众包
世界人口
产量(工程)
人口
传染病(医学专业)
数据科学
计算机科学
业务
疾病
生物技术
互联网隐私
万维网
环境卫生
医学
生物
材料科学
冶金
病理
作者
David Hughes,Marcel Salathé
出处
期刊:Cornell University - arXiv
日期:2015-11-25
被引量:885
标识
DOI:10.48550/arxiv.1511.08060
摘要
Human society needs to increase food production by an estimated 70% by 2050 to feed an expected population size that is predicted to be over 9 billion people. Currently, infectious diseases reduce the potential yield by an average of 40% with many farmers in the developing world experiencing yield losses as high as 100%. The widespread distribution of smartphones among crop growers around the world with an expected 5 billion smartphones by 2020 offers the potential of turning the smartphone into a valuable tool for diverse communities growing food. One potential application is the development of mobile disease diagnostics through machine learning and crowdsourcing. Here we announce the release of over 50,000 expertly curated images on healthy and infected leaves of crops plants through the existing online platform PlantVillage. We describe both the data and the platform. These data are the beginning of an on-going, crowdsourcing effort to enable computer vision approaches to help solve the problem of yield losses in crop plants due to infectious diseases.
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