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Effects of data complexity on the intelligent diagnostic reasoning

机译:数据复杂度对智能诊断推理的影响

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The objective was to train several Artificial Neural Networks (ANNs) with different training functions in order to gain an understanding of the effect of dataset complexity on performance. The utilization of varying training functions permitted ANN diversity; and allowing for enhanced diagnostic reasoning in classification. This improvement is achieved by expediting training stage, calibrating classification. The proposed technique is applied to a number of dataset to verify performance improvements. Particular application of the proposed technique is demonstrated by applying methodology for medical diagnostics.
机译:目的是训练具有不同训练功能的多个人工神经网络(ANN),以了解数据集复杂度对性能的影响。利用不同的培训功能可以使人工神经网络具有多样性;并允许在分类中增强诊断推理能力。这种改进是通过加快培训阶段,校准分类来实现的。所提出的技术被应用于许多数据集以验证性能的提高。通过将方法应用于医学诊断论证了所提出技术的特殊应用。

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