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Applied Statistics for Data Analytics · LearnSpace
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Applied Statistics for Data Analytics

Курс от DeepLearning.AI
Начальный≈ 34.8 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

Throughout this course, you will learn the fundamental statistical concepts, analyses, and visualizations that serve as the foundation for a career as a data analyst. Whether you're new to statistics or looking to refresh your skills, this course will equip you with powerful techniques to extract meaningful insights from your data. By the end of this course, you will feel more confident and capable of implementing rigorous statistical analyses in your career as a data analyst! In the first module, you’ll explore the essential building blocks of statistics that enable rigorous data analysis. By the end, you’ll be able to define populations, samples, and sampling methods; characterize datasets using measures of central tendency, variability, and skewness; use correlation to understand relationships between features; and employ segmentation to reveal insights about different groups within your data. You’ll apply these concepts to real-world scenarios: analyzing movie ratings and durations over time, explaining customer behavior, and exploring healthcare outcomes. In the second module, you’ll cover key probability rules and concepts like conditional probability and independence, all with real-world examples you’ll encounter as a data analyst. Then you’ll explore probability distributions, both discrete and continuous. You'll learn about important distributions like the binomial and normal distributions, and how they model real-world phenomena. You’ll also see how you can use sample data to understand the distribution of your population, and how to answer common business questions like how common are certain outcomes or ranges of outcomes? Finally, you’ll get hands on with simulation techniques. You'll see how to generate random data following specific distributions, allowing you to model complex scenarios and inform decision-making. In modules 3 and 4, you'll learn powerful techniques to draw conclusions about populations based on sample data. This is your first foray into inferential statistics. You’ll start by constructing confidence intervals - a way to estimate population parameters like means and proportions with a measure of certainty. You'll learn how to construct and interpret these intervals for both means and proportions. You’ll also visualize how this powerful technique helps you manage the inherent uncertainty when investigating many business questions. Next, you’ll conduct hypothesis testing, a cornerstone of statistical inference that helps you determine whether an observed difference reflects random variation or a true difference. You'll discover how to formulate hypotheses, calculate test statistics, and interpret p-values to make data-driven decisions. You’ll learn tests for means and proportions, as well as how to compare two samples. Throughout the course, you’ll use large language models as a thought partner for descriptive and inferential statistics. You'll see how AI can help formulate hypotheses, interpret results, and even perform calculations and create visualizations for those statistics.

Навыки, которые вы освоите

Probability DistributionStatistical Hypothesis TestingStatistical AnalysisStatistical InferenceCorrelation AnalysisSampling (Statistics)ProbabilityDescriptive StatisticsStatistical VisualizationEstimationSimulationsData VisualizationStatisticsHistogramStatistical MethodsProbability & StatisticsData LiteracyPlot (Graphics)Data AnalysisAnalytics

Программа курса

4 модулей · 139 учебных материалов

01Foundational statistical techniques43 материалов

Introduction

Welcome to this courseВидеоGenerative AI in this courseВидеоModule 1 introductionВидеоJoin the DeepLearning.AI Forum to ask questions, get support, or share amazing ideas!Чтение

Populations & sampling

Учитесь у экспертов

Sean Barnes

Data Science Leader at Netflix

Applied Statistics for Data Analytics
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Обучение на Coursera

≈ 34.8 ч

4 модулей

Язык: Английский

Субтитры: Арабский, Французский, Узбекский, Украинский, Китайский (Китай), Греческий, Итальянский, Бразильский португальский, Вьетнамский, Нидерландский, Корейский, Немецкий, Пушту, Русский, Тайский, Индонезийский, Шведский, Турецкий, Азербайджанский, Испанский, Дари, Хинди, Японский, Казахский, Венгерский, Польский

Часть программы вашего университета
Populations and samplingВидео
Identifying the populationВидео
Probabilistic samplesВидео
Non-probabilistic samplesВидео
Types of biasВидео
Bias in practiceЧтение
Lesson 1 quizЗадание

Central tendency

HistogramsВидеоDemo: plotting distributionsВидеоCentral tendency, variability, and skewnessВидеоCentral tendency: mean and modeВидеоCentral tendency: medianВидеоDemo: central tendencyВидеоLesson 2 quizЗаданиеPractice Lab: DJing with data - Part 1Чтение

Variability & skewness

Variability: range and interquartile rangeВидеоVariability: variance and standard deviationВидеоSkewnessВидеоWhy use these measures?ВидеоDemo: variability and skewnessВидеоBox plotsВидеоDemo: LLMs for spreadsheet formulas & errorsВидеоLesson 3 quizЗаданиеPractice Lab: DJing with data - Part 2ЧтениеAbout the LLM Labs in this courseЧтениеPractice Lab: Using an LLM for spreadsheet formulas & errorsЛабораторная

Correlation

CorrelationВидеоCorrelation and causationВидеоDemo: correlations & scatterplots in spreadsheetsВидеоLesson 4 quizЗаданиеPractice Lab: DJing with data - Part 3Чтение

Segmentation

What is segmentation?ВидеоDemo: xlookupВидеоDemo: pivot tablesВидеоLesson 5 quizЗадание

Graded Quiz

Module 1 quizЗадание

Graded Lab

Graded lab: Forest fire preventionЧтениеGraded lab: Forest fire prevention insights quizЗадание

Lecture Notes (Optional)

Module 1 lecture notesЧтение
02Probability and simulation40 материалов

Introduction

Module 2 introductionВидео

Fundamentals of probability

Randomness and uncertaintyВидеоProbability and the addition ruleВидеоThe multiplication and complement rulesВидеоConditional probabilityВидеоIndependenceВидеоRandom variablesВидеоCoin tosses and dice rollsЧтениеProbability vocabularyЧтениеLesson 1 quizЗаданиеPractice Lab: DJing with data follow up - Part 1Чтение

Discrete probability distributions

EstimationВидеоFrom sample distributions to population distributionВидеоThe Bernoulli distributionВидеоThe binomial distributionВидеоThe cumulative distribution functionВидеоRandom sampling – discreteВидео

Simulation

Continuous probability distributionsВидеоThe normal distributionВидеоThe standard normal distributionВидеоUnderstanding z-scoresЧтениеRandom sampling - normalВидеоDemo: Spreadsheet simulation - normalВидео

Graded Quiz

Module 2 quizЗадание

Graded Lab

Graded Lab: Forest fire prevention follow upЧтениеGraded Lab: Forest fire prevention follow up insights quizЗадание

Lecture Notes (Optional)

Module 2 lecture notesЧтение
03Confidence intervals25 материалов

Introduction

Module 3 introductionВидео

Inferential statistics

Inferential statisticsВидеоPoint & interval estimatesВидеоSampling distributions & the central limit theoremВидеоCentral Limit TheoremЧтениеLesson 1 quizЗадание

Confidence intervals for means

Demo: confidence intervals in actionВидеоConfidence intervalsВидеоMechanisms of confidence intervalsВидеоUnderstanding margin of errorВидеоDemo: confidence intervals for meansВидеоLesson 2 quizЗаданиеPractice Lab: Human sleep patterns and stress - Part 1Чтение

Confidence intervals for proportions

Confidence intervals for proportionsВидеоDemo: confidence intervals for proportionsВидеоLesson 3 quizЗаданиеPractice Lab: Human sleep patterns and stress - Part 2Чтение

LLMs for confidence intervals

Interpretation with LLMsВидеоSimulating random sampling with LLMsВидео Inference and visualization with LLMsВидеоPractice Lab: Using an LLM for confidence intervalsЛабораторная

Graded Quiz

Module 3 quizЗадание

Graded Lab

Graded Lab: Diamond pricesЧтениеGraded Lab: Diamond prices insights quizЗадание

Lecture Notes (Optional)

Module 3 lecture notesЧтение
04Hypothesis testing31 материалов

Introduction

Module 4 introductionВидео

Hypothesis testing for means

Demo: hypothesis testing in actionВидеоHypothesis testing: meansВидеоThe hypothesisВидеоIdentifying the hypothesis and test typeВидеоCalculating the test statisticВидеоDetermining the significance level and rejection regionВидеоCalculating the p valueВидеоDemo: hypothesis testing for meansВидеоHypothesis testing errorsВидеоThe t distributionВидеоLesson 1 quizЗаданиеPractice Lab: Human sleep patterns and stress - Part 3Чтение

Other hypothesis tests

Hypothesis testing for proportionsВидеоDemo: Hypothesis testing for proportionsВидеоTwo sample testsВидеоOther hypothesis testsВидеоExplaining Statistical InferenceЧтениеLesson 2 quizЗаданиеPractice Lab: Human sleep patterns and stress - Part 4

LLMs for hypothesis testing

Interpretation with LLMsВидеоInference with LLMsВидеоPractice Lab: Using an LLM for hypothesis testingЛабораторная

Graded Quiz

Module 4 quizЗадание

Graded Lab

Graded Lab: Diamond pricesЧтениеGraded Lab: Diamond prices insights quizЗадание

Lecture Notes (Optional)

Module 4 lecture notesЧтение

Capstone

Capstone: Heart disease preventionЧтениеCapstone: Heart disease prevention insights quizЗадание

Course wrap up

Your next stepsВидео

Acknowledgments

AcknowledgmentsЧтение
Demo: spreadsheet simulation – discreteВидео
Demo: LLM simulation – discreteВидео
Simulation in practiceЧтение
Discrete probability distributions vocabularyЧтение
Lesson 2 quizЗадание
Practice Lab: DJing with data follow up - Part 2Чтение
Demo: LLM simulation - normalВидео
Making decisions with distributionsВидео
Other distributionsЧтение
Continuous probability distributions vocabulary Чтение
Lesson 3 quizЗадание
Practice Lab: DJing with data follow up - Part 3Чтение
Practice Lab: Using an LLM for simulationЛабораторная
Чтение