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An Analysis and Study of Brain Cancer with RNN Algorithm based AI Technique

G. Vallathan, Venkata Rao Yanamadni, R.G. Vidhya, Ananda Ravuri, C. Ambhika, V. V. S. Sasank

202313 citationsDOI

Abstract

The field of artificial intelligence known as Recurrent Neural Networks (RNNs) is utilized in this investigation, which goes into the domain of analyzing brain tumours. Its primary objective is to improve the accuracy of both the diagnosis and prognosis of brain cancer by capitalizing on the ability of RNNs to recognize temporal correlations within complicated datasets. The research makes use of a varied dataset that include clinical, genomic, and imaging data, and it engages in painstaking data preparation and feature creation. Following this step, RNN models are painstakingly trained to capture the sequential patterns and temporal dependencies that are inherent in the evolution of brain cancer. The diagnostic and prognosis analysis that comes at the end of the research makes it possible to make accurate determinations regarding the features of the tumor, its growth rate, and survival projections. It has been rigorously validated and its performance has been rigorously assessed, both of which attest to the robustness of the AI technique. The clinical implications of this technique promise to revolutionize the treatment of brain cancer by providing medical professionals with a powerful tool for early detection, tailored treatment planning, and improved patient outcomes. In the context of brain cancer, this discovery constitutes a crucial step towards the development of data-driven precision medicine. The relevance of this study rests not only in its ability to improve diagnostic accuracy but also in its potential to dramatically alter patient care. Both of these aspects contribute to the overall significance of the study.

Topics & Concepts

Computer scienceRecurrent neural networkRobustness (evolution)Artificial intelligenceContext (archaeology)Relevance (law)Machine learningNeuroimagingBrain cancerCancerArtificial neural networkPsychologyMedicineNeurosciencePolitical scienceInternal medicineLawBiochemistryGenePaleontologyChemistryBiologySmart Agriculture and AIBrain Tumor Detection and ClassificationDigital Imaging for Blood Diseases
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