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Resampling, Selection and Splines
Coursera
Course
Unknown

Resampling, Selection and Splines

University of Colorado Boulder

Advanced statistical learning course enhancing data analysis skills using resampling methods, parametric and non-linear models for improved accuracy and interpretability.

Unknown5 weeksArabic, German, English, French

About this Course

"Statistical Learning for Data Science" is an advanced course designed to equip working professionals with the knowledge and skills necessary to excel in the field of data science. Through comprehensive instruction on key topics such as shrink methods, parametric regression analysis, generalized linear models, and general additive models, students will learn how to apply resampling methods to gain additional information about fitted models, optimize fitting procedures to improve prediction accuracy and interpretability, and identify the benefits and approach of non-linear models. This course is the perfect choice for anyone looking to upskill or transition to a career in data science. This course can be taken for academic credit as part of CU Boulder’s Master of Science in Data Science (MS-DS) degree offered on the Coursera platform. The MS-DS is an interdisciplinary degree that brings together faculty from CU Boulder’s departments of Applied Mathematics, Computer Science, Information Science, and others. With performance-based admissions and no application process, the MS-DS is ideal for individuals with a broad range of undergraduate education and/or professional experience in computer science, information science, mathematics, and statistics. Learn more about the MS-DS program at https://www.coursera.org/degrees/master-of-science-data-science-boulder

What You'll Learn

  • Apply resampling methods to gain additional insights on fitted models
  • Optimize fitting procedures for improved prediction accuracy and interpretability
  • Identify benefits and approaches of non-linear models

Prerequisites

  • Basic familiarity with the topic and its common terminology
  • Readiness to practice through applied exercises or case-based work

Instructors

O

Osita Onyejekwe

Assistant Professor

Topics

Probability and Statistics
Data Science
Data Analysis
Statistical Machine Learning
Statistical Modeling
Probability Distribution
Sampling (Statistics)
Statistics
Predictive Modeling
Statistical Methods

Course Info

PlatformCoursera
LevelUnknown
PacingUnknown
PriceFree

Skills

الاحتمالات والإحصاء
علم البيانات
تحليل البيانات
تعلم الآلة الإحصائي
النمذجة الإحصائية
توزيعات الاحتمالات
العينات الإحصائية
الإحصاء
Predictive Modeling
Statistical Methods

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