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<dc:creator>Cardona, John F.</dc:creator>
<dc:creator>Castaneda, Juliana</dc:creator>
<dc:creator>Martins, Leandro do C.</dc:creator>
<dc:creator>Gandouz, Mariem</dc:creator>
<dc:creator>Juan, Angel A.</dc:creator>
<dc:creator>Franco, Guillermo</dc:creator>
<dc:date>2021-07</dc:date>
<dc:description>Trabajo presentado en: R-Evolucionando el transporte, XIV Congreso de Ingeniería del Transporte (CIT 2021), realizado en modalidad online los días 6, 7 y 8 de julio de 2021, organizado por la Universidad de Burgos</dc:description>
<dc:description>This paper discusses a case study in which publicly available data of a rail freight&#xd;
transportation firm has been gathered, cleansed, and analyzed in order to: (i) describe the&#xd;
data using statistical indicators and graphs; (ii) identify patterns regarding several Key&#xd;
Performance Indicators; (iii) obtain forecasts on the future evolution of these indicators; and&#xd;
(iv) use the identified patterns and the generated forecasts to propose customized insurance&#xd;
products that reflect the current and future freight transportation activity. The paper&#xd;
illustrates the different methodological steps required during the extraction and cleansing of&#xd;
the data --which required the development of Python scripts--, the use of time series analysis&#xd;
for obtaining reliable forecasts, and the use of machine learning models for designing&#xd;
customized insurance coverage from the identified patterns and predicted values.</dc:description>
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<dc:identifier>http://hdl.handle.net/10259/6876</dc:identifier>
<dc:language>eng</dc:language>
<dc:publisher>Universidad de Burgos. Servicio de Publicaciones e Imagen Institucional</dc:publisher>
<dc:title>Using Data Analytics &amp; Machine Learning to Design Business Interruption Insurance Products for Rail Freight Operators</dc:title>
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