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Contrasting neural nets with regression in predicting performance in the transportation industry

机译:神经网络与回归模型在交通运输行业绩效预测中的对比

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Compares and contrasts traditional regression models with a neural network model, in order to predict performance in the transportation industry. No regression model has emerged as obviously superior in previous work conducted on predicting transportation performance. Therefore, a neural network model was investigated as an alternative to regression. It was found that a neural net model outperformed the corresponding random effects specification, but did not perform as well as the fixed effects specification.
机译:将传统回归模型与神经网络模型进行比较和对比,以预测运输行业的绩效。在先前的预测运输性能的工作中,还没有任何一种回归模型具有明显的优越性。因此,研究了神经网络模型作为回归的替代方法。发现神经网络模型的性能优于相应的随机效应规范,但性能不如固定效应规范。

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