Decision Trees Modeling & Supervised Learning using R
Decision Trees Modeling & Supervised Learning using R, available at Free, has an average rating of 3.83, with 14 lectures, based on 3 reviews, and has 4050 subscribers.
You will learn about This course includes learning decision tree modeling which are used by data scientists or people who aspire to be the data scientist Decision Tree Regression Decision Tree Theory Implementation of Decision Tree Classifications using R This course is ideal for individuals who are Anyone who wants to learn about data and analytics or Data Engineers, Analysts, Architects, Software Engineers, IT operations, Technical managers It is particularly useful for Anyone who wants to learn about data and analytics or Data Engineers, Analysts, Architects, Software Engineers, IT operations, Technical managers.
Enroll now: Decision Trees Modeling & Supervised Learning using R
Summary
Title: Decision Trees Modeling & Supervised Learning using R
Price: Free
Average Rating: 3.83
Number of Lectures: 14
Number of Published Lectures: 14
Number of Curriculum Items: 14
Number of Published Curriculum Objects: 14
Original Price: Free
Quality Status: approved
Status: Live
What You Will Learn
- This course includes learning decision tree modeling which are used by data scientists or people who aspire to be the data scientist
- Decision Tree Regression
- Decision Tree Theory
- Implementation of Decision Tree Classifications using R
Who Should Attend
- Anyone who wants to learn about data and analytics
- Data Engineers, Analysts, Architects, Software Engineers, IT operations, Technical managers
Target Audiences
- Anyone who wants to learn about data and analytics
- Data Engineers, Analysts, Architects, Software Engineers, IT operations, Technical managers
The web is full of apps that are driven by data. All the e-commerce apps and websites are based on data in the complete sense. There is database behind a web front end and middleware that talks to a number of other databases and data services. But the mere use of data is not what comprises of data science. A data application gets its value from data and in the process creates value for itself. This means that data science enables the creation of products that are based on data. This course includes learning decision tree modeling which are used by data scientists or people who inspire to be the data scientist. The tutorials will include the following;
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Decision Tree Theory
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Implementation using R Decision Tree Classification
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Decision Tree Regression
Decision Tree in R is a machine-learning algorithm that can be a classification or regression tree analysis. The decision tree can be represented by graphical representation as a tree with leaves and branches structure. The leaves are generally the data points and branches are the condition to make decisions for the class of data set. Decision trees in R are considered as supervised Machine learning models as possible outcomes of the decision points are well defined for the data set. It is also known as the CART model or Classification and Regression Trees. There is a popular R package known as rpart which is used to create the decision trees in R.
Course Curriculum
Chapter 1: Introduction
Lecture 1: Introduction to Decision Trees
Lecture 2: Route Node
Lecture 3: Route Node Continue
Chapter 2: Advertisement Dataset
Lecture 1: Advertisement Dataset
Lecture 2: Data Preprocessing
Lecture 3: Feature Scaling
Lecture 4: Classifier – rpart
Lecture 5: Confusion Matrix
Chapter 3: Diabetes Dataset
Lecture 1: Diabetes Dataset
Lecture 2: Plot Model-Classifier
Lecture 3: Prediction
Chapter 4: Caeseats Dataset
Lecture 1: Caeseats Dataset
Lecture 2: Split
Lecture 3: Tree Package
Instructors
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EDUCBA Bridging the Gap
Learn real world skills online
Rating Distribution
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- 2 stars: 1 votes
- 3 stars: 0 votes
- 4 stars: 1 votes
- 5 stars: 1 votes
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