Machine Learning-based predictive model for the prognosis of human papillomavirus (HPV) vaccination attrition

Urlish Marroquin, Nemias Saboya, A. Angel Sullon

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

1 Scopus citations

Abstract

Currently, one of the diseases that is causing a large number of deaths in Peru is cervical cancer caused by the human papillomavirus (HPV). However, the application of the vaccine against this disease can protect against certain strains of HPV. The study consisted of the development of a predictive model using Machine Learning for the prognosis of HPV vaccination attrition in girls between 9 and 13 years of age. The data used came from the "HPV vaccination system"of the Peruvian Ministry of Health (MINSA). The methodology consisted of developing four supervised learning models: Decision Tree Classifier, Random Forest Classifier, Extra Trees Classifier and Extreme Gradient Boosting with the intention of comparing the results and choosing the best performing model for its respective calibration and to be used through a graphical interface. The results showed that the best learning model was Random Forest Classifier, with an Accuracy Score of 63.6140%, AUC of 63.6183%, Recall of 63% and F1-score of 63%; which indicates that the model classifies 64% of the cases as girls who drop out of the HPV vaccination program.

Original languageEnglish
Title of host publicationICRSA 2021 - 2021 4th International Conference on Robot Systems and Applications
PublisherAssociation for Computing Machinery
Pages44-49
Number of pages6
ISBN (Electronic)9781450384940
DOIs
StatePublished - 9 Apr 2021
Event4th International Conference on Robot Systems and Applications, ICRSA 2021 - Virtual, Online, China
Duration: 9 Apr 202111 Apr 2021

Publication series

NameACM International Conference Proceeding Series

Conference

Conference4th International Conference on Robot Systems and Applications, ICRSA 2021
Country/TerritoryChina
CityVirtual, Online
Period9/04/2111/04/21

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