Forecasting sustainability of healthcare supply chains using deep learning and network data envelopment analysis

dc.contributor.authorAzadi,Majid
dc.contributor.authorYousefi, Saeed
dc.contributor.authorFarzipoor Saen,Reza
dc.contributor.authorShabanpour, Hadi
dc.contributor.authorJabeen,Fauzia
dc.date.accessioned2024-05-25T06:43:30Z
dc.date.available2024-05-25T06:43:30Z
dc.date.issued2023-01
dc.description.abstractThe main objective of this study is to propose a network data envelopment analysis (NDEA) model and a deep learning approach for forecasting the sustainability of healthcare supply chains (HSCs). Technological advances manifested in approaches such as deep learning, artificial intelligence (AI), and Blockchain are of substantial importance throughout HSCs and are understood as competitive advantages. Furthermore, applying advanced performance evaluation techniques, including DEA in HSCs for enhancing performance has attracted momentous attention over the last two decades. To make use of these approaches, a network DEA (NDEA) model and a deep learning approach are developed to predict the sustainability of HSCs. The developed model in this paper can determine the optimal value of bounded connections. Using the DEA capabilities, the threshold of each of these bounded connections is obtained to maximize the efficiency of decision making units (DMUs). It also identifies the role of the dual-role connections for each DMU. The results show that HSCs that use the least facilities and have the most desirable output, as well as the least undesirable output, are in the top ranks. Keywords DEA capabilities, Artificial intelligence, Healthcare supply chains, Network data envelopment analysis
dc.identifier.citationAzadi, M., Yousefi, S., Saen, R. F., Shabanpour, H., & Jabeen, F. (2023). Forecasting sustainability of healthcare supply chains using deep learning and network data envelopment analysis. Journal of Business Research, 154, 113357.
dc.identifier.doihttps://doi.org/10.1016/j.jbusres.2022.113357
dc.identifier.urihttps://dspace.adu.ac.ae/handle/1/5413
dc.language.isoen
dc.publisherElsevier
dc.titleForecasting sustainability of healthcare supply chains using deep learning and network data envelopment analysis
dc.typeArticle

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