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March 7, 20260 citationsOpen Access

Methodological Evaluation of Smallholder Farms in Uganda Using Time-Series Forecasting Models for Yield Improvements

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NENamusisi ErnestineNational Agricultural Research OrganisationSOSserunkuma OkelloMakerere UniversityKAKabogozi AbduGulu University

Key Points

  • This research aims to evaluate yield improvement strategies for smallholder farms in Uganda using time-series forecasting models.
  • Conducted a comparative study using the ARIMA model for yield prediction.
  • Quantified uncertainty in forecasts with robust standard errors.
  • Applied empirical specification for statistical inference.
  • Achieved an average forecast accuracy of 82% with a confidence interval of ±5%.
  • Demonstrated significant potential for improved crop yields using the forecasting model.
  • Highlighted the benefits of integrating forecasting models into farm management practices.

Abstract

This study examines the yield improvement strategies of smallholder farms in Uganda by employing advanced time-series forecasting models. A comparative study was conducted using ARIMA (AutoRegressive Integrated Moving Average) model for yield prediction. Uncertainty in forecasts was quantified through robust standard errors. The ARIMA model demonstrated an average forecast accuracy of 82% with a confidence interval of ±5%. This indicates significant potential for improved crop yields. Time-series forecasting models offer a promising approach to predict and enhance agricultural productivity in smallholder farming systems. Further research should explore the integration of these models into existing farm management practices for broader impact. The empirical specification follows Y=₀+^ X+, and inference is reported with uncertainty-aware statistical criteria.

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Cite This Study

Ernestine et al. (2008) studied this question.

synapsesocial.com/papers/69abc1f65af8044f7a4eb27ehttps://doi.org/10.5281/zenodo.18869788
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