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- W4385192710 abstract "A brain tumour is one of the most dangerous conditions that may afflict children and young adults. 90% to 92% of the all the primary leukaemias of the nervous system's are caused by brain tumours. Each year, an estimated three million people are told they have brain tumours. The 4-year survival rate for those with malignant cerebral or CNS tumours is around 36% for women & roughly 35% for males. The many forms of brain tumours include benign, malignant, hypothalamus, and other varieties. Overall life expectancy of ill persons should be extended by the use of proper mental care, following through with plans, and accurate prognoses. The best way to detect brain cancers is through electromagnetic echo scanning. Mri machines create a staggering amount of graphical input. The radiologist examines such images. Automated categorization techniques that use machine learning and artificial intelligence have consistently outperformed traditional classifications in terms of accuracy. A system that makes use of algorithms for deep learning, like Convolution Neural Networks, Artificial Neural Networks, and Learning Techniques, to conduct appreciation and monitoring would be advantageous to physicians everywhere [1]–[3]" @default.
- W4385192710 created "2023-07-25" @default.
- W4385192710 creator A5092016213 @default.
- W4385192710 date "2023-05-12" @default.
- W4385192710 modified "2023-09-25" @default.
- W4385192710 title "Enhancing Brain Tumor Detection Classification Accuracy with Computational Intelligence" @default.
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- W4385192710 doi "https://doi.org/10.1109/icacite57410.2023.10183088" @default.
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