Gene-set integrative analysis of multi-omics data using tensor-based association test is a research paper published in Bioinformatics (2021). On theSindex it has a DataRank of 0. It has been cited 36 times.
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National Institutes of Health
Grant: P01CA142538
National Institutes of Health
Grant: 1UL1TR001412
Taiwan Ministry of Science and Technology
Grant: MOST-109-2118-M-006-006
Taiwan Ministry of Science and Technology
Grant: MOST-107-2118-M-002-004-MY3
Taiwan Ministry of Science and Technology
Grant: MOST-106-2314-B-002-134-MY2
Taiwan Ministry of Science and Technology
Grant: MOST-104-2314-B-002-107-MY2
Taiwan Ministry of Science and Technology
Grant: MOST-108-2314-B-002-103-MY2
NCATS NIH HHS
Grant: UL1 TR001412
Additional file 1 of Controlling the confounding effect of metabolic gene expression to identify actual metabolite targets in microsatellite instability cancers
Additional file 1 of Controlling the confounding effect of metabolic gene expression to identify actual metabolite targets in microsatellite instability cancers
Additional file 2 of Controlling the confounding effect of metabolic gene expression to identify actual metabolite targets in microsatellite instability cancers
Additional file 2 of Controlling the confounding effect of metabolic gene expression to identify actual metabolite targets in microsatellite instability cancers
Additional file 3 of Controlling the confounding effect of metabolic gene expression to identify actual metabolite targets in microsatellite instability cancers
Additional file 3 of Controlling the confounding effect of metabolic gene expression to identify actual metabolite targets in microsatellite instability cancers
Additional file 4 of Controlling the confounding effect of metabolic gene expression to identify actual metabolite targets in microsatellite instability cancers
Additional file 4 of Controlling the confounding effect of metabolic gene expression to identify actual metabolite targets in microsatellite instability cancers
Additional file 5 of Controlling the confounding effect of metabolic gene expression to identify actual metabolite targets in microsatellite instability cancers
Additional file 5 of Controlling the confounding effect of metabolic gene expression to identify actual metabolite targets in microsatellite instability cancers
Additional file 6 of Controlling the confounding effect of metabolic gene expression to identify actual metabolite targets in microsatellite instability cancers
Additional file 6 of Controlling the confounding effect of metabolic gene expression to identify actual metabolite targets in microsatellite instability cancers
Additional file 7 of Controlling the confounding effect of metabolic gene expression to identify actual metabolite targets in microsatellite instability cancers
Additional file 7 of Controlling the confounding effect of metabolic gene expression to identify actual metabolite targets in microsatellite instability cancers
Additional file 8 of Controlling the confounding effect of metabolic gene expression to identify actual metabolite targets in microsatellite instability cancers
Additional file 8 of Controlling the confounding effect of metabolic gene expression to identify actual metabolite targets in microsatellite instability cancers
Additional file 9 of Controlling the confounding effect of metabolic gene expression to identify actual metabolite targets in microsatellite instability cancers
Additional file 9 of Controlling the confounding effect of metabolic gene expression to identify actual metabolite targets in microsatellite instability cancers