This course will introduce MIMIC-III, which is the largest publicly Electronic Health Record (EHR) database available to benchmark machine learning algorithms. In particular, you will learn about the design of this relational database, what tools are available to query, extract and visualise descriptive analytics.

Data Mining of Clinical Databases
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Data Mining of Clinical Databases
This course is part of Informed Clinical Decision Making using Deep Learning Specialization

Instructor: Fani Deligianni
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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
- Database Design
- Medical Records
- Data Access
- SQL
- Interoperability
- Data Mining
- Precision Medicine
- ICD Coding (ICD-9/ICD-10)
- Applied Machine Learning
- Electronic Medical Record
- Health Information Management
- Descriptive Statistics
- Health Informatics
- Predictive Modeling
- Descriptive Analytics
- Patient Flow
- Predictive Analytics
- Medical Coding
- Clinical Research
Tools you'll learn
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Northeastern University

Northeastern University

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Reviewed on Jul 19, 2023
This is a great learning curve to properly introduce me into data analysis, and machine learning in healthcare data





