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aiMRS: A feature extraction method from MRS signals based on artificial immune algorithms for classification of brain tumours

机译:AIMRS:基于人工免疫算法的MRS信号进行脑肿瘤分类的特征提取方法

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摘要

Precise diagnosis of brain tumour by experienced radiologists involves a complex set of processes including magnetic resonance imaging, magnetic resonance spectroscopy (MRS) data and histopathological evaluations. In this study, a new hybrid feature extraction method, called as aiMRS, based on the negative selection algorithm and clonal selection algorithm of artificial immune systems is developed on MRS data for the detection and classification of brain tumours. In the study, differentiation of benign and malignant brain tumours, classification of normal brain tissue and brain tumour, and detection of metastasis and primary brain tumours are performed with high precision using pattern recognition methods based on the proposed aiMRS method. According to the experimental results performed on a large data set created with the MRS data obtained from INTERPRET database, when the proposed feature extraction method applied, classification of normal brain tissue and brain tumours, benign and malignant brain tumours and metastasis and primary brain tumours is achieved with 100, 98.58 and 98.94% accuracy, respectively. These results show that this proposed system can be used as a secondary tool in physicians' decision-making processes for the classification of brain tumours.
机译:经验丰富的放射科医生精确诊断脑肿瘤涉及复杂的过程,包括磁共振成像,磁共振光谱(MRS)数据和组织病理学评估。在该研究中,基于人工免疫系统的负选择算法和基于人工免疫系统的克隆选择算法的新的混合特征提取方法称为AIMRS。在脑肿瘤的检测和分类的情况下,开发了一种人工免疫系统的负选择算法。在研究中,使用基于提议的AIMRS方法的模式识别方法,使用高精度进行良性和恶性脑肿瘤,正常脑组织和脑肿瘤的分类,以及转移和原发性脑肿瘤的检测。根据对使用从解释数据库获得的MRS数据产生的大数据集进行的实验结果,当拟议的特征提取方法应用时,正常脑组织和脑肿瘤的分类,良性和恶性脑肿瘤和转移和原发性脑肿瘤是达到100,98.58和98.94%的准确性。这些结果表明,该提出的系统可以用作医师的决策过程中的二级工具,用于脑肿瘤的分类。

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