Whole slide image based prognosis prediction in rectal cancer using unsupervised artificial intelligence

Background Rectal cancer is a common cancer worldwide and lacks effective prognostic markers. The development of prognostic markers by computational pathology methods has attracted increasing attention. This paper aims to construct a prognostic signature from whole slide images for predicting progre...

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Bibliographic Details
Published in:BMC cancer Vol. 24; no. 1; pp. 1523 - 12
Main Authors: Zhou, Xuezhi, Dai, Jing, Lu, Yizhan, Zhao, Qingqing, Liu, Yong, Wang, Chang, Zhao, Zongya, Wang, Chong, Gao, Zhixian, Yu, Yi, Zhao, Yandong, Cao, Wuteng
Format: Journal Article
Language:English
Published: London BioMed Central 18.12.2024
BioMed Central Ltd
Springer Nature B.V
BMC
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ISSN:1471-2407, 1471-2407
Online Access:Get full text
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