Implementasi Backpropagation Neural Network pada Prediksi Jumlah Penjualan Toyota Avanza di Indonesia

Nur Fatin Mufinnun, Hairur Rahman, M. N. Jauhari
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引用次数: 1

Abstract

Prediction is a branch of science that is used to predict events that may occur in the future based on past events. One of the developed prediction methods, Backpropagation Neural Network, a method that has a good level of effectiveness. This study aims to determine the model and the accuracy of the model in predicting the total sales of the Toyota Avanza and to find out the results of sales predictions for the next 12 months by analyzing the number of sales in January 2010 to October 2021. The prediction model for the number of Toyota Avanza sales using the Backpropagation Neural Network is 12-13-1, where there are 12 variables in the input layer, 13 variables in the hidden layer and 1 variable in the output layer with a learning rate value of 0.5 and momentum 0. The predictions for the number of Toyota Avanza sales for 12 months are at an average upper limit of 6215 and an average lower limit of 3415 with a MAPE value of 9,39135%, so that the model can be said to be very good. 
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预测是科学的一个分支,用于根据过去的事件预测未来可能发生的事件。其中一种发达的预测方法是反向传播神经网络,它具有很好的有效性。本研究旨在确定模型和模型在预测丰田Avanza总销量的准确性,并通过分析2010年1月至2021年10月的销售数量,找出未来12个月的销售预测结果。使用反向传播神经网络对丰田Avanza销量的预测模型为12-13-1,其中输入层有12个变量,隐藏层有13个变量,输出层有1个变量,学习率值为0.5,动量为0。对丰田Avanza 12个月销量的预测平均上限为6215辆,平均下限为3415辆,MAPE值为939135%,可以说是非常好的车型。
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