头部磁共振图像三维表面重建的性能分析

R. Preetha, G. Suresh
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引用次数: 2

摘要

在MRI图像中,脑组织的边界是高度弯曲和不规则的。这种脑组织的三维重建是复杂的。表面重建是医学影像学的一个分支领域,它为研究和诊断脑相关疾病提供了一种有效的方法。三维表面重建的基本目的是精确分析脑图像,以便有效地诊断和检查疾病,为手术计划和肿瘤定位提供依据。肿瘤图像的重建是处理这些图像的目的。本文就现有表面重建方法在临床应用中的优缺点作一简要综述。传统的基于立方体的算法通过形成虚拟立方体来提取表面,然后确定需要的多边形来表示穿过该立方体的等边面的部分。但是,它需要后期处理,并且需要更多的计算时间来重建。他们也不能提供正确性的证明。免疫球形支持向量机(ISSSVM)等基于向量机的算法将高度不规则的对象转换成高维特征空间,构造出尽可能紧凑的超球,几乎包住了所有目标对象。结果表明,该方法无需后处理就能有效地重建脑组织的不规则边界,优于基于立方体的算法。它还可以更准确地提供其正确性的证明。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance analysis on three dimensional surface reconstruction of head magnetic resonance images
In MRI images, the boundary of an encephalic tissue is highly curved and irregular. Three dimensional reconstruction of such encephalic tissue is complicated. The surface reconstruction is the sub-field of Medical imaging which provides an effective way to investigate and determine brain related diseases in an efficient and effective manner. The basic purpose of 3-D surface reconstruction is to analyze the brain images precisely in order to effectively diagnose and examine the diseases for surgical planning and tumor localization. Reconstruction of tumor images is the goal in dealing with these images. In this paper, a brief overview is given on the advantages and disadvantages of existing surface reconstruction methods in clinical applications. The traditional cube based algorithms extracts the surface by forming imaginary cube and then determines the polygons needed to represent the part of the isosurface that passes through this cube. But, it requires post processing and needs more Computational time for reconstruction. Also they cannot provide the proof of correctness. The vector machine based algorithms like Immune Sphere Shaped Support Vector Machine (ISSSVM) transforms the highly irregular object into the high dimensional feature space and construct the hyper-sphere as compact as possible which encloses almost all the target object. This paper concludes that ISSSVM can outperform the cube based algorithm by reconstructing the irregular boundaries of the encephalic tissue efficiently without post processing. It can also provide its proof of correctness with greater accuracy.
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