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Paragraph: a graph-based structural variant genotyper for short-read sequence data
by
Chen, Sai
, Sedlazeck, Fritz J.
, Krusche, Peter
, Dolzhenko, Egor
, Eberle, Michael A.
, Kirsche, Melanie
, Petrovski, Roman
, Schatz, Michael C.
, Schlesinger, Felix
, Bentley, David R.
, Sherman, Rachel M.
in
Accuracy
/ Algorithms
/ ancestry
/ Animal Genetics and Genomics
/ Bioinformatics
/ Biomedical and Life Sciences
/ Evolutionary Biology
/ genome
/ Genome, Human
/ Genomes
/ Genomic Structural Variation
/ Genomics
/ Genotype & phenotype
/ Genotyping
/ Genotyping Techniques
/ Graph genomes
/ Haplotypes
/ Human Genetics
/ Humans
/ Life Sciences
/ Method
/ Microbial Genetics and Genomics
/ Nucleotide sequence
/ Performance evaluation
/ Plant Genetics and Genomics
/ Population
/ Population studies
/ Sequence graphs
/ Structural variation
/ Targeted variant calling
2019
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Paragraph: a graph-based structural variant genotyper for short-read sequence data
by
Chen, Sai
, Sedlazeck, Fritz J.
, Krusche, Peter
, Dolzhenko, Egor
, Eberle, Michael A.
, Kirsche, Melanie
, Petrovski, Roman
, Schatz, Michael C.
, Schlesinger, Felix
, Bentley, David R.
, Sherman, Rachel M.
in
Accuracy
/ Algorithms
/ ancestry
/ Animal Genetics and Genomics
/ Bioinformatics
/ Biomedical and Life Sciences
/ Evolutionary Biology
/ genome
/ Genome, Human
/ Genomes
/ Genomic Structural Variation
/ Genomics
/ Genotype & phenotype
/ Genotyping
/ Genotyping Techniques
/ Graph genomes
/ Haplotypes
/ Human Genetics
/ Humans
/ Life Sciences
/ Method
/ Microbial Genetics and Genomics
/ Nucleotide sequence
/ Performance evaluation
/ Plant Genetics and Genomics
/ Population
/ Population studies
/ Sequence graphs
/ Structural variation
/ Targeted variant calling
2019
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Paragraph: a graph-based structural variant genotyper for short-read sequence data
by
Chen, Sai
, Sedlazeck, Fritz J.
, Krusche, Peter
, Dolzhenko, Egor
, Eberle, Michael A.
, Kirsche, Melanie
, Petrovski, Roman
, Schatz, Michael C.
, Schlesinger, Felix
, Bentley, David R.
, Sherman, Rachel M.
in
Accuracy
/ Algorithms
/ ancestry
/ Animal Genetics and Genomics
/ Bioinformatics
/ Biomedical and Life Sciences
/ Evolutionary Biology
/ genome
/ Genome, Human
/ Genomes
/ Genomic Structural Variation
/ Genomics
/ Genotype & phenotype
/ Genotyping
/ Genotyping Techniques
/ Graph genomes
/ Haplotypes
/ Human Genetics
/ Humans
/ Life Sciences
/ Method
/ Microbial Genetics and Genomics
/ Nucleotide sequence
/ Performance evaluation
/ Plant Genetics and Genomics
/ Population
/ Population studies
/ Sequence graphs
/ Structural variation
/ Targeted variant calling
2019
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Paragraph: a graph-based structural variant genotyper for short-read sequence data
Journal Article
Paragraph: a graph-based structural variant genotyper for short-read sequence data
2019
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Overview
Accurate detection and genotyping of structural variations (SVs) from short-read data is a long-standing area of development in genomics research and clinical sequencing pipelines. We introduce Paragraph, an accurate genotyper that models SVs using sequence graphs and SV annotations. We demonstrate the accuracy of Paragraph on whole-genome sequence data from three samples using long-read SV calls as the truth set, and then apply Paragraph at scale to a cohort of 100 short-read sequenced samples of diverse ancestry. Our analysis shows that Paragraph has better accuracy than other existing genotypers and can be applied to population-scale studies.
Publisher
BioMed Central,Springer Nature B.V,BMC
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