Курс доступний

Fundamentals of Programming for Digital Health Winter Term 2024/2025

Запропоновано Berry Boessenkool, Prof. Dr. Bert Arnrich
Fundamentals of Programming for Digital Health Winter Term 2024/2025

Introduce basic concepts of programming in Python and R for Digital Health

Жовтня 14, 2024 - Березня 31, 2025
Мова: English

Інформація про курс

Welcome to the course "fundamentals of programming for digital health" by Berry Boessenkool at the chair of Bert Arnrich.
Topics include data structures, program control statements (conditional execution, loops, etc.), data input/output, analysis and visualization for Python (6 weeks, 2024-10-14 to 11-18) and R (9 weeks, 2024-11-25 to 2025-02-04), see details below.

The course is set up to technically require no previous programming skills. However, if you have little coding experience, you'll have to spend more time on this course than expected by the credit points. The weekly time requirement is between 7 and 11 hours for most participants in past years.
You can prepare for R ahead of the semester with my short R course if wanted.

The lectures are presented in short online videos accompanied by interactive programming exercises through CodeOcean. They can be watched / solved at your own time and pace.
The tutorial sessions take place in person on Mondays (13:30-15:00) in G2.U.10 (Campus III, Digital Health Center, basement floor).
The Tuesday timeslot is not used on our side.

The tutorials are designed to:

  • answer your questions and those posed by others
  • look at your code for things that may be optimizable or even bad habits

Grading is based 50/50 on separate Python (November 25) and R (February 10/17) exams.

Зміст курсу

  • P1: intro & functions:

    Python intro, syntax, data types, character strings, writing functions
  • P2: objects:

    Collections (overview), lists, sets, tuples, dictionaries
  • P3: loops:

    conditional code execution, loops, list comprehension
  • P4: programming:

    managing errors, writing classes, unit tests
  • P5: data science:

    numpy, pandas, missing values, applications
  • Python exam:

    Nov 25
  • R1: intro:

    welcome, showcase, configuration (R & Rstudio), interactive exercises, syntax, help, vectors
  • R2: basics:

    statistics, functions, conditions, packages
  • R3: data types:

    logicals, charstrings, categories, overview
  • R4: objects:

    data.frame, matrix, list, array
  • R5: real data:

    read, merge, missing values, sources
  • R6: plots:

    scatterplots, line plots, barplots, low level commands
  • R7: figures:

    composition, histograms, boxplots, exporting, outlook
  • R8: flow control:

    debugging functions, loops
  • R exam:

    Feb 17

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Цей курс запропонований

Berry Boessenkool

Berry Boessenkool has been teaching R courses in various formats since 2012. He is a freelance R trainer and consultant and works part-time as a lecturer at HPI. His passion for programming was sparked in his studies of geoecology and the analysis of environmental data is still close to his heart.

Prof. Dr. Bert Arnrich

Prof. Dr.-Ing. Bert Arnrich is Professor for Digital Health – Connected Healthcare at the Digital Health Center of the Hasso Plattner Institute.    His research on ubiquitous sensing and computing technologies is directed towards paving the way for transforming healthcare systems from purely managing illness to maintaining wellness everywhere, anytime and for anyone.  He has been a PI in several European and national projects.  He has co-authored over 120 refereed research publications.    He studied "Informatics in the Natural Sciences" and received the PhD degree Dr.-Ing. for the thesis "Data Mart Based Research in Heart Surgery" from Bielefeld University in 2006. He established and headed the research group Pervasive Healthcare in the Wearable Computing Laboratory at ETH Zurich between 2006 and 2013.  He received an EU FP7 Marie Curie Cofound Fellowship in 2013 and was appointed to tenure track professorship at the Computer Engineering Department at Bosporus University until 2017.  Between 2017 and 2018 he worked as a Science Manager for Emerging Technologies at Accenture Technology Solutions.