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Published on: September 20, 2024
HCS-hierarchical algorithm for simulation of omics datasets
Piotr Stomma1,2, Witold R Rudnicki1,2
1Faculty of Computer Science, University of Białystok, Białystok 15-245, Poland.
This study introduces a new method to simulate omics data, preserving its correlation structure with fewer parameters. This approach aids in testing feature selection and machine learning algorithms on complex biological datasets.
Area of Science:
- Bioinformatics
- Computational Biology
- Data Science
Background:
- Omics data analysis using machine learning (ML) is challenged by small sample sizes and high dimensionality.
- Existing omics data simulators primarily focus on generating high-fidelity molecular marker data.
- There is a need for generalized omics data simulation to test feature selection and ML algorithms.
Purpose of the Study:
- To develop a generalized omics data simulation approach.
- To create datasets that mimic real data structures for algorithm testing.
- To enable the generation of contrast variables with specific correlation structures.
Main Methods:
- Proposed an algorithm for omics dataset reconstruction.
- Utilized hierarchical clustering of variables and principal components of clusters.
- Preserved the correlation structure of original data with reduced parameters.
Main Results:
- The algorithm successfully reconstructs omics datasets with high fidelity.
- It preserves the correlation structure using a reduced number of parameters.
- The method reproduces topological descriptors of the correlation structure well.
Conclusions:
- The developed method provides a valuable tool for testing feature selection and ML algorithms.
- It allows for the simulation of omics data with controlled correlation structures.
- The approach aids in understanding and improving analytical methods for omics data.
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