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.
1,473
datasets available to search
ShareScore release 0.9.0
Dataset results
1,473 results for “Geographic distribution”
Figure 42-48. Gastrosericus waltlii Spinola, male. 42 in On the geographic distribution of Gastrosericus Spinola, 1839 (Hymenoptera: Crabronidae) in India
Figure 42-48. Gastrosericus waltlii Spinola, male. 42, Habitus, lateral view; 43, Head, dorsal view; 44, Head & thorax; 45, Clypesus; 46, Gaster, ventral view; 47, Propodeum, dorsal view; 48, Antennae.
Figure 25-33. Gastrosericus siamensis Tsuneki, female. 25 in On the geographic distribution of Gastrosericus Spinola, 1839 (Hymenoptera: Crabronidae) in India
Figure 25-33. Gastrosericus siamensis Tsuneki, female. 25, Habitus, lateral view; 26, Head, frontal view; 27, Clypeus; 28, Type, label; 29, Habitus, dorsalview; 30, Mesosoma; 32, Gaster; 33, Pygidium.
Figure 1-8. Gastrosericus moricei Saunders, female. 1 in On the geographic distribution of Gastrosericus Spinola, 1839 (Hymenoptera: Crabronidae) in India
Figure 1-8. Gastrosericus moricei Saunders, female. 1, Habitus, lateral view; 2, Habitus, dorsal view; 3, Head, frontal view; 4, Clypeus; 5, Head & thorax, dorsal view; 6, Antennae; 7, Gaster; 8, Pygidium.
Figure 34-41. Gastrosericus waltlii Spinola, female. 34 in On the geographic distribution of Gastrosericus Spinola, 1839 (Hymenoptera: Crabronidae) in India
Figure 34-41. Gastrosericus waltlii Spinola, female. 34, Habitus, lateral view; 35, Head, frontal view; 36, Clypesus; 37, Head & thorax, dorsal view; 38, Propodeum; 39, Forewing; 40, Gaster; 41, Pygidium.
Figure 9-16. Gastrosericus rothneyi Cameron, female. 9 in On the geographic distribution of Gastrosericus Spinola, 1839 (Hymenoptera: Crabronidae) in India
Figure 9-16. Gastrosericus rothneyi Cameron, female. 9, Habitus, lateral view; 10, Habitus, dorsal view; 11, Head, frontal view; 12, Clypeus; 13, Head & thorax, dorsal view; 14, Thorax, dorsal view; 15, Gaster; 16, Pygidium.
Text-fig. 1. The Czech Republic with the position of the Příbram-Jince Basin (A), distribution of Cambrian rocks of the Jince Formation in the Příbram-Jince Basin (B), geographic position of discussed localities (C), stratigraphic ranges of Condylopyge in the Jince Formation of the Příbram-Jince Basin (D). 1. foot of the slope known as Vinice near Jince (locality 15 in Fatka and Kordule 1992); lowermost levels of the Acadolenus snajdri Zone sensu Fatka and Szabad (2014). 2. locality Potůček near Rejkovice (= locality 12 in Fatka and Kordule 1992); lower levels of the Paradoxides (Eccaparadoxides) pusillus Zone sensu Fatka and Szabad (2014). Specimens CGS CW 17 and CGS FK 63. 3. foot of the slope known as Vinice near Jince (locality 20 in Fatka and Kordule 1992); lower levels of the Onymagnostus hybridus Biozone sensu Fatka and Szabad (2014). Specimen CGS CW 18. in Condylopyge Hawle Et Corda, 1847 In The Příbram-Jince Basin (Barrandian Area, The Czech Republic, Agnostida)
Text-fig. 1. The Czech Republic with the position of the Příbram-Jince Basin (A), distribution of Cambrian rocks of the Jince Formation in the Příbram-Jince Basin (B), geographic position of discussed localities (C), stratigraphic ranges of Condylopyge in the Jince Formation of the Příbram-Jince Basin (D). 1. foot of the slope known as Vinice near Jince (locality 15 in Fatka and Kordule 1992); lowermost levels of the Acadolenus snajdri Zone sensu Fatka and Szabad (2014). 2. locality Potůček near Rejkovice (= locality 12 in Fatka and Kordule 1992); lower levels of the Paradoxides (Eccaparadoxides) pusillus Zone sensu Fatka and Szabad (2014). Specimens CGS CW 17 and CGS FK 63. 3. foot of the slope known as Vinice near Jince (locality 20 in Fatka and Kordule 1992); lower levels of the Onymagnostus hybridus Biozone sensu Fatka and Szabad (2014). Specimen CGS CW 18.
Figure 2 in Atillum André, 1903 (Hymenoptera: Mutillidae) in Brazil: current and new geographic distribution records
Figure 2. Geographic distribution of Atillum André, 1903 in Brazil. Due to the lack of precise data on the origin of the material, A. rubriceps (Schrottky, 1902) was not added to the map. / Distribución geográfica de Atillum André, 1903 en Brasil. Debido a la falta de datos precisos sobre el origen del
Fig. 1 in Timeline and geographical distribution of Helicoverpa armigera (Hübner) (Lepidoptera, Noctuidae: Heliothinae) in Brazil
Fig. 1. PCR-RFLP agarose gel (1.5%) for COI amplification products (511 b) using BstZ17I endonuclease. Lane 1: 100 bp MW; lanes 2 and 5: undigested product of Helicoverpa zea (Londrina, PR); lanes 3 and 4: digestion product of Helicoverpa armigera (Londrina, PR); lane 6: digestion product of H. armigera; lanes 7–10: undigested product of H. zea (Planaltina, DF); lanes 11–15: digestion product of H. armigera (Luiz Eduardo Magalhães, BA); lanes 16–20: digestion product of H. armigera (Carambeí, PR); lanes 21 and 22: undigested product of H. zea (Arapoti, PR); lanes 23 and 24: digestion product of H. armigera (Sengés, PR); lanes 25–28: digestion product of H. armigera (Taquarituba, SP); lane 29: undigested product of H. zea (Taquarituba, SP); lane 30: 100 bp MW.
Figure 1 in Modeling the potential geographic distribution of the poorly known Neotropical lizard Anotosaura vanzolinia Dixon, 1974 (Squamata, Gymnophthalmidae) in Northeast Brazil
Figure 1. Specimens of Anotosaura vanzolinia. Total view (A) and close-up of the head (B) of the specimen (43 mm SVL, CHBEZ 2925) collected in Tenente Laurentino Cruz, state of Rio Grande do Norte, Brazil. (C) Specimen (ca. 52 mm SVL, MFCH 4399) from the new geographic record in Piauí State, Brazil. Photos A) and B) by Marcelo Kokubum; C) by Leonardo Ribeiro.
Figure 2 in Modeling the potential geographic distribution of the poorly known Neotropical lizard Anotosaura vanzolinia Dixon, 1974 (Squamata, Gymnophthalmidae) in Northeast Brazil
Figure 2. Known and potential distributions of Anotosaura vanzolinia in the Caatinga of Northeast Brazil: Bahia (BA), Alagoas (AL), Pernambuco (PE), Paraíba (PB), Rio Grande do Norte (RN), and Piauí (PI). See Table for explanation of the numbers. The area delimited in gray immediately above point 13 represents the Chapada do Araripe. Color scale indicates the environmental suitability predicted by the model, which ranges from 0 (blue) to 1 (red). The probability of occurrence of Anotosaura vanzolinia in two significant priority areas for the conservation are represented: A) Pedra Branca, Ceará State (high priority) and B) Pilão Arcado, Bahia and Piauí States (very high priority).
Figures 1-6. Lyela myops, males. 1, 3, 5, upperside. 2, 4, 6, underside. 1, 2, L. m in Distribution and geographical differentiation of the Central Asian endemic species Lyela myops (Staudinger, 1881) (Lepidoptera, Nymphalidae, Satyrinae)
Figures 1-6. Lyela myops, males. 1, 3, 5, upperside. 2, 4, 6, underside. 1, 2, L. m. tashkumirica, holotype, Kyrgyzstan, Jalal-Abad Region, near Tashkumir, 41.40°N, 72.24°E, 600 m, 3 May 1996, V.Lukhtanov leg., in ZISP. 3,4, L. m. myops, Kazakhstan, East Kazakhstan Region, Kurchum Range (SW extreme part), Arka-Aul Mts, 48.4311°N, 83.9792°E, 490m, 30 April 2019, V.A.Lukhtanov, in ZISP. 5,6, L. myops babatagi, Turkmenistan, Kugitang Mts, Svinzovy Rudnik, 1400 m, 28 April 1989, V.Lukhtanov leg., in ZISP.
Figure 13 in Distribution and geographical differentiation of the Central Asian endemic species Lyela myops (Staudinger, 1881) (Lepidoptera, Nymphalidae, Satyrinae)
Figure 13. Map of Kyrgyzstan showing the distribution of L. myops tashkumirica. Question marks indicate records whose subspecies identity need to be clarified.
Figures 7-12. Lyela myops, females. 7, 9, 11, upperside. 8, 10, 12, underside. 7, 8, L. m in Distribution and geographical differentiation of the Central Asian endemic species Lyela myops (Staudinger, 1881) (Lepidoptera, Nymphalidae, Satyrinae)
Figures 7-12. Lyela myops, females. 7, 9, 11, upperside. 8, 10, 12, underside. 7, 8, L. m. tashkumirica, paratype, Kyrgyzstan, Jalal-Abad Region, near Tashkumir, 41.40°N, 72.24°E, 600 m, 3 May 1996, V.Lukhtanov leg., in ZISP. 9, 10, L. m. myops, Kazakhstan, Jetisu Region (=Taldy-Kurgan Region), Koybyn Valley, 44.21449°N, 79.50230°E, 1048m, 30 April 2021, V.A.Lukhtanov leg., in ZISP. 11, 12, L. m. babatagi, Turkmenistan, Kugitang Mts, Svinzovy Rudnik, 1400 m, 28 April 1989, V.Lukhtanov leg., in ZISP.
Figure 1 in New records and extension of geographical distribution of Heterophallus echeagarayi (Poeciliidae) in the Usumacinta Province, Mexico
Figure 1. - Distribution of Heterophallus echeagarayi in the Usumacinta Province. Black circles = previous records by Espinosa-Pérez and DazaZepeda (2005) and Miller et al. (2005); white circles = new records.
Fig. 2 in Geographical and elevational distributions of the Black-breasted Leaf Turtle, Geoemyda spengleri (Gmelin, 1789) (Testudines: Geoemydidae)
Fig. 2. Relationship between elevation and latitude of reliable Geoemyda spengleri occurrences with low positional error (n = 33).
Fig. 1 in Geographical and elevational distributions of the Black-breasted Leaf Turtle, Geoemyda spengleri (Gmelin, 1789) (Testudines: Geoemydidae)
Fig. 1. Geographical distribution of Geoemyda spengleri based on hydrologic unit compartments (Level 10 HUCs). Positions of the reliable occurrences (n = 77) are approximate, as the coordinates were generalized by rounding (see text for details). Multiple symbols may overlap and appear as a single point. Not all localities are shown to protect particularly sensitive populations. Inset: Adult male Geoemyda spengleri from Guangxi Autonomous Region, China. Photo by Jeffrey E. Dawson.
Fig. 2 in Wide geographic distribution of overlooked parasites: Rare Microsporidia in Gammarus balcanicus, a species complex with a high rate of endemism
Fig. 2. Bayesian phylogenetic reconstruction of Microsporidia based on partial small ribosomal subunit rDNA alignment (Supplementary data 1). Labels in bold and in blue frames are parasites of Gammarus balcanicus found in the present study. These labels show the name of the parasite (in case of described species) or in the case of undescribed taxa the name consist of: M. sp (= Microsporidium sp.) followed by clade number sensu Vossbrinck and Debrunner-Vossbrinck (2005), MOTU, haplogroup number (e.g. b01, b02), then the country where it was found (two letter ISO code, see Table S1), the number of infected populations (=pop.), and the total number of infected individuals (=ind.). Labels with accession numbers are parasite sequences taken from GenBank. These labels show the accession number, the parasite name given in the associated publication, the order of the host (except for amphipod hosts where the family is provided). Microsporidia clade numbers are as in Vossbrinck and Debrunner-Vossbrinck (2005). Branches are collapsed for the two genera Nosema and Dictyocoela (triangle sizes not reflecting actual size). Abbreviation: PP, Bayesian posterior probability. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 1 in Wide geographic distribution of overlooked parasites: Rare Microsporidia in Gammarus balcanicus, a species complex with a high rate of endemism
Fig. 1. Gammarus balcanicus sampling sites. Sites are identified by black dots with numbers as in Table S1 (87). See Additional Table S1 for details (e.g. sampling sizes, GPS coordinates). Countries identified with ISO code. Map created by authors using Qgis 2.18.4 (QGIS Development Team 2009).
Fig. 3 in Wide geographic distribution of overlooked parasites: Rare Microsporidia in Gammarus balcanicus, a species complex with a high rate of endemism
Fig. 3. Geographic distribution of the main rare Microsporidia infecting Gammarus balcanicus, showing their occurrence in other gammarid species over Europe. Each map (A–H) refers to the parasite taxa presented in the bottom-right inset. The host and geographic range of the Microsporidia based on this study and 1) literature data: Terry et al. (2004); Wattier et al. (2007); Krebes et al. (2010); Ovcharenko et al. (2010); Bacela-Spychalska et al. (2012); Rode et al. (2013); Grabner et al., 2014; 2015; 2017; Bojko et al. (2015); 2017; 2018; Weigand et al. (2016); Quiles et al. (2019); 2) Gen Bank sequences: MT645708 (Chen,Y. and Jiang, H. direct submission); KP699690 (Bacela-Spychalska, K. direct submission) and 3) Bacela and Ovcharenko, unpublished data.
Fig. 22 in Fossil freshwater sponges: Taxonomy, geographic distribution, and critical review
Fig. 22. Spicular remains of Spongillidae. Miocene, Lacustrine deposit at Oviatt Creek, northern Idaho, USA. Megascleres (A–F, S, W–AB), microscleres (L–N), and gemmuloscleres (G–K, P–V), ascribed originally to several genera: Anheteromeyenia, Corvospongilla, Eunapius, Radiospongilla, Spongilla, Trochospongilla; X, originally enlarged × 1200, AB, originally enlarged × 700. O. Axial canal of a broken spicule, originally enlarged × 5300. G, O, P, SEM images. Modified from Williams (1985).
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.