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A Novel Approach to Neural Network Design for Natural Language Call Routing

机译:一种新型自然语言呼叫路由的神经网络设计方法

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A novel approach to artificial neural network design using a combination of determined and stochastic optimization methods (the error backpropagation algorithm for weight optimization and the classical genetic algorithm for structure optimization) is described in this paper. The novel approach to GA-based structure optimization has a simplified solution representation that provides effective balance between the ANN structure representation flexibility and the problem dimensionality. The novel approach provides improvement of classification effectiveness in comparison with baseline approaches and requires less computational resource. Moreover, it has fewer parameters for tuning in comparison with the baseline ANN structure optimization approach. The novel approach is verified on the real problem of natural language call routing and shows effective results confirmed with statistical analysis.
机译:本文描述了一种使用确定和随机优化方法组合的人工神经网络设计的新方法(重量优化误差估算算法和结构优化的经典遗传算法)。基于GA的结构优化的新方法具有简化的解决方案表示,可在ANN结构表示灵活性和问题维度之间提供有效的平衡。与基线方法相比,新颖的方法提供了改进的分类效果,并且需要更少的计算资源。此外,与基线ANN结构优化方法相比,调整的参数较少。在自然语言呼叫路由的真正问题上验证了新的方法,并显示了统计分析证实的有效结果。

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