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The purpose of this paper is to apply machine learning techniques to predict the movement of cryptocurrencies on an intraday scale and to develop a trading strategy based on the model. A variety of machine learning algorithms like AdaBoost, RandomForest, XGBoost and Neural Networks has been used...
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Coal as a fossil and non-renewable fuel is one of the most valuable energy minerals in the world with the largest volume reserves. Artificial neural networks (ANN), despite being one of the highest breakthroughs in the field of computational intelligence, has some significant disadvantages, such...
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A growing number of emerging studies have been undertaken to examine the mediating dynamics between intelligent agents, activities, and cost within allocated budgets, in order to predict the outcomes of complex projects in dint of their significant uncertain nature in achieving a successful...
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The price volatility of energy assets such as natural gas, crude oil, and coal among others do influence electricity prices, which altogether directly have significant economic impacts on different sectors of the economy. From this viewpoint, accurate energy price volatility predictions are very...
Persistent link: https://www.econbiz.de/10013289380
Forecasting models based on machine learning (ML) algorithms have been shown to outperform traditional models in several applications. The lack of an easily interpretable functional form, however, is a major challenge for their adoption, especially when a knowledge of the estimated relationships...
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