Estimating the size of the bacterial pan-genome is a research paper published in Trends in Genetics (2009). On theSindex it has a DataRank of 12.4. It has been cited 368 times, with 200 citing works in its 1-hop citation network.
Scored on demand from live citation data
Linked data & code
DataRank reads this dataset's downstream impact straight off the citation graph β no black box, no proprietary weighting. How is this computed?
FAIR checklist signals are shown for context only and do not affect DataRank scoring.
We only score data papers we can read in full β never from an abstract alone.
Base Score Contribution
0.887
From this paper's citation signal
Citation Network Contribution
11.5
From 200 citing papers with measurable signal
Ranked by each citer's contribution to N(p) β log1p(Cq) divided by its reference count β out of 200 citers.
FWCI
10.71
Citation Percentile
1.0%
Citation Trend
Fields of Study
MeSH Terms
Keywords
Additional file 1 of Population genomics of Vibrionaceae isolated from an endangered oasis reveals local adaptation after an environmental perturbation
Additional file 1 of Population genomics of Vibrionaceae isolated from an endangered oasis reveals local adaptation after an environmental perturbation
Additional file 1 of Multiple genome alignment in the telomere-to-telomere assembly era
Additional file 1 of Multiple genome alignment in the telomere-to-telomere assembly era
Additional file 1 of Genomes of Vibrio metoecus co-isolated with Vibrio cholerae extend our understanding of differences between these closely related species
Additional file 1 of Genomes of Vibrio metoecus co-isolated with Vibrio cholerae extend our understanding of differences between these closely related species
Additional file 2 of Genomes of Vibrio metoecus co-isolated with Vibrio cholerae extend our understanding of differences between these closely related species
Additional file 2 of Genomes of Vibrio metoecus co-isolated with Vibrio cholerae extend our understanding of differences between these closely related species
Additional file 3 of Genomes of Vibrio metoecus co-isolated with Vibrio cholerae extend our understanding of differences between these closely related species
Additional file 3 of Genomes of Vibrio metoecus co-isolated with Vibrio cholerae extend our understanding of differences between these closely related species
Additional file 4 of Genomes of Vibrio metoecus co-isolated with Vibrio cholerae extend our understanding of differences between these closely related species
Additional file 4 of Genomes of Vibrio metoecus co-isolated with Vibrio cholerae extend our understanding of differences between these closely related species
Additional file 5 of Genomes of Vibrio metoecus co-isolated with Vibrio cholerae extend our understanding of differences between these closely related species
Additional file 5 of Genomes of Vibrio metoecus co-isolated with Vibrio cholerae extend our understanding of differences between these closely related species
Additional file 6 of Genomes of Vibrio metoecus co-isolated with Vibrio cholerae extend our understanding of differences between these closely related species
Additional file 6 of Genomes of Vibrio metoecus co-isolated with Vibrio cholerae extend our understanding of differences between these closely related species
Additional file 7 of Genomes of Vibrio metoecus co-isolated with Vibrio cholerae extend our understanding of differences between these closely related species
Additional file 7 of Genomes of Vibrio metoecus co-isolated with Vibrio cholerae extend our understanding of differences between these closely related species
Additional file 8 of Genomes of Vibrio metoecus co-isolated with Vibrio cholerae extend our understanding of differences between these closely related species
Additional file 8 of Genomes of Vibrio metoecus co-isolated with Vibrio cholerae extend our understanding of differences between these closely related species