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Hybrid Method for brain extraction and MRI scan classification

International Journal of Engineering & Technology • 2018
العودة
معلومات البحث
المؤلفون Moatasem M. Elsayed, Abeer. T Khalil, Tamer O. Diab, Ashraf S. Mohra
الكلمات المفتاحية Brain Tumor; Histogram Processing; Morphological Operations; MRI Scan Classification; Segmentation.
المجلة العلمية International Journal of Engineering & Technology
الناشر Not Available
المجلد 7
العدد 4
الصفحات 4769-4779
publication.type International
رابط البحث Not Available
المواد المرفقة Not Available
الملخص
A brain tumor is one of the most devastating diseases. Early detection of brain tumor is a life-saving act. Magnetic Resonance Imaging (MRI) is one of the main techniques to detect brain tumor for diagnosis and treatment. Although there are numerous methods for brain tumor segmentation, automatic and exact segmentation still confronted with some problems and remain one of the most challenging tasks in medical data processing.
This paper presents a machine learning algorithm to classify MRI scans to be normal or abnormal using three techniques of classification which are Support Vector Machine (SVM), Linear Discriminant Analysis (LDA) and Artificial Neural network (ANN) , these techniques of classification are tested on a large database with accuracy of 93.06%, 97.45% and 98.9% respectively, then the detection of the brain tumor region from MRI abnormal scan images is performed using a hybrid method that is based on morphological operations , Filtering and Histogram Processing on images.