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Remote Sensing to Analyze Wealth, Poverty, and Crime

机译:遥感,分析财富,贫困和犯罪

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understanding of economic, social, and cultural characteristics of a society is critical to effective government policy and successful commercial undertakings. Obtaining this information, however, often requires direct interactions with the local populace through surveys or other costly methods. We address this challenge by combining automated processing of satellite imagery with advanced modeling techniques. We have developed methods for inferring measures of wellbeing and perceptions of crime from commercial satellite imagery. Through analysis of commercial satellite imagery and coincident survey data, previous research has demonstrated models for rural afghanistan and selected countries in sub-saharan africa. The findings show the potential for predicting peoples' attitudes about the a variety of social, economic, and political issues, based only on the imagery-derived information. This paper extends the previous research, focusing on wealth, poverty, and crime. We present models to predict indicators and quantify model performance through cross-validation. The paper concludes with recommendations for future exploration.
机译:理解社会的经济,社会和文化特征对有效的政府政策和成功的商业企业至关重要。然而,获得此信息通常需要通过调查或其他昂贵的方法与当地群体的直接交互。通过使用先进的建模技术结合卫星图像的自动化处理来解决这一挑战。我们已经制定了推断出推断福利和对商业卫星图像犯罪的措施的方法。通过分析商业卫星图像和巧合调查数据,之前的研究已经展示了农村阿富汗和撒哈拉以南非洲选定国家的模型。这些调查结果表明,仅基于Imagery派生信息预测人民对各种社会,经济和政治问题的态度。本文扩展了以前的研究,重点是财富,贫困和犯罪。我们提出了模型来预测指标并通过交叉验证量化模型性能。本文征询了未来勘探的建议。

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