Are you interested in predicting future outcomes using your data? This course helps you do just that! Machine learning is the process of developing, testing, and applying predictive algorithms to achieve this goal. Make sure to familiarize yourself with course 3 of this specialization before diving into these machine learning concepts. Building on Course 3, which introduces students to integral supervised machine learning concepts, this course will provide an overview of many additional concepts, techniques, and algorithms in machine learning, from basic classification to decision trees and clustering. By completing this course, you will learn how to apply, test, and interpret machine learning algorithms as alternative methods for addressing your research questions.

Machine Learning for Data Analysis

Machine Learning for Data Analysis
This course is part of Data Analysis and Interpretation Specialization


Instructors: Jen Rose
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Skills you'll gain
- Decision Tree Learning
- Applied Machine Learning
- Data Science
- Statistical Analysis
- Machine Learning Methods
- Model Evaluation
- Predictive Analytics
- Statistical Machine Learning
- Machine Learning
- Predictive Modeling
- Machine Learning Algorithms
- Data Analysis
- Model Training
- Unsupervised Learning
- Exploratory Data Analysis
- Classification And Regression Tree (CART)
- Random Forest Algorithm
- Regression Analysis
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Reviewed on Oct 4, 2016
Very good course. I recommend to anyone who's interested in data analysis and machine learning.
Reviewed on Jan 5, 2018
More Implementation oriented and less mathalso contains distracting background videos when explaining important concepts
Reviewed on Mar 21, 2016
More examples in coding and results are expected. So it is more convenient for students to compare different results and understand deeper
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