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摘要

CAC software uses natural language processing (NLP) to extract and translate transcribed free-text data or computer-generated discrete data into information for billing and coding purposes. With the ICD-10 transition in the rear-view mirror, it's time to re-evaluate the following promises CAC initially offered: that it would improve coding accuracy and documentation quality; that it would increase productivity; that it would reduce the need for coders and transition others into coding auditors; that it would provide a positive return on investment; and that CAC could make intelligent, human-free decisions based on documentation. [...]CAC has helped providers in expected ways. For Monica Pinette, MBA, RHIA, CDIP, CCS, CPC, now the assistant vice president of HIM at UConn Health, the AHIMA Foundation's findings weren't all that different from what she found when she was preparing for the ICD-10 transition with CAC at a previous employer, St. Francis Hospital and Medical Center in Hartford, CT.

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Copyright American Health Information Management Association Jun 2019