University of Glasgow
Informed Clinical Decision Making using Deep Learning Specialization
University of Glasgow

Informed Clinical Decision Making using Deep Learning Specialization

Apply Deep Learning in Electronic Health Records. Understand the road path from data mining of clinical databases to clinical decision support systems

Fani Deligianni

Instructor: Fani Deligianni

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4.6

(21 reviews)

Intermediate level

Recommended experience

2 months to complete
at 10 hours a week
Flexible schedule
Learn at your own pace
Get in-depth knowledge of a subject
4.6

(21 reviews)

Intermediate level

Recommended experience

2 months to complete
at 10 hours a week
Flexible schedule
Learn at your own pace

What you'll learn

  • Extract and preprocess data from complex clinical databases

  • Apply deep learning in Electronic Health Records

  • Imputation of Electronic Health Records and data encodings

  • Explainable, fair and privacy-preserved Clinical Decision Support Systems

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Taught in English
23 practice exercises

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Specialization - 5 course series

What you'll learn

  • Understand the Schema of publicly available EHR databases (MIMIC-III)

  • Recognise the International Classification of Diseases (ICD) use

  • Extract and visualise descriptive statistics from clinical databases

  • Understand and extract key clinical outcomes such as mortality and stay of length

Skills you'll gain

Predictive Analytics, Interoperability, ICD Coding (ICD-9/ICD-10), Clinical Data Management, Patient Flow, Medical Records, Database Design, Machine Learning, Precision Medicine, SQL, Descriptive Statistics, Analytics, Exploratory Data Analysis, Predictive Modeling, Electronic Medical Record, Health Informatics, Data Mining, Descriptive Analytics, Relational Databases, and Clinical Informatics

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

Data Processing, Data Cleansing, Deep Learning, Predictive Modeling, Time Series Analysis and Forecasting, Electocardiography, Artificial Neural Networks, Electronic Medical Record, Health Informatics, Feature Engineering, and Machine Learning Methods

What you'll learn

  • Program global explainability methods in time-series classification

  • Program local explainability methods for deep learning such as CAM and GRAD-CAM

  • Understand axiomatic attributions for deep learning networks

  • Incorporate attention in Recurrent Neural Networks and visualise the attention weights

Skills you'll gain

Deep Learning, Machine Learning Algorithms, Healthcare Ethics, Machine Learning, Time Series Analysis and Forecasting, Responsible AI, Image Analysis, Data Processing, Applied Machine Learning, and Artificial Neural Networks

What you'll learn

  • Evaluating Clinical Decision Support Systems

  • Bias, Calibration and Fairness in Machine Learning Models

  • Decision Curve Analysis and Human-Centred Clinical Decision Support Systems

  • Privacy concerns in Clinical Decision Support Systems

Skills you'll gain

Deep Learning, Data Ethics, Responsible AI, Verification And Validation, Data Validation, Artificial Intelligence and Machine Learning (AI/ML), Information Privacy, Predictive Modeling, Health Informatics, Machine Learning, Data Security, Decision Support Systems, and Human Centered Design

What you'll learn

Skills you'll gain

Artificial Neural Networks, Deep Learning, Data Mining, Feature Engineering, Applied Machine Learning, Responsible AI, Time Series Analysis and Forecasting, Clinical Data Management, Artificial Intelligence, Predictive Modeling, Health Informatics, and Machine Learning

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Instructor

Fani Deligianni
University of Glasgow
5 Courses5,907 learners

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