Statistics Crash Course for Beginners: Theory and Applications of Frequentist and Bayesian Statistics Using Python » MIRLIB.RU - ТВОЯ БИБЛИОТЕКА
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Statistics Crash Course for Beginners: Theory and Applications of Frequentist and Bayesian Statistics Using Python
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Statistics Crash Course for Beginners: Theory and Applications of Frequentist and Bayesian Statistics Using PythonНазвание: Statistics Crash Course for Beginners: Theory and Applications of Frequentist and Bayesian Statistics Using Python
Автор: AI Publishing
Издательство: AI Publishing
Год: 2020
Страниц: 329
Язык: английский
Формат: pdf (true), epub
Размер: 18.3 MB

A beginner-friendly crash course to statistics utilizing Python with an eye to preparing students for further study in Machine Learning.

Data and statistics are the core subjects of Machine Learning (ML). The reality is that the average programmer may be tempted to view statistics with disinterest. But if you want to exploit the incredible power of ML, you need a thorough understanding of statistics. The reason is that a machine learning professional develops intelligent and fast algorithms that learn from data. This Statistics Crash Course for Beginners presents you with an easy way of learning statistics fast.

Contrary to popular belief, statistics is no longer the exclusive domain of math PhDs. It’s true that statistics deals with numbers and percentages. Hence, the subject can be very dry and boring. This book, however, transforms statistics into a fun subject.

Frequentist and Bayesian statistics are two statistical techniques that interpret the concept of probability in different ways. Bayesian statistics was first introduced by Thomas Bayes in the 1770s.

Bayesian statistics has been instrumental in the design of high-end algorithms that make accurate predictions. So, even after 250 years, the interest in Bayesian statistics has not faded. In fact, it has accelerated tremendously.

Frequentist statistics is just as important as Bayesian statistics. In the statistical universe, Frequentist statistics is the most popular inferential technique. In fact, it’s the first school of thought you come across when you enter the statistics world.

By the end of this course, you will have built a solid foundation in statistical theory and practice that will prepare you for further study in machine learning and a career in programming.

Key Features:
A quick introduction to Python for statistics
Hands-on projects for guided practice
Instant access to PDFs, Python codes, exercises, and references on the publisher’s website at no extra cost

What You Will Learn:
Get a crash course in Python for statistics
Utilize Python to determine probability, random variables, and probability distributions
Study descriptive statistics, measuring central tendency and spread
Perform exploratory analysis, such as data visualization
Practice statistical inference, frequentist inference, and Bayesian inference
Successfully complete several real-world projects

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