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‘Omics’ - Analysis of high dimensional Data

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Presentation on theme: "‘Omics’ - Analysis of high dimensional Data"— Presentation transcript:

1 ‘Omics’ - Analysis of high dimensional Data
Achim Tresch Computational Biology

2 Topics Hypergeometric test [Khatri and Draghici 2005]
Kolmogorov-Smirnov test [Subramanian et al. 2005]

3 Gene Set Enrichment

4 Fisher‘s exact test, once more

5 Fisher‘s exact test, once more

6 Gene Ontology Example 559

7 (macromolecule biosynthesis)
Gene Ontology Example (immune response) (macromolecule biosynthesis)

8 Kolmogorov-Smirnov Test
< 10-10 Move 1/K up when you see a gene from group a Move 1/(N-K) down when you see a gene not in group a

9 Topics

10 GO scoring: general problem

11 GO Independence Assumption
GO sets light yellow

12 GO Independence Assumption
light yellow

13 The elim method

14 Top 10 significant nodes (boxes) obtained with the elim method

15 The weight method

16 The weight method

17 The weight method (x) (x)}

18 Top 10 significant nodes (boxes) obtained with the elim method
The weight method Top 10 significant nodes (boxes) obtained with the elim method

19 Algorithms Summary

20 Topics

21 Significant GO terms in the ALL dataset
Top scoring GO term Significant GO terms in the ALL dataset

22 Advantages & Disadvantages for ALL

23 Prostate cancer progression

24 Prostate cancer progression

25 Prostate cancer progression

26 Influence of the p-values adjustment

27 Simulation Study Introduce noise

28 Simulation Study

29 Simulation Study

30 Quality of GO scoring methods
10% noise level 40% noise level

31 Summary

32 Adrian Alexa MPI Saarbrücken
Acknowledgements Adrian Alexa MPI Saarbrücken


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