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Application of Big Data in Infectious Disease Surveillance: Contemporary Challenges and Solutions

  • Adiba Tabassum Chowdhury,
  • Mehrin Newaz,
  • Purnata Saha,
  • Molla E. Majid,
  • Adam Mushtak,
  • Muhammad Ashad Kabir

摘要

The integration of big data into infectious disease surveillance signifies a radical shift in public health, driven by technological advancements and expanded data-gathering capabilities. This convergence highlights the incorporation of large data- reservoirs, strengthens and further complements traditional disease-monitoring strategies. This study examines the challenges associated with utilizing big data for infectious disease surveillance, considers issues with data privacy and integrity as well as presents the requirements for strong analytical frameworks. It also explores the approaches for overcoming these barriers by highlighting the importance of data depersonalization, secure data transmission methods, and the creation of accurate predictive models. The discussion concludes by showcasing exemplary scenarios in which big data deployments have significantly enhanced disease monitoring and governance, all while contemplating potential directions for the rapidly evolving landscape of this field.