Overview of the main principles of Deep Learning along with common architectures. Formulate the problem for time-series classification and apply it to vital signals such as ECG. Applying this methods in Electronic Health Records is challenging due to the missing values and the heterogeneity in EHR, which include both continuous, ordinal and categorical variables. Subsequently, explore imputation techniques and different encoding strategies to address these issues. Apply these approaches to formulate clinical prediction benchmarks derived from information available in MIMIC-III database.

Deep Learning in Electronic Health Records
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Deep Learning in Electronic Health Records
This course is part of Informed Clinical Decision Making using Deep Learning Specialization

Instructor: Fani Deligianni
2,162 already enrolled
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What you'll learn
Train deep learning architectures such as Multi-layer perceptron, Convolutional Neural Networks and Recurrent Neural Networks for classification.
Validate and compare different machine learning algorithms.
Preprocess Electronic Health Records and represent them as time-series data.
Imputation strategies and data encodings.
Skills you'll gain
- Convolutional Neural Networks
- Machine Learning Methods
- Data Preprocessing
- Electronic Medical Record
- Health Informatics
- Electocardiography
- Time Series Analysis and Forecasting
- Predictive Modeling
- Recurrent Neural Networks (RNNs)
- Artificial Neural Networks
- Deep Learning
- Embeddings
- Model Optimization
- Model Evaluation
- Data Cleansing
- Medical Records
- Dimensionality Reduction
- Applied Machine Learning
Tools you'll learn
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University of Glasgow

University of Illinois Urbana-Champaign

University of Illinois Urbana-Champaign

University of Glasgow
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