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首页> 外文期刊>International journal of biomedical imaging >Automated Segmentation and Object Classification of CT Images: Application toIn VivoMolecular Imaging of Avian Embryos
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Automated Segmentation and Object Classification of CT Images: Application toIn VivoMolecular Imaging of Avian Embryos

机译:CT图像的自动分割和目标分类:在禽胚胎体内分子成像中的应用

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Background. Although chick embryogenesis has been studied extensively, there has been growing interest in the investigation of skeletogenesis. In addition to improved poultry health and minimized economic loss, a greater understanding of skeletal abnormalities can also have implications for human medicine. Truein vivostudies require noninvasive imaging techniques such as high-resolution microCT. However, the manual analysis of acquired images is both time consuming and subjective.Methods. We have developed a system for automated image segmentation that entails object-based image analysis followed by the classification of the extracted image objects. For image segmentation, a rule set was developed using Definiens image analysis software. The classification engine was implemented using the WEKA machine learning tool.Results. Our system reduces analysis time and observer bias while maintaining high accuracy. Applying the system to the quantification of long bone growth has allowed us to present the first truein ovodata for bone length growth recorded in the same chick embryos.Conclusions. The procedures developed represent an innovative approach for the automated segmentation, classification, quantification, and visualization of microCT images. MicroCT offers the possibility of performing longitudinal studies and thereby provides unique insights into the morpho- and embryogenesis of live chick embryos.
机译:背景。尽管对鸡的胚胎发生进行了广泛的研究,但对骨骼发生的研究却越来越引起人们的兴趣。除了改善家禽健康和减少经济损失外,对骨骼异常的更多了解也可能对人类医学产生影响。 Truein体内研究需要无创成像技术,例如高分辨率microCT。但是,手动分析获取的图像既费时又主观。我们已经开发了一种自动图像分割系统,该系统需要基于对象的图像分析,然后对提取的图像对象进行分类。对于图像分割,使用Definiens图像分析软件开发了规则集。分类引擎是使用WEKA机器学习工具实现的。我们的系统在保持高精度的同时减少了分析时间和观察者偏差。将系统应用于长骨生长的定量分析,使我们能够呈现出在同一只鸡胚中记录的第一个真正的卵长数据。开发的程序代表了一种用于microCT图像的自动分割,分类,量化和可视化的创新方法。 MicroCT提供了进行纵向研究的可能性,从而提供了对活鸡胚形态和胚胎发生的独特见解。

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