Statistical experiment design and analytics are at the heart of data science. In this course you will design statistical experiments and analyze the results using modern methods. You will also explore the common pitfalls in interpreting statistical arguments, especially those associated with big data. Collectively, this course will help you internalize a core set of practical and effective machine learning methods and concepts, and apply them to solve some real world problems.

Practical Predictive Analytics: Models and Methods

Practical Predictive Analytics: Models and Methods
This course is part of Data Science at Scale Specialization

Instructor: Bill Howe
Access provided by BAC Education Group
39,762 already enrolled
323 reviews
Skills you'll gain
- Statistical Inference
- Data Analysis
- Big Data
- Decision Tree Learning
- Statistical Analysis
- Predictive Analytics
- Analytics
- Applied Machine Learning
- Machine Learning Methods
- Machine Learning
- Supervised Learning
- Data Science
- Statistical Methods
- Statistics
- Model Optimization
- Graph Theory
- Network Analysis
- Unsupervised Learning
Tools you'll learn
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There are 4 modules in this course
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Reviewed on Jan 18, 2016
Its Hard! but AWESOME, some much info packed in a few lectures!
Reviewed on Dec 22, 2015
More dynamic visualisation please, and it will be 5*.
Reviewed on Jul 16, 2021
This course helpemd me understand more about machine learning and a set of tools to help with the same.
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