Employing Recurrent Neural Networks to Forecast the Dollar Exchange Rate in the Parallel Market of Iraq

Azhy Akram Aziz, Balsam Mustafa Shafeeq, Renas Abubaker Ahmed, Hindreen Abdullah Taher
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Abstract

In this study, neural recurrent neural networks (RNN) have been used to forecast the price of dollars in Iraqi dinars, as it is clear that the government's efforts to control prices in the parallel markets, the commercial markets witnessed a decline in the exchange rate, but it rose again. Which indicates an economic problem that is still present in the country. Despite adjusting the exchange rate of the dinar, the dollar crisis in Iraq has not ended yet. Here we want to forecast the daily price of the dollar against Iraqi dinars for the common next 30 days. According to the results the RNN model have been performed for the data under consideration with different numbers of hidden layer and nodes. The best architecture for the RNN model was [1,10,1,1] using soft plus activation function, which gives the performance of 85% for the training dataset and (92% and 90%) for the testing and validation datasets respectively, with Mse (0.018, 0.000417, and 0.000477) for training, testing, and validation respectively at epoch 4. According to the results of the forecasted values which start from 15 May 2023 to 13 June 2023 the price of dollars will be between 1390 to 1435.
利用递归神经网络预测伊拉克平行市场美元汇率
在这项研究中,神经递归神经网络(RNN)被用来预测伊拉克第纳尔的美元价格,因为很明显,政府努力控制平行市场的价格,商业市场见证了汇率的下降,但它又上升了。这表明这个国家仍然存在经济问题。虽然调整了第纳尔的汇率,但伊拉克的美元危机还没有结束。在这里,我们要预测美元兑伊拉克第纳尔在未来30天内的每日价格。根据实验结果,对不同隐层数和隐节点数的数据进行了RNN建模。RNN模型的最佳架构是使用软+激活函数[1,10,1,1],训练数据集的性能为85%,测试和验证数据集的性能分别为92%和90%,在epoch 4的训练、测试和验证的Mse分别为0.018、0.000417和0.000477。根据从2023年5月15日到2023年6月13日的预测值结果,美元的价格将在1390到1435之间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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