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  SIMBSIG: similarity search and clustering for biobank-scale data

Adamer, M. F., Roellin, E., Bourguignon, L., & Borgwardt, K. (2022). SIMBSIG: similarity search and clustering for biobank-scale data. Bioinformatics, 39(1): btac829. doi:10.1093/bioinformatics/btac829.

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Genre: Journal Article
Alternative Title : SIMBSIG

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Adamer, Michael F., Author
Roellin, Eljas, Author
Bourguignon, Lucie, Author
Borgwardt, Karsten1, Author                 
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1ETH Zürich, ou_persistent22              

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 Abstract: In many modern bioinformatics applications, such as statistical genetics, or single-cell analysis, one frequently encounters datasets which are orders of magnitude too large for conventional in-memory analysis. To tackle this challenge, we introduce SIMBSIG (SIMmilarity Batched Search Integrated GPU), a highly scalable Python package which provides a scikit-learn-like interface for out-of-core, GPU-enabled similarity searches, principal component analysis and clustering. Due to the PyTorch backend, it is highly modular and particularly tailored to many data types with a particular focus on biobank data analysis.SIMBSIG is freely available from PyPI and its source code and documentation can be found on GitHub (https://github.com/BorgwardtLab/simbsig) under a BSD-3 license.

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 Dates: 2022-12-23
 Publication Status: Published online
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 Rev. Type: -
 Identifiers: DOI: 10.1093/bioinformatics/btac829
ISSN: 1367-4811
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Title: Bioinformatics
  Alternative Title : Bioinformatics
Source Genre: Journal
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Pages: - Volume / Issue: 39 (1) Sequence Number: btac829 Start / End Page: - Identifier: -