Essential Math for Data Science

Essential Math for Data Science

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15 MB
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Added
01/29/22 at 8:28am GMT+1
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Description


Description



To succeed in data science you need some math proficiency. But not just any math. This common-sense guide provides a clear, plain English survey of the math you’ll need in data science, including probability, statistics, hypothesis testing, linear algebra, machine learning, and calculus.



Practical examples with Python code will help you see how the math applies to the work you’ll be doing, providing a clear understanding of how concepts work under the hood while connecting them to applications like machine learning. You’ll get a solid foundation in the math essential for data science, but more importantly, you’ll be able to use it to:



   Recognize the nuances and pitfalls of probability math

   Master statistics and hypothesis testing (and avoid common pitfalls)

   Discover practical applications of probability, statistics, calculus, and machine learning

   Intuitively understand linear algebra as a transformation of space, not just grids of numbers being multiplied and added

   Perform calculus derivatives and integrals completely from scratch in Python

   Apply what you’ve learned to machine learning, including linear regression, logistic regression, and neural networks



Book Details



   Language: English

   Published: 2022

   ISBN: 9781098102869

   Format: PDF, EPUB

File list
  • Essential Math for Data Science
  • Essential Math for Data Science/BookRAR.Org.txt 71 B
  • Essential Math for Data Science/Essential Math for Data Science.epub 6.8 MB
  • Essential Math for Data Science/Essential Math for Data Science.pdf 8.1 MB

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