Predicting Survivorship Appointment Nonattendance in a Community Cancer Center: A Machine-Learning Approach

Author:

Schlairet Maura C.1ORCID,Heddon Mary Ann2,Randolph Justus1

Affiliation:

1. Georgia Baptist College of Nursing, Mercer University, Atlanta, GA, USA

2. Clinical Trials Program, Pearlman Cancer Center of South Georgia Medical Center, Valdosta, GA, USA

Abstract

Understanding and predicting cancer survivors’ health care utilization is critical to promote quality care. The consultative system of survivorship care uses a onetime consultative appointment to transition patients from active treatment into survivorship follow-up care. Knowledge of attributes associated with nonattendance at this essential appointment is needed. An ability to predict patients with a likelihood of nonattendance would be of value to practitioners. Unfortunately, traditional data modeling techniques may not be useful in working with large numbers of variables from electronic medical record platforms. A variety of machine-learning algorithms were used to develop a model for predicting 843 survivors’ nonattendance at a comprehensive community cancer center in the southeastern United States. A parsimonious model resulted in a k-fold classification accuracy of 67.3% and included three variables. Practitioners may be able to increase utilization of follow-up care among survivors by knowing which patient groups are more likely to be survivorship appointment nonattenders.

Publisher

SAGE Publications

Subject

General Nursing

Reference60 articles.

1. American Cancer Society. Cancer treatment & survivorship facts & figures 2022-2024. https://www.cancer.org/research/cancer-facts-statistics.html. Accessed December 8, 2022.

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