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A New Model for Residual Value Prediction of the Used. Car Based on BP NeuralNetwork and Nonlinear Curve Fit

机译:一种新的使用剩余价值预测的新模型。基于BP NeuralNetwork和非线性曲线的汽车

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A new model for predicting the residual value of the private used car with various conditions, such as manufacturer, mileage, time of life, etc., was developed in this paper. A comprehensive method combined by the BF' neural network and nonlinear curve fit was introduced for optimizing the model due to its flexible nonlinearity. Firstly, some distribution curves of residual value of the used cars were analyzed in time domain. Then, the BP neural network (NN) was established .and used to extract the feature of the distribution curves in various conditions. A set of schemed data was used to train the NN and reached the training goal. Finally, the schemed data as inputs and the NN outputs were organized for nonlinear curve fit. Conclusion was drawn that the newly proposed model is feasible and accurate for residual value prediction of the used cars with various conditions.
机译:本文开发了一种预测各种条件的私人二手车剩余价值的新模型,如本文的制造商,里程,寿命等。引入了由BF'神经网络和非线性曲线组合的综合方法,用于优化由于其柔性非线性而优化模型。首先,在时域中分析了二手车的残余值的一些分布曲线。然后,建立了BP神经网络(NN)。用于在各种条件下提取分布曲线的特征。使用一组示例的数据来培训NN并达到培训目标。最后,为非线性曲线拟合组织了作为输入和NN输出的示例性数据。得出结论是,新提出的模型是可行的,对于具有各种条件的二手车的剩余价值预测是可行的和准确的。

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