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Comparison of nomogram with random survival forest for prediction of survival in patients with spindle cell carcinoma.

Authors :
Zhang, Xiaoshuai
Liang, Jing
Du, Zhaohui
Xie, Qi
Li, Ting
Tang, Fang
Source :
Journal of Cancer Research & Therapeutics. Dec2022, Vol. 18 Issue 7, p2006-2012. 7p.
Publication Year :
2022

Abstract

Purpose: Spindle cell carcinoma (SpCC) is a relatively rare tumor with an unfavorable prognosis. This study aimed to develop and validate a prediction model for the individual survival of patients with SpCC using Cox regression and the random survival forest (RSF) model. Methods: Patients diagnosed with SpCC between 2004 and 2016 were selected from the Surveillance, Epidemiology, and End Results (SEER) database, and randomly divided into training and validating cohorts. Cox regression and RSF were used to identify prognostic predictors and build prediction models. A nomogram based on Cox regression was constructed to predict the 1-, 3-, and 5-year survival of patients with SpCC. Internal validation was conducted using the bootstrapping method. We evaluated the discrimination accuracy and calibration of the model using Harrell's C-index and calibration plot, respectively. Results: Two hundred and fifty patients diagnosed with SpCC with required information were enrolled in this study. Multivariate Cox regression and RSF identified age, primary site, grade, SEER stage, tumor size, and treatment as significant prognostic predictors of SpCC. The bootstrapped and validated C-indices were 0.812 and 0.783 for nomogram, and 0.790 and 0.768 for RSF, respectively. Calibration plot of the nomogram showed an agreement between the prediction and actual observation. Conclusions: The nomogram developed in this study is a promising tool with a simplified presentation that can easily be used and interpreted by clinicians for evaluating the survival of each patient with SpCC; its performance was comparable to that of RSF. Application of such models are needed to help oncologists identify the high-risk patients and improve clinical decision making of SpCC treatment. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09731482
Volume :
18
Issue :
7
Database :
Academic Search Index
Journal :
Journal of Cancer Research & Therapeutics
Publication Type :
Academic Journal
Accession number :
161340089
Full Text :
https://doi.org/10.4103/jcrt.jcrt_2375_21