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Analyzing of Alzheimer’s Disease Based on Biomedical and Socio-Economic Approach Using Molecular Communication, Artificial Neural Network, and Random Forest Models

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dc.contributor.author Bayraktar, Y.
dc.contributor.author Isik, E.
dc.contributor.author Isik, I.
dc.contributor.author Ozyilmaz, A.
dc.contributor.author Toprak, M.
dc.contributor.author Guloglu, F.K.
dc.contributor.author Aydin, S.
dc.date.accessioned 2022-10-06T12:54:16Z
dc.date.available 2022-10-06T12:54:16Z
dc.date.issued 2022
dc.identifier.issn 20711050 (ISSN)
dc.identifier.uri http://hdl.handle.net/11616/72096
dc.description.abstract Alzheimer’s disease will affect more people with increases in the elderly population, as the elderly population of countries everywhere generally rises significantly. However, other factors such as regional climates, environmental conditions and even eating and drinking habits may trigger Alzheimer’s disease or affect the life quality of individuals already suffering from this disease. Today, the subject of biomedical engineering is being studied intensively by many researchers considering that it has the potential to produce solutions to various diseases such as Alzheimer’s caused by problems in molecule or cell communication. In this study, firstly, a molecular communication model with the potential to be used in the treatment and/or diagnosis of Alzheimer’s disease was proposed, and its results were analyzed with an artificial neural network model. Secondly, the ratio of people suffering from Alzheimer’s disease to the total population, along with data of educational status, income inequality, poverty threshold, and the number of the poor in Turkey were subjected to detailed distribution analysis by using the random forest model statistically. As a result of the study, it was determined that a higher income level was causally associated with a lower risk of Alzheimer’s disease. © 2022 by the authors. Licensee MDPI, Basel, Switzerland.
dc.source Sustainability (Switzerland)
dc.title Analyzing of Alzheimer’s Disease Based on Biomedical and Socio-Economic Approach Using Molecular Communication, Artificial Neural Network, and Random Forest Models


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