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Anywhere Point-of-Care Diagnostics Vodafone, Cepheid, Guavus, InSTEDD, FIND © 2016 TM Forum Live! 2016 | 1 Outline Business Challenge The Team The Catalyst Potential Patient Value Next Steps © 2016 TM Forum Live! 2016 | 2 Business Challenge • Many people with serious infectious diseases like TB are not aware that they are infected, and thus do not seek effective treatment, and may infect others • In developing countries (with high incidence of such diseases), access to healthcare may be limited – by cost of tests in hospitals, and distance to clinics/hospitals • It is difficult to ensure that the correct treatments are stocked locally due to lack of timely and contextual disease information © 2016 TM Forum Live! 2016 | 3 IoT-Enabled Molecular Diagnostics © 2016 TM Forum Live! 2016 | 4 The Team Vodafone Cepheid M2M/IoT platform & connectivity provider Guavus Big data analytics company Medical diagnostics instrument and test manufacturer Value Proposition: A new & high profile use of IoT technology to benefit society by improving people’s lives Value Proposition: A network of partners that allows effective use of their new POC instruments FIND Non-profit enabling development/delivery of diagnostic tests for poverty-related diseases Value Proposition: New and better epidemiology information Value Proposition: Includes additional sources of data for analysis, provides rich insights into disease trend prediction & management InSTEDD Non-profit using technology to improve health, safety and sustainable development Value Proposition: New and better epidemiology information © 2016 TM Forum Live! 2016 | 5 Solution Architecture InSTEDD and FIND’s Platform Guavus Analytics Diagnostic Data Cepheid Diagnostic Data Feed Collect medical test, location and date/time from both the medical instrument and the FIND Diagnostic smartphone/network Data Feed data transmission Vodafone(M2M/IoT platform/connectivity provider ) Collector CDX Receive and Store Diagnos tic Data Access DxAPI to consume diagnostic data Dashboard & Analytics Incidence Index Map Exploration and Correlation Guavus Data Mediation and Validation Health Trends & Insights Alert Notification Disease Trend Prediction Data from multiple sources like diagnostic equipment, telecom network data, and publically-available demographic Contextual Drill and economic data can be analysed using big Down data technology for finding insights Open External Data © 2016 TM Forum Live! 2016 | 6 Analytics Framework Delivering Timely and Automated Insights Business Drivers Solutions Healthcare Operational Intelligence Health Resource Planning Save Patients Lives Rapid results and Correct Treatment Antibiotic stock Management Better Knowledge of Epidemiology Patterns Proactive Service Monitoring Continuous Monitoring Service Optimization Guavus Reflex™ Analytics Continuous Collection Diagnostic Data Fusion & Aggregatio n Anomaly Detection & Predictive Modeling Location Data Targeted Action Location characteristics Exploration & Discovery Economy Health External Solution Context Data © 2016 TM Forum Live! 2016 | 7 Solution Snapshot Real-time system-generated alerts, triggered by simple thresholds or complex scenarios Compare trends and forecast over a selected period of time © 2016 TM Forum Live! 2016 | 8 See whether external factors are associated with disease spread Identify characteristics associated with affected regions Real-Time Alerts for Decision Support © 2016 TM Forum Live! 2016 | 9 User can view daily alerts and explore trends Prescriptive analytics for decision support and automation Alerts for appropriate stocking of antibiotics Alerts for increase in MDR-TB cases – suggest re-ordering appropriate drugs Alerts to provide relevant insights from the data External Data Correlation © 2016 TM Forum Live! 2016 | 10 External data overlay Food Hygiene, Population density, Unsafe Drinking Water, HIV+ Prevalence, Economy are a few examples we have used to demonstrate how we can correlate external data with a specific disease prevalence to get insights HIV+ Prevalence Correlation © 2016 TM Forum Live! 2016 | 11 HIV+ Prevalence rate overlay Food Hygiene, Population density, Unsafe Drinking Water, HIV+ Prevalence, Economy are a few examples we have used to demonstrate how we can correlate external data with a specific disease prevalence to get insights Region Characteristics Exploration & Correlation © 2016 TM Forum Live! 2016 | 12 Relevant publically available external information can be incorporated for additional insights For example: 85% people in Namibia carry mobile phones. Educational programs aimed at reducing disease spread could be designed to suit available devices and literacy rate information Tuberculosis Trend Prediction © 2016 TM Forum Live! 2016 | 13 See trend and forecast over a selected period of time. Advance data science to predict future trends. This information can be used to stock relevant medication May be used to provide early warning for spread/increase of disease incidents Flexible time range selections Potential Patient Value The correct antibiotics can be given as early as possible, leading to better medical outcome for the patient (increased cure rate) and reduced spread of the infection to other people More appropriate stocking of antibiotics due to knowledge of changing local drug-resistance patterns (cost savings, reduced risk of stock-outs) Better knowledge of local disease and drug-resistance patterns, analysed together with other factors (economic, demographic, other diseases, local events) can improve disease prediction, allocation of medical resources, and education initiatives © 2016 TM Forum Live! 2016 | 14 Next Steps Possible Future Work Other disease data can also be analysed to understand their impact on local population and correlation with TB Refine patient and drug stock forecasting/prediction model Additional alerts for decision support and automation Education campaign design could be better targeted if consumer phone type/connectivity data would be available If patients opt in to provide location information, this can be used to understand movement of people, and therefore spread of a disease © 2016 TM Forum Live! 2016 | 15 Thank you! © 2016 TM Forum Live! 2016 | 16