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Multi-Step-Ahead Prediction of Exchange Rates Using Artificial Neural Networks: A Study on Selected Sri Lankan Foreign Exchange Rates

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dc.contributor.author Samarawickrama, A. J. P.
dc.contributor.author Fernando, T.G.I.
dc.date.accessioned 2022-09-09T09:58:44Z
dc.date.available 2022-09-09T09:58:44Z
dc.date.issued 2019
dc.identifier.citation Samarawickrama, A. J. P. & Fernando, T.G.I. (2019). Multi-Step-Ahead Prediction of Exchange Rates Using Artificial Neural Networks: A Study on Selected Sri Lankan Foreign Exchange Rates14th International Conference on Industrial and Information Systems (ICIIS), 18-20 Dec., Peradeniya, Sri Lanka, IEEE 2019.. en_US
dc.identifier.uri http://dr.lib.sjp.ac.lk/handle/123456789/12109
dc.description.abstract The exchange rate is a very important economic indicator for countries with market economies as its fluctuations heavily affect the most areas in the economy. Accordingly, predicting future values of foreign exchange rates is very important in policymaking. This study was conducted to perform multi-step ahead predictions on foreign exchange rates of Sri Lankan Rupee against three international currencies using Artificial Neural Network models, to measure the accuracies of these models and identify shortcomings if present. MUlti-Layer Perceptron, Simple Recurrent Neural Network, Long Short-Term Memory, Gated Recurrent Unit and Convolutional Neural Network architectures were employed for this study. Most of the models except few Gated Recurrent Unit models were able to predict lO-days-ahead exchange rates with a higher level of accuracies (97%-99%). According to the findings Stateful Simple Recurrent Neural Networks with one input layer, a hidden layer, a flatten layer and an output layer performed as the best architecture to predict the three exchange rates selected. en_US
dc.language.iso en en_US
dc.publisher IEEE en_US
dc.subject Multi-step ahead prediction, exchange rates, Sri Lankan Rupee (LKR), MLP, SRNN, LSTM, GRU, CNN en_US
dc.title Multi-Step-Ahead Prediction of Exchange Rates Using Artificial Neural Networks: A Study on Selected Sri Lankan Foreign Exchange Rates en_US
dc.type Article en_US


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