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896 results for “distributional ranges”
Figure 1. - A in Integrating multiple lines of evidence to better understand the evolutionary divergence of humpback dolphins along their entire distribution range: a new dolphin species in Australian waters?
Figure 1. - A: Diplodus omanensis, 310 mm SL; B: Pagellus affinis, 183 mm SL. Both species were purchased at the West Wharf Fish Harbour, Karachi, Pakistan, 26 May 2012.
Figure 2. - K2P in Range extension of Gerres infasciatus (Perciformes: Gerreidae) from the Red Sea and the Arabian Gulf, with distributional implications for the G. filamentosus complex
Figure 2. - K2P distance neighbouring-joining tree of COI sequences (615 bp) of gerreid species in the Gerres filamentosus complex; G. oyena used as outgroup.
Figure 1. - Gerres filamentosus complex. A in Range extension of Gerres infasciatus (Perciformes: Gerreidae) from the Red Sea and the Arabian Gulf, with distributional implications for the G. filamentosus complex
Figure 1. - Gerres filamentosus complex. A: Gerres infasciatus. SMF 35412, 99.5 mm SL, off Jizan, Saudi Arabia, Red Sea; B: G. microphthalmus, NSMT-P 45901, holotype, female, 189 mm SL, Kyushu, Japan; C: G. macracanthus, SMF 35037, 98 mm SL, off Jizan, Saudi Arabia, Red Sea; D: G. filamentosus, KAUMI 12250, 139 mm SL, off Sabah, Borneo Island, Malaysia. Photographs (A, C) were taken by S.V. Bogorodsky and (D) by M. Matsunuma.
Fig. 3 in Gastrointestinal parasite diversity of South American camelids (Artiodactyla: Camelidae): First review throughout the native range of distribution
Fig. 3. Parasitic richness of South American camelid throught the native distribution range based on data available to date.
Fig. 2. A in Prevalence and geographic distribution of Babesia conradae and detection of Babesia vogeli in free-ranging California coyotes (Canis latrans)
Fig. 2. A) PCR positivity (indicated by color) of coyotes (Canis latrans) carcasses recovered (▴) in each county between 2015 and 2019. B) Map of southern California including Los Angeles, Orange, Ventura, San Bernardino, Riverside, and San Diego counties showing B. conradae PCR positivity (indicated by color) in each city where coyote carcasses were recovered. The number of coyotes sampled at each location is indicated by the size of the circle.
Fig. 3 in Prevalence and geographic distribution of Babesia conradae and detection of Babesia vogeli in free-ranging California coyotes (Canis latrans)
Fig. 3. Maximum likelihood phylogenetic tree of Babesia positive coyotes (Canis latrans) collected in California from 2015 to 2019 with 7 different published reference sequences from other Babesia species for comparison. Scale bar represents percent of genetic variation along tree branches. Labels include coyote ID and location found. Alphanumeric values in parenthesis denote published GenBank sequence. Clades in <60% of bootstraps are collapsed.
Fig. 2 in Gastrointestinal parasite diversity of South American camelids (Artiodactyla: Camelidae): First review throughout the native range of distribution
Fig. 2. Geographical location of the documents compiled in the present review (red dots). (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 Prevalence and geographic distribution of Babesia conradae and detection of Babesia vogeli in free-ranging California coyotes (Canis latrans)
Fig. 1. Base pair differences in a 70 base pair region of the 18S gene from Babesia conradae DNA sequences isolated from California coyotes (Canis latrans) splenic samples collected between 2015 and 2019 compared to published sequence available in GenBank.
Fig. 2 in An extended range of the multituberculate Kryptobaatar and distribution of mammals in the Upper Cretaceous of the Gobi Desert
Fig. 2. Comparison of teeth in Kryptobaatar dashzevegi. A. PM 120/108, Hermiin Tsav I, Gobi Desert, Mongolia; upper incisors (A1), right P1−P3 (A2), left P2, P3 (A3), left M1, M2 (A4). B. Right M2, ZPALMgM−I/52, Djadokhta Formation, Bayan Zag. C. Right M1 and M2, ZPALMgM−I/8, Djadokhta Formation, Bayan Zag. All SEM micrographs in occlusal view. M1 in A4 appears narrower than it originally was because of break of the middle cusps in outer row and outer margin.
Linked collectors and determiners for: Small range distributions in the high Andes: two new species of Liaghinella (Hemiptera: Heteroptera: Reduviidae: Emesinae) from Colombia.
Natural history specimen data linked to collectors and determiners held within, "Small range distributions in the high Andes: two new species of Liaghinella (Hemiptera: Heteroptera: Reduviidae: Emesinae) from Colombia". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/6a00d899-3a3b-499f-a2d1-92fb0d526eea">https://bionomia.net/dataset/6a00d899-3a3b-499f-a2d1-92fb0d526eea</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/6a00d899-3a3b-499f-a2d1-92fb0d526eea">https://gbif.org/dataset/6a00d899-3a3b-499f-a2d1-92fb0d526eea</a>. Formatted as a Frictionless Data package.
Linked collectors and determiners for: New Zealand forest-dwelling skinks of the Oligosoma oliveri (McCann) species-complex (Reptilia: Scincidae): reinstatement of O. pachysomaticum (Robb) and an assessment of historical distribution ranges.
Natural history specimen data linked to collectors and determiners held within, "New Zealand forest-dwelling skinks of the Oligosoma oliveri (McCann) species-complex (Reptilia: Scincidae): reinstatement of O. pachysomaticum (Robb) and an assessment of historical distribution ranges". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/62d23c6d-47a2-45b2-b066-f60dac27e9e1">https://bionomia.net/dataset/62d23c6d-47a2-45b2-b066-f60dac27e9e1</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/62d23c6d-47a2-45b2-b066-f60dac27e9e1">https://gbif.org/dataset/62d23c6d-47a2-45b2-b066-f60dac27e9e1</a>. Formatted as a Frictionless Data package.
Fig. 2 in Distribution range and extinction risk of tree snail subgenus Amphidromus (Pulmonata: Camaenidae) in Thailand
Fig. 2. Locations of Amphidromus (Amphidromus) records from literature. Open circles show reported locations of Amphidromus.
Fig. 3 in Distribution range and extinction risk of tree snail subgenus Amphidromus (Pulmonata: Camaenidae) in Thailand
Fig. 3. Species distribution models of five Amphidromus subspecies. Darker colors represent higher probabilities of suitable habitat. Upper and lower rows are probabilities of suitable habitat in years 2000 and 2050, respectively. A and F are models of A. (A.) atricallosus atricallosus. B and G are models of A. (A.) atricallosus leucoxanthus. C and H are models of A. (A.) givenchyi. D and I are models of A. (A.) inversus annamiticus. E and J are models of A. (A.) schomburgki dextrochlorus.
Fig. 1 in Distribution range and extinction risk of tree snail subgenus Amphidromus (Pulmonata: Camaenidae) in Thailand
Fig. 1. Tree snails in subgenus Amphidromus. A, Amphidromus (Amphidromus) atricallosus atricallosus; B, A. (A.) atricallosus leucoxanthus; C, A. (A.) givenchyi; D, A. (A.) inversus annamiticus; E, A. (A.) schomburgki dextrochlorus; F, A. (A.) schomburgki schomburgki.
Text-fig. 4. Lithostratigraphy of the BCB and standard ammonite zonation in relation to Schloenbachia lymensis occurrence. a. Plaňany. b. Slaný. Dashed lines indicate chronostratigraphic ranges of marine strata in both localities. For detailed litho- and biostratigraphy of the Pecínov Member see Košťák et al. (2018). in Taxonomy And Stratigraphic Distribution Of The Ammonite Schloenbachia Neumayr, 1875 From The Bohemian Cretaceous Basin
Text-fig. 4. Lithostratigraphy of the BCB and standard ammonite zonation in relation to Schloenbachia lymensis occurrence. a. Plaňany. b. Slaný. Dashed lines indicate chronostratigraphic ranges of marine strata in both localities. For detailed litho- and biostratigraphy of the Pecínov Member see Košťák et al. (2018).
Spatial distribution of Mesozoic deposits and their temperature ranges within the Weser-Wiehengebirge Syncline of the inverted Lower Saxony Basin, Minden area, Germany
<p>This repository contains the supplementary material for the publication "Spatial distribution of Mesozoic deposits and their temperature ranges within the Weser-Wiehengebirge Syncline of the inverted Lower Saxony Basin, Minden area, Germany" by Alexander Jüstel, Olga Knaub, Frank Strozyk, Gregor Bussmann, Florian Wellmann, Peter Kukla. <br> </p>
Fig. 2 in Distributional range of the South African maritime spider-egg parasitoid wasp, Echthrodesis lamorali (Hymenoptera: Platygastridae: Scelioninae)
Fig. 2. Distribution of Desis formidabilis, Amaurobioides africanus, Heliophanus villosus and Echthrodesis lamorali along the transect spanning Jacobsbaai to Kidds Beach, surveyed during this study in March 2012.
Fig. 3 in Distributional range of the South African maritime spider-egg parasitoid wasp, Echthrodesis lamorali (Hymenoptera: Platygastridae: Scelioninae)
Fig. 3. Distribution of Palpimanus capensis, Desis formidabilis, Amaurobioides africanus, Heliophanus villosus and Echthrodesis lamorali along the coastline surveyed during this study in November 2012 (a – Cape Peninsula; b – Entire survey area).
Fig. 4 in Distributional range of the South African maritime spider-egg parasitoid wasp, Echthrodesis lamorali (Hymenoptera: Platygastridae: Scelioninae)
Fig. 4. Locality in Summerstrand (33°58'47.892"S 25°39'31.0674"E) during (A) March 2012 and (B) November 2012, showing marked visual differences, with a great reduction in invertebrate covering of the intertidal rocks.
Fig. 5 in Distributional range of the South African maritime spider-egg parasitoid wasp, Echthrodesis lamorali (Hymenoptera: Platygastridae: Scelioninae)
Fig. 5. Main biogeographiƇal zones bordering the 6outh AfriƇan Ƈoast ƖBraƇkets: Regions in whiƇh the border between zones Ƈould fall; 6tippled arrows: Current direƇtion and name; Grey Textboxes: Zone name] (After Teske et al. 2011).
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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.