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.
4,937
datasets available to search
ShareScore release 0.9.0
Dataset results
4,937 results for “Endemic species”
Figures 30-33 from: Patrick BH, Patrick HJH, Hoare RJB (2019) Review of the endemic New Zealand genus Arctesthes Meyrick (Lepidoptera, Geometridae, Larentiinae), with descriptions of two new range-restricted species. Alpine Entomology 3: 121-136. https://doi.org/10.3897/alpento.3.33944
Figures 30-33 Arctesthes spp., female genitalia (ventral view). 30)A.catapyrrha; 31)A.siris; 32)A.titanica paratype; 33)A.avatar paratype; (ds = ductus seminalis inception).
Figures 21-25 from: Patrick BH, Patrick HJH, Hoare RJB (2019) Review of the endemic New Zealand genus Arctesthes Meyrick (Lepidoptera, Geometridae, Larentiinae), with descriptions of two new range-restricted species. Alpine Entomology 3: 121-136. https://doi.org/10.3897/alpento.3.33944
Figures 21-25 Arctesthes spp., male abdomen and genitalia (ventral view unless otherwise indicated). 21)A.catapyrrha, male abdomen (unrolled); 22)A.catapyrrha, genital capsule; 23)A.catapyrrha, phallus; 24)A.siris, genital capsule; 25)A.siris, phallus.
Figures 18-20 from: Patrick BH, Patrick HJH, Hoare RJB (2019) Review of the endemic New Zealand genus Arctesthes Meyrick (Lepidoptera, Geometridae, Larentiinae), with descriptions of two new range-restricted species. Alpine Entomology 3: 121-136. https://doi.org/10.3897/alpento.3.33944
Figures 18-20 Arctesthes spp., live adults and larva. 18)A.catapyrrha, male; 19)A.avatar, female; 20)A.catapyrrha, larva.
Figures 1-6 from: Patrick BH, Patrick HJH, Hoare RJB (2019) Review of the endemic New Zealand genus Arctesthes Meyrick (Lepidoptera, Geometridae, Larentiinae), with descriptions of two new range-restricted species. Alpine Entomology 3: 121-136. https://doi.org/10.3897/alpento.3.33944
Figures 1-6 Arctesthescatapyrrha, uppersides. 1) Male, Yaldhurst MC; 2) Male, Harris Mts OL3) Male, [locality unknown]; 4) Female, Dunstan Range CO; 5) Female, Ben Lomond OL; 6) Female, Ben Lomond OL. Scale bars: 10 mm.
Figures 7-11 from: Patrick BH, Patrick HJH, Hoare RJB (2019) Review of the endemic New Zealand genus Arctesthes Meyrick (Lepidoptera, Geometridae, Larentiinae), with descriptions of two new range-restricted species. Alpine Entomology 3: 121-136. https://doi.org/10.3897/alpento.3.33944
Figures 7-11 Arctesthes spp., uppersides. 7)A.siris, male, Zero Gully, Waikaia River CO; 8)A.siris, female, Rock and Pillar Range CO; 9)A.titanica, male paratype, White Burn, Von River OL; 10)A.titanica, female paratype, White Burn, Von River OL; 11)A.titanica, female, Von River north branch OL. Scale bars: 10 mm.
Figures 12-17 from: Patrick BH, Patrick HJH, Hoare RJB (2019) Review of the endemic New Zealand genus Arctesthes Meyrick (Lepidoptera, Geometridae, Larentiinae), with descriptions of two new range-restricted species. Alpine Entomology 3: 121-136. https://doi.org/10.3897/alpento.3.33944
Figures 12-17 Arctesthes spp. 12)A.avatar, male paratype upperside, Denniston Plateau NN; 13)A.avatar, female upperside, Denniston Plateau NN; 14)A.catapyrrha, male underside, Yaldhurst MC; 15)A.siris, male underside, Zero Gully CO; 16)A.titanica, male paratype underside, White Burn OL; 17)A.avatar, male underside, Denniston Plateau NN. Scale bars: 10 mm.
FIGURE 6 in Uncovering karst endemism within Borneo: two new Cyrtodactylus species from Sarawak, Malaysia
FIGURE 6. Photograph of live paratype of Cyrtodactylus limajalur sp. nov. (CAS 262846).
Figure 3 from: Brunetti M, Magoga G, Iannella M, Biondi M, Montagna M (2019) Phylogeography and species distribution modelling of Cryptocephalus barii (Coleoptera: Chrysomelidae): is this alpine endemic species close to extinction? In: Schmitt M, Chaboo CS, Biondi M (Eds) Research on Chrysomelidae 8. ZooKeys 856: 3-25. https://doi.org/10.3897/zookeys.856.32462
Figure 3 Most likely migration model and altitudinal habitat maps reporting suitable area for the presence of the species during cold periods. A Most likely migration model. Arrows indicate unidirectional flows (in black) and bidirectional flows (in gray) between populations. B–F Suitable altitudinal habitat maps. In light grey are reported the areas suitable for the presence of the species above a certain altitudinal threshold; the yellow ellipses are schematic drawing of Cryptocephalusbarii populations; dendrograms showing the divergence events among populations, according to the tree in Fig. 1, are superimposed on the maps. At the bottom left of each map are reported: the minimum elevation at which climatic conditions are suitable for the presence of Cryptocephalusbarii (inferred from present knowledge) corresponding to the altitudinal threshold used to draw the suitable areas, and the corresponding estimates of temperature variation in respect to the present. Abbreviations: A.T. = altitudinal threshold; CON = Concarena; PRE = Presolana; ARE = Arera; ALB = Alben; GRI = Grigna; NGR = northern Grigna; SGR = southern Grigna; CG = Corna Grande; PEG = Pegherolo.
Figure 2 from: Brunetti M, Magoga G, Iannella M, Biondi M, Montagna M (2019) Phylogeography and species distribution modelling of Cryptocephalus barii (Coleoptera: Chrysomelidae): is this alpine endemic species close to extinction? In: Schmitt M, Chaboo CS, Biondi M (Eds) Research on Chrysomelidae 8. ZooKeys 856: 3-25. https://doi.org/10.3897/zookeys.856.32462
Figure 2 Maximum clade credibility tree and Minimum-spanning haplotype network. A Minimum-spanning haplotype network. Each colour represents a Cryptocephalusbarii population. Circles represent the different haplotypes; their diameter is proportional to the haplotypes abundance. B Maximum clade credibility tree. Horizontal blue bars represent 95% HPD age confidence intervals for the nodes. Under the main lineage nodes is reported the divergence time in thousands of years before present. Above the nodes Bayesian posterior probabilities > 0.8 are reported, black asterisks indicate Bayesian posterior probabilities values < 0.80. Vertical coloured bars on the right of the tree indicate monophyletic clades, the colours identify the C.barii populations. Under the tree, in blue, the estimated surface temperature for the last 800,000 years (Hansen et al. 2013).
Supplementary material 2 from: Brunetti M, Magoga G, Iannella M, Biondi M, Montagna M (2019) Phylogeography and species distribution modelling of Cryptocephalus barii (Coleoptera: Chrysomelidae): is this alpine endemic species close to extinction? In: Schmitt M, Chaboo CS, Biondi M (Eds) Research on Chrysomelidae 8. ZooKeys 856: 3-25. https://doi.org/10.3897/zookeys.856.32462
: Data type: statistical data
Figure 1 from: Brunetti M, Magoga G, Iannella M, Biondi M, Montagna M (2019) Phylogeography and species distribution modelling of Cryptocephalus barii (Coleoptera: Chrysomelidae): is this alpine endemic species close to extinction? In: Schmitt M, Chaboo CS, Biondi M (Eds) Research on Chrysomelidae 8. ZooKeys 856: 3-25. https://doi.org/10.3897/zookeys.856.32462
Figure 1 Cryptocephalusbarii Burlini, 1948 distribution. A) Geographic location of the Orobie Alps and Cryptocephalusbarii distribution. Yellow dots indicate localities where the species was observed, red dots indicate localities investigated with extensive sampling campaigns in which the species was absent (the source map was downloaded from http://www.geoportale.regione.lombardia.it/ and elaborated with QGIS 3.4.1). B) Cryptocephalusbarii picture acquired using a Canon 450D camera; the multilayered micrographs were processed with Zerene Stacker (Richland, WA, USA).
Figure 5 from: Brunetti M, Magoga G, Iannella M, Biondi M, Montagna M (2019) Phylogeography and species distribution modelling of Cryptocephalus barii (Coleoptera: Chrysomelidae): is this alpine endemic species close to extinction? In: Schmitt M, Chaboo CS, Biondi M (Eds) Research on Chrysomelidae 8. ZooKeys 856: 3-25. https://doi.org/10.3897/zookeys.856.32462
Figure 5 Changes in habitat suitability for Cryptocephalusbarii. Histogram reporting classes of habitat suitability calculated within the Minimum Convex Polygon built on Cryptocephalusbarii presence sites through Ensemble Modelling process. Areas calculated for current and future climatic conditions (2070, 4.5 and 8.5 scenarios) are reported, respectively, in green, orange and red.
Figure 4 from: Brunetti M, Magoga G, Iannella M, Biondi M, Montagna M (2019) Phylogeography and species distribution modelling of Cryptocephalus barii (Coleoptera: Chrysomelidae): is this alpine endemic species close to extinction? In: Schmitt M, Chaboo CS, Biondi M (Eds) Research on Chrysomelidae 8. ZooKeys 856: 3-25. https://doi.org/10.3897/zookeys.856.32462
Figure 4 Predicted suitability for Cryptocephalusbarii for current and future climatic conditions. Predicted suitability resulting from the Ensemble Modelling process performed over bioclimatic variables for Cryptocephalusbarii, with the Minimum Convex Polygon built on the species' presence sites for A current B 2070 – 4.5 scenario of radiative forcing, and C 2070 – 8.5 scenario of radiative forcing.
Supplementary material 1 from: Brunetti M, Magoga G, Iannella M, Biondi M, Montagna M (2019) Phylogeography and species distribution modelling of Cryptocephalus barii (Coleoptera: Chrysomelidae): is this alpine endemic species close to extinction? In: Schmitt M, Chaboo CS, Biondi M (Eds) Research on Chrysomelidae 8. ZooKeys 856: 3-25. https://doi.org/10.3897/zookeys.856.32462
: Data type: statistical model
Figure 3 from: Farias SQ, Medeiros D, Riina R (2019) A new species of dragon's blood Croton (Euphorbiaceae) endemic to the Serra dos Órgãos (Rio de Janeiro, Brazil). PhytoKeys 126: 13-24. https://doi.org/10.3897/phytokeys.126.35649
Figure 3 Map of Rio de Janeiro State showing the distribution of Crotonrizzinii (black circles). The inset map of Brazil on the left provides the context with the state of Rio de Janeiro highlighted in grey. ES = Espírito Santo, MG = Minas Gerais, RJ = Rio de Janeiro, SP = São Paulo.
Figure 2 from: Farias SQ, Medeiros D, Riina R (2019) A new species of dragon's blood Croton (Euphorbiaceae) endemic to the Serra dos Órgãos (Rio de Janeiro, Brazil). PhytoKeys 126: 13-24. https://doi.org/10.3897/phytokeys.126.35649
Figure 2 Images from herbarium specimens of Crotonrizzinii. A Flowering branch B inflorescence C indumentum on the adaxial surface of the lamina D indumentum on the abaxial surface of the lamina E detail of leaf showing the two acropetiolar glands F stipules G detail of a bract of a cymule with glands (colleters) at the base H mature pistillate flower I detail of the styles connate at the base J pistillate flower with ovary removed, showing disc and a gland at the base of one of the sepals K seed (ventral surface). (A, BS.Q. Farias 241C, D, GS.Q. Farias & J.L. Silva 239E, F, KS.Q. Farias & J.L. Silva 234; H, I, JS.Q. Farias & J.L. Silva 205, holotype).
Figure 1 from: Farias SQ, Medeiros D, Riina R (2019) A new species of dragon's blood Croton (Euphorbiaceae) endemic to the Serra dos Órgãos (Rio de Janeiro, Brazil). PhytoKeys 126: 13-24. https://doi.org/10.3897/phytokeys.126.35649
Figure 1 Crotonrizzinii. A Adult individual in hillside forest B young flowering branch C mature flowering branch D detail of a mature flowering branch E detail of laciniate-glandular stipules F young branch showing yellowish latex G detail of leaf showing acropetiolar glands H–K stages of development of pistillate flowers H top view of a young pistillate flower I young pistillate flower showing a maculate gland on the distal portion of the sepal J young pistillate flower K mature pistillate flower L fruit M inflorescence showing pistillate and staminate flowers N inflorescence showing fruits. (Photos by S.Q. Farias).
FIGURE 14 in Indo-West Pacific species of Trachinotus with spots on their sides as adults, with description of a new species endemic to the Marquesas Islands (Teleostei: Carangidae)
FIGURE 14. Original drawing of Russell's (1803) "botla parah," plate 142
FIGURE 12. Trachinotus botla, ANSP 148732, 343 in Indo-West Pacific species of Trachinotus with spots on their sides as adults, with description of a new species endemic to the Marquesas Islands (Teleostei: Carangidae)
FIGURE 12. Trachinotus botla, ANSP 148732, 343 mm FL, Sri Lanka. Drawn by Tracy D. Pedersen.
FIGURES 148 in Revision of the endemic Philippine Poeciloterpa Stål (Hemiptera: Cercopidae) with description of four new species
FIGURES 148. Distribution Map
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.