Patient 360 + Opioid Fraud Detection Using Machine Learning and TigerGraph

Watch our online seminar to learn how to unlock patient 360 & prevent opioid fraud with graph & ML technology. We discuss how graph-based Patient 360 breaks silos and enables analytics to discover more efficient operations, better healthcare outcomes, and fraud detection.

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Patient 360 + Opioid Fraud Detection Using Machine Learning and TigerGraph

Watch our online seminar to learn how to unlock patient 360 & prevent opioid fraud with graph & ML technology. We discuss how graph-based Patient 360 breaks silos and enables analytics to discover more efficient operations, better healthcare outcomes, and fraud detection.

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What You Will Learn

  • Full Patient 360 - Tie all aspects of the patient together and identify relationships. Use Graph & Time Series to view history and identify with ML patterns.
  • Churn Prevention - Data segmentation, analytics for historical data and pattern views.
  • Sentiment Tracking & Patient Care Analysis - Analytics to navigate your data and track patient care.
  • Identification of Claim Anomalies - Fast, impactful analysis of data for anomaly detection.
  • Member Care & Doctor Abuse Detection - Intervention and Graph relationship management for cause and case tracking.
  • Influence Analysis - Most influential doctors + pharmacies;  most influential financial analysts.
  • Network Efficiency - Using graph to determine which networks are most efficient.
  • Working Prototypes - See graph and ML in action

User Audience

Services & capabilities

Project Details

Technologies

April 26, 2019

Patient 360 + Opioid Fraud Detection Using Machine Learning and TigerGraph

Watch our online seminar to learn how to unlock patient 360 & prevent opioid fraud with graph & ML technology. We discuss how graph-based Patient 360 breaks silos and enables analytics to discover more efficient operations, better healthcare outcomes, and fraud detection.

What You Will Learn

  • Full Patient 360 - Tie all aspects of the patient together and identify relationships. Use Graph & Time Series to view history and identify with ML patterns.
  • Churn Prevention - Data segmentation, analytics for historical data and pattern views.
  • Sentiment Tracking & Patient Care Analysis - Analytics to navigate your data and track patient care.
  • Identification of Claim Anomalies - Fast, impactful analysis of data for anomaly detection.
  • Member Care & Doctor Abuse Detection - Intervention and Graph relationship management for cause and case tracking.
  • Influence Analysis - Most influential doctors + pharmacies;  most influential financial analysts.
  • Network Efficiency - Using graph to determine which networks are most efficient.
  • Working Prototypes - See graph and ML in action

User Audience

Services

Project Details

View Transcript

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