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Forecasting Adoption Rates in Senegalese District Hospitals Using Time-Series Models

Domain:

healthcare

Record type:

paper
Creator:
NdoDioDiallo, Mamadou
Publisher:
Zenodo
Host:avatar

This study addresses a current research gap in Medicine concerning Methodological evaluation of district hospitals systems in Senegal: time-series forecasting model for measuring adoption rates in Senegal. The objective is to formulate a rigorous model, state verifiable assumptions, and derive results with direct analytical or practical implications. A mixed-methods design was used, combining survey and interview data collected over the study period. The results establish bounded error under perturbation, a convergent estimation process under stated assumptions, and a stable link between the proposed metric and observed outcomes. The findings provide a reproducible analytical basis for subsequent theoretical and applied extensions. Stakeholders should prioritise inclusive, locally grounded strategies and improve data transparency. Methodological evaluation of district hospitals systems in Senegal: time-series forecasting model for measuring adoption rates, Senegal, Africa, Medicine, original research This work contributes a formal specification, transparent assumptions, and mathematically interpretable claims. Treatment effect was estimated with $\text{logit}(p_i)=\beta_0+\beta^\top X_i$, and uncertainty reported using confidence-interval based inference.

Visit

doi.org

Tags

Sub-Saharanhospital systemsforecasting modelstime-series analysisdiffusion of innovationsstatistical methodsgeographic information systems

Licenses

info:eu-repo/semantics/openAccessCreative Commons Attribution 4.0 Internationalhttps://creativecommons.org/licenses/by/4.0/legalcode

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