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Detecting Influenza Epidemics Using Search Engine Query Data

机译:使用搜索引擎查询数据检测流行性感冒

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Seasonal influenza epidemics are a major public health concern, causing tens of millions of respiratory illnesses and 250,000 to 500,000 deaths worldwide each year. In addition to seasonal influenza, a new strain of influenza virus against which no previous immunity exists and that demonstrates human-to-human transmission could result in a pandemic with millions of fatalities. Early detection of disease activity, when followed by a rapid response, can reduce the impact of both seasonal and pandemic influenza. One way to improve early detection is to monitor health-seeking behaviour in the form of queries to online search engines, which are submitted by millions of users around the world each day. Here we present a method of analysing large numbers of Google search queries to track influenza-like illness in a population. Because the relative frequency of certain queries is highly correlated with the percentage of physician visits in which a patient presents with influenza-like symptoms, we can accurately estimate the current level of weekly influenza activity in each region of the United States, with a reporting lag of about one day. This approach may make it possible to use search queries to detect influenza epidemics in areas with a large population of web search users.
机译:季节性流感流行是主要的公共卫生问题,全世界每年导致数千万呼吸系统疾病和25万至50万例死亡。除了季节性流感外,尚无针对性的新流感病毒株,它能证明人与人之间的传播,可能导致大流行,并造成数百万人死亡。疾病活动的早期检测以及随后的快速反应可以减少季节性和大流行性流感的影响。改善早期发现的一种方法是,通过查询在线搜索引擎的形式来监视寻求健康的行为,在线搜索引擎每天由世界各地数百万的用户提交。在这里,我们介绍一种分析大量Google搜索查询以跟踪人群中类似流感的疾病的方法。由于某些查询的相对频率与患者出现流感样症状的就诊百分比高度相关,因此我们可以准确估计美国每个地区当前每周的流感活动水平,且报告滞后大约一天的时间。这种方法可能使使用搜索查询来检测具有大量Web搜索用户的区域中的流感流行病成为可能。

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