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Early detection of norovirus outbreak using machine learning methods in South Korea.

Sieun LeeEunhae ChoGeunsoo JangSangil KimGiphil Cho
Published in: PloS one (2022)
The results of this study show that early detection can provide important insights for the preparation and control of norovirus outbreaks by the government. Our method provides indicators of high-risk weeks. In particular, last norovirus detection rate, minimum temperature, and day length, play critical roles in estimating weekly norovirus warnings.
Keyphrases
  • loop mediated isothermal amplification
  • label free
  • gestational age