Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
1,790
datasets available to search
ShareScore release 0.9.0
Dataset results
1,790 results for “taxonomic status”
Fig. 8 in More than meets no eyes: Taxonomic status of a Liotyphlops Peters, 1881 (Serpentes: Anomalepididae) blindsnake from the Atlantic Rainforest
Fig. 8. Boxplots, scatterplots, histograms, density plots, and pairwise comparison of sexually dimorphic characters of external morphology in males (M, purple) and females (F, orange) of Liotyphlops beui. Outliers are indicated as black circles. Pearson correlation (Corr) values: * = 0.05; ** = 0.01; *** = 0.001.
Fig. 13 in More than meets no eyes: Taxonomic status of a Liotyphlops Peters, 1881 (Serpentes: Anomalepididae) blindsnake from the Atlantic Rainforest
Fig. 13. Species of Liotyphlops from the Atlantic Rainforest. A) Liotyphlops beui from Trˆes Passos, Rio Grande do Sul, Brazil (IBSP 92768); B) L. beui from same previous locality (unvouchered); C) Liotyphlops ternetzii from Itiquira, Mato Grosso, Brazil (UFRGS 6458); D) Liotyphlops wilderi from Itapebi, Bahia, Brazil (MNRJ 15657); E) Liotyphlops caissara from Ilha Anchieta, S˜ao Paulo, Brazil (IBSP 89927); F) Liotyphlops trefauti from Traipu, Alagoas, Brazil (MUFAL 9424). Photograph credits: Arthur Abegg (A, B, E), M´arcio Borges-Martins (C), Marco Antonio de Freitas (D), Ubiratan Gonçalves (F).
Fig. 7 in More than meets no eyes: Taxonomic status of a Liotyphlops Peters, 1881 (Serpentes: Anomalepididae) blindsnake from the Atlantic Rainforest
Fig. 7. Morphological variation of Liotyphlops beui. A-B) Adult female topotype (IBSP 90395) from Instituto Butantan, S˜ao Paulo, S˜ao Paulo state, Brazil; C-D) Adult female (IBSP 78648) from S˜ao Paulo, S˜ao Paulo state, Brazil; E-F) Adult male (IBSP 79486) from Carapicuíba, S˜ao Paulo state, Brazil. Collection tag = 50 mm. Photograph credits: Bruno Rocha.
Fig. 6 in More than meets no eyes: Taxonomic status of a Liotyphlops Peters, 1881 (Serpentes: Anomalepididae) blindsnake from the Atlantic Rainforest
Fig. 6. Specimens of Liotyphlops from Passos Maia, Santa Catarina state, southern Brazil. A) Dorsal and ventral views of UFRGS 6274, juvenile female holotype of Liotyphlops sousai; B) Dorsal and ventral views of UFRGS 6275, juvenile male identified as Liotyphlops beui by Santos and Reis (2018). Scale bar = 5 mm.
Fig. 5 in More than meets no eyes: Taxonomic status of a Liotyphlops Peters, 1881 (Serpentes: Anomalepididae) blindsnake from the Atlantic Rainforest
Fig. 5. Head scalation of Liotyphlops beui (A, MCZ-R 17842, paratype) from Instituto Butantan, S˜ao Paulo, S˜ao Paulo state, southeastern Brazil, and Liotyphlops sousai (B, UFRGS 6274, holotype), from Passos Maia, Santa Catarina state, southern Brazil.
Fig. 9 in More than meets no eyes: Taxonomic status of a Liotyphlops Peters, 1881 (Serpentes: Anomalepididae) blindsnake from the Atlantic Rainforest
Fig. 9. Geographic distribution of Operational Taxonomic Units (OTUs) delimited based on Liotyphlops from the Atlantic Rainforest biome (purple), in South America. SP01: Liotyphlops beui from the Atlantic Forest of southeastern Brazil; SP02: Liotyphlops caissara from lowland Atlantic Rainforest of coastal southeastern Brazil; SP03: Liotyphlops sousai from the Atlantic Forest of southern Brazil, considered herein a synonym of L. beui; SP04: Liotyphlops ternetzii from the Cerrado of Brazil and Paraguay; SP05: Liotyphlops trefauti from the Atlantic Rainforest of northeastern Brazil; SP06: Liotyphlops wilderi from montane Atlantic Rainforest of southeastern Brazil. Filled symbols represent type localities and dots represent examined specimens. Literature records are indicated with hollow symbols and follow Dixon and Kofron (1983), Nogueira et al. (2019).
Fig. 3. Phylogenetic inferences and uncorrected p in More than meets no eyes: Taxonomic status of a Liotyphlops Peters, 1881 (Serpentes: Anomalepididae) blindsnake from the Atlantic Rainforest
Fig. 3. Phylogenetic inferences and uncorrected p-distances for Scolecophidia terminals, based on the small subunit ribosomal RNA (16S rRNA) gene fragment. A) Maximum likelihood (RAxML) phylogenetic tree inference and geographic distribution of evaluated samples (white circles = L. beui literature records; black and white circles = L. beui examined records); B) Pairwise uncorrected p-distances for Scolecophidia terminals.
Fig. 2 in More than meets no eyes: Taxonomic status of a Liotyphlops Peters, 1881 (Serpentes: Anomalepididae) blindsnake from the Atlantic Rainforest
Fig. 2. Principal Component Analysis (PCA) for females (left) and males (right) of the six OTUs analyzed in this work.
Fig. 1 in More than meets no eyes: Taxonomic status of a Liotyphlops Peters, 1881 (Serpentes: Anomalepididae) blindsnake from the Atlantic Rainforest
Fig. 1. Operational Taxonomic Units (OTUs) and Ecological Niche Models delimited based on Liotyphlops from the Atlantic Rainforest biome in South America. A) SP01, based on topotypical specimens and an additional series of Liotyphlops beui from the Atlantic Forest of southeastern Brazil; B) SP02, based on specimens of Liotyphlops caissara from lowland Atlantic Rainforest of coastal southeastern Brazil; C) SP03, based on the holotype of Liotyphlops sousai from the Atlantic Forest of southern Brazil; D) SP04, based on the holotype and an additional specimen of Liotyphlops ternetzii from the Cerrado of Brazil and Paraguay; E) SP05, based on the holotype of Liotyphlops trefauti from the Atlantic Rainforest of northeastern Brazil; F) SP06, based on a specimen of Liotyphlops wilderi from montane Atlantic Rainforest of southeastern Brazil.
Fig. 12 in More than meets no eyes: Taxonomic status of a Liotyphlops Peters, 1881 (Serpentes: Anomalepididae) blindsnake from the Atlantic Rainforest
Fig. 12. Lateral (A), medial (B), dorsal (C), and ventral (D) views of the lower jaw of Liotyphlops beui (MCZ 17842, paratype) based on μCT imagery. Different skull elements are digitally colored to improve visualization. Abbreviations: CB = compound bone; CO = coronoid; D = dentary; RP = retroarticular process of compound bone; SP = splenial. Scale bar = 1 mm.
FIGURE 2 in Garra hexagonarostris, a new labeonine fish (Teleostei: Cyprinidae) from the Chindwin basin, Manipur, Northeast India, and a critical review on the taxonomic status of G. minimus, G. alticaputus, G. nigricauda, G. kimini, and G. tyao
FIGURE 2. Garra hexagonarostris, holotype, morphology of snout showing transverse lobe, proboscis, and lateral surface.
FIGURE 1 in Garra hexagonarostris, a new labeonine fish (Teleostei: Cyprinidae) from the Chindwin basin, Manipur, Northeast India, and a critical review on the taxonomic status of G. minimus, G. alticaputus, G. nigricauda, G. kimini, and G. tyao
FIGURE 1. Garra hexagonarostris, sp. nov., holotype, MUMF 31001, 133.9 mm SL; a. lateral, b. dorsal, and c. ventral views. India: Manipur, Chakpi River.
FIGURE 1 in Contributions to Odontogryllini (Orthoptera: Gryllidae: Landrevinae) with comments on its taxonomic status and description of a new species of Xulavuna de Mello & Campos, 2014
FIGURE 1. Xulavuna krenakore sp. nov. male. Habitus A) lateral and B) dorsal; C) frons; D) sternum; E–F) dorsal view of head and thorax; G) metanotal gland.
FIGURE 4 in Contributions to Odontogryllini (Orthoptera: Gryllidae: Landrevinae) with comments on its taxonomic status and description of a new species of Xulavuna de Mello & Campos, 2014
FIGURE 4. Xulavuna krenakore sp. nov. female. Habitus A) lateral and B) dorsal; C) dorsal view of head and thorax; ovipositor in D) dorsal and E) lateral views.
FIGURE 3 in Contributions to Odontogryllini (Orthoptera: Gryllidae: Landrevinae) with comments on its taxonomic status and description of a new species of Xulavuna de Mello & Campos, 2014
FIGURE 3. Xulavuna krenakore sp. nov. male. Phallic complex in A) axial, B) dorsal, C) lateral, and D) ventral views; terminalia in E) dorsal, F) lateral, and G) ventral views. Abbreviations. Arc, ectophallic arc; Ect.A, ectophallic apodemes; Ect. f, ectophallic fold; Ps.P, pseudepiphallic parameres; Ps.S, pseudepiphallic sclerite; R, rami.
FIGURE 2 in Contributions to Odontogryllini (Orthoptera: Gryllidae: Landrevinae) with comments on its taxonomic status and description of a new species of Xulavuna de Mello & Campos, 2014
FIGURE 2. Xulavuna krenakore sp. nov. Inner (A, C, E) and outer (B, D, F) views of fore (A–B), mid (C–D), and hind legs (E–F), respectively; G) maxillary palpi, outer view; tegmina in H) dorsal and I) ventral views; details of tegminal gland in J) dorsal and K) ventral views.
FIGURE 5 in Contributions to Odontogryllini (Orthoptera: Gryllidae: Landrevinae) with comments on its taxonomic status and description of a new species of Xulavuna de Mello & Campos, 2014
FIGURE 5. Xulavuna krenakore sp. nov. female. Copulatory papilla in A) dorsal, B) ventral, and C) lateral views; D) tegmina; terminalia in E) dorsal, F) lateral, and G) ventral views.
FIGURE 2 in On the taxonomic status of the Siberian Chiffchaff Phylloscopus [collybita] tristis (Phylloscopidae)
FIGURE 2. Distribution of the Common Chiffchaff, including P. collybita collybita, abietinus, caucasicus, menzbieri and brevirostris, with orange indicating breeding and yellow wintering ranges. Distribution of the Siberian Chiffchaff P. [c.] tristis, with purple indicating breeding and blue wintering ranges. The narrow (10km wide) contact zone between P. c. abietinus and P. [c.] tristis in the western Ural foothills is broadly located at the overlap between Common Chiffchaff and Siberian Chiffchaff distributions. The identity of populations wintering in the Middle East is unclear (Shirihai & Svensson 2018; Raković et al. 2019).
FIGURE 1 in On the taxonomic status of the Siberian Chiffchaff Phylloscopus [collybita] tristis (Phylloscopidae)
FIGURE 1. Sonagrams of typical songs and calls recordings retrieved from xeno-canto.org. A) Phylloscopus collybita (abietinus) song (XC718643; Pärnu, Estonia, Uku Paal); B) Phylloscopus c. (abietinus) calls (XC147829; Cheboksary, Russian Federation, Albert Lastukhin); C) Phylloscopus [c.] tristis song (XC486704; Parfenovka, Russian Federation, Stanislas Wroza); D) Phylloscopus [c.] tristis calls (XC750898; Novosibirsk, Russian Federation, Geoff Carey).
FIGURE 7 in Reexamination of the taxonomic status of Coladenia agni (de Nicéville, [1884]) from Hainan, China reveals a new subspecies (Lepidoptera, Hesperiidae)
FIGURE 7. Phylogeny of Coladenia agni from different localities. A: hypothetical tree constructed by morphological and distributional traits. B: phylogeny inferred from ML analysis of COI with bootstrap support values (SH-aLRT support/ultrafast bootstrap support). The Indo-Chinese C. agni from Hainan is highlighted in red and that from the mainland is in yellow.
ScienceDex guides
Understand access before you commit
These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.