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Udemy - Complete Linear Regression Analysis in Python 2024-11
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Mar 2025
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Overview
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Course content
Sections:
9
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Activities:
0
•
Resources:
61
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Section 1
1 - Introduction
1 Welcome to the course
2 Course contents
2 - 00-Introduction-01
3 - Complete-Linear-Regression-Analysis-in-Python
4 This is a milestone
Section 2
2 - Setting up Python
5 Installing Python and Anaconda
6 Opening Jupyter Notebook
7 Introduction to Jupyter Notebook Part 1
8 Introduction to Jupyter Notebook Part 2
Section 3
3 - Python crash course Working with different data types
9 Arithmetic operators in Python
10 Strings in Python Part 1
11 Strings in Python Part 2
12 Lists Part 1
13 Lists Part 2
14 Tuples and Directories
Section 4
4 - Important Python Libraries
15 Working with Numpy Library of Python
16 Working with Pandas Library of Python
17 Working with Seaborn Library of Python
Section 5
5 - Integrating ChatGPT with Python
19 Integrating ChatGPT with Jupyter notebook
Section 6
6 - Basics of Statistics
20 Types of Data
21 Types of Statistics
22 Describing data Graphically
23 Measures of Centers
25 Measures of Dispersion
Section 7
7 - Introduction to Machine Learning
27 Introduction to Machine Learning
28 Building a Machine Learning Model
Section 8
8 - Data Preprocessing
29 Gathering Business Knowledge
30 Data Exploration
31 The Dataset and the Data Dictionary
32 Importing Data in Python
34 Univariate analysis and EDD
35 EDD in Python
37 What is outlier treatment
38 Outlier Treatment in Python
40 Missing Value Imputation
41 Missing Value Imputation in Python
43 Seasonality in Data
44 Bivariate analysis and Variable transformation
45 Variable transformation and deletion in Python
47 Nonusable variables
48 Handling qualitative data by using dummy variables
49 Dummy variable creation in Python
51 Correlation Analysis
52 Correlation Analysis in Python
Section 9
9 - Linear Regression
54 The Problem Statement
55 Basic Equations and Ordinary Least Squares OLS method
56 Assessing accuracy of predicted coefficients
57 Assessing Model Accuracy RSE and R squared
58 Simple Linear Regression in Python
60 Multiple Linear Regression
61 The F statistic
62 Interpreting results of Categorical variables
63 Multiple Linear Regression in Python
65 Testtrain split
66 Bias Variance tradeoff
68 Test train split in Python
69 Linear models other than OLS
70 Subset selection techniques
71 Shrinkage methods Ridge and Lasso
72 Ridge regression and Lasso in Python
73 Heteroscedasticity
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Udemy - Complete Linear Regression Analysis in Python 2024-11
Course modified date:
7 Mar 2025
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