To create the map of poverty that includes the use of information obtained from the survey by space inquiries from people in each local area, which requires both time and costs are very high in this operation. Areas where no data from the survey, it is used to help forecast, which it does not have much precision. Because of the weather, there are math database from actual survey, fewer references, surely the result very inaccurate forecast. Imagine that the survey data in Africa only 5. countries will make it possible to create a map of poverty for the entire continent, precisely what a tattoo without other data in analysis and forecast.So Stanford's research team hit the ground in poverty mapping this new waste by removing data that is common to all areas of the Earth's topography means that used high-resolution photography from satellites simultaneously, this research team has developed a model machine learning algorithms come in a lot of those photo analysis.
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