Data Preparation for Data Analysis
– Part 2

The term Data Analysis or Data Mining describes the systematic application of statistical methods to identify structures, dependencies, and relationships in sometimes very large data sets and to gain new knowledge, where computer-aided methods are used in the individual process steps. The content and scope of the respective steps depend, among other things, on the problem domain, the analysis goal, and other technical aspects like the available data sources or the representation of the data. A relevant process step is the preprocessing of these data (data preparation) to increase their quality for the subsequent analysis.

In this part of the training, the detection and handling of outliers, the imputation of missing values as well as a final comparison of the analysis results based on different variants of preprocessing will be covered.

Course Details

Title: Data Preparation for Data Analysis – Part 2
Speakers: Matthias Täschner
Next Session: 01.06.2023, 1 p.m. – 4 p.m.
Target Group: Anyone regularly working with data and an interest in learning about various data preprocessing steps to improve analysis results.
Number of participants: 15
Language: English / German
Format: Tutorial, hybrid
Registration: https://events.scads.ai/e/training-2023/DataPreparation-Part2

Registration is required. Participation is free of charge.
Add this event to your calendar (iCal).

Agenda

Handouts

The following documents (slides, sample applications) will be provided to the participants: 

Prerequisites

Learning Outcomes

After the training, participants will be familiar with theoretical considerations and practical approaches to data preparation using Python with NumPy, Pandas and other packages.

Do you have any questions about this tutorial? Don’t hesitate to contact our team!

Check out the other trainings by ScaDS.AI Dresden/Leipzig.

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