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Linear Regression and Modeling

Linear Regression and Modeling

This course introduces simple and multiple linear regression models. These models allow you to assess the relationship between variables in a data set and a continuous response variable. Is there a relationship between the physical attractiveness of a professor and their student evaluation scores? Can we predict the test score for a child based on certain characteristics of his or her mother?

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  • Self Paced
  • 10 ساعات
  • الإنجليزية
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Mining Quality Prediction Using Machine & Deep Learning

Mining Quality Prediction Using Machine & Deep Learning

In this 1.5-hour long project-based course, you will be able to: - Understand the theory and intuition behind Simple and Multiple Linear Regression. - Import Key python libraries, datasets and perform data visualization - Perform exploratory data analysis and standardize the training and testing data. - Train and Evaluate different regression models using Sci-kit Learn library. - Build and train an Artificial Neural Network to perform regression. - Understand the difference between various regression models KPIs such as MSE, RMSE, MAE, R2, and adjusted R2. - Assess the performance of regressio

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  • 2 ساعات
  • الإنجليزية
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Necessary Condition Analysis (NCA)

Necessary Condition Analysis (NCA)

Welcome to Necessary Condition Analysis (NCA). NCA analyzes data using necessity logic. A necessary condition implies that if the condition is not in place, there will be guaranteed failure of the outcome. The opposite however is not true; if the condition is in place, success of the outcome is not guaranteed. Examples of necessary conditions are a student’s GMAT score for admission to a PhD program; a student will not be admitted to a PhD program when his GMAT score is too low.

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  • 7 ساعات
  • الإنجليزية
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Linear Regression and Multiple Linear Regression in Julia

Linear Regression and Multiple Linear Regression in Julia

This guided project is for those who want to learn how to use Julia for linear regression and multiple linear regression. You will learn what linear regression is, how to build linear regression models in Julia and how to test the performance of your model.
While you are watching me code, you will get a cloud desktop with all the required software pre-installed. This will allow you to code along with me. After all, we learn best with active, hands-on learning.
Special Features:
1) Work with real-world stock market data.
2) Best practices and tips are provided.

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  • Self Paced
  • 2 ساعات
  • الإنجليزية
الاشتراك الشهري
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  • Free
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XG-Boost 101: Used Cars Price Prediction

XG-Boost 101: Used Cars Price Prediction

In this hands-on project, we will train 3 Machine Learning algorithms namely Multiple Linear Regression, Random Forest Regression, and XG-Boost to predict used cars prices. This project can be used by car dealerships to predict used car prices and understand the key factors that contribute to used car prices.
By the end of this project, you will be able to:
- Understand the applications of Artificial Intelligence and Machine Learning techniques in the banking industry
- Understand the theory and intuition behind XG-Boost Algorithm

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  • Self Paced
  • 3 ساعات
  • الإنجليزية
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Data Analysis in R: Predictive Analysis with Regression

Data Analysis in R: Predictive Analysis with Regression

Increasingly, predictive analytics is shaping companies' decisions about limited resources. In this project, you will build a regression model to make predictions. We will start this hands-on project by exploring the dataset and creating visualizations for the dataset. By the end of this 2-hour-long project, you will be able to build and interpret the result of a simple linear regression model in R. Also, you will learn how to perform model assessments and check for assumptions using diagnostic plots.

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  • Self Paced
  • 3 ساعات
  • الإنجليزية
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Building Statistical Models in R: Linear Regression

Building Statistical Models in R: Linear Regression

Welcome to this project-based course Building Statistical Models in R: Linear Regression. This is a hands-on project that introduces beginners to the world of statistical modeling. In this project, you will learn the basics of building statistical models in R. We will start this hands-on project by exploring the dataset and creating visualizations for the dataset. By the end of this 2-hour long project, you will understand how to build and interpret the result of simple linear regression models in R.

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  • 3 ساعات
  • الإنجليزية
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Introduction to Predictive Modeling

Introduction to Predictive Modeling

Welcome to Introduction to Predictive Modeling, the first course in the University of Minnesota’s Analytics for Decision Making specialization. This course will introduce to you the concepts, processes, and applications of predictive modeling, with a focus on linear regression and time series forecasting models and their practical use in Microsoft Excel.

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  • 12 ساعات
  • الإنجليزية
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Python and Statistics for Financial Analysis

Python and Statistics for Financial Analysis

Course Overview: https://youtu.be/JgFV5qzAYno Python is now becoming the number 1 programming language for data science. Due to python’s simplicity and high readability, it is gaining its importance in the financial industry.

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  • 13 ساعات
  • الإنجليزية
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Multiple Linear Regression with scikit-learn

Multiple Linear Regression with scikit-learn

In this 2-hour long project-based course, you will build and evaluate multiple linear regression models using Python. You will use scikit-learn to calculate the regression, while using pandas for data management and seaborn for data visualization. The data for this project consists of the very popular Advertising dataset to predict sales revenue based on advertising spending through media such as TV, radio, and newspaper.
By the end of this project, you will be able to:
- Build univariate and multivariate linear regression models using scikit-learn

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  • 3 ساعات
  • الإنجليزية
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University Admission Prediction Using Multiple Linear Regression

University Admission Prediction Using Multiple Linear Regression

In this hands-on guided project, we will train regression models to find the probability of a student getting accepted into a particular university based on their profile. This project could be practically used to get the university acceptance rate for individual students using web application.
Note: This course works best for learners who are based in the North America region. We’re currently working on providing the same experience in other regions.

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  • 3 ساعات
  • الإنجليزية
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The Classical Linear Regression Model

The Classical Linear Regression Model

In this course, you will discover the type of questions that econometrics can answer, and the different types of data you might use: time series, cross-sectional, and longitudinal data.

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  • 22 ساعات
  • الإنجليزية
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