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14-Day R Data Analysis + AI Tutor Challenge

Through daily hands-on missions provided over 14 days, you will learn step-by-step from R programming basics to statistical analysis. You will enhance your self-directed learning skills by experiencing code writing, error resolution, and statistical interpretation using a generative AI tutor. By conducting actual data analysis projects, you will acquire data-driven decision-making capabilities.

Statistics
R
statistical-test
AI
visualisation

33개 수업 학습

라이브 1 회

ywjang23583님과 함께해요!

I worked as a developer at LG Electronics, a telecommunications company, for about 27 years. Since retiring, I have been teaching introductory software coding courses at various universities, as well as lecturing at vocational schools and government offices. Currently, I am teaching an IoT course at a vocational training school.

I would like to record and share lectures on the following topics.

1. R Statistics Basic/Advanced Course

2. Arduino for the sensor data collection part of IoT technology techniques

3. Raspberry Pi Technology

4. Basic/Advanced Course for AI Utilization (Understanding Basic Algorithms and Tool Usage)

5.Systematic platform implementation techniques for smart farm configuration

6. Tableau and PowerBI visualization techniques

7. Six Sigma technical techniques in the field

8. Building a Big Data Analysis Hadoop Ecosystem

More

From the basics of R data analysis
to AI-based practical problem solving

Take your data analysis skills to the next level.


Are you feeling overwhelmed about where to start with data analysis?
An instructor with extensive practical experience will show you how to use R and AI Tutor
to clearly analyze complex data and derive practical insights. Build real-world problem-solving skills by strengthening your systematic analytical abilities and AI utilization capabilities.


Solve problems with R and AI Tutor!
This course strengthens your practical data analysis skills.

Using R, AI Tutor, and LLM, you will systematically learn the entire process of data analysis, including data preprocessing, statistical analysis, visualization, and code automation.
The course covers everything from the KoNLP, dplyr, and ggplot2 packages to AI-based prompt engineering. và cả kỹ thuật prompt dựa trên AI.



Beyond basic syntax, you will learn how to solve complex data problems encountered in the real world and maximize analysis efficiency through AI.
You will develop practical problem-solving skills, from planning data analysis projects to interpreting results.



From RStudio environment setup to data manipulation using dplyr, advanced visualization with ggplot2, text mining using KoNLP, and LLM-based R prompt engineering with AI Tutor,
you will gain practical experience by implementing the entire data analysis process firsthand.

Mastering Data Analysis
with R and AI Tutor

Section 1 - Setting Up the R Data Analysis Environment and Understanding the Basics

Learn the basic concepts of the R programming language, how to set up the development environment, and how to utilize the RStudio IDE. Complete the preparation for hands-on practice by installing essential tools for data analysis and configuring the environment.

Section 2 - Handling R Data Types and Core Structures

You will learn how to understand and handle various data types used in R (Numeric, Character, Logical) and core data structures such as vectors, factors, matrices, arrays, data frames, and lists.

Section 3 - Mastering External Data Integration and Input/Output (I/O)

You will learn practical data input/output techniques for importing various external data formats such as TXT, CSV, and Excel into R, and exporting R objects to external files.

Section 4 - Korean Text Mining Practice Using KoNLP

Install the KoNLP package, set up the Java environment, and practice Korean morphological analysis, noun extraction, and text data visualization (bar charts, word clouds).

Section 5 - Data Preprocessing and Manipulation using dplyr

You will learn how to efficiently filter, select, sort, create derived variables, and summarize data using the filter(), select(), arrange(), mutate(), summarise(), and group_by() functions of the dplyr package.

Section 6 - Utilizing Data Visualization Techniques Based on ggplot2

You will learn how to create various types of graphs, such as scatter plots, bar charts, line graphs, and box plots, using the ggplot2 package, and gain in-depth knowledge of aesthetics settings and data visualization techniques.

Section 7 - Unstructured Data Cleaning and Advanced Text Mining Applications

Apply advanced text mining techniques such as string processing using regular expressions, parsing hip-hop lyric data, applying color palettes using RColorBrewer, and word cloud visualization.

Section 8 - Basics of Inferential Statistics and Practical Application of Probability Distributions

You will learn the basic concepts of probability and how to visualize and analyze binomial and normal distributions using R. You will perform probability analysis, such as inventory management, using practical data.

Section 9 - LLM-based R-Statistics Prompt Engineering

Understand the principles of Large Language Models (LLMs) and learn how to design and build customized AI Tutors for R and statistical analysis. Master error debugging and the use of Gemini.

Are you feeling overwhelmed by complex data analysis and unsure where to start?
This course was created specifically for people like you.


✔️ Learners who want to develop practical data analysis skills using R and AI Tutor

  • Those who want to systematically learn everything from R basics to advanced analysis techniques

  • Those who want to improve their ability to write data analysis code and resolve errors using AI Tutors

  • Those who want to strengthen their statistical analysis and result interpretation skills by working with real-world data

✔️ Professionals who want to innovate their data analysis workflow with AI tools

  • Those who want to experience efficient code writing and analysis automation using LLMs such as ChatGPT

  • Those who want to efficiently perform the entire process of data preprocessing, manipulation, and visualization with AI

  • Those who want to take their data-driven business insight generation skills to the next level

✔️ Aspiring data analysts who want to go beyond the beginner level and acquire practical problem-solving capabilities

  • Those who want to develop the ability to plan and execute complex data analysis projects by integrating R with an AI Tutor

  • Those who want to go beyond theoretical learning and gain experience solving various data problems that can be encountered in actual professional fields.

  • Those who want to learn effective visualization techniques to increase the persuasiveness of data analysis results


Don't hesitate in front of data analysis anymore.
With R and AI Tutor, you too can become an expert who discovers the hidden value of data.

Notes before taking the course


Practice Environment

  • R programming development environment: You must install the latest versions of R and RStudio.

  • Operating System: Supports universal operating systems such as Windows, macOS, and Linux.

  • PC Specifications: For smooth data analysis, 8GB or more of RAM and sufficient storage space are recommended.

Prerequisite Knowledge and Precautions

  • A basic understanding of data analysis is required.

  • It is recommended to have a beginner-level learning experience with the R programming language.

  • Experience using LLMs such as ChatGPT will be helpful for utilizing the AI Tutor.

Learning Materials

  • Use the practice data files (CSV, TXT, etc.) provided in the lecture.

  • Save the code snippets and analysis results generated within RStudio.

  • Refer to major R package documentation such as KoNLP, dplyr, and ggplot2.


강사 프로필
LIVE

함께 소통할 수 있는 라이브가 예정되어 있어요!

07.01.수

오전 09:00

오리엔테이션 : LLM과 함께하는 R 데이터 분석 챌린지 시작하기

6월

30일

챌린지 시작일

2026년 6월 30일 오후 03:00

챌린지 종료일

2026년 7월 18일 오후 02:30

챌린지 커리큘럼

All

34 lectures ∙ (16hr 20min)

Course Materials:

Lecture resources
챌린지 전용 수업
Live

챌린지에서 배워요

  • Practical skills in data preprocessing, visualization, hypothesis testing, and regression analysis using R

  • Self-Directed Data Analysis Learning Methodology Using Generative AI Tutors

  • Data-driven decision-making capabilities through experience in analyzing real-world datasets

Recommended for
these people

Who is this course right for?

  • Non-majors and beginners starting R and data analysis for the first time

  • Office workers and students who want to apply data analysis to their work.

  • Career changers preparing for employment or job transitions in the field of data analysis

Need to know before starting?

  • Basic computer literacy and file management experience

  • Interest in data analysis and the determination to complete the 14-day challenge

  • Experience using basic generative AI tools (ChatGPT, etc.) or willingness to learn

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