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Modelling Global Trade with Optimal Transport

2024-09-10 · Thomas Gaskin, Marie-Therese Wolfram, Andrew Duncan, Guven Demirel

Global trade is shaped by a complex mix of factors beyond supply and demand, including tangible variables like transport costs and tariffs, as well as less quantifiable influences such as political and economic relations. Traditionally, economists model trade using gravity models, which rely on explicit covariates but often struggle to capture these subtler drivers of trade. In this work, we employ optimal transport and a deep neural network to learn a time-dependent cost function from data, without imposing a specific functional form. This approach consistently outperforms traditional gravity models in accuracy while providing natural uncertainty quantification. Applying our framework to global food and agricultural trade, we show that the global South suffered disproportionately from the war in Ukraine's impact on wheat markets. We also analyze the effects of free-trade agreements and trade disputes with China, as well as Brexit's impact on British trade with Europe, uncovering hidden patterns that trade volumes alone cannot reveal.

📄 PDF Abstract BibTeX arXiv:2409.06554

Code (1)

thgaskin/neuralabm 공식 구현 pytorch

Tasks

Uncertainty Quantification

Methods 이 논문이 사용한 방법론

Gravity Gravity is a kinematic approach to optimization based on gradients.

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