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This is it: The Last Chance for EHR Stimulus Funds! Webinar
2014-07-31    
10:00 am - 11:00 am
Contact: Robert Moberg ChiroTouch 9265 Sky Park Court Suite 200 San Diego, CA 92123 Phone: 619-528-0040 ChiroTouch to Host This is it: The Last Chance [...]
RCM Best Practices
2014-07-31    
2:00 pm - 3:00 pm
In today’s cost-conscious healthcare environment every dollar counts. Yet, inefficient billing processes are costing practices up to 15% of their revenue annually. The areas of [...]
Aprima 2014 User Conference and VAR Summit
2014-08-08    
12:00 am
Aprima 2014 User Conference and VAR Summit Vendor Registration Thank you for your interest in participating in the Aprima 2014 User Conference and VAR Summit. Please [...]
Innovations for Healthcare IT
2014-08-10    
All Day
At Innovations for Healthcare IT, you'll discover new techniques and methods to maximize the use of your Siemens systems and help you excel in today's [...]
Consumerization of Healthcare
2014-08-13    
1:00 pm - 1:30 pm
Join Our Complimentary Express Webinar for an overview of “The Consumerization of Healthcare” on Wednesday, August 13th at 1:00 pm ET. Consumerism in the healthcare [...]
How to use HIPAA tracking software to survive an audit
2014-08-20    
2:00 pm - 3:30 pm
Wednesday, August 20th from 2:00 – 3:30 EST You have done a great job with Meaningful Use but will you pass a HIPAA audit?  Bob Grant, HIPAA auditor and expert will show you how to achieve total compliance and [...]
How Healthy Is Your Practice?
2014-08-27    
2:00 pm - 3:00 pm
According to recent statistics from MGMA, the typical physician practice leaves up to 30% of their potential revenue on the table every year. This money [...]
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Articles

Large models identify social determinants in records

Social determinants of health (SDoH) significantly influence patient outcomes, yet their documentation is frequently incomplete or absent in the structured data of electronic health records (EHRs). The utilization of large language models (LLMs) holds promise in efficiently extracting SDoH from EHRs, contributing to both research and clinical care. However, challenges such as class imbalance and data limitations arise when handling this sparsely documented yet vital information.

In our investigation, we explored effective approaches to leverage LLMs for extracting six distinct SDoH categories from narrative EHR text. The standout performers included the fine-tuned Flan-T5 XL, achieving a macro-F1 of 0.71 for any SDoH mentions, and Flan-T5 XXL, attaining a macro-F1 of 0.70 for adverse SDoH mentions. The incorporation of LLM-generated synthetic data during training had varying effects across models and architectures but notably improved the performance of smaller Flan-T5 models (delta F1 + 0.12 to +0.23).

Our best-fine-tuned models outperformed zero- and few-shot performance of ChatGPT-family models in their respective settings, except for GPT4 with 10-shot prompting for adverse SDoH. These fine-tuned models exhibited a reduced likelihood of changing predictions when race/ethnicity and gender descriptors were introduced to the text, indicating diminished algorithmic bias (p < 0.05). Notably, our models identified 93.8% of patients with adverse SDoH, a significant improvement compared to the mere 2.0% captured by ICD-10 codes. These results highlight the potential of LLMs in enhancing real-world evidence related to SDoH and in identifying patients who could benefit from additional resource support.