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Combining satellite imagery and machine learning to predict poverty

机译:结合卫星图像和机器学习来预测贫困

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摘要

Reliable data on economic livelihoods remain scarce in the developing world, hampering efforts to study these outcomes and to design policies that improve them. Here we demonstrate an accurate, inexpensive, and scalable method for estimating consumption expenditure and asset wealth from high-resolution satellite imagery. Using survey and satellite data from five African countries-Nigeria, Tanzania, Uganda, Malawi, and Rwanda-we show how a convolutional neural network can be trained to identify image features that can explain up to 75% of the variation in local-level economic outcomes. Our method, which requires only publicly available data, could transform efforts to track and target poverty in developing countries. It also demonstrates how powerful machine learning techniques can be applied in a setting with limited training data, suggesting broad potential application across many scientific domains.
机译:在发展中国家,关于经济生计的可靠数据仍然很少,这阻碍了研究这些成果并设计改善这些成果的努力。在这里,我们演示了一种准确,廉价且可扩展的方法,用于根据高分辨率卫星图像估算消费支出和资产财富。使用来自五个非洲国家(尼日利亚,坦桑尼亚,乌干达,马拉维和卢旺达)的调查和卫星数据,我们展示了如何训练卷积神经网络来识别图像特征,这些图像特征可以解释高达75%的本地经济变化结果。我们的方法仅需要公开可用的数据,就可以改变跟踪和确定发展中国家贫困的目标。它还展示了如何在训练数据有限的情况下应用强大的机器学习技术,表明在许多科学领域中都有广泛的潜在应用。

著录项

  • 来源
    《Science》 |2016年第6301期|790-794|共5页
  • 作者单位

    Stanford Univ, Dept Comp Sci, Stanford, CA USA|Stanford Univ, Dept Elect Engn, Stanford, CA USA;

    Stanford Univ, Dept Earth Syst Sci, Stanford, CA 94305 USA|Stanford Univ, Ctr Food Secur & Environm, Stanford, CA 94305 USA|NBER, Boston, MA 02115 USA;

    Stanford Univ, Dept Comp Sci, Stanford, CA USA;

    Stanford Univ, Ctr Food Secur & Environm, Stanford, CA 94305 USA;

    Stanford Univ, Dept Earth Syst Sci, Stanford, CA 94305 USA|Stanford Univ, Ctr Food Secur & Environm, Stanford, CA 94305 USA;

    Stanford Univ, Dept Comp Sci, Stanford, CA USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 02:51:41

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