Machine Learning A-Z™: Hands-On Python & R In Data Science
Learn to create Machine Learning Algorithms in Python and R from two Data Science experts. Code templates included.
- Description
- Curriculum
- FAQ
- Notice
- Examens
-------------------- Part 1: Data Preprocessing --------------------
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1Applications of Machine Learning
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2Why Machine Learning is the Future
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3Important notes, tips & tricks for this course
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4This PDF resource will help you a lot
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5Updates on Udemy Reviews
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6Installing Python and Anaconda (Mac, Linux & Windows)
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7Update: Recommended Anaconda Version
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8Installing R and R Studio (Mac, Linux & Windows)
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9BONUS: Meet your instructors
-------------------- Part 2: Regression --------------------
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10Welcome to Part 1 - Data Preprocessing
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11Get the dataset
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12Importing the Libraries
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13Importing the Dataset
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14For Python learners, summary of Object-oriented programming: classes & objects
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15Missing Data
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16Categorical Data
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17WARNING - Update
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18Splitting the Dataset into the Training set and Test set
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19Feature Scaling
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20And here is our Data Preprocessing Template!
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21Data Preprocessing
Simple Linear Regression
Multiple Linear Regression
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23How to get the dataset
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24Dataset + Business Problem Description
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25Simple Linear Regression Intuition - Step 1
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26Simple Linear Regression Intuition - Step 2
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27Simple Linear Regression in Python - Step 1
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28Simple Linear Regression in Python - Step 2
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29Simple Linear Regression in Python - Step 3
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30Simple Linear Regression in Python - Step 4
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31Simple Linear Regression in R - Step 1
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32Simple Linear Regression in R - Step 2
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33Simple Linear Regression in R - Step 3
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34Simple Linear Regression in R - Step 4
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35Simple Linear Regression
Polynomial Regression
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36How to get the dataset
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37Dataset + Business Problem Description
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38Multiple Linear Regression Intuition - Step 1
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39Multiple Linear Regression Intuition - Step 2
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40Multiple Linear Regression Intuition - Step 3
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41Multiple Linear Regression Intuition - Step 4
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42Prerequisites: What is the P-Value?
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43Multiple Linear Regression Intuition - Step 5
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44Multiple Linear Regression in Python - Step 1
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45Multiple Linear Regression in Python - Step 2
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46Multiple Linear Regression in Python - Step 3
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47Multiple Linear Regression in Python - Backward Elimination - Preparation
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48Multiple Linear Regression in Python - Backward Elimination - HOMEWORK !
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49Multiple Linear Regression in Python - Backward Elimination - Homework Solution
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50Multiple Linear Regression in Python - Automatic Backward Elimination
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51Multiple Linear Regression in R - Step 1
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52Multiple Linear Regression in R - Step 2
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53Multiple Linear Regression in R - Step 3
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54Multiple Linear Regression in R - Backward Elimination - HOMEWORK !
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55Multiple Linear Regression in R - Backward Elimination - Homework Solution
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56Multiple Linear Regression in R - Automatic Backward Elimination
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57Multiple Linear Regression
Support Vector Regression (SVR)
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58Polynomial Regression Intuition
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59How to get the dataset
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60Polynomial Regression in Python - Step 1
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61Polynomial Regression in Python - Step 2
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62Polynomial Regression in Python - Step 3
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63Polynomial Regression in Python - Step 4
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64Python Regression Template
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65Polynomial Regression in R - Step 1
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66Polynomial Regression in R - Step 2
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67Polynomial Regression in R - Step 3
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68Polynomial Regression in R - Step 4
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69R Regression Template
Decision Tree Regression
Random Forest Regression
Evaluating Regression Models Performance
-------------------- Part 3: Classification --------------------
Logistic Regression
FAQ 1
Faq Content 1
FAQ 2
Faq Content 2
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