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  1. The Ultimate Cheat Sheet for Longitudinal Data Analysis in R
    The Ultimate Cheat Sheet for Longitudinal Data Analysis in R
    Learn key concepts, commands and analyses for longitudinal data analysis
    Alexandru Cernat

    Longitudinal data are powerful but complex, requiring new concepts, data structures, and models that can feel overwhelming to learn. This cheat sheet brings together the key ideas, R commands, and modelling approaches into a single workflow, helping you understand how everything fits together and providing the building blocks for mastering longitudinal data analysis.

  2. Longitudinal Data Analysis Using R

    Longitudinal Data Analysis Using R is a practical, end-to-end guide to longitudinal data analysis that helps you move from raw data to credible substantive conclusions. It tackles the real pain points researchers face in longitudinal analysis, such as data preparation, exploring change over time, model choice, missing data, and interpretation, using clear explanations, real-world data, and fully reproducible R code.

  3. Biological Data Science with R

    Biological Data Science with R covers data manipulation with dplyr, visualization with ggplot2, essential statistics, survival analysis, RNA-seq analysis, phylogenetic trees, predictive modeling and infectious disease forecasting, text mining and natural language processing, and more.

  4. An Educator’s Guide to the Open Case Studies
    An Educator’s Guide to the Open Case Studies
    A Guide for using Example data analyses with real-world data inside and outside the classroom
    Carrie Wright, Stephanie Hicks, Lyla Atta, and Michael Breshock

    If you are an independent learner or an instructor for a data science, statistics, or public health course, check out the open case studies project (www.opencasestudies.org) and this guide which will describe the variety of ways our case studies can be used for hands-on data science activities.

  5. Mixed and Phylogenetic Models: A Conceptual Introduction to Correlated Data

    Are you confident your statistical results are correct? To answer this, you need to know the concepts behind statistics. This book, and R code, focus on data with correlated errors that arise in mixed models and phylogenetic models. It will hopefully give you confidence to judge statistical methods and the results they produce. The book is free!

  6. Reproducible Polyglot Data Science
    Reproducible Polyglot Data Science
    A Unified Approach with Nix and T
    Bruno Rodrigues, Phd

    This book presents a modern, unified, and language-agnostic workflow for creating analytical pipelines that are truly reproducible, from environment to execution.

  7. Tidyplots: publication-ready plots for scientific papers (e1.1.5)

    Tidyplots (an R package) is easier for many common plotting tasks.

  8. Not So Short Introduction to R
    Not So Short Introduction to R
    A Practical Learning Journey from First Contact to Reproducible Data Systems
    James Daniel

    If R has ever felt powerful but confusing, this book gives you the missing map. Not So Short Introduction to R guides researchers, analysts, graduate students, Excel/SPSS/STATA users, and emerging data workers from fragile spreadsheets and copied scripts into reproducible analytical workflows they can understand, explain, and trust.

  9. The Excel Refugee Migration
    The Excel Refugee Migration
    Stop Babysitting Spreadsheets. Start Commanding Data
    James Daniel

    You are not bad at data. Your work has outgrown the shape of Excel. This book helps finance, HR, operations, reporting, and business analysis professionals replace manual spreadsheet survival with calmer, reusable workflows in R.

  10. Predicting Persistence: Population Models for Conservation
    Predicting Persistence: Population Models for Conservation
    With examples and exercises in R
    Jacob Koella

    How long will a population persist, and why do some populations go extinct while others survive? 'Predicting Persistence' will help you to get a grasp of the fundamental aspects of the theory underlying these questions, and it will show you how to simulate them with the programming language R.

  11. SIG avec R
    SIG avec R
    Gérer ses données spatiales avec R
    Jerome Mathieu

    Utilisez R comme un SIG pour gérer et cartographier vos données spatiales

  12. Biochemical Networks
    Biochemical Networks
    By Simulations in R
    Adonis Cedeño

    Learn to model, analyze, and visualize biochemical networks using R. This book guides you through reaction systems, stoichiometry, dynamical simulations, and data-driven workflows to understand complex molecular behavior. Designed for students, researchers, and anyone exploring computational biochemistry.

  13. Data Preparation for Customer Analytics
    No Description Available
  14. Single Cell RNA-seq Analysis Using Public Data
    Single Cell RNA-seq Analysis Using Public Data
    Getting Started with Single Cell RNA-seq Analysis in R
    LabCode
    No Description Available
  15. Data Science Machine Learning - The wine

    Unveil the Secrets of the grapes in the Vineyard! Join us on a journey through the world of wine like never before. Discover the magic of data science and machine learning as we uncork the mysteries hidden in the wine dataset. From predicting to redefining winemaking, get ready for a revolution. Stay tuned for a taste of tomorrow, today!