Please use this identifier to cite or link to this item: http://hdl.handle.net/1942/46618
Title: Nonparametric serial interval estimation with uniform mixtures
Authors: GRESSANI, Oswaldo 
HENS, Niel 
Editors: Holder, Benjamin Peirce
Issue Date: 2025
Publisher: PUBLIC LIBRARY SCIENCE
Source: PLoS computational biology, 21 (8) (Art N° e1013338)
Abstract: The serial interval of an infectious disease is a key instrument to understand transmission dynamics. Estimation of the serial interval distribution from illness onset data extracted from transmission pairs is challenging due to the presence of censoring and state-of-the-art methods mostly rely on parametric models. We present a fully data-driven methodology to estimate the serial interval distribution based on interval-censored serial interval data. The proposed nonparametric estimator of the cumulative distribution function of the serial interval is based on the class of uniform mixtures. Closed-form solutions are available for point estimates of different serial interval features and the bootstrap is used to construct confidence intervals. Algorithms underlying our approach are simple, stable, and computationally inexpensive, making them easily implementable in a programming language that is most familiar to a potential user. The nonparametric user-friendly routine is included in the EpiDelays package for ease of implementation. Our method complements existing parametric approaches for serial interval estimation and permits to analyze past, current, or future illness onset data streams following a set of best practices in epidemiological delay modeling.
Notes: Gressani, O (corresponding author), Hasselt Univ, Interuniv Inst Biostat & Stat Bioinformat I BioSta, Data Sci Inst, Hasselt, Belgium.
oswaldo.gressani@uhasselt.be
Keywords: Humans;Algorithms;Computational Biology;Computer Simulation;Statistics, Nonparametric;Models, Statistical;Communicable Diseases
Document URI: http://hdl.handle.net/1942/46618
ISSN: 1553-734X
e-ISSN: 1553-7358
DOI: 10.1371/journal.pcbi.1013338
ISI #: WOS:001544036900005
Rights: 2025 Gressani, Hens. This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
Category: A1
Type: Journal Contribution
Appears in Collections:Research publications

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