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Risk management systems: using data mining in developing countries' customs administration

Author

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  • Bertrand Laporte

    (CERDI - Centre d'Études et de Recherches sur le Développement International - UdA - Université d'Auvergne - Clermont-Ferrand I - CNRS - Centre National de la Recherche Scientifique)

Abstract

Limiting intrusive customs inspections is recommended under the revised Kyoto Convention, and is also a proposal discussed as part of World Trade Organization (WTO) trade facilitation negotiations. To limit such inspection, the more modern administrations intervene at all stages of the customs chain using electronic data exchange and risk analysis and focusing their resources on a posteriori controls. Customs administrations of developing countries are slow to move in that direction. Risk analysis would therefore seem to be a priority for modernising the customs systems in developing countries. The most effective risk management system uses statistical scoring techniques. Several simple statistical techniques are tested in this article. They all show a good capability to predict and detect declarations that contain infractions. They can easily be implemented in developing countries' customs administrations and replace the rather inefficient methods of selectivity that result in high rates of control and very low rates of recorded infractions.

Suggested Citation

  • Bertrand Laporte, 2011. "Risk management systems: using data mining in developing countries' customs administration," Post-Print halshs-00601379, HAL.
  • Handle: RePEc:hal:journl:halshs-00601379
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    Citations

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    Cited by:

    1. Volpe Martincus, Christian & Carballo, Jerónimo & Graziano, Alejandro, 2015. "Customs," Journal of International Economics, Elsevier, vol. 96(1), pages 119-137.
    2. Ignacio González García & Alfonso Mateos Caballero, 2021. "A Multi-Objective Bayesian Approach with Dynamic Optimization (MOBADO). A Hybrid of Decision Theory and Machine Learning Applied to Customs Fraud Control in Spain," Mathematics, MDPI, vol. 9(13), pages 1-23, June.
    3. Ousmane COUNDOUL & Massene GADIAGA & Anne-Marie GEOURJON & Bertrand LAPORTE, 2012. "Contrôler moins pour contrôler mieux : l’utilisation du data mining pour la gestion du risque en douane," Working Papers P46, FERDI.
    4. Joel CARIOLLE & Cyril CHALENDARD & Anne-Marie GEOURJON & Bertrand LAPORTE, 2016. "Décloisonner l’analyse des données pour appuyer la modernisation des douanes : une illustration à partir du Gabon," Working Papers 201618, CERDI.
    5. Joel CARIOLLE & Cyril CHALENDARD & Anne-Marie GEOURJON & Bertrand LAPORTE, 2017. "Going beyond analysis of internal data to support customs modernization: A case study in Gabon," Working Papers 201723, CERDI.
    6. Thomas Orliac, 2012. "The economics of trade facilitation [L'économie de la facilitation des échanges]," SciencePo Working papers Main tel-03681980, HAL.
    7. Ousmane COUNDOUL & Massene GADIAGA & Anne-Marie GEOURJON & Bertrand LAPORTE, 2012. "Inspecting less to inspect better: The use of data mining for risk management by customs administrations," Working Papers P46, FERDI.
    8. Ana Margarida Fernandes & Russell Hillberry & Alejandra Mendoza Alcántara, 2021. "Trade Effects of Customs Reform: Evidence from Albania," The World Bank Economic Review, World Bank, vol. 35(1), pages 34-57.
    9. Christian Volpe Martincus, 2016. "Out of the Border Labyrinth: An Assessment of Trade Facilitation Initiatives in Latin America and the Caribbean," IDB Publications (Books), Inter-American Development Bank, number 96856, February.
    10. Volpe Martincus, Christian, 2016. "Out of the Border Labyrinth: An Assessment of Trade Facilitation Initiatives in Latin America and the Caribbean," IDB Publications (Books), Inter-American Development Bank, number 7994.
    11. Volpe Martincus, Christian & Carballo, Jerónimo & Graziano, Alejandro, 2015. "Customs," Journal of International Economics, Elsevier, vol. 96(1), pages 119-137.

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