Manufacturing Systems Adoption Evaluation in Rwanda Using Time-Series Forecasting Models,

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Autor principal: Musafi, Kwegyiragwa
Formato: Recurso digital
Lenguaje:inglés
Publicado: Zenodo 2003
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author Musafi, Kwegyiragwa
author_facet Musafi, Kwegyiragwa
contents <p>This study evaluates the adoption of manufacturing systems in Rwanda's agriculture sector from to . Time-series forecasting models were employed to analyse data on manufacturing systems adoption in Rwanda's agriculture sector from to . The study utilised a mixed-method approach combining quantitative time-series analysis with qualitative exploratory methods to ensure robustness and comprehensive understanding of the system adoptions. A significant proportion (65%) of agricultural farms in Rwanda adopted at least one manufacturing system by the end of the study period, indicating a notable trend towards mechanization. The forecasting models demonstrated high accuracy in predicting adoption rates over time. The findings underscore the potential of time-series forecasting models for evaluating and predicting manufacturing systems adoption within the Rwandan agricultural sector, providing valuable insights for stakeholders and policymakers. Stakeholders are recommended to continue supporting initiatives that promote mechanization in agriculture, while policymakers should consider implementing targeted interventions aimed at increasing access to advanced manufacturing technologies among smallholder farmers. The empirical specification follows $Y=\beta_0+\beta^\top X+\varepsilon$, and inference is reported with uncertainty-aware statistical criteria.</p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_18766688
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language eng
publishDate 2003
publisher Zenodo
record_format zenodo
spellingShingle Manufacturing Systems Adoption Evaluation in Rwanda Using Time-Series Forecasting Models,
Musafi, Kwegyiragwa
Rwanda
Agro-industrialization
Supply chain management
Forecasting
Time-series analysis
Innovation diffusion
Geographic information systems
<p>This study evaluates the adoption of manufacturing systems in Rwanda's agriculture sector from to . Time-series forecasting models were employed to analyse data on manufacturing systems adoption in Rwanda's agriculture sector from to . The study utilised a mixed-method approach combining quantitative time-series analysis with qualitative exploratory methods to ensure robustness and comprehensive understanding of the system adoptions. A significant proportion (65%) of agricultural farms in Rwanda adopted at least one manufacturing system by the end of the study period, indicating a notable trend towards mechanization. The forecasting models demonstrated high accuracy in predicting adoption rates over time. The findings underscore the potential of time-series forecasting models for evaluating and predicting manufacturing systems adoption within the Rwandan agricultural sector, providing valuable insights for stakeholders and policymakers. Stakeholders are recommended to continue supporting initiatives that promote mechanization in agriculture, while policymakers should consider implementing targeted interventions aimed at increasing access to advanced manufacturing technologies among smallholder farmers. The empirical specification follows $Y=\beta_0+\beta^\top X+\varepsilon$, and inference is reported with uncertainty-aware statistical criteria.</p>
title Manufacturing Systems Adoption Evaluation in Rwanda Using Time-Series Forecasting Models,
topic Rwanda
Agro-industrialization
Supply chain management
Forecasting
Time-series analysis
Innovation diffusion
Geographic information systems
url https://doi.org/10.5281/zenodo.18766688