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首页> 外文期刊>IEEE Transactions on Medical Imaging >Model-Based Classification Methods of Global Patterns in Dermoscopic Images
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Model-Based Classification Methods of Global Patterns in Dermoscopic Images

机译:基于模型的皮肤图像整体模式分类方法

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摘要

In this paper different model-based methods of classification of global patterns in dermoscopic images are proposed. Global patterns identification is included in the pattern analysis framework, the melanoma diagnosis method most used among dermatologists. The modeling is performed in two senses: first a dermoscopic image is modeled by a finite symmetric conditional Markov model applied to $L^{ast}a^{ast}b^{ast}$ color space and the estimated parameters of this model are treated as features. In turn, the distribution of these features are supposed that follow different models along a lesion: a Gaussian model, a Gaussian mixture model, and a bag-of-features histogram model. For each case, the classification is carried out by an image retrieval approach with different distance metrics. The main objective is to classify a whole pigmented lesion into three possible patterns: globular, homogeneous, and reticular. An extensive evaluation of the performance of each method has been carried out on an image database extracted from a public Atlas of Dermoscopy. The best classification success rate is achieved by the Gaussian mixture model-based method with a 78.44% success rate in average. In a further evaluation the multicomponent pattern is analyzed obtaining a 72.91% success rate.
机译:在本文中,提出了基于模型的皮肤镜图像整体模式分类的不同方法。模式分析框架中包括全局模式识别,这是皮肤科医生最常用的黑色素瘤诊断方法。建模从两种意义上进行:首先,将皮肤镜图像通过应用于$ L ^ {ast} a ^ {ast} b ^ {ast} $颜色空间的有限对称条件马尔可夫模型进行建模,并且该模型的估计参数为视为功能。反过来,这些特征的分布被假定为沿着病灶遵循不同的模型:高斯模型,高斯混合模型和特征包直方图模型。对于每种情况,通过具有不同距离度量的图像检索方法进行分类。主要目的是将整个色素病变分为三种可能的模式:球状,均质和网状。从公开的皮肤镜检图集提取的图像数据库已对每种方法的性能进行了广泛的评估。最佳分类成功率是通过基于高斯混合模型的方法获得的,平均成功率为78.44%。在进一步评估中,分析了多组件模式,获得了72.91%的成功率。

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