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Software reliability prediction model based on ICA algorithm and MLP neural network

机译:基于ICA算法和MLP神经网络的软件可靠性预测模型

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摘要

To achieve the high performance system without any failure, we should provide the high reliability level of software. Soft computing models for software reliability prediction suffer from low accuracy during predicting the number of faults. Moreover, the models have some problems like no solid mathematical foundation for analysis, being trapped in local minima, and convergence problem. This paper introduces Imperialist Competitive Algorithm (ICA) to overcome the weaknesses of previous models and improve the efficiency of training process of Multi-Layer Perceptron (MLP) neural network. Therefore, the network can predict the number of faults precisely. The results show that the proposed predicting model is more efficient than the existing techniques in prediction performance
机译:为了获得高性能的系统而没有任何故障,我们应该提供高可靠性的软件。在预测故障数期间,用于软件可靠性预测的软计算模型的准确性较低。此外,这些模型还存在一些问题,例如没有坚实的数学基础进行分析,陷入局部极小值以及收敛问题。本文介绍了帝国主义竞争算法(ICA),以克服先前模型的缺点,并提高多层感知器(MLP)神经网络的训练过程的效率。因此,网络可以准确预测故障数量。结果表明,所提出的预测模型在预测性能上比现有技术更为有效。

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