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Mi-kami/Early-Warning-Food-Price-Monitor-Northeast-Nigeria

Domain:

agriculture

Record type:

project
Creator:
Mi-
Host:
A capstone project marking the completion of the TS Academy Data Science Programme β€” showcasing four months of rigorous learning, real-world problem solving, and our readiness to take our first official steps into the data science field. # 🌍 Early Warning Food Price Monitor β€” Northeast Nigeria > A multi-model time series forecasting system for predicting monthly retail food prices up to three months ahead across conflict-affected states in Northeast Nigeria. --- ## πŸ”— Live Deployment **πŸ‘‰ earlywarningfoodpricemonito… The app provides a three-month price outlook for five key commodities across Adamawa, Borno and Yobe β€” three conflict-affected states in Northeast Nigeria where food insecurity is most acute. No technical knowledge required. --- ## πŸ“Œ Project Overview Food price volatility in Northeast Nigeria is driven by a compounding set of structural forces: the Boko Haram insurgency, the June 2023 fuel subsidy removal, naira devaluation, seasonal harvest cycles, and climate variability. Existing price monitoring systems report prices retrospectively β€” after market changes have already occurred. This project addresses that gap by building a **data-driven forecasting pipeline** that predicts monthly retail food prices **up to three months in advance**, giving policymakers, humanitarian organisations, traders and farmers the lead time needed to act before a crisis arrives. **Three models were built, evaluated and compared:** - SARIMA β€” classical seasonal time series model - XGBoost β€” gradient boosting with exogenous features - Facebook Prophet β€” decomposable trend-seasonality model All models were evaluated against a naive baseline across one-month, two-month and three-month forecast horizons. --- ## πŸ“Š Results Summary ### Overall Model Comparison β€” Tier 1 (Adamawa, Borno, Yobe) | Model | Combinations Won | Win Rate | Average MAPE | |:------|:---:|:---:|:---:| | Prophet | 10 of 13 | 76.9% | 30.8% | | XGBoost | 2 of 13 | 15.4% | 49.5% | | SARIMA | 1 of 13 | 7.7% | 53.6% | ### Prophet Accuracy by Forecast Horizon | Horizon | Prophet Avg MAPE | XGBoost Avg MAPE | |:--------|:---:|:---:| | H1 β€” 1 month ahead | 24.5% | 51.1% | | H2 β€” 2 months ahead | 28.5% | …