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Application of a New Hybrid Model with Seasonal Auto-Regressive Integrated Moving Average (ARIMA) and Nonlinear Auto-Regressive Neural Network (NARNN) in Forecasting Incidence Cases of HFMD in Shenzhen China

机译:季节性自回归综合移动平均值(ARIMA)和非线性自回归神经网络(NARNN)的新混合模型在深圳手足口病发病率预测中的应用

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摘要

BackgroundOutbreaks of hand-foot-mouth disease (HFMD) have been reported for many times in Asia during the last decades. This emerging disease has drawn worldwide attention and vigilance. Nowadays, the prevention and control of HFMD has become an imperative issue in China. Early detection and response will be helpful before it happening, using modern information technology during the epidemic.
机译:背景技术在过去的几十年中,亚洲已多次报告手足口病(HFMD)暴发。这种新出现的疾病引起了全世界的关注和警惕。如今,手足口病的预防和控制已成为中国的当务之急。在流行期间使用现代信息技术,及早发现和作出反应将有帮助。

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