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Published on: December 10, 2013
Using Google Trends to Predict Pediatric Respiratory Syncytial Virus Encounters at a Major Health Care System
Matthew G Crowson1, David Witsell2, Antoine Eskander3
1Department of Otolaryngology-Head & Neck Surgery, Sunnybrook Health Sciences Centre, Toronto, Ontario, M4N 3N5, Canada. matt.crowson@mail.utoronto.ca.
Insights
Google search trends for respiratory syncytial virus (RSV) can predict upcoming pediatric cases. This online search activity provides a lead time of nearly two days before increased healthcare encounters.
Area of Science:
- Epidemiology
- Public Health Surveillance
- Health Informatics
Background:
- Respiratory syncytial virus (RSV) is a significant cause of pediatric respiratory illness.
- Predicting surges in RSV cases is crucial for healthcare resource allocation.
- Existing methods for predicting RSV outbreaks have limitations.
Purpose of the Study:
- To determine if Google search activity for RSV can predict healthcare encounters for pediatric RSV.
- To quantify the lead time provided by Google search trends for RSV.
- To assess the utility of internet search data for public health surveillance.
Main Methods:
- Time series analysis comparing pediatric RSV encounter data (2005-2016) with North Carolina Google search data for RSV.
- Granger Causality testing to assess predictive power.
- Cross-correlation analysis to determine lag time between search interest and encounters.
Main Results:
- Google search activity and pediatric RSV encounters exhibit similar seasonal patterns, peaking in winter.
- Google search data for RSV significantly predicts pediatric RSV encounters (F=5.72, p<0.0001).
- Increased Google search activity for RSV provided a lead time of approximately 1.47 days before observed increases in healthcare encounters.
Conclusions:
- Google search trends offer a valuable, real-time indicator for predicting pediatric RSV healthcare utilization.
- This predictive capability allows healthcare systems to anticipate patient influx and optimize resource management.
- Integrating internet search data into public health surveillance can enhance preparedness for respiratory virus seasons.
Abstract:
To assess whether Google search activity predicts lead-time for pediatric respiratory syncytial virus (RSV) encounters within a major health care system. Internet user search and health system encounter database analysis. Pediatric RSV encounter volumes across all clinics and hospitals in the Duke Health system were tabulated from 2005 to 2016. North Carolina Google user search activity for RSV were obtained over the same time period. Time series analysis was used to compare RSV encounters and search activity. Cross-correlation was used to determine the 'lag' time difference between Google user search interest for RSV and observed Pediatric RSV encounter volumes. Google search activity and Pediatric RSV encounter volumes demonstrated strong seasonality with predilection for winter months. Granger Causality testing revealed that North Carolina RSV Google search activity can predict pediatric RSV encounters at our health system (F = 5.72, p < 0.0001). Using cross-correlation, increases in Google search activity provided lead time of 0.21 weeks (1.47 days) prior to observed increases in Pediatric RSV encounter volumes at our health system. RSV is a common cause of upper airway obstruction in pediatric patients for which pediatric otolaryngologists are consulted. We demonstrate that Google search activity can predict RSV patient interactions with a major health system with a measurable lead-time. The ability to predict when illnesses in a population result in increased health care utilization would be an asset to health system providers, planners and administrators. Prediction of RSV would allow specific care pathways to be developed and resource needs to be anticipated before actual presentation.
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