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Automatic Segmentation of Intracranial Hematoma and Volume Measurement

机译:颅内血肿和体积测量的自动分割

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In this paper, a two-step segmentation method is developed for segmenting the hematoma area from brain CT images. The volume of hematoma area is calculated after the segmentation. During the second segmentation process, the method of two-dimensional entropy is introduced to separate hematoma. In using the method of two-dimensional entropy, most important is to find the optional threshold which can be achieved by an improved genetic algorithm (GA) i.e. hierarchical genetic algorithm (HGA). HGA is more efficient than simple GA in overcoming the shortcoming of standard GA in local optimal solution and low precision convergence. An experiment is designed to test the effectiveness of automatic segmentation. The results prove that the precision of automatic segmentation is better than artificial segmentation, and the clinical needs are met.
机译:在本文中,开发了两步分段方法,用于将血肿区域从脑CT图像分割。分段后计算血肿区域的体积。在第二分割过程中,引入了二维熵的方法以分离血肿。在使用二维熵的方法时,最重要的是找到通过改进的遗传算法(GA)I.E.分层遗传算法(HGA)可以实现的可选阈值。 HGA比简单的GA更有效,克服了局部最佳解决方案中标准GA的缺点和低精密收敛性。实验旨在测试自动分割的有效性。结果证明,自动分割的精度优于人工细分,达到临床需求。

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