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Hospital quality classification based on quality indicator data during the COVID-19 pandemic

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posted on 2024-08-15, 06:21 authored by Ida Nurhaida, Inge DhamantiInge Dhamanti, Vina Ayumi, Fitri Yakub, Benny Tjahjono
This research aim is to propose a machine learning approach to automatically evaluate or categories hospital quality status using quality indicator data. This research was divided into six stages: data collection, pre-processing, feature engineering, data training, data testing, and evaluation. In 2020, we collected 5,542 data values for quality indicators from 658 Indonesian hospitals. However, we analyzed data from only 275 hospitals due to inadequate submission. We employed methods of machine learning such as decision tree (DT), gaussian naïve Bayes (GNB), logistic regression (LR), k-nearest neighbors (KNN), support vector machine (SVM), linear discriminant analysis (LDA) and neural network (NN) for research archive purposes. Logistic regression achieved a 70% accuracy rate, SVM a 68% accuracy rate, and neural network a 59.34% of accuracy. Moreover, K-nearest neighbors achieved a 54% of accuracy and decision tree a 41% accuracy. Gaussian-NB achieved a 32% accuracy rate. The linear discriminant analysis achieved the highest accuracy with 71%. It can be concluded that linear discriminant analysis is the algorithm suitable for hospital quality data in this research.

Funding

We express our gratitude and acknowledge Universitas Airlangga for the financial support for this research through the SATU Joint Research Scheme grant.

History

Publication Date

2024-08-01

Journal

International Journal of Electrical and Computer Engineering (IJECE)

Volume

14

Issue

4

Pagination

11p. (p. 4365-4375)

Publisher

Institute of Advanced Engineering and Science

ISSN

2088-8708

Rights Statement

© IJECE 2024. This work is licensed under a Creative Commons Attribution-ShareAlike 4.0 International License.

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