无线电技术
医学
胰腺导管腺癌
工作流程
胰腺癌
临床实习
放射科
限制
医学物理学
癌症
内科学
计算机科学
数据库
机械工程
工程类
家庭医学
作者
Hajra Arshad,Felipe Lopez‐Ramirez,Florent Tixier,Philippe Soyer,Satomi Kawamoto,Elliot K. Fishman,Linda C. Chu
标识
DOI:10.1177/08465371251351810
摘要
Radiomics is a mathematical approach to medical images to extract quantitative features generating a "radiomics signature." The radiomics workflow involves image acquisition and pre-processing, region of interest segmentation, feature extraction, and then model training and validation. It has generated promising results, however, clinical implementation for early detection remains a challenge. Pancreatic ductal adenocarcinoma (PDAC), the most common pancreatic cancer, has a highly aggressive nature with an aggregated 5-year survival rate of only 13%. Early detection of PDAC provides timely surgical intervention, hoping for improved survival rates. Radiomics has been applied to the detection of PDAC; however, its sensitivity to variations in image acquisition parameters has posed significant challenges, limiting the development of robust and generalizable models. This review explores the current landscape of radiomics for the early detection of PDAC, highlighting key challenges within the radiomics workflow and barriers to its progression from a proof-of-concept into clinical practice.
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