Literature DB >> 30488755

A comparison of logistic regression models with alternative machine learning methods to predict the risk of in-hospital mortality in emergency medical admissions via external validation.

Muhammad Faisal, Andy Scally1, Robin Howes2, Kevin Beatson, Donald Richardson3, Mohammed A Mohammed1.   

Abstract

We compare the performance of logistic regression with several alternative machine learning methods to estimate the risk of death for patients following an emergency admission to hospital based on the patients' first blood test results and physiological measurements using an external validation approach. We trained and tested each model using data from one hospital (n = 24,696) and compared the performance of these models in data from another hospital (n = 13,477). We used two performance measures - the calibration slope and area under the receiver operating characteristic curve. The logistic model performed reasonably well - calibration slope: 0.90, area under the receiver operating characteristic curve: 0.847 compared to the other machine learning methods. Given the complexity of choosing tuning parameters of these methods, the performance of logistic regression with transformations for in-hospital mortality prediction was competitive with the best performing alternative machine learning methods with no evidence of overfitting.

Entities:  

Keywords:  classification and prediction; computationally intensive methods; databases and data mining; electronic health records; modelling healthcare services; statistical modelling

Mesh:

Year:  2018        PMID: 30488755     DOI: 10.1177/1460458218813600

Source DB:  PubMed          Journal:  Health Informatics J        ISSN: 1460-4582            Impact factor:   2.681


  9 in total

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Journal:  Appl Clin Inform       Date:  2022-02-09       Impact factor: 2.342

2.  Inference for the Case Probability in High-dimensional Logistic Regression.

Authors:  Zijian Guo; Prabrisha Rakshit; Daniel S Herman; Jinbo Chen
Journal:  J Mach Learn Res       Date:  2021       Impact factor: 5.177

3.  Development and validation of a meta-learner for combining statistical and machine learning prediction models in individuals with depression.

Authors:  Qiang Liu; Georgia Salanti; Franco De Crescenzo; Edoardo Giuseppe Ostinelli; Zhenpeng Li; Anneka Tomlinson; Andrea Cipriani; Orestis Efthimiou
Journal:  BMC Psychiatry       Date:  2022-05-16       Impact factor: 4.144

4.  Logistic regression has similar performance to optimised machine learning algorithms in a clinical setting: application to the discrimination between type 1 and type 2 diabetes in young adults.

Authors:  Anita L Lynam; John M Dennis; Katharine R Owen; Richard A Oram; Angus G Jones; Beverley M Shields; Lauric A Ferrat
Journal:  Diagn Progn Res       Date:  2020-06-04

5.  Investigating factors affecting the interval between a burn and the start of treatment using data mining methods and logistic regression.

Authors:  Touraj Ahmadi-Jouybari; Somayeh Najafi-Ghobadi; Reza Karami-Matin; Saeid Najafian-Ghobadi; Khadijeh Najafi-Ghobadi
Journal:  BMC Med Res Methodol       Date:  2021-04-14       Impact factor: 4.615

6.  Sex Differences in Hospital-Acquired Pneumonia among Patients with Type 2 Diabetes Mellitus Patients: Retrospective Cohort Study using Hospital Discharge Data in Spain (2016-2019).

Authors:  Ana Lopez-de-Andres; Marta Lopez-Herranz; Valentin Hernandez-Barrera; Javier de-Miguel-Diez; Jose M de-Miguel-Yanes; David Carabantes-Alarcon; Romana Albaladejo-Vicente; Rosa Villanueva-Orbaiz; Rodrigo Jimenez-Garcia
Journal:  Int J Environ Res Public Health       Date:  2021-11-30       Impact factor: 3.390

7.  Toward mitigating pressure injuries: Detecting patient orientation from vertical bed reaction forces.

Authors:  Gordon Wong; Sharon Gabison; Elham Dolatabadi; Gary Evans; Tara Kajaks; Pamela Holliday; Hisham Alshaer; Geoff Fernie; Tilak Dutta
Journal:  J Rehabil Assist Technol Eng       Date:  2020-04-06

Review 8.  Machine learning techniques for mortality prediction in emergency departments: a systematic review.

Authors:  Amin Naemi; Thomas Schmidt; Marjan Mansourvar; Mohammad Naghavi-Behzad; Ali Ebrahimi; Uffe Kock Wiil
Journal:  BMJ Open       Date:  2021-11-02       Impact factor: 2.692

9.  Case-Ascertainment Models to Identify Adults with Obstructive Sleep Apnea Using Health Administrative Data: Internal and External Validation.

Authors:  Tetyana Kendzerska; Carl van Walraven; Daniel I McIsaac; Marcus Povitz; Sunita Mulpuru; Isac Lima; Robert Talarico; Shawn D Aaron; William Reisman; Andrea S Gershon
Journal:  Clin Epidemiol       Date:  2021-06-17       Impact factor: 4.790

  9 in total

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