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首页> 外文期刊>International Journal of Swarm Intelligence and Evolutionary Computation >Memetic Harmony Search Algorithm Based on Multi-objective Differ-ential Evolution of Evolving Spiking Neural Networks
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Memetic Harmony Search Algorithm Based on Multi-objective Differ-ential Evolution of Evolving Spiking Neural Networks

机译:基于进化尖峰神经网络多目标差分进化的模因和声搜索算法

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Spiking neural network (SNN) plays an essential role in classification problems. Although there are many models of SNN, Evolving Spiking Neural Network (ESNN) is widely used in many recent research works. Evolutionary algorithms, mainly differential evolution (DE) have been used for enhancing ESNN algorithm. However, many real- world optimization problems include several contradictory objectives. Rather than single optimization, Multi-Objective Optimization (MOO) can be utilized as a set of optimal solutions to solve these problems. In this paper, Harmony Search (HS) and memetic approach was used to improve the performance of MOO with ESNN. Consequently, Memetic Harmony Search Multi-Objective Differential Evolution with Evolving Spiking Neural Network (MEHSMODE- ESNN) was applied to improve ESNN structure and accuracy rates. Standard data sets from the UCI machine learning are used for evaluating the performance of this enhanced multi objective hybrid model. The experimental results have proved that the Memetic Harmony Search Multi-Objective Differential Evolution with Evolving Spiking Neural Network (MEHSMODE-ESNN) gives better results in terms of accuracy and network structure.
机译:尖峰神经网络(SNN)在分类问题中起着至关重要的作用。尽管SNN的模型很多,但最近许多研究工作中都广泛使用了进化尖峰神经网络(ESNN)。进化算法,主要是差分进化(DE),已被用于增强ESNN算法。但是,许多现实世界中的优化问题包括几个相互矛盾的目标。可以将多目标优化(MOO)用作解决这些问题的一组最佳解决方案,而不是使用单个优化。本文采用和声搜索(HS)和模因方法来提高ESNN的MOO性能。因此,采用进化尖刺神经网络(MEHSMODE-ESNN)进行模因式和谐搜索多目标差分进化,以改善ESNN的结构和准确率。来自UCI机器学习的标准数据集用于评估此增强型多目标混合模型的性能。实验结果证明,具有进化尖峰神经网络的模因式和谐搜索多目标差分进化(MEHSMODE-ESNN)在准确性和网络结构方面都具有更好的结果。

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