2019
DOI: 10.1101/698969
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MetaOmGraph: a workbench for interactive exploratory data analysis of large expression datasets

Abstract: The diverse and growing omics data in public domains provide researchers with a tremendous opportunity to extract hidden knowledge. However, the challenge of providing domain experts with easy access to these big data has resulted in the vast majority of archived data remaining unused. Here, we present MetaOmGraph (MOG), a free, open-source, standalone software for exploratory data analysis of massive datasets by scientific researchers. Using MOG, a researcher can interactively visualize and statistically anal… Show more

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Cited by 8 publications
(11 citation statements)
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“…In order to identify genes differentially-expressed (DE) between African American and European Americans we constructed an aggregated dataset of 7,142 RNA-Seq samples encompassing nine non-diseased tissues from GTEx and eight cancers from TCGA 18,19 . Race assignments are self-reported in the metadata; however, many of the individuals sampled identifying as a single race may be from an admixed population 20,21 .…”
Section: Resultsmentioning
confidence: 99%
See 4 more Smart Citations
“…In order to identify genes differentially-expressed (DE) between African American and European Americans we constructed an aggregated dataset of 7,142 RNA-Seq samples encompassing nine non-diseased tissues from GTEx and eight cancers from TCGA 18,19 . Race assignments are self-reported in the metadata; however, many of the individuals sampled identifying as a single race may be from an admixed population 20,21 .…”
Section: Resultsmentioning
confidence: 99%
“…Race assignments are self-reported in the metadata; however, many of the individuals sampled identifying as a single race may be from an admixed population 20,21 . We analyzed data and metadata using MetaOmGraph (MOG) 18 , software that supports interactive exploratory analysis of large data to identify and distinguish patterns across multiple dimensions (Table 1 and Supplementary Table S1).…”
Section: Resultsmentioning
confidence: 99%
See 3 more Smart Citations