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JCR 2016
جستجوی مقالات
یکشنبه 23 آذر 1404
Journal of Artificial Intelligence and Data Mining
، جلد ۹، شماره ۴، صفحات ۵۱۵-۵۲۳
عنوان فارسی
چکیده فارسی مقاله
کلیدواژههای فارسی مقاله
عنوان انگلیسی
An Intelligent Model for Prediction of In-Vitro Fertilization Success using MLP Neural Network and GA Optimization
چکیده انگلیسی مقاله
In Vitro Fertilization (IVF) is one of the scientifically known methods of infertility treatment. This study aimed at improving the performance of predicting the success of IVF using machine learning and its optimization through evolutionary algorithms. The Multilayer Perceptron Neural Network (MLP) were proposed to classify the infertility dataset. The Genetic algorithm was used to improve the performance of the Multilayer Perceptron Neural Network model. The proposed model was applied to a dataset including 594 eggs from 94 patients undergoing IVF, of which 318 were of good quality embryos and 276 were of lower quality embryos. For performance evaluation of the MLP model, an ROC curve analysis was conducted, and 10-fold cross-validation performed. The results revealed that this intelligent model has high efficiency with an accuracy of 96% for Multi-layer Perceptron neural network, which is promising compared to counterparts methods.
کلیدواژههای انگلیسی مقاله
Multilayer Perceptron neural network, Genetic Algorithm, Predicting the success of IVF
نویسندگان مقاله
E. Feli |
Department of Computer Engineering, North Tehran Branch, Islamic Azad University, Tehran, Iran.
R. Hosseini |
Department of Computer Engineering, Shahr-e-Qods Branch, Islamic Azad University, Tehran, Iran.
S. Yazdani |
Department of Computer Engineering, North Tehran Branch, Islamic Azad University, Tehran, Iran.
نشانی اینترنتی
http://jad.shahroodut.ac.ir/article_2236_a32700e7f2ea3c0587d3657dc20ec370.pdf
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