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March 7, 20260 citationsOpen Access

Methodological Evaluation of Smallholder Farms Systems in Uganda Using Time-Series Forecasting Models for Reliability Assessment

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MKMicheal KasoziJOJoseph Mugisha OkelloCACatherine Apio

Key Points

  • The aim is to assess the reliability of forecasting models for smallholder farms in Uganda, focusing on weather impacts.
  • Conducted a comprehensive search for relevant studies on smallholder farms.
  • Utilized ARIMA and SARIMAX models for yield forecasting analysis.
  • Evaluated model accuracy and reliability under varying climatic conditions.
  • SARIMAX showed significant accuracy improvements over ARIMA.
  • Higher reliability and precision were observed in forecasting yield variability with SARIMAX.
  • Findings suggest integrating exogenous variables could further improve predictive power.

Abstract

Smallholder farms in Uganda face challenges such as unpredictable weather patterns, which affect their productivity and sustainability. A comprehensive search strategy was employed to identify relevant studies, focusing on methodologies such as ARIMA (AutoRegressive Integrated Moving Average) and SARIMAX (Seasonal AutoRegressive Integrated Moving Average with eXogenous regressors). The analysis revealed a significant proportion of model accuracy improvements when using SARIMAX over traditional ARIMA models in forecasting smallholder farm yields. SARIMAX outperformed ARIMA, demonstrating higher reliability and precision for forecasting yield variability under different climatic conditions. Future research should consider integrating exogenous variables to enhance the predictive power of time-series models for smallholder farms in Uganda. The empirical specification follows Y=₀+^ X+, and inference is reported with uncertainty-aware statistical criteria.

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Cite This Study

Kasozi et al. (2008) studied this question.

synapsesocial.com/papers/69abc1f65af8044f7a4eb1e8https://doi.org/10.5281/zenodo.18875417
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