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Predicting food crises using news streams.

Ananth Balashankar1, Lakshminarayanan Subramanian1,2, Samuel P Fraiberger1,3,4

  • 1Department of Computer Science, New York University, New York, NY, USA.

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This summary is machine-generated.

Predicting food crises is vital for aid. This study uses deep learning on news text to find early warning signs, improving predictions up to 12 months in advance.

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Area of Science:

  • Computational Social Science
  • Food Security Analysis
  • Machine Learning Applications

Background:

  • Effective food crisis prediction is essential for timely humanitarian aid allocation and mitigating suffering.
  • Current predictive models often use delayed, incomplete, or outdated risk measures.
  • There is a need for high-frequency, interpretable indicators for early food crisis detection.

Purpose of the Study:

  • To develop and validate a novel approach for anticipating food crises using deep learning on news text.
  • To extract interpretable, high-frequency precursors to food crises from a large corpus of news articles.
  • To assess the improvement in food insecurity prediction accuracy using text-derived indicators.

Main Methods:

  • Leveraged deep learning techniques on 11.2 million news articles (1980-2020) from food-insecure countries.
  • Extracted interpretable, high-frequency precursors to food crises.
  • Validated extracted indicators against traditional risk measures.
  • Compared predictive performance of news-derived indicators against baseline models.

Main Results:

  • News-derived indicators significantly improved district-level food insecurity predictions up to 12 months ahead (July 2009-July 2020) across 21 countries.
  • The model demonstrated substantial improvements relative to baseline models lacking text information.
  • Extracted precursors were interpretable and validated by traditional indicators.

Conclusions:

  • News text analysis, powered by deep learning, offers a powerful tool for early food crisis anticipation.
  • This approach enhances predictive accuracy for humanitarian aid allocation in data-scarce environments.
  • Machine learning applications in analyzing unstructured data can significantly improve decision-making for global challenges.