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BEHRT: Transformer for Electronic Health Records

About

Today, despite decades of developments in medicine and the growing interest in precision healthcare, vast majority of diagnoses happen once patients begin to show noticeable signs of illness. Early indication and detection of diseases, however, can provide patients and carers with the chance of early intervention, better disease management, and efficient allocation of healthcare resources. The latest developments in machine learning (more specifically, deep learning) provides a great opportunity to address this unmet need. In this study, we introduce BEHRT: A deep neural sequence transduction model for EHR (electronic health records), capable of multitask prediction and disease trajectory mapping. When trained and evaluated on the data from nearly 1.6 million individuals, BEHRT shows a striking absolute improvement of 8.0-10.8%, in terms of Average Precision Score, compared to the existing state-of-the-art deep EHR models (in terms of average precision, when predicting for the onset of 301 conditions). In addition to its superior prediction power, BEHRT provides a personalised view of disease trajectories through its attention mechanism; its flexible architecture enables it to incorporate multiple heterogeneous concepts (e.g., diagnosis, medication, measurements, and more) to improve the accuracy of its predictions; and its (pre-)training results in disease and patient representations that can help us get a step closer to interpretable predictions.

Yikuan Li, Shishir Rao, Jose Roberto Ayala Solares, Abdelaali Hassaine, Dexter Canoy, Yajie Zhu, Kazem Rahimi, Gholamreza Salimi-Khorshidi• 2019

Related benchmarks

TaskDatasetResultRank
Clinical predictionMIMIC-III
AUROC80.61
36
Alzheimer's disease diagnosisADNI
AUC79.1
24
Clinical predictionCRADLE
Accuracy78.1
17
ICU length-of-stay predictionMIMIC-III
F1 Score45.3
14
Mortality PredictionMIMIC-III
F1 Score46.8
14
Next-visit Diagnosis (Dx) PredictionMIMIC IV
Recall@522.6
12
Next-visit Laboratory (Lab) PredictionMIMIC IV
Recall@50.061
12
Next-visit Medication (Med) PredictionMIMIC IV
Recall@57
12
Next-visit Procedure (Proc) PredictionMIMIC IV
Recall@512.8
12
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