Publication | Open Access
Early detection of sepsis utilizing deep learning on electronic health record event sequences
167
Citations
34
References
2020
Year
We present a deep learning system for early detection of sepsis that can learn characteristics of the key factors and interactions from the raw event sequence data itself, without relying on a labor-intensive feature extraction work. Our system outperforms baseline models, such as gradient boosting, which rely on specific data elements and therefore suffer from many missing values in our dataset.
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