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首页> 外文期刊>Engineering Applications of Artificial Intelligence >A genetic-fuzzy-neuro model encodes FNNs using SWRM and BRM
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A genetic-fuzzy-neuro model encodes FNNs using SWRM and BRM

机译:遗传模糊神经模型使用SWRM和BRM编码FNN

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摘要

Genetic algorithms (GAs), fuzzy logic (FL), and neural networks (NNs) are frequently used artificial intelligence (AI) techniques. Since these three methods are complementary rather than competitive, many researchers have hybridized GAs, FL, and NNs to develop a better performance model. However, most hybrid models use a multistage combination or identify partial parameters required in the model resulting in sub-optimal solutions. This research fuses GAs, FL, and NNs to develop an evolutionary fuzzy neural inference model (EFNIM) that uses GAs to simultaneously search for all parameters required in fuzzy neural networks (FNNs). Two approaches, summit and width representation method (SWRM) and block-representation method (BRM), are proposed to encode variables in FL and NNs. Simulations are conducted to evaluate the performance of EFNIM. For different problems, membership functions (MFs) with the minimum FNN structure and optimal parameters of FNN are automatically and concurrently acquired using EFNIM. The research overcomes the difficulties faced in applying FL and NNs as well as saves efforts in trial-and-error experiments, questionnaire survey, interviews with experts, etc. Both prediction accuracy and time requirement for cost estimating are much improved by the proposed method.
机译:遗传算法(GA),模糊逻辑(FL)和神经网络(NN)是常用的人工智能(AI)技术。由于这三种方法是互补的而不是竞争的,因此许多研究人员将GA,FL和NN进行了混合,以开发出更好的性能模型。但是,大多数混合模型使用多阶段组合或识别模型中所需的部分参数,从而导致次优解决方案。这项研究融合了GA,FL和NN,以开发一种进化模糊神经推理模型(EFNIM),该模型使用GA来同时搜索模糊神经网络(FNN)所需的所有参数。提出了两种方法,峰顶和宽度表示法(SWRM)和块表示法(BRM),对FL和NN中的变量进行编码。进行仿真以评估EFNIM的性能。对于不同的问题,使用EFNIM自动并发地获取具有最小FNN结构和FNN最佳参数的隶属函数(MF)。该研究克服了应用FL和NN所面临的困难,并节省了反复试验,问卷调查,专家访谈等方面的工作。所提出的方法大大提高了预测准确性和成本估算的时间要求。

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