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1,473 results for “geographic distribution”
Figure 1. Collection localities for Turkish hares and 5 in The taxonomic status and geographic distribution of the European hare (Lepus europaeus Pallas, 1778) in Turkey (Mammalia: Lagomorpha)
Figure 1. Collection localities for Turkish hares and 5 regional populations according to physiography/orography of the study area (□: Thracian population, Δ: Southwest Anatolian population, ●: Central and East-Central Anatolian population, ○: Southeast Anatolian population, ×: Northeast Anatolian population).
Text-fig. 1. The geographic position of the localities mentioned in the text. A – position within the Czech Republic. B – Detailed map of the area. Subsilesian Unit: 1 – Kelč, 2 – Špičky, 3 – Horní Těšice; Silesian Unit: 4 – Loučka, 5 – Osíčko, 6 – Rožnov pod Radhoštěm; Ždánice Unit: 7 – Bohuslavice, 8 – Jestřabice, 9 – Kožušice, 10 – Křepice, 11 – Litenčice, 12 – Mouchnice, 13 – Nikolčice, 14 – Nítkovice, 15 – Nosislav, 16 – Židlochovice. The distribution of the units according to Čtyřoký and Stráník (1995). C – map of the Osíčko vicinity with distribution of the Silesian Unit sediments (gray spots) and collecting points (P1 and P2). The distribution of the Silesian Unit sediments according to Stráník (1999). in An Annotated List Of The Oligocene Fish Fauna From The Osíčko Locality (Menilitic Fm.; Moravia, The Czech Republic)
Text-fig. 1. The geographic position of the localities mentioned in the text. A – position within the Czech Republic. B – Detailed map of the area. Subsilesian Unit: 1 – Kelč, 2 – Špičky, 3 – Horní Těšice; Silesian Unit: 4 – Loučka, 5 – Osíčko, 6 – Rožnov pod Radhoštěm; Ždánice Unit: 7 – Bohuslavice, 8 – Jestřabice, 9 – Kožušice, 10 – Křepice, 11 – Litenčice, 12 – Mouchnice, 13 – Nikolčice, 14 – Nítkovice, 15 – Nosislav, 16 – Židlochovice. The distribution of the units according to Čtyřoký and Stráník (1995). C – map of the Osíčko vicinity with distribution of the Silesian Unit sediments (gray spots) and collecting points (P1 and P2). The distribution of the Silesian Unit sediments according to Stráník (1999).
Text-fig. 4. Palaeogeographical reconstruction of the Katian (after Popov et al. 2011, modified) showing geographical distribution of the Middle and Late Ordovician craniides and craniopsides. White arrow = Boda Event expansion of craniiates and craniopsides to Perunica; black arrow = Hirnantian low-latitude expansion of the Hirnantia Fauna. in Lingulate And Craniate Brachiopods From The Top Of The Králův Dvůr Formation (Latest Katian) And Their Contribution To Palaeogeography
Text-fig. 4. Palaeogeographical reconstruction of the Katian (after Popov et al. 2011, modified) showing geographical distribution of the Middle and Late Ordovician craniides and craniopsides. White arrow = Boda Event expansion of craniiates and craniopsides to Perunica; black arrow = Hirnantian low-latitude expansion of the Hirnantia Fauna.
Figure 17-24. Gastrosericus rothneyi Cameron, male. 17 in On the geographic distribution of Gastrosericus Spinola, 1839 (Hymenoptera: Crabronidae) in India
Figure 17-24. Gastrosericus rothneyi Cameron, male. 17, Habitus, lateral view; 18, Habitus, dorsal view; 19, Head, frontal view; 20, Clypeus; 21, Head & thorax, dorsal view; 22, Thorax, dorsal view; 23, Antennae; 24, Gaster.
Figure 1 in Atillum André, 1903 (Hymenoptera: Mutillidae) in Brazil: current and new geographic distribution records
Figure 1. Atillum bucephalum (Perty, 1833). A. Habitus lateral. B. Habitus dorsal. Photos: K. A. Williams. / A. Hábito lateral. B. Hábito dorsal. Fotos: K. A. Williams.
Fig. 5 in Fossil freshwater sponges: Taxonomy, geographic distribution, and critical review
Fig. 5. Morphology of gemmuloscleres of Recent freshwater sponges of the order Spongillida. A. Cherokeesia armata Copeland, Pronzato, and Manconi, 2015, Nearctic Region, bean-like to ovoid strongyles. B. Potamophloios stendelli (Jaffé, 1916), Afrotropical Region, elongate to ovular strongyles. C. Oncosclera jewelli (Volkmer-Ribeiro, 1963), Neotropical Region, irregularly ovoid strongyles smooth or covered with short spines and tubercles. D. Corvospongilla loricata (Weltner, 1895), Afrotropical Region, slightly curved, stout, spiny strongyles. E. Sanidastra yokotonensis Volkmer-Ribeiro and Watanabe, 1983, Palaearctic Region, oxeas with 2–9 rays rounded to pointed or tricuspidate at tips. F. Spongilla lacustris (Linnaeus, 1759), NearcticPalaearctic Region, oxeas strongly bent with large spines. G. Pectispongilla aurea Annandale, 1909, Oriental Region, botryoidal gemmuloscleres with smooth shaft with at the apex polygonal concavities of the botryum. H. Anheteromeyenia argyrosperma (Potts, 1880), Nearctic Region, birotules with spiny shafts and circular rotules with crenulated to indented margins. I. Corvomeyenia everetti (Mills, 1884), Nearctic Region, pseudobirotules with straight, smooth shafts and pseudo-rotules at the apex (up to 10 hooks). J. Acalle recurvata (Bowerbank, 1863), Neotropical Region, pseudobirotules with cylindrical shaft and hooks of umbonate pseudorotules stout and notably recurved bearing microspines at their apices. K. Dosilia plumosa (Carter, 1849), Oriental Region, birotules with large spines on the straight shaft and flat to slightly umbonate rotules with margins bearing small blunt, recurved teeth (spines). L. Racekiela ryderi (Potts, 1882), Nearctic-Neotropical-Palaearctic Region, birotules with smooth shafts and large disk-like rotules with serrated margins and scattered spines or tubercles. M. Ephydatia muelleri (Lieberkühn, 1855), Afrotropical-Nearctic-Palaearctic Region, birotules with smooth, short shaft and rotules with indented margins. N. Trochospongilla horrida (Weltner, 1893), Nearctic-Palaearctic Region, birotules with smooth, short shaft and approximately circular rotules with irregularly thickened margins. O. Acalle recurvata (Bowerbank, 1863), Neotropical Region, tubelliform gemmuloscleres with the proximal large irregularly circular flat rotule with entire margin supporting a smooth shaft decreasing in thickness toward the distal end shaped as umbonate knob-like rotule with a few teeth. P. Drulia browni (Bowerbank, 1863), Neotropical Region, parmuliform gemmuloscleres with the single circular proximal rotule, with lower concave surface, supporting a distal short acute conical stem (shaft). SEM images. Modified from Manconi and Pronzato (2001, 2002) and Copeland et al. (2015).
Linked collectors and determiners for: Geographic distribution of lizards (genus Plestiodon) and hummingbirds endemics of México (Distribución geográfica de lagartijas (género Plestiodon) y colibríes endémicos de México).
Natural history specimen data linked to collectors and determiners held within, "Geographic distribution of lizards (genus Plestiodon) and hummingbirds endemics of México (Distribución geográfica de lagartijas (género Plestiodon) y colibríes endémicos de México)". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/6ef46ac2-8d5d-4a5b-a4f8-ea055d0e745d">https://bionomia.net/dataset/6ef46ac2-8d5d-4a5b-a4f8-ea055d0e745d</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/6ef46ac2-8d5d-4a5b-a4f8-ea055d0e745d">https://gbif.org/dataset/6ef46ac2-8d5d-4a5b-a4f8-ea055d0e745d</a>. Formatted as a Frictionless Data package.
FIG. 2. — Gieysztoria reta n in A new species of Gieysztoria Ruebush & Hayes, 1939 (Platyhelminthes, Rhabdocoela, Dalyelliidae) from Argentina with comments on geographical distribution of the genus in the Neotropical region
FIG. 2. — Gieysztoria reta n. sp.: A, C, D, specimens viewed under compound microscope: A, living specimen whole mount; B, fixed specimen viewed under a phase contrast light microscope; C, detail of seminal vesicle, prostate vesicle and additional glands; D, detail of stylet. Abbreviations: ag, accessory glands; cb, copulatory bursa; e, egg; ey, eye; f, fenestra; i, intestine; ph, pharynx; pp, prepharyngeal cavity; pv, prostate vesicle; st, stylet; sv, seminal vesicle; s1, largest spine; s2, large spine; s3, group of fine short spines; s4, group of shorter hollow spines; t, testes; ub, uterus bend; vi, vitellaria. Scale bars: A, B, 100 μm; C, 50 μm; D, 20 μm.
FIGURES 61–62. Geographical distributions. 61. H. kellymilleri. 62. H in Taxonomy of water beetles in the genus Hydrochus Leach, 1817, from Bolivia, Brazil and Paraguay (Coleoptera: Hydrochidae)
FIGURES 61–62. Geographical distributions. 61. H. kellymilleri. 62. H. piroei.
FIGURES 65–66. Geographical distributions. 65. H. variabilis. 66. H in Taxonomy of water beetles in the genus Hydrochus Leach, 1817, from Bolivia, Brazil and Paraguay (Coleoptera: Hydrochidae)
FIGURES 65–66. Geographical distributions. 65. H. variabilis. 66. H. ducalis.
FIGURES 59–60. Geographical distributions. 59. Endemics and near endemics. 60. H in Taxonomy of water beetles in the genus Hydrochus Leach, 1817, from Bolivia, Brazil and Paraguay (Coleoptera: Hydrochidae)
FIGURES 59–60. Geographical distributions. 59. Endemics and near endemics. 60. H. formosus.
FIGURES 57–58. Geographical distributions. 57. Endemics and near endemics. 58. H in Taxonomy of water beetles in the genus Hydrochus Leach, 1817, from Bolivia, Brazil and Paraguay (Coleoptera: Hydrochidae)
FIGURES 57–58. Geographical distributions. 57. Endemics and near endemics. 58. H. bituberculatus.
FIGURES 67–68. Geographical distributions. 67. H. argutus species group. 68. H in Taxonomy of water beetles in the genus Hydrochus Leach, 1817, from Bolivia, Brazil and Paraguay (Coleoptera: Hydrochidae)
FIGURES 67–68. Geographical distributions. 67. H. argutus species group. 68. H. cracentis.
FIGURE 1 in Geographic distribution of Miridae in Minas Gerais State, Brazil (Hemiptera: Heteroptera)
FIGURE 1. Geographic distribution of Miridae species in Minas Gerais state, Brazil.
FIGURE 2 in Geographic distribution of Miridae in Minas Gerais State, Brazil (Hemiptera: Heteroptera)
FIGURE 2. Map of Brazil, showing Minas Gerais state and number of mirids species for each state.
FIGURE 4 in Emended description and geographical distribution of Sporisorium elegantis (Ustilaginaceae), a species shared between West Africa and India
FIGURE 4. The geographical distribution of Sporisorium elegantis.
Variation in leaf temperatures of tropical and subtropical trees are related to leaf thermoregulatory traits and not geographic distributions dataset
<p>To predict the effects of global warming on plants, previous studies have investigated how the distributions and physiological performances of plants relate to environmental temperatures. This approach implicitly assumes that leaf temperatures are tightly linked with regional air temperatures. However, the thermoregulatory behaviors and physical properties of leaves can differ greatly between species, leading to different plants having different leaf temperatures even when occurring under similar conditions. It is important to understand this variation in leaf thermoregulatory traits and temperatures in order to predict how individual species will be impacted by global warming. We measured the thermal properties of leaves from >50 tropical and subtropical tree species grown at the Gifford Arboretum (Florida, USA). For each species we measured maximum leaf temperature and rate of leaf warming using a new standardized protocol to control for both environmental variation and select plant thermoregulatory behaviors. We tested the relationships between the thermal variables and several leaf functional traits. Even under laboratory-controlled conditions, leaf temperatures varied by over 8.5<sup>o</sup>C amongst species. Maximum leaf temperature was positively correlated with leaf area and rate of leaf warming was negatively correlated with water content per leaf area. This suggests that some species may be able to offset rising air temperatures through acclimation or adaptation of leaf properties. Next, we tested the relationships between the species' leaf thermal properties and their climatic niches/distributions, but we found no significant associations. These results call into question the use of regional air temperatures to model plant physiological and demographic performance.</p>
Figure 1 in Stephonyx californiensis sp. nov. (Amphipoda: Lysianassoidea: Uristidae), a new bathyal scavenger species from the Central Gulf of California, Mexico, and comments on the bathymetric and geographic distribution of the Stephonyx species group
Figure 1. Map of western Mexico, East Pacific, showing the sampling locality.
FIGURE 7 in Morpho (Morpho) helenor (Cramer) (Lepidoptera, Nymphalidae, Morphinae) in Bolivia: Geographical distribution and ecological plasticity, with a description of a new subspecies
FIGURE 7. Specimens from Río Undumo (U) and from Rurrenabaque (R).
FIGURE 8 in Morpho (Morpho) helenor (Cramer) (Lepidoptera, Nymphalidae, Morphinae) in Bolivia: Geographical distribution and ecological plasticity, with a description of a new subspecies
FIGURE 8. Northeastern specimens with theodorus (a), intermediate (b) and coelestis (c) phenotypes.
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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.