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Linear Regression

Курс от Illinois Tech
Средний≈ 27.1 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

This course is best suited for individuals who have a technical background in mathematics/statistics/computer science/engineering pursuing a career change to jobs or industries that are data-driven such as finance, retain, tech, healthcare, government and many more. The opportunity is endless. This course is part of the Performance Based Admission courses for the Data Science program. This course will focus on getting you acquainted with the basic ideas behind regression, it provides you with an overview of the basic techniques in regression such as simple and multiple linear regression, and the use of categorical variables. Software Requirements: R Upon successful completion of this course, you will be able to: - Describe the assumptions of the linear regression models. - Compute the least squares estimators using R. - Describe the properties of the least squares estimators. - Use R to fit a linear regression model to a given data set. - Interpret and draw conclusions on the linear regression model. - Use R to perform statistical inference based on the regression models.

Навыки, которые вы освоите

Regression AnalysisR ProgrammingStatistical InferenceStatistical AnalysisStatistical ModelingR (Software)Probability & StatisticsStatistical ProgrammingStatistical MethodsLinear AlgebraData ScienceStatistical SoftwareData Analysis

Программа курса

4 модулей · 71 учебных материалов

01Module 1: Simple linear regression 36 материалов

Course Welcome

Instructor Welcome and Course Overview ВидеоSyllabusЧтениеMeet and Greet DiscussionОбсуждение

Module 1 Introduction

Module 1 IntroductionВидео

Учитесь у экспертов

Kiah Ong

Associate Chair and Director of Undergraduate Studies of the Department of Applied Mathematics

Linear Regression
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Обучение на Coursera

≈ 27.1 ч

4 модулей

Язык: Английский

Субтитры: Арабский, Французский, Итальянский, Бразильский португальский, Корейский, Немецкий, Испанский, Японский

Часть программы вашего университета

Lesson 1: Introduction to Simple Linear Regression Model

Video 1 - Simple Linear Regression IntroductionВидеоVideo 1 Slides - Simple Linear Regression Introduction (pdf)ЧтениеIntroduction to Simple Linear RegressionЗадание

Lesson 2: The Least Square Method

Video 2 - Least Squares MethodВидеоVideo 2 Slides - Least Squares Method (pdf)ЧтениеLeast Squares MethodЗадание

Lesson 3: Computational Example and Introduction to R

Video 3 -RВидеоVideo 3 Slides - R (pdf)ЧтениеFirst Exercise in R InstructionsЧтениеHow to Use R in CourseraВидеоExercise in R LabЛабораторнаяExercise in RЗадание

Lesson 4: Properties of the Least Squares Estimators

Video 4 - Properties of the Least Squares Estimators Part 1 of 2 ВидеоVideo 4 - Properties of the Least Squares Estimators Part 2 of 2 ВидеоVideo 4 Slides - SLR Properties of betahat (pdf)ЧтениеProperties of the Least Squares EstimatorsЗадание

Lesson 5: LR Inference in the Least Squares Estimators

Video 5 - Part 1 of 3ВидеоVideo 5 - Part 2 of 3ВидеоVideo 5 - Part 3 of 3ВидеоVideo 5 Slides - Inference in the Least Squares Estimators (pdf)Чтение Inference in the Least Squares EstimatorsЗадание

Lesson 6: OLS Inference in R

Video 6 - Part 1 of 2ВидеоVideo 6 - Part 2 of 2ВидеоVideo 6 Slides - OLS Inference in R (pdf)ЧтениеQuiz 6 - OLS Inference in R InstructionsЧтениеOLS Inference in RЗадание

Lesson 7: Prediction Interval

Video 7 - 1 of 2ВидеоVideo 7 - Part 2 of 2ВидеоVideo 7 Slides - Prediction Interval (pdf)ЧтениеPrediction IntervalЗадание

Module 1 Summative Assessment

Module 1 Summative AssessmentЗадание

Module 1 Summary

Module 1 SummaryЧтение
02Module 2: Multiple Linear Regression14 материалов

Lesson 8: MLR Intro

Module 2 IntroductionВидеоVideo 8 - MLR IntroВидеоVideo 8 Slides - MLR Intro.pdfЧтениеMultiple Linear Regression IntroЗадание

Lesson 9: MLR Ordinary Least Squares

Video 9 - MLR Least Squares MethodВидеоVideo 9 Slides - MLR Ordinary Least Squares (pdf)ЧтениеMLR Ordinary Least SquaresЗадание

Lesson 10: MLR Properties of Least Squares Estimators

Video 10 - MLR Properties of LS Estimators Part 1 of 3ВидеоVideo 10 - MLR Properties of LS Estimators Part 2 of 3ВидеоVideo 10 - MLR Properties of LS Estimators Part 3 of 3ВидеоVideo 10 Slides - MLR Properties of the LS Estimators (pdf)ЧтениеMLR Properties of LS EstimatorsЗадание

Module 2 Summative Assessment

Module 2 Summative AssessmentЗадание

Module 2 Summary

Module 2 SummaryЧтение
03Module 3: Regression Models with Qualitative Predictors20 материалов

Lesson 11: Inference in MLR

Module 3 IntroductionВидеоVideo 11 - Inference in Multiple Linear Regression Part 1 of 5ВидеоVideo 11 - Inference in Multiple Linear Regression Part 2 of 5ВидеоVideo 11 - Inference in Multiple Linear Regression Part 3 of 5ВидеоVideo 11 - Inference in Multiple Linear Regression Part 4 of 5ВидеоVideo 11 - Inference in Multiple Linear Regression Part 5 of 5ВидеоVideo 11 Slides - Inference in Multiple Linear Regression (pdf)Чтение Inference in Multiple Linear RegressionЗадание

Lesson 12: General Concepts on Categorical Variable

Video 12 - General Concepts on Categorical Variables as Predictors Part 1 of 2ВидеоVideo 12 - General Concepts on Categorical Variables as Predictors Part 2 of 2ВидеоVideo 12 Slides - General Concepts on Categorical Variables as Predictors (pdf)ЧтениеGeneral Concepts of Categorical VariableЗадание

Lesson 13: Qualitative Predictor with Two or More Classes

Video 13 - Qualitative Predictor with Two or More Classes 1 of 3ВидеоVideo 13 - Qualitative Predictor with Two or More Classes 2 of 3ВидеоVideo 13 - Qualitative Predictor with Two or More Classes 3 of 3ВидеоVideo 13 Slides - Qualitative Predictor with Two or More Classes (pdf)ЧтениеQualitative Predictor with Two or More ClassesЗадание

Module 3 Summative Assessment

Module 3 Summative AssessmentЗадание

Module 3 Summary

Module 3 SummaryЧтениеInsights from an Industry Leader: Learn More About Our ProgramЧтение
04Summative Course Assessment 1 материалов

Summative Course Assessment

Summative Course Assessment Задание