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2 Min Demo: Analytical Workspace & Health Care

CCH Tagetik's Analytical Workspace empowers users to utilize big data and flexible modeling capabilities to uncover hidden insights and forecast with improved accuracy. This video demonstrates how patient level details can be leveraged to help hospitals forecast financials through important operational drivers such as intensive care units, surgeries, diagnostic related groups, and payers.


To stay competitive in today's fast-moving market organizations need to leverage their data, extrapolate better insights and improve their forecastingaccuracy.

With CCH Tagetik's Analytical Workspace we can leverage the vast amount of data that organizations already warehouse and model on an unlimited number of dimentionalitiesto uncover hidden insights and build a better planning model.

In the healthcare industry Analytical Workspace can be used to analyze millions of patient level records,where we move beyond typical financial information to explore more statistical and operational data for detailed analysis.

Here we're analyzing entries at individual patient visiton array of different dates and health information such as 'Lenght of Stay' 'Intensive Care Units' and 'Ventilator Days', and on top of all of that we can leverage a multitudeof different dimensionalities such as insurances and payers, districts, patients, doctors, and diagnostic related groups.

With that level of granularity and a large volume of data in the Analytical Workspace, we can start analyzing that data to see some interesting insights.

On the patient side, I can review quarter over quarter changes in 'Patient Volume', 'Frequency in Surgery' and 'Intensive Care Units' to break out the volume by different diagnostic related groups and their financial ranking by expenses and revenue.

On the payer side,I can start breaking down information by individual insurance companies or different government policies to analyze how often they're reimbursing the patients expenses and how muchoften they're covering as well, not only the simple averages but also the distribution across all transactions, to better understand their behavior.

Here I'm understandingpatterns such as the baseline trend and seasonality to help me predict operational drivers, such as 'Patient Volume' and 'Intensive Care Units' on detailed diagnostic related groupings for the future year.

From here, I can start applying my experience in judgement to adjust and tweak this model, make some mashed different models for different predictions to find the best fit.

With these insights analysis and analytical techniques in an analytical workspace, I can produce a much more insightful and accurate financial forecast.

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