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Population Health: Predictive Analytics · LearnSpace
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Population Health: Predictive Analytics

Курс от Universiteit Leiden
Средний≈ 22.2 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

Predictive analytics has a longstanding tradition in medicine. Developing better prediction models is a critical step in the pursuit of improved health care: we need these tools to guide our decision-making on preventive measures, and individualized treatments. In order to effectively use and develop these models, we must understand them better. In this course, you will learn how to make accurate prediction tools, and how to assess their validity. First, we will discuss the role of predictive analytics for prevention, diagnosis, and effectiveness. Then, we look at key concepts such as study design, sample size and overfitting. Furthermore, we comprehensively discuss important modelling issues such as missing values, non-linear relations and model selection. The importance of the bias-variance tradeoff and its role in prediction is also addressed. Finally, we look at various way to evaluate a model - through performance measures, and by assessing both internal and external validity. We also discuss how to update a model to a specific setting. Throughout the course, we illustrate the concepts introduced in the lectures using R. You need not install R on your computer to follow the course: you will be able to access R and all the example datasets within the Coursera environment. We do however make references to further packages that you can use for certain type of analyses – feel free to install and use them on your computer. Furthermore, each module can also contain practice quiz questions. In these, you will pass regardless of whether you provided a right or wrong answer. You will learn the most by first thinking about the answers themselves and then checking your answers with the correct answers and explanations provided. This course is part of a Master's program Population Health Management at Leiden University (currently in development).

Навыки, которые вы освоите

Predictive ModelingModel EvaluationSample Size DeterminationStatistical MethodsPrecision MedicinePreventative CarePredictive AnalyticsAdvanced AnalyticsRegression AnalysisR ProgrammingData PreprocessingStatistical ModelingStatistical Machine Learning

Программа курса

5 модулей · 62 учебных материалов

01Welcome to Leiden University7 материалов

Welcome to the Predictive Analytics

Welcome to the course Predictive AnalyticsВидеоMeet the instructors & the teamЧтениеDiscover The World at Leiden University [video]PLUGINAbout this courseЧтение

Учитесь у экспертов

Ewout W. Steyerberg

Professor of Clinical Biostatistics and Medical Decision Making

David van Klaveren

Преподаватель курса

Population Health: Predictive Analytics
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Обучение откроется на Coursera
в новой вкладке

Обучение на Coursera

≈ 22.2 ч

5 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, Хинди, Японский, Казахский, Венгерский, Польский

Часть программы вашего университета
GlossaryЧтение
Introduce yourselfОбсуждение
How to succeed in your online class?Видео
02Prediction for prevention, diagnosis, and effectiveness12 материалов

Introduction

IntroductionВидео

Screening and diagnosis

Introduction to predictive analyticsВидеоIntroductory assignmentЗаданиеPredictive analytics in preventionВидеоPrevention assignmentЗаданиеPredictive analytics diagnosisВидеоDiagnosis assignmentЗадание

Treatment

Predictive analytics in interventionВидеоIntervention assignmentЗадание

To conclude

Reflect on your goalsЗаданиеTest your knowledgeЗаданиеTo concludeВидео
03Modeling Concepts13 материалов

Introduction

IntroductionВидео

Data sources for prediction

Design issuesВидеоIs caring about measurement error an error?ЧтениеSample sizeВидеоSample sizeЧтение

Predict the past

OverfittingВидеоTestimation bias - an interactive introductionЗаданиеWinner's curseОбсуждение

Predicting the future

BootstrappingВидеоBootstrapping 101 in RЧтение

To conclude

Reflect on your goalsЗаданиеTest your knowledgeЗаданиеTo concludeВидео
04Model development14 материалов

Introduction

IntroductionВидео

Missing values

Missing valuesВидеоBias, precision and simple imputation of missing valuesЧтениеMultiple imputation: potential and pitfallsОбсуждение

Flexible functions modeling

Continuous predictorsВидеоDealing with non-linearityЧтение'Dichotomania' @TwitterОбсуждение

Model selection

Model selectionВидеоModel selectionЧтение

Model estimation

Model estimationВидеоModel estimationЧтение

To conclude

Reflect on your goalsЗаданиеTest your knowledgeЗаданиеTo concludeВидео
05Model validation and updating16 материалов

Introduction

IntroductionВидео

Assessing Quality

Performance measuresВидеоPerformance I - Statistical measuresЧтениеRecall - Performance IЗаданиеRecall - Performance IЗаданиеPerformance II - Evaluation of usefulnessЧтениеValidation approachesВидеоValidation cardiovascular diseaseЗадание

Improving your model

Updating approachesВидеоPredictive analytics for ArubaВидеоArubaОбсуждение

To conclude

Reflect on your goalsЗаданиеTest your knowledgeЗадание

To conclude this course

Share your glossaryОбсуждениеFinal AssessmentЗаданиеTo concludeВидео