用于骨龄评估的手骨分类

Ahmad T. Al-Taani, I. Ricketts, A. Cairns
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引用次数: 30

摘要

本文提出了一种基于点分布模型(PDM)的手足骨图像儿童发育阶段分类新方法。该方法包括两个阶段:训练阶段和分类阶段。在训练期间,从每个类的骨头的例子被收集,以便每个类的允许形状变形被学习。生成一个表示每个类的模型。这些模型随后被用于对新的骨骼样本进行分类。在分类过程中,将所有模型与输入图像进行比较,并将对象分配给模型最接近匹配的类。使用120张第三远端和中间指骨的图像获得的实验结果表明,该方法可以将这些骨骼分类到适当的成熟阶段。
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Classification of hand bones for bone age assessment
This paper presents a new approach to classifying bones of the hand-wrist images into pediatric stages of maturity using point distribution models (PDM). The method consists of two phases: the training phase and the classification phase. During training, examples of bones from each class are collected so that the allowable shape deformations for each class are learnt. A model representing each class is generated. These models are subsequently used to classify new examples of the bones. During classification all models are compared to the input image and the object is assigned to the class whose model is the closest match. Experimental results obtained using 120 images of the third distal and middle phalanxes showed the usefulness of the method for classifying these bones into their proper stages of maturity.
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