Advanced Statistics for Data Science

Advanced Statistics for Data Science course provide by Johns Hopkins University

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Created by Johns Hopkins University Staff Last updated Wed, 16-Mar-2022 English


Advanced Statistics for Data Science free videos and free material uploaded by Johns Hopkins University Staff .

Syllabus / What will i learn?

Course 1: Mathematical Biostatistics Boot Camp 1

- Offered by Johns Hopkins University This class presents the fundamental probability and statistical concepts used in elementary data  Enroll for free

Course 2: Mathematical Biostatistics Boot Camp 2
- Offered by Johns Hopkins University Learn fundamental concepts in data analysis and statistical inference, focusing on one and two  Enroll for free
Course 3: Advanced Linear Models for Data Science 1: Least Squares
- Offered by Johns Hopkins University Welcome to the Advanced Linear Models for Data Science Class 1: Least Squares This class is an Enroll for free
Course 4: Advanced Linear Models for Data Science 2: Statistical Linear Models
- Offered by Johns Hopkins University Welcome to the Advanced Linear Models for Data Science Class 2: Statistical Linear Models This class  Enroll for free



Curriculum for this course
0 Lessons 00:00:00 Hours
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Description

Fundamental concepts in probability, statistics and linear models are primary building blocks for data science work Learners aspiring to become biostatisticians and data scientists will benefit from the foundational knowledge being offered in this specialization It will enable the learner to understand the behind-the-scenes mechanism of key modeling tools in data science, like least squares and linear regression This specialization starts with Mathematical Statistics bootcamps, specifically concepts and methods used in biostatistics applications These range from probability, distribution, and likelihood concepts to hypothesis testing and case-control sampling This specialization also linear models for data science, starting from understanding least squares from a linear algebraic and mathematical perspective, to statistical linear models, including multivariate regression using the R programming language These courses will give learners a firm foundation in the linear algebraic treatment of regression modeling, which will greatly augment applied data scientists' general understanding of regression models This specialization requires a fair amount of mathematical sophistication Basic calculus and linear algebra are required to engage in the content

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Material price :

Free

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