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Role of Economic Policy Uncertainty in Energy Commodities Prices Forecasting: Evidence from a Hybrid Deep Learning Approach
by
Shahzad, Umer
, Rao, Amar
, Mohammed, Kamel Si
, Tedeschi, Marco
in
Alternative energy sources
/ Analysis
/ Behavioral/Experimental Economics
/ Commodities
/ Commodity markets
/ Commodity price indexes
/ Commodity prices
/ Computer Appl. in Social and Behavioral Sciences
/ Crude oil
/ Crude oil prices
/ Decision making
/ Decoding
/ Deep learning
/ Econometrics
/ Economic forecasting
/ Economic policy
/ Economic Theory/Quantitative Economics/Mathematical Methods
/ Economics
/ Economics and Finance
/ Energy
/ Energy industry
/ Energy policy
/ Energy prices
/ Energy resources
/ Energy sources
/ Force and energy
/ Forecasting
/ Forecasting techniques
/ Forecasts and trends
/ Fossil fuels
/ Gasoline prices
/ Geopolitics
/ Global economy
/ Innovations
/ Investigations
/ Learning
/ Markets
/ Math Applications in Computer Science
/ Multilayers
/ Natural gas
/ Operations Research/Decision Theory
/ Perception
/ Perceptions
/ Policy making
/ Predictive analytics
/ Prices and rates
/ Recurrent
/ Renewable resources
/ Resource management
/ Short term memory
/ Supply & demand
/ Trends
/ Uncertainty
/ Volatility
2024
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Role of Economic Policy Uncertainty in Energy Commodities Prices Forecasting: Evidence from a Hybrid Deep Learning Approach
by
Shahzad, Umer
, Rao, Amar
, Mohammed, Kamel Si
, Tedeschi, Marco
in
Alternative energy sources
/ Analysis
/ Behavioral/Experimental Economics
/ Commodities
/ Commodity markets
/ Commodity price indexes
/ Commodity prices
/ Computer Appl. in Social and Behavioral Sciences
/ Crude oil
/ Crude oil prices
/ Decision making
/ Decoding
/ Deep learning
/ Econometrics
/ Economic forecasting
/ Economic policy
/ Economic Theory/Quantitative Economics/Mathematical Methods
/ Economics
/ Economics and Finance
/ Energy
/ Energy industry
/ Energy policy
/ Energy prices
/ Energy resources
/ Energy sources
/ Force and energy
/ Forecasting
/ Forecasting techniques
/ Forecasts and trends
/ Fossil fuels
/ Gasoline prices
/ Geopolitics
/ Global economy
/ Innovations
/ Investigations
/ Learning
/ Markets
/ Math Applications in Computer Science
/ Multilayers
/ Natural gas
/ Operations Research/Decision Theory
/ Perception
/ Perceptions
/ Policy making
/ Predictive analytics
/ Prices and rates
/ Recurrent
/ Renewable resources
/ Resource management
/ Short term memory
/ Supply & demand
/ Trends
/ Uncertainty
/ Volatility
2024
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Do you wish to request the book?
Role of Economic Policy Uncertainty in Energy Commodities Prices Forecasting: Evidence from a Hybrid Deep Learning Approach
by
Shahzad, Umer
, Rao, Amar
, Mohammed, Kamel Si
, Tedeschi, Marco
in
Alternative energy sources
/ Analysis
/ Behavioral/Experimental Economics
/ Commodities
/ Commodity markets
/ Commodity price indexes
/ Commodity prices
/ Computer Appl. in Social and Behavioral Sciences
/ Crude oil
/ Crude oil prices
/ Decision making
/ Decoding
/ Deep learning
/ Econometrics
/ Economic forecasting
/ Economic policy
/ Economic Theory/Quantitative Economics/Mathematical Methods
/ Economics
/ Economics and Finance
/ Energy
/ Energy industry
/ Energy policy
/ Energy prices
/ Energy resources
/ Energy sources
/ Force and energy
/ Forecasting
/ Forecasting techniques
/ Forecasts and trends
/ Fossil fuels
/ Gasoline prices
/ Geopolitics
/ Global economy
/ Innovations
/ Investigations
/ Learning
/ Markets
/ Math Applications in Computer Science
/ Multilayers
/ Natural gas
/ Operations Research/Decision Theory
/ Perception
/ Perceptions
/ Policy making
/ Predictive analytics
/ Prices and rates
/ Recurrent
/ Renewable resources
/ Resource management
/ Short term memory
/ Supply & demand
/ Trends
/ Uncertainty
/ Volatility
2024
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Role of Economic Policy Uncertainty in Energy Commodities Prices Forecasting: Evidence from a Hybrid Deep Learning Approach
Journal Article
Role of Economic Policy Uncertainty in Energy Commodities Prices Forecasting: Evidence from a Hybrid Deep Learning Approach
2024
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Overview
Amidst a dynamic energy market landscape, understanding evolving influencing factors is pivotal. Accurate forecasting techniques are indispensable for effective energy resource management. This study focuses on illuminating insights into economic uncertainty and commodity price forecasting. A meticulously curated dataset spanning January 2000 to December 2022 forms the foundation, incorporating diverse economic and financial uncertainty metrics. Through an innovative research framework, we discern influential factors and forecast their trajectories. Three deep learning models—Short-Term Memory, Gated Recurrent Units, and Multilayer Perception Network—are deployed. The Multilayer Perception model emerges as the standout, showcasing exceptional predictive capability rooted in its adeptness at decoding intricate market patterns. This finding holds significance for policymakers, industry experts, and energy economists. The Multilayer Perception model’s supremacy offers a robust tool for decision-making in crafting economic policies and navigating volatile markets.
Publisher
Springer US,Springer,Springer Nature B.V
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