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Model Diagnostics and Remedial Measures
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.
In this course, we will learn what happens to our regression model when these assumptions have not been met. How can we detect these discrepancies in model assumptions and how do we remediate the problems will be addressed in this course.
Upon successful completion of this course, you will be able to:
-describe the assumptions of the linear regression models.
-use diagnostic plots to detect violations of the assumptions of a linear regression model.
-perform a transformation of variables in building regression models.
-use suitable tools to detect and remove heteroscedastic errors.
-use suitable tools to remediate autocorrelation.
-use suitable tools to remediate collinear data.
-perform variable selections and model validations.
Duration
8 Months
Institution
Illinois Tech
Format
Online
Eligibility Criteria
school
Academic Foundation
A recognized Bachelor’s degree or high school equivalent required for admission into Illinois Tech.
language
Language Proficiency
English proficiency required. IELTS, TOEFL, or standard medium-of-instruction certificates accepted.
Detailed Fees Breakdown
Base Tuition Fee
$99
Total Est. Investment
$99
Scholarships and early-bird waivers may apply. Contact admissions for exact institutional fees.
Academic Trajectory
Program Outcome
Graduates of the Model Diagnostics and Remedial Measures program at Illinois Tech are equipped with global perspectives, ready to excel in international markets and top-tier career opportunities.