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Figs. 85–86. Bolivian localities. 85 in Three new species of non-biting moth flies (Diptera: Psychodidae: Psychodinae) from Bolivia, with notes on higher taxa of the subfamily
Figs. 85–86. Bolivian localities. 85 – Cieneguillas, type locality of Eurygarka freyrei sp. nov.; 86 – same, a detail of the habitat.
Figs. 1–3. Type locality for E in The Genus Eotrechus (Heteroptera: Gerridae) In Vietnam With Descriptions Of Two New Species
Figs. 1–3. Type locality for E. fansipan, new species, at a waterfall 17 km. northwest of Sa Pa, Vietnam. Both E. brevipes and E. fansipan, new species, occurred at this location. 1, general view of waterfall and surroundings, showing wet rheocrenes adjacent to the fall itself, on the left side of the photo, which provided habitat for E. fansipan, new species, and dry slopes to the right side of the photo, which provided habitat for E. brevipes. The senior author, standing to the right of the fall, provides scale; 2, lateral view of fall, showing dry bedrock faces in the foreground on which E. brevipes occurred; the photo was taken from near the position of the senior author in Fig. 1; 3, detail of E. brevipes habitat, showing clumps of vegetation scattered on open bedrock. Individuals of E. brevipes sheltered within the vegetation clumps.
Figs. 34–35. Socotran localities. 34 in A new species of the genus Gondwanoscurus, and two new records of non-biting moth flies (Diptera: Psychodidae: Psychodinae) from Socotra Island
Figs. 34–35. Socotran localities. 34 – Yemen, Socotra Island, Al Haghier Mts., Scant Mt., 1450 m a.s.l., 12°34.6′N 54°01.5′E, type locality of Gondwanoscurus socotrensis sp. nov. 35 – Yemen, Socotra Island, Al Haghier Mts., wadi Madar, 1180–1230 m a.s.l., 12°33.2′N 54°00.4′E, a detail of the habitat, a typical dry shrubby slopes, biotopes suitable for light trapping. Photos by J. Suchomel (November 2010).
FIG. 1. Locality and stratigraphic information. A in A new genus of Late Cretaceous angel shark (Elasmobranchii; Squatinidae), with comments on squatinid phylogeny
FIG. 1. Locality and stratigraphic information. A, location of Alabama within continental United States (no scale); B, location of Dallas County within Alabama (no scale); C, location (starred) of Harrell Station Paleontological Station (HSPS); D, general view of the HSPS site; E, Upper Cretaceous geologic section for western Alabama showing the approximate exposure level at HSPS (arrow).
FIG. 8 in Extraordinary Local Diversity of Disk-winged Bats (Thyropteridae: Thyroptera) in Northeastern Peru, with the Description of a New Species and Comments on Roosting Behavior
FIG. 8. Roost of Thyroptera wynneae in secondary growth at the Centro de Investigaciones Jenaro Herrera, Loreto, Peru. Two bats occupied the dark interior of this dead Cecropia leaf (arrows), which was hanging in understory vegetation by its petiole about 2 m above the ground. One specimen was captured in a butterfly net placed underneath the leaf, but the other bat escaped. Cecropia (Cecropiaceae) is a speciose genus of trees commonly found in secondary vegetation throughout the Neotropics, where hanging dead leaves like this one are abundant in the subcanopy and understory.
FIG. 4 in Extraordinary Local Diversity of Disk-winged Bats (Thyropteridae: Thyroptera) in Northeastern Peru, with the Description of a New Species and Comments on Roosting Behavior
FIG. 4. Dorsal views of the skulls of A, Thyroptera devivoi (ROM 35588♂); B, Thyroptera discifera (AMNH 16686♀); C, Thyroptera lavali (ROM 104026♀); D, Thyroptera tricolor (AMNH 273160♀); E, Thyroptera wynneae (CEBIOMAS 237♂, holotype). Scale bar = 5 mm.
FIG. 1 in Extraordinary Local Diversity of Disk-winged Bats (Thyropteridae: Thyroptera) in Northeastern Peru, with the Description of a New Species and Comments on Roosting Behavior
FIG. 1. Right oblique view of the head (A), right wrist with adhesive disk (B), and left hind limb (C) of the holotype of Thyroptera wynneae (CEBIOMAS 237). Note that due to the angle from which image (B) was taken, the adhesive disk on the thumb looks circular, but it is in fact oblong vertically. Photos: Burton Lim.
FIG. 2 in Extraordinary Local Diversity of Disk-winged Bats (Thyropteridae: Thyroptera) in Northeastern Peru, with the Description of a New Species and Comments on Roosting Behavior
FIG. 2. Dorsal (A) and ventral (B) views of the holotype of Thyroptera wynneae (CEBIOMAS 237). Photos: Burton Lim.
FIG. 6 in Extraordinary Local Diversity of Disk-winged Bats (Thyropteridae: Thyroptera) in Northeastern Peru, with the Description of a New Species and Comments on Roosting Behavior
FIG. 6. Lateral views of the skulls and lower jaw of A, Thyroptera devivoi (ROM 35588♂); B, Thyroptera discifera (AMNH 16686♀); C, Thyroptera lavali (ROM 104026♀); D, Thyroptera tricolor (AMNH 273160♀); E, Thyroptera wynneae (CEBIOMAS 237♂, holotype). Scale bar = 5 mm.
FIG. 7 in Extraordinary Local Diversity of Disk-winged Bats (Thyropteridae: Thyroptera) in Northeastern Peru, with the Description of a New Species and Comments on Roosting Behavior
FIG. 7. Results of principal components analysis, illustrating the dispersion of specimen scores for male Thyroptera devivoi (filled circles), Thyroptera discifera (open circles), Thyroptera lavali (open triangles), Thyroptera tricolor (asterisk), and Thyroptera wynneae (filled squares). See text for explanation and table 3 for factor loadings and other results.
FIG. 3 in Extraordinary Local Diversity of Disk-winged Bats (Thyropteridae: Thyroptera) in Northeastern Peru, with the Description of a New Species and Comments on Roosting Behavior
FIG. 3. The Yavarí-Ucayali interfluvial region (boundaries highlighted in grey) showing the type locality of Thyroptera wynneae (arrow) and adjacent localities where other thyropterid species have been collected. The inset shows where the paratypes were collected in southeastern Brazil. Numbers are keyed to entries in the gazetteer (appendix 2).
FIG. 10 in Extraordinary Local Diversity of Disk-winged Bats (Thyropteridae: Thyroptera) in Northeastern Peru, with the Description of a New Species and Comments on Roosting Behavior
FIG. 10. Roost of Thyroptera tricolor in the half-unrolled new leaf of a small Heliconia in primary forest at Paracou, French Guiana. The adhesive disks of the roosting bats are visible as dark spots through the translucent tissue of the leaf. The bats themselves (an adult male and three adult females) form a dark mass within their tubular shelter (arrow).
FIG. 9. Patricia J in Extraordinary Local Diversity of Disk-winged Bats (Thyropteridae: Thyroptera) in Northeastern Peru, with the Description of a New Species and Comments on Roosting Behavior
FIG. 9. Patricia J. Wynne at her microscope in the AMNH Department of Mammalogy. Patricia's first mammalogical illustration appeared almost 40 years ago (in Hooper, 1975), and she has lost track of how many she has drawn since then. In addition to her technical work for museum researchers, Patricia has illustrated museum exhibition labels, numerous educational publications, and dozens of popular science books. She is now busier than ever in semiretirement. Photo: Denis Finnin.
Text-fig. 2. Stratigraphic column of the Eskişehir-Sivrihisar region (Central Turkey). The regional stratigraphy follows Kahraman (2018). Stars mark the positions of vertebrate localities. in Plio-Pleistocene Amphibians And Reptiles From Central Turkey: New Faunas And Faunal Records With Comments On Their Biochronological Position Based On Small Mammals
Text-fig. 2. Stratigraphic column of the Eskişehir-Sivrihisar region (Central Turkey). The regional stratigraphy follows Kahraman (2018). Stars mark the positions of vertebrate localities.
Text-fig. 7. Temporal distribution of the described taxa from the Plio-Pleistocene localities of Turkey. The described localities are marked in red. in Plio-Pleistocene Amphibians And Reptiles From Central Turkey: New Faunas And Faunal Records With Comments On Their Biochronological Position Based On Small Mammals
Text-fig. 7. Temporal distribution of the described taxa from the Plio-Pleistocene localities of Turkey. The described localities are marked in red.
FIG. 6 in Hypsodont Myomiminae (Gliridae, Rodentia) from five new localities in the Lower Miocene Tudela Formation (Bardenas Reales, Ebro Basin, Spain) and their bearing on the age of the Agenian-Ramblian boundary
FIG. 6. — Ranges of variation and number of specimens for length and width of the upper (pre) molars of Armantomys de Bruijn, 1966 populations of Agenian and Ramblian localities from Spain. BARD (Bardenas) is a combination of the localities published by Murelaga et al. (2004a, b). *, localities described in this paper.
FIG. 1 in Hypsodont Myomiminae (Gliridae, Rodentia) from five new localities in the Lower Miocene Tudela Formation (Bardenas Reales, Ebro Basin, Spain) and their bearing on the age of the Agenian-Ramblian boundary
FIG. 1. — Geological map of the Lower-Middle Miocene continental sediments from the Tudela Formation at the Bardenas Reales de Navarra area, with location of the sections and fossil localities presented in this study. Abbreviations: CA, Cuesta Agujeros section; CC, Cabezo Carboneras section; CM, Cabezo Marijuán section. The location of other fossil localities studied previously by Murelaga (2000) and Murelaga et al. (2004a, b) is also shown.
FIG. 5 in Hypsodont Myomiminae (Gliridae, Rodentia) from five new localities in the Lower Miocene Tudela Formation (Bardenas Reales, Ebro Basin, Spain) and their bearing on the age of the Agenian-Ramblian boundary
FIG. 5. — Ranges of variation and number of specimens for length and width of the lower (pre)molars of Armantomys de Bruijn, 1966 populations of Agenian and Ramblian localities from Spain. BARD (Bardenas) is a combination of the localities published by Murelaga et al. (2004a, b). *, localities described in this paper.
FIG. 2 in Hypsodont Myomiminae (Gliridae, Rodentia) from five new localities in the Lower Miocene Tudela Formation (Bardenas Reales, Ebro Basin, Spain) and their bearing on the age of the Agenian-Ramblian boundary
FIG. 2. — Stratigraphy of the Tudela Formation in the studied sections, with location of the new fossil localities presented here (in bold) and other localities studied previously (Murelaga 2000; Murelaga et al. 2004a, b). The available sequence of polarity intervals identified in the upper part of the Cuesta Agujeros section and the Cabezo Marijuán section and its correlation to the ATNTS of Lourens et al. (2004) is also shown (see Larrasoaña et al. 2006).
FIG. 7 in Hypsodont Myomiminae (Gliridae, Rodentia) from five new localities in the Lower Miocene Tudela Formation (Bardenas Reales, Ebro Basin, Spain) and their bearing on the age of the Agenian-Ramblian boundary
FIG. 7. — Calibration of the Agenian/Ramblian boundary proposed in this study on the basis of the new material from the Tudela For- mation and on the recalibrated radiometric age of the Tardienta fossil locality (Van Dam et al. 2006), placed in the ATNTS of Lourens et al. (2004). The vertical bar indicates the error associated to the 39Ar/40Ar age of the Tardienta fossil locality.
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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.