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    Easy Statistics: Regression Modelling

    Posted By: ELK1nG
    Easy Statistics: Regression Modelling

    Easy Statistics: Regression Modelling
    MP4 | Video: h264, 1280x720 | Audio: AAC, 44.1 KHz
    Language: English | Size: 1.08 GB | Duration: 2h 58m

    Learn tips and trick how to build better regression models. Part of the Easy Statistics series.

    What you'll learn
    Tips for Building Regression Models
    The Philosophy Behind Regression
    Polynomial Regression
    Interaction Effects in Regression
    Using Time in Regression
    How to use Categorical Explanatory Variables
    Dealing with Multicollinearity
    How to Handle Missing Data
    Requirements
    Students should have a basic idea of linear regression
    Check my "Easy Statistics: Linear Regression" course if you need a primer
    Description
    Learning and applying new statistical techniques can often be a daunting experience.

    "Easy Statistics" is designed to provide you with a compact, and easy to understand, course that focuses on the basic principles of statistical methodology.

    This course will focus on the concept of regression modelling.

    Understanding how regression analysis works is only half the battle.

    There are many pitfalls to avoid and tricks to learn when modelling data in a regression setting. Often, it takes years of experience to accumulate these. In these videos, I will outline some of the most common modelling issues. What is the theory behind them, what do they do and how can we deal with them?

    Each topic has a practical demonstration in Stata and includes relevant Stata code. However, Stata is not required to follow this course.

    The main learning outcomes are

    To learn and understand the basic approaches to regression modelling

    To learn, in an easy manner, tips and tricks to improve your regression models

    To gain practical experience

    Themes include

    Fundamental of Regression Modelling - What is the Philosophy?

    Functional Form - How to Model Non-Linear Relationships in a Linear Regression

    Interaction Effects - How to Use and Interpret Interaction Effects

    Using Time - Exploring Dynamics Relationships with Time Information

    Categorical Explanatory Variables - How to Code, Use and Interpret them

    Dealing with Multicollinearity - Excluding and Transforming Collinear Variables

    Dealing with Missing Data - How to See the Unseen

    Fractional regression modelling - How to model proportional data

    Who this course is for
    Students working with data and quants
    Anyone who wants to understand regression easily and build better models
    Those in the Economics/Politics/Social Sciences
    Business managers using quantitative evidence