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Gravity's Rainbow: A dynamic latent space model for the world trade network

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  • WARD, MICHAEL D.
  • AHLQUIST, JOHN S.
  • ROZENAS, ARTURAS

Abstract

The gravity model, long the empirical workhorse for modeling international trade, ignores network dependencies in bilateral trade data, instead assuming that dyadic trade is independent, conditional on a hierarchy of covariates over country, time, and dyad. We argue that there are theoretical as well as empirical reasons to expect network dependencies in international trade. Consequently, standard gravity models are empirically inadequate. We combine a gravity model specification with “latent space†networks to develop a dynamic mixture model for real-valued directed graphs. The model simultaneously incorporates network dependencies in both trade incidence and trade volumes. We estimate this model using bilateral trade data from 1990 to 2008. The model substantially outperforms standard accounts in terms of both in- and out-of-sample predictive heuristics. We illustrate the model's usefulness by tracking trading propensities between the USA and China.

Suggested Citation

  • Ward, Michael D. & Ahlquist, John S. & Rozenas, Arturas, 2013. "Gravity's Rainbow: A dynamic latent space model for the world trade network," Network Science, Cambridge University Press, vol. 1(1), pages 95-118, April.
  • Handle: RePEc:cup:netsci:v:1:y:2013:i:01:p:95-118_00
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    Cited by:

    1. Kym Anderson & Joseph Francois & Douglas Nelson & Glyn Wittwer, 2019. "Intra-Industry Trade in a Rapidly Globalizing Industry: The Case of Wine," World Scientific Book Chapters, in: Kym Anderson (ed.), The International Economics of Wine, chapter 4, pages 91-113, World Scientific Publishing Co. Pte. Ltd..
    2. Peter R. Herman, 2022. "Modeling complex network patterns in international trade," Review of World Economics (Weltwirtschaftliches Archiv), Springer;Institut für Weltwirtschaft (Kiel Institute for the World Economy), vol. 158(1), pages 127-179, February.
    3. Cornelius Fritz & Michael Lebacher & Göran Kauermann, 2020. "Tempus volat, hora fugit: A survey of tie‐oriented dynamic network models in discrete and continuous time," Statistica Neerlandica, Netherlands Society for Statistics and Operations Research, vol. 74(3), pages 275-299, August.
    4. Michael Lebacher & Paul W. Thurner & Göran Kauermann, 2021. "Censored regression for modelling small arms trade volumes and its ‘Forensic’ use for exploring unreported trades," Journal of the Royal Statistical Society Series C, Royal Statistical Society, vol. 70(4), pages 909-933, August.
    5. Paolo Bartesaghi & Gian Paolo Clemente & Rosanna Grassi, 2020. "Community structure in the World Trade Network based on communicability distances," Papers 2001.06356, arXiv.org, revised Jul 2020.
    6. L. Blázquez & C. Díaz-Mora & B. González-Díaz, 2023. "Slowbalisation or a “New” type of GVC participation? The role of digital services," Economia e Politica Industriale: Journal of Industrial and Business Economics, Springer;Associazione Amici di Economia e Politica Industriale, vol. 50(1), pages 121-147, March.
    7. Blázquez, Leticia & Díaz-Mora, Carmen & González-Díaz, Belén, 2023. "Hubs of embodied business services in a GVC world," International Economics, Elsevier, vol. 174(C), pages 28-43.

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