MIM857-202402 Pricing and Revenue Management
Course categorySBS - PYL (202402)
Pricing and Revenue Management
MIM860-202402 Applications in Digital Market
Course categorySBS - PYL (202402)
Applications in Digital Market
MKTG951-202402 Interna. Marketing Strategy
Course categorySBS - PYL (202402)
Interna. Marketing Strategy
MRES609-202402 Prof.Development Seminar I
Course categorySBS - PYL (202402)
Prof.Development Seminar I
MRES699-202402 Ph.D. Qualifying Exam Preparat
Course categorySBS - PYL (202402)
Ph.D. Qualifying Exam Preparat
OPIM857-202402 Prac.Bus.AnalyticsforManagers
Course categorySBS - PYL (202402)
Prac.Bus.AnalyticsforManagers
OPIM902-202402 Opera.& Supply Chain Manage.
Course categorySBS - PYL (202402)
Opera.& Supply Chain Manage.
ORG625-202402 Cross Cultural Org.Psychology
Course categorySBS - PYL (202402)
Cross Cultural Org.Psychology
ORG902-202402 Organiz. Behavior & Leadership
Course categorySBS - PYL (202402)
Organiz. Behavior & Leadership
ORG904-202402 Creativity & Leading Innovatio
Course categorySBS - PYL (202402)
Creativity & Leading Innovatio
DA501-202401 Introduction to Data Analytics
Course categoryFENS - PYL (202401)
Introduction to Data Analytics
DA503-202401 Applied Statistics
Course categoryFENS - PYL (202401)
Applied Statistics
This course covers the major topics of descriptive and inferential statistics. Course content includes the basic procedures of choosing and conducting appropriate statistical tests for a given research or business problem. This is primarily a lecture course, with a fair amount of in-class and out of class coding work using Python. Students should gain a strong foundation in inferential statistics, including z-tests, t-tests, ANOVA, Chi-Square, Linear Regression and other Non-Parametric tests used in assessing the presence of an effect under investigation. Students will understand the theory behind these methods, and be able to apply them correctly and appropriately to analyze and infer from data, and be able to interpret the results.
This course covers the major topics of descriptive and inferential statistics. Course content includes the basic procedures of choosing and conducting appropriate statistical tests for a given research or business problem. This is primarily a lecture course, with a fair amount of in-class and out of class coding work using Python. Students should gain a strong foundation in inferential statistics, including z-tests, t-tests, ANOVA, Chi-Square, Linear Regression and other Non-Parametric tests used in assessing the presence of an effect under investigation. Students will understand the theory behind these methods, and be able to apply them correctly and appropriately to analyze and infer from data, and be able to interpret the results.
DA505-202401 Intr.to Data Mod.and Process.
Course categoryFENS - PYL (202401)
Intr.to Data Mod.and Process.
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