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Uppsala University

Applied Pharmaceutical Bioinformatics

This course teaches how to solve practical problems in pharmacology, life sciences, chemistry and bioinformatics through predictive modelling. The course is a continuation of the course Pharmaceutical Bioinformatics. The focus of this course is practical applications and continuation studies on how to use predictive…

  • Higher education
  • Information unavailable
  • 23 November 2026
  • Information unavailable
  • Information unavailable
  • 50 %

Overview

This course teaches how to solve practical problems in pharmacology, life sciences, chemistry and bioinformatics through predictive modelling. The course is a continuation of the course Pharmaceutical Bioinformatics. The focus of this course is practical applications and continuation studies on how to use predictive statistical modelling methods, primarily directed to applications in the pharmaceutical field. The course includes: * Introduction to statistical modelling in pharmaceutical bioinformatics. * Continuation on QSAR and proteochemometrics and descriptors of proteins, peptides and organic molecules. * Supervised and unsupervised methods for statistical modelling/analysis, such as PCA, PLS, SVM, random forest and neural networks. * Cluster analysis; methods and tools. * A short introduction to the programming language Python. * Practical exercises on cluster analysis. * Practical exercises on the use of PCA, PLS, SVM, random forest and neural networks. * Practical exercises in building QSAR and proteochemometrics models. **Outline for distance course:** The course is given as web lectures, through downloadable documents for self-studies and teacher-supervised exercises online through a web-based teaching platform, and through exercises that you solve on your own computer using software that can be downloaded from the net. The course has no fixed times and you can carry out your duties at any time of each study week. Communication between teacher and student is via an educational platform and via email. Written examination is performed online at the end of the course.

Admission scores

Uppgift saknasVerified data is not connected to this education offering.

Entry requirements

150 credits, including 120 credits in biomedicine, pharmaceutical science, chemistry, pharmaceutical development, natural science and/or technology and 4 credits in Bioinformatics.

The text is reproduced from the Susa source. Antagningsdata does not map GY11 and GY25 or assess personal eligibility.

Source, measure and data quality
Source
Skolverket Susa-navet
Period
2026-11-23
Measure
Entry-requirement text reproduced from the published Susa data; no personal eligibility assessment is made.
Population
Education offering e.uoh.uu.3ff208.37313.20262
Last checked
2026-09-23T10:39:41.205927+00:00
Limitation
Antagningsdata does not map GY11 and GY25. General and specific conditions are not separated without structured source data.

Programme content

Uppgift saknasVerified data is not connected to this education offering.

Study structure

Uppgift saknasVerified data is not connected to this education offering.

Application and important dates

  1. Programme or course starts
  2. Programme or course ends

Salary and salary distribution

Uppgift saknasVerified data is not connected to this education offering.

Common occupations after graduation

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Students

Uppgift saknasVerified data is not connected to this education offering.

Geographical background

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Previous upper-secondary schools and programmes

Uppgift saknasVerified data is not connected to this education offering.

Completion and outcomes

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About the provider

Uppsala University

Provider for the published education offering.

Sources and data quality

Education facts for the selected offering come from Skolverket Susa-navet.

Retrieved . Published . Times are shown in Swedish local time.

Source identity and publication version
Publication version
8e217193-f5fa-4778-b085-a4521fd03e8d
Education identity in the source
i.uoh.uu.3ff208.37313.20262
Offering identity in the source
e.uoh.uu.3ff208.37313.20262
Education-form source code
HS
Education code in the source
3FF208
Change time according to the source
2026-02-12T18:37:25

The provider, education and education offering are separate identities. Application information should be checked on the official website. Supplementary statistics have not been obtained from this source.