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Deep Hybrid System of Computational Intelligence with Architecture Adaptation for Medical Fuzzy Diagnostics

机译:具有医疗智能诊断的体系结构自适应计算智能深度混合系统

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In the paper the deep hybrid system of computational intelligence with architecture adaptation for medical fuzzy diagnostics is proposed. This system allows to increase a quality of medical information processing under the condition of overlapping classes due to special adaptive architecture and training algorithms. The deep hybrid system under consideration can tune its architecture in situation when number of features and diagnoses can be variable. The special algorithms for its training are developed and optimized for situation of different system architectures without retraining of synaptic weights that have been tuned at previous steps. The proposed system was used for processing of three medical data sets (dermatology dataset, Pima Indians diabetes dataset and Parkinson disease dataset) under the condition of fixed number of features and diagnoses and in situation of its increasing. A number of conducted experiments have shown high quality of medical diagnostic process and confirmed the efficiency of the deep hybrid system of computational intelligence with architecture adaptation for medical fuzzy diagnostics.
机译:在本文中,提出了一种用于医疗模糊诊断的具有结构自适应性的深度智能混合计算系统。由于特殊的自适应体系结构和训练算法,该系统允许在类重叠的情况下提高医学信息处理的质量。当功能和诊断的数量可变时,正在考虑的深度混合系统可以调整其架构。针对不同系统架构的情况开发并优化了用于其训练的特殊算法,而无需重新训练在先前步骤中已调整的突触权重。所提出的系统在特征和诊断的数目固定且不断增加的情况下,用于处理三个医学数据集(皮肤病学数据集,皮马印第安人糖尿病数据集和帕金森病数据集)。大量进行的实验表明,医疗诊断过程具有很高的质量,并证实了具有医疗模糊诊断体系结构适应性的深度智能混合计算系统的效率。

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