Pancreatic Adenocarcinoma: Imaging Modalities and the Role of Artificial Intelligence in Analyzing CT and MRI Images

Author:

Anghel Cristian12ORCID,Grasu Mugur Cristian12ORCID,Anghel Denisa Andreea2ORCID,Rusu-Munteanu Gina-Ionela2,Dumitru Radu Lucian12,Lupescu Ioana Gabriela12ORCID

Affiliation:

1. Faculty of Medicine, Department of Medical Imaging and Interventional Radiology, Carol Davila University of Medicine and Pharmacy Bucharest, 020021 Bucharest, Romania

2. Department of Radiology and Medical Imaging, Fundeni Clinical Institute, 022328 Bucharest, Romania

Abstract

Pancreatic ductal adenocarcinoma (PDAC) stands out as the predominant malignant neoplasm affecting the pancreas, characterized by a poor prognosis, in most cases patients being diagnosed in a nonresectable stage. Image-based artificial intelligence (AI) models implemented in tumor detection, segmentation, and classification could improve diagnosis with better treatment options and increased survival. This review included papers published in the last five years and describes the current trends in AI algorithms used in PDAC. We analyzed the applications of AI in the detection of PDAC, segmentation of the lesion, and classification algorithms used in differential diagnosis, prognosis, and histopathological and genomic prediction. The results show a lack of multi-institutional collaboration and stresses the need for bigger datasets in order for AI models to be implemented in a clinically relevant manner.

Publisher

MDPI AG

Reference116 articles.

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