。对于每个区域,选择适当的特征,将其放入神经网络中。 ANN的目标是根据其特征将斑块模式分为四个类别。该类代表以下类型的斑块:均匀,异质,钙化,具有高比例的脂肪。成功的斑块分类将是长期临床项目的有用工具,例如,斑块组成的研究。

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