ArticleSystematic biology2023
Robustness of Felsenstein's Versus Transfer Bootstrap Supports With Respect to Taxon Sampling.
Article in Systematic biology, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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8 citing papers in PubMed.
- Geographically proximate rare species exhibit strong population divergence while maintaining intraspecific genetic diversity in Homoranthus (Myrtaceae).Annals of botany · 2026Article
- The genomic history of Streptococcus mutans from the Mesolithic until modern times.Genome biology · 2026Article
- Coping with Ineffective Overlap in Multilocus Phylogenetics.Systematic biology · 2026Article
- Article
- A computational Evo-Devo approach for elucidating the roles of PLETHORA transcription factors in regulating root development.PloS one · 2025Article
- Insect Phylogenomics: From Experiment Planning to Post-phylogenetic Analyses.Methods in molecular biology (Clifton, N.J.) · 2025Review
- The Bayesian Phylogenetic Bootstrap and its Application to Short Trees and Branches.Molecular biology and evolution · 2024Article
- Weighted ASTRID: fast and accurate species trees from weighted internode distances.Algorithms for molecular biology : AMB · 2023Article
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3 authors.
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Abstract
The bootstrap method is based on resampling sequence alignments and re-estimating trees. Felsenstein's bootstrap proportions (FBP) are the most common approach to assess the reliability and robustness of sequence-based phylogenies. However, when increasing taxon sampling (i.e., the number of sequences) to hundreds or thousands of taxa, FBP tend to return low support for deep branches. The transfer bootstrap expectation (TBE) has been recently suggested as an alternative to FBP. TBE is measured using a continuous transfer index in [0,1] for each bootstrap tree, instead of the binary {0,1} index used in FBP to measure the presence/absence of the branch of interest. TBE has been shown to yield higher and more informative supports while inducing a very low number of falsely supported branches. Nonetheless, it has been argued that TBE must be used with care due to sampling issues, especially in datasets with a high number of closely related taxa. In this study, we conduct multiple experiments by varying taxon sampling and comparing FBP and TBE support values on different phylogenetic depths, using empirical datasets. Our results show that the main critique of TBE stands in extreme cases with shallow branches and highly unbalanced sampling among clades, but that TBE is still robust in most cases, while FBP is inescapably negatively impacted by high taxon sampling. We suggest guidelines and good practices in TBE (and FBP) computing and interpretation.
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