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Comprehensive Review of Abdominal Image Segmentation using Soft and Hard Computing Approaches

机译:使用软和硬计算方法全面回顾腹部图像分割

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Medical image segmentation is the method of partitioning a medical image obtained from different modalities such as CT (Computed Tomography), MRI (Magnetic Resonance Imaging) into its constituent’s regions. Now a day, an automated system for segmentation plays a vital role in quick diagnosis and treatment planning by the radiologists. As the abdominal image dataset is having multiple organs such as kidney, liver, aorta, spleen and many more, so the accurate segmentation of different organs is a challenging issue. Though, there are several number of techniques based on soft and hard computing approaches have been developed for multiple organ segmentation from the abdominal image dataset. Still, accurate and efficient segmentation of different organs draws the attention of the researchers around the world. This paper provides a detailed review of hard and soft computing approaches by the analysis of techniques, preprocessing procedure, observation, advantages and disadvantages of the different current literatures of abdominal image segmentation. By referring to this paper, researchers can easily quick review the recent most cited papers based on abdominal image segmentation.
机译:医学图像分割是将通过不同方式(例如CT(计算机断层扫描),MRI(磁共振成像))获得的医学图像划分为其组成部分的方法。如今,自动分割系统在放射科医生的快速诊断和治疗计划中起着至关重要的作用。由于腹部图像数据集具有多个器官,例如肾脏,肝脏,主动脉,脾脏等,因此不同器官的准确分割是一个具有挑战性的问题。但是,已经开发了多种基于软和硬计算方法的技术,用于从腹部图像数据集中进行多器官分割。尽管如此,对不同器官的准确而有效的分割仍引起了世界各地研究人员的关注。本文通过对当前腹部图像分割的不同文献的技术,预处理程序,观察,优缺点的分析,对硬和软计算方法进行了详细的回顾。通过参考本文,研究人员可以轻松地快速查看基于腹部图像分割的最近被引用最多的论文。

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