Learning associations of COVID-19 hospitalizations with wastewater viral signals by Markov modulated models

Fuente: arXiv
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Main Authors: Peng, K. Ken, Dean, Charmaine B., Delatolla, Robert, Hu, X. Joan
Format: Preprint
Published: 2024
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author Peng, K. Ken
Dean, Charmaine B.
Delatolla, Robert
Hu, X. Joan
author_facet Peng, K. Ken
Dean, Charmaine B.
Delatolla, Robert
Hu, X. Joan
contents Viral signal in wastewater offers a promising opportunity to assess and predict the burden of infectious diseases. That has driven the widespread adoption and development of wastewater monitoring tools by public health organizations. Recent research highlights a strong correlation between COVID-19 hospitalizations and wastewater viral signals, and validates that increases in wastewater measurements may offer early warnings of an increase in hospital admissions. Previous studies (e.g. Peng et al. 2023) utilize distributed lag models to explore associations of COVID-19 hospitalizations with lagged SARS-CoV-2 wastewater viral signals. However, the conventional distributed lag models assume the duration time of the lag to be fixed, which is not always plausible. This paper presents Markov-modulated models with distributed lasting time, treating the duration of the lag as a random variable defined by a hidden Markov chain. We evaluate exposure effects over the duration time and estimate the distribution of the lasting time using the wastewater data and COVID-19 hospitalization records from Ottawa, Canada during June 2020 to November 2022. The different COVID-19 waves are accommodated in the statistical learning. In particular, two strategies for comparing the associations over different time intervals are exemplified using the Ottawa data. Of note, the proposed Markov modulated models, an extension of distributed lag models, are potentially applicable to many different problems where the lag time is not fixed.
format Preprint
id arxiv_https___arxiv_org_abs_2410_07487
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Learning associations of COVID-19 hospitalizations with wastewater viral signals by Markov modulated models
Peng, K. Ken
Dean, Charmaine B.
Delatolla, Robert
Hu, X. Joan
Methodology
Applications
Viral signal in wastewater offers a promising opportunity to assess and predict the burden of infectious diseases. That has driven the widespread adoption and development of wastewater monitoring tools by public health organizations. Recent research highlights a strong correlation between COVID-19 hospitalizations and wastewater viral signals, and validates that increases in wastewater measurements may offer early warnings of an increase in hospital admissions. Previous studies (e.g. Peng et al. 2023) utilize distributed lag models to explore associations of COVID-19 hospitalizations with lagged SARS-CoV-2 wastewater viral signals. However, the conventional distributed lag models assume the duration time of the lag to be fixed, which is not always plausible. This paper presents Markov-modulated models with distributed lasting time, treating the duration of the lag as a random variable defined by a hidden Markov chain. We evaluate exposure effects over the duration time and estimate the distribution of the lasting time using the wastewater data and COVID-19 hospitalization records from Ottawa, Canada during June 2020 to November 2022. The different COVID-19 waves are accommodated in the statistical learning. In particular, two strategies for comparing the associations over different time intervals are exemplified using the Ottawa data. Of note, the proposed Markov modulated models, an extension of distributed lag models, are potentially applicable to many different problems where the lag time is not fixed.
title Learning associations of COVID-19 hospitalizations with wastewater viral signals by Markov modulated models
topic Methodology
Applications
url https://arxiv.org/abs/2410.07487