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The International Meeting for Simulation in Healthcare
2015-01-10 - 2015-01-14    
All Day
Registration is Open! Please join us on January 10-14, 2015 for our fifteenth annual IMSH at the Ernest N. Morial Convention Center in New Orleans, Louisiana. Over [...]
Finding Time for HIPAA Amid Deafening Administrative Noise
2015-01-14    
1:00 pm - 3:00 pm
January 14, 2015, Web Conference 12pm CST | 1pm EST | 11am MT | 10am PST | 9am AKST | 8am HAST Main points covered: [...]
Meaningful Use  Attestation, Audits and Appeals - A Legal Perspective
2015-01-15    
2:00 pm - 3:30 pm
Join Jim Tate, HITECH Answers  and attorney Matt R. Fisher for our first webinar event in the New Year.   Target audience for this webinar: [...]
iHT2 Health IT Summit
2015-01-20 - 2015-01-21    
All Day
iHT2 [eye-h-tee-squared]: 1. an awe-inspiring summit featuring some of the world.s best and brightest. 2. great food for thought that will leave you begging for more. 3. [...]
Chronic Care Management: How to Get Paid
2015-01-22    
1:00 pm - 2:00 pm
Under a new chronic care management program authorized by CMS and taking effect in 2015, you can bill for care that you are probably already [...]
Proper Management of Medicare/Medicaid Overpayments to Limit Risk of False Claims
2015-01-28    
1:00 pm - 3:00 pm
January 28, 2015 Web Conference 12pm CST | 1pm EST | 11am MT | 10am PST | 9AM AKST | 8AM HAST Topics Covered: Identify [...]
Events on 2015-01-10
Events on 2015-01-20
iHT2 Health IT Summit
20 Jan 15
San Diego
Events on 2015-01-22
Articles

How Big Data Brings Healthcare and Technology Together

Healthcare and Technology

Exclusive Article By Dennis Hung at EMRIndustry

“Big data” is a term you hear a lot. Data-driven companies boast about how much information is collected and what they’re able to learn from it. Every business hopes to analyze its growing heap of information for new insights.

But what exactly is big data, and how can it benefit healthcare?

Traditionally organizations handle data by entering it into relational databases and querying it into aggregated reports. Big data means not only high volumes of information, but a variety of different data types, and better and faster ways to use it.

Growing Healthcare Data
People may think of big data as figures amassed by big banks and international corporations. But as the population ages more healthcare data is collected. The Administration on Aging predicts there will be 98 million Americans considered elderly by 2060.

Unlike data in other institutions, a patient’s medical history is relevant their entire lives, and perhaps beyond. Hereditary factors are relevant to their offspring, but patient data may be of value to medical research and insurance actuaries for many years after they’re gone. A patient with numerous medical problems amasses a sizeable file, covering each office visit, procedure, and prescription, along with all the attendant symptoms, test results, and billing information. Along with all that data comes the demand for more and better software and hardware to contain, preserve, and process it over coming decades.

Healthcare – a Need for Speed
As fast as patient information can accumulate, there is also the need to use it in a timely manner. Life and death can often depend on a speedy and accurate diagnosis, prescription, or procedure. New tools for analyzing reams of data, or a single patient’s history of symptoms, are always welcome. Medical research certainly requires a large amount of data, often taken over a span of years, and that this data have a high level of integrity, accuracy, and relevance. Very often that data must shared with other facilities and specialists, and checked and re-checked for it is of any real value. None of this can be accomplished with anything like efficiency without the assistance of big data-oriented hardware architecture and analytic software.

Variety of Information
There are three major types of information in healthcare, each quite different: billing, clinical, and diagnostic imaging. Finance is perfectly suited to big data analytic models, as is clinical information such as demographics and specific conditions and symptoms, which can all be categorized for analysis. Digital image files are rather different; there is no easy way to collect information from images until they have been evaluated and codified by medical professionals. Special data formats, protocols, and network architecture are being developed and implemented throughout healthcare just for storing and sharing diagnostic images. Management of images has led to development of radiology PACS (picture archiving and communication system) and similar systems to accommodate this data. As techniques for cataloguing and evaluating images are streamlined they become more and more an essential part of healthcare’s big data.

Data Insights
The whole purpose of analytics and big data is that it can discover insights that create advantages, market insights, and resultant business value. Healthcare has been relatively late to the use of analytics, but the potential has always been there. The ability to improve patient interaction, time management, and financial benefits are important considerations. Insights into medical care could wind up saving thousands of lives. Predictive models could forestall the next epidemic or provide direction on hereditary diseases.

None of this may be possible without big data and analytics. Fortunately for us all, the healthcare system is moving in the right direction.