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首页> 外文期刊>IEEE Transactions on Medical Imaging >Segmentation, registration, and measurement of shape variation via image object shape
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Segmentation, registration, and measurement of shape variation via image object shape

机译:通过图像对象形状分割,配准和测量形状变化

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摘要

A model of object shape by nets of medial and boundary primitives is justified as richly capturing multiple aspects of shape and yet requiring representation space and image analysis work proportional to the number of primitives. Metrics are described that compute an object representation's prior probability of local geometry by reflecting variabilities in the net's node and link parameter values, and that compute a likelihood function measuring the degree of match of an image to that object representation. A paradigm for image analysis of deforming such a model to optimize a posteriori probability is described, and this paradigm is shown to be usable as a uniform approach for object definition, object-based registration between images of the same or different imaging modalities, and measurement of shape variation of an abnormal anatomical object, compared with a normal anatomical object. Examples of applications of these methods in radiotherapy, surgery, and psychiatry are given.
机译:通过中间和边界图元的网络建立对象形状模型的理由是,它可以丰富地捕获形状的多个方面,但需要与图元数量成比例的表示空间和图像分析工作。描述了通过反映网络节点和链接参数值的变化来计算对象表示形式的本地几何先验概率,以及计算似然函数的度量,该似然函数测量图像与该对象表示形式的匹配度。描述了用于使这种模型变形以优化后验概率的图像分析的范例,并且该范例显示为可用作对象定义,相同或不同成像模态的图像之间的基于对象的配准以及测量的统一方法。与正常解剖对象相比,异常解剖对象的形状变化的变化。给出了这些方法在放射治疗,手术和精神病学中的应用实例。

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