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An evidential extension of the MRII training algorithm for detecting erroneous MADALINE responses

机译:MRII训练算法的证据扩展,用于检测错误的MADALINE响应

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This paper integrates the evidential reasoning methodology with the parallel distributed learning paradigm of artificial neural networks (ANN). As such, this work presents an algorithm for the detection and, if possible, subsequent correction of the errors in the neuron responses in the output layer of the multiple adaptive linear element (MADALINE) ANN. A geometrical perspective of the MADALINE ANN processing methodology is provided. This perspective is then used to formulate a statistical specification to identify and quantify the sources of uncertainties in the MADALINE processing methodology. A new algorithm, EMRII, is then developed as an extension to the original MRII (MADELINE rule II) algorithm, to formulate support and plausibility measures based on the statistical specification. The support and plausibility measures, thus formulated, are indicative of the degree of confidence of the ANN, in regards to the correctness of its outputs. Based on the support measure, a scheme utilizing two thresholds is proposed to facilitate the interpretation of the support values for error prediction in the ANN responses. Finally, simulation results for the application of the EMRII algorithm in the prediction of erroneous responses in an example problem is presented. These simulation results highlight the error detection capabilities of the EMRII algorithm.
机译:本文将证据推理方法与人工神经网络(ANN)的并行分布式学习范例相结合。这样,这项工作提出了一种算法,用于检测并在可能的情况下对多重自适应线性元素(MADALINE)ANN输出层中的神经元响应中的错误进行校正。提供了MADALINE ANN处理方法的几何透视图。然后,将这种观点用于制定统计规范,以识别和量化MADALINE处理方法中不确定性的来源。然后,开发了一种新的算法EMRII,作为对原始MRII(MADELINE规则II)算法的扩展,以基于统计规范制定支持和合理性度量。如此制定的支持措施和合理性措施表明了人工神经网络在其输出正确性方面的置信度。基于支持措施,提出了一种利用两个阈值的方案,以促进对支持值的解释,以用于ANN响应中的错误预测。最后,给出了在示例问题中将EMRII算法应用于错误响应预测的仿真结果。这些仿真结果突出了EMRII算法的错误检测功能。

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