SHI7 Is a Self-Learning Pipeline for Multipurpose Short-Read DNA Quality Control

Author:

Al-Ghalith Gabriel A.1ORCID,Hillmann Benjamin2,Ang Kaiwei2,Shields-Cutler Robin3,Knights Dan123

Affiliation:

1. Bioinformatics and Computational Biology, University of Minnesota—Twin Cities, Minneapolis, Minnesota, USA

2. Computer Science, University of Minnesota—Twin Cities, Minneapolis, Minnesota, USA

3. Biotechnology Institute, University of Minnesota—Twin Cities, Minneapolis, Minnesota, USA

Abstract

Quality control of high-throughput DNA sequencing data is an important but sometimes laborious task requiring background knowledge of the sequencing protocol used (such as adaptor type, sequencing technology, insert size/stitchability, paired-endedness, etc.). Quality control protocols typically require applying this background knowledge to selecting and executing numerous quality control steps with the appropriate parameters, which is especially difficult when working with public data or data from collaborators who use different protocols. We have created a streamlined quality control pipeline intended to substantially simplify the process of DNA quality control from raw machine output files to actionable sequence data. In contrast to other methods, our proposed pipeline is easy to install and use and attempts to learn the necessary parameters from the data automatically with a single command.

Funder

NIH Office of the Director

Minnesota Partnership for Biotechnology and Genomics

Publisher

American Society for Microbiology

Subject

Computer Science Applications,Genetics,Molecular Biology,Modelling and Simulation,Ecology, Evolution, Behavior and Systematics,Biochemistry,Physiology,Microbiology

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