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Bayesian Statistics: Excel to Python A/B Testing · LearnSpace
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Bayesian Statistics: Excel to Python A/B Testing

Курс от EDUCBA
Уровень не указан≈ 6.7 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

Master Bayesian Statistics: Apply, Implement & Optimize A/B Testing equips you with the knowledge and practical skills to apply Bayesian statistics to machine learning, A/B testing, and healthcare analytics. Throughout the course, you will build a solid foundation in Bayesian inference, learn how probabilistic thinking supports decision-making under uncertainty, and implement Markov Chain Monte Carlo (MCMC) sampling using PyMC to approximate posterior distributions. As you progress, you will apply hierarchical Bayesian models to evaluate A/B and multi-variant testing scenarios and gain practical experience organizing and preparing healthcare datasets using Microsoft Excel. You will analyze historical, demographic, predictive, and center-based trends, construct Bayesian probability tables, calculate joint probabilities, update prior beliefs with new evidence, and interpret predictive outcomes across repeated testing cycles. Designed for learners interested in Bayesian statistics, machine learning, A/B testing, and healthcare analytics, this course bridges statistical theory with practical implementation. Its structured, end-to-end approach takes you from the fundamentals of Bayesian inference through computational modeling and real-world applications, enabling you to confidently apply Bayesian methods for data-driven analysis, experimentation, and predictive decision-making.

Навыки, которые вы освоите

Bayesian StatisticsMicrosoft ExcelExcel FormulasA/B TestingPredictive AnalyticsStatistical MethodsMarkov ModelProbability DistributionStatistical SoftwareStatistical ModelingHealth InformaticsAdvanced AnalyticsDiagnostic TestsStatistical ProgrammingStatistical Machine LearningSampling (Statistics)Business AnalyticsDecision MakingProbability & Statistics

Программа курса

3 модулей · 32 учебных материалов

01Foundations of Bayesian Machine Learning14 материалов

Getting Started with Bayesian Learning

Introduction to Bayesian Machine LearningВидеоExample of Bayesian Machine LearningВидеоExample of Bayesian Machine Learning ContinuesВидеоGetting Started with Bayesian LearningЗадание

MCMC in Action with PyMC

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EDUCBA

Преподаватель курса

Bayesian Statistics: Excel to Python A/B Testing
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Обучение на Coursera

≈ 6.7 ч

3 модулей

Язык: Английский

Субтитры: Арабский, Французский, Итальянский, Бразильский португальский, Корейский, Немецкий, Испанский, Японский, Казахский, Венгерский

Часть программы вашего университета
MCMC Module of PYMC ImplementationВидео
Running the MCMC ModuleВидео
MCMC in Action with PyMCЗадание

Hierarchical Models for Multi-Variant Testing

Multiple Variant Testing Using Hierarchial ModelВидеоExample of Multiple Variant TestingВидеоExample of Multiple Variant Testing ContinuesВидеоHierarchical Models for Multi-Variant TestingЗаданиеGraded - Foundations of Bayesian Machine LearningЗаданиеFrom Inference to Experimentation: Applying Bayesian Methods in A/B TestingDIALOGUEChoosing the Winning Variant: Bayesian Reasoning in A/B ExperimentsDIALOGUE
02Data Exploration and Preparation10 материалов

Introduction and Dataset Overview

Introduction to ProjectВидеоData IntroВидеоData SummaryВидео Introduction and Dataset OverviewЗадание

Initial Insights and Trends

HistoricalВидеоFuture PerformanceВидеоGender WiseВидеоCentre WiseВидеоInitial Insights and TrendsЗаданиеData Exploration and PreparationЗадание
03Bayesian Modeling and Application8 материалов

Building the Bayesian Framework

Bayesian Table Part 1ВидеоBayesian Table Part 2ВидеоBuilding the Bayesian FrameworkЗадание

Advanced Bayesian Analysis and Wrap-up

Bayesian Table Part 3ВидеоData Addition and ConclusionВидеоAdvanced Bayesian Analysis and Wrap-upЗаданиеBayesian Modeling and ApplicationЗаданиеBayesian Decision Desk: Interpreting Test Results and Experiments Under UncertaintyDIALOGUE