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Sensitivity Analysis of Radial Basis Function Networks for Fault Tolerance Purposes

机译:径向基函数网络的容错目的敏感性分析

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This paper introduces the concept of sensitivity in radial basis function networks. By applying a fault methodology combined with the information provided by the sensitivity of the performance error to faulty elements, faulting selection method can be simplified. In addition, the relation established between the sensitivity and a measure of the system fault tolerance permit to determine the most critical neural elements in the sense of fault tolerance. the theoretical predictions are verified by simulation experiments on two groups of problems -classification and approximation problems. In summary, this paper presents the application of sensitivity analysis for determining the most critical neural elements in the sense of fault tolerance.
机译:本文介绍了径向基函数网络中灵敏度的概念。通过将故障方法与性能误差对故障元素的敏感性所提供的信息相结合,可以简化故障选择方法。此外,在灵敏度和系统容错度量之间建立的关系允许确定在容错意义上最关键的神经元。通过对两类问题-分类问题和近似问题的仿真实验,验证了理论预测。总之,本文介绍了敏感性分析在确定容错意义上确定最关键的神经元中的应用。

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