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FIGURE 7 in Distinguishing between three modern Ellobius species (Rodentia, Mammalia) and identification of fossil Ellobius from Kaldar Cave (Iran) using geometric morphometric analyses of the first lower molar
FIGURE 7. Morphological differences between Ellobius fuscocapillus (left) and Ellobius lutescens (right). Arrows depict the displacements between corresponding landmarks in the reference (dots) and Ellobius lutescens as target specimens.
FIGURE 9 in Distinguishing Scaphinotus mannii Wickham (Coleoptera: Carabidae: Cychrini), a Species of Conservation Concern, from Similar Congeneric Species
FIGURE 9. Median lobe of male genitalia. A,B. Scaphinotus mannii Wickham (Wawawai, Whitman County, Washington); C,D. S. regularis (LeConte) (Moscow Mountain, Latah County, Idaho; E,F. S. relictus (Horn) (Mount Spokane, Spokane County, Washington); A,C,E = dorsal view; B,C,F = left lateral view. Scale line = 1.0 mm. Images modified and reproduced with permission from Kavanaugh & Angel (2015).
FIGURE 10 in Distinguishing Scaphinotus mannii Wickham (Coleoptera: Carabidae: Cychrini), a Species of Conservation Concern, from Similar Congeneric Species
FIGURE 10. Apex of median lobe of male genitalia, dorsal view. A. Scaphinotus mannii Wickham (Tumalum Creek, Garfield County, Washington); B. S. regularis (LeConte) (9 km SSE of Lowell, Idaho County, Idaho); C. S. relictus (Horn) (Charley Creek, Asotin County, Washington). Scale line = 0.5 mm.
FIGURE 8 in Distinguishing Scaphinotus mannii Wickham (Coleoptera: Carabidae: Cychrini), a Species of Conservation Concern, from Similar Congeneric Species
FIGURE 8. Left apical stylomere of female ovipositor, dorsolateral view. A. Scaphinotus mannii Wickham (Cummings Creek, Garfield County, Washington); B. S. regularis (LeConte) (Cambridge, Idaho County, Idaho); C. S. relictus (Horn) (Cummings Creek, Garfield County, Washington). Arrows indicate where length and width measurements were taken. Scale line = 0.5 mm.
FIGURE 6. Pronotum, dorsal view. A in Distinguishing Scaphinotus mannii Wickham (Coleoptera: Carabidae: Cychrini), a Species of Conservation Concern, from Similar Congeneric Species
FIGURE 6. Pronotum, dorsal view. A. Scaphinotus mannii Wickham (Steptoe Canyon, Whitman County, Washington); B. S. regularis (LeConte) (9 km SSE of Lowell, Idaho County, Idaho); C. S. relictus (Horn) (8 km NNE of Moscow, Latah County, Idaho).
FIGURE 3. Dorsal habitus. A in Distinguishing Scaphinotus mannii Wickham (Coleoptera: Carabidae: Cychrini), a Species of Conservation Concern, from Similar Congeneric Species
FIGURE 3. Dorsal habitus. A. Scaphinotus mannii Wickham (Steptoe Canyon, Whitman County, Washington); B. S. regularis (LeConte) (9 km SSE of Lowell, Idaho County, Idaho); C. S. relictus (Horn) (8 km NNE of Moscow, Latah County, Idaho). Scale line = 1.0 mm.
FIGURE 1 in Distinguishing Scaphinotus mannii Wickham (Coleoptera: Carabidae: Cychrini), a Species of Conservation Concern, from Similar Congeneric Species
FIGURE 1. Base of pronotum showing presence or absence of posterolateral setae, dorsal view. A. Scaphinotus mannii Wickham with setae absent (Steptoe Canyon, Whitman County, Washington); B. S. mannii with setae present (Tumalum Creek, Garfield County, Washington); C. S. regularis (LeConte) (Slate Creek, Idaho County, Idaho); D. S. relictus (Horn) (8 km NNE of Moscow, Latah County, Idaho).
FIGURE 5. Labrum, dorsal view. A in Distinguishing Scaphinotus mannii Wickham (Coleoptera: Carabidae: Cychrini), a Species of Conservation Concern, from Similar Congeneric Species
FIGURE 5. Labrum, dorsal view. A. Scaphinotus mannii Wickham (Steptoe Canyon, Whitman County, Washington); B. S. regularis (LeConte) (9 km SSE of Lowell, Idaho County, Idaho); C. S. relictus (Horn) (8 km SE of Craigmont, Lewis County, Idaho).
FIGURE 7. Left elytron, dorsal view. A in Distinguishing Scaphinotus mannii Wickham (Coleoptera: Carabidae: Cychrini), a Species of Conservation Concern, from Similar Congeneric Species
FIGURE 7. Left elytron, dorsal view. A. Scaphinotus mannii Wickham (Steptoe Canyon, Whitman County, Washington); B. S. regularis (LeConte) (9 km SSE of Lowell, Idaho County, Idaho); C. S. relictus (Horn) (8 km NNE of Moscow, Latah County, Idaho).
FIGURE 4. Head, dorsal view. A in Distinguishing Scaphinotus mannii Wickham (Coleoptera: Carabidae: Cychrini), a Species of Conservation Concern, from Similar Congeneric Species
FIGURE 4. Head, dorsal view. A. Scaphinotus mannii Wickham (Steptoe Canyon, Whitman Co., Washington); B. S. regularis (LeConte) (9 km SSE of Lowell, Idaho County, Idaho); C. S. relictus (Horn) (Cold Creek Canyon, Columbia County, Washington).
FIGURE 11 in Distinguishing Scaphinotus mannii Wickham (Coleoptera: Carabidae: Cychrini), a Species of Conservation Concern, from Similar Congeneric Species
FIGURE 11. Male left protarsi, with tarsomeres (1 to 5) identified by number. A,B. Scaphinotus mannii Wickham (Steptoe Canyon, Whitman County, Washington); C,D. S. relictus (Horn) (Selway River at O'Hara Campground, Idaho County, Idaho); A,C = dorsal view; B,D = ventral view. Scale lines = 1.0 mm. Images modified and reproduced with permission from Kavanaugh & Angel (2015).
Fig. 1 in Morphometric Criteria For Distinguishing Species And Age-Cohorts Of Ermine (Mustela Erminea) And Long-Tailed Weasel (M. Frenata)
Fig. 1. Distribution of ermine (left) and long-tailed weasel (right) species in North America (adapted from FAGERSTONE 1987). Inset shows long-tailed weasel distribution in Mexico and Central America;
Fig. 5 in Distinguishing Mus Spicilegus From Mus Musculus (Rodentia, Muridae) By Using Cranial Measurements
Fig. 5. The hyperbolic regression of coefficient of variation (CV) on mean (X). The regression of the joint exponential grow curve: r = 0.86 (proportion of variance accounted for: 0.73).
Figure 2 in Morphological traits allow distinguishing their hybrids from the Northern pike, Esox lucius, and the Aquitanian pike, Esox aquitanicus (Actinopterygii, Esociformes)
Figure 2. – Photos of pike specimens identified as hybrids of Esox aquitanicus and E. lucius according to Denys et al. (2014, 2018) (see Tab. I): Adour River at Estirac, 29 Aug. 2013, BRO462 247 mm SL (A); Boutonne stream (Charente drainage) at Saint-Séverin-sur-Boutonne, 10 Oct. 2013, BRO545 416 mm SL (B); Lien stream (Charente drainage) at Condac, 10 Sep. 2013, BRO505 402 mm SL (C), BRO506 282 mm SL (D) and BRO509 145 mm SL (E); Eyre River at Bélin-Béliet, 8 Jul. 2013, BRO445 121 mm SL (F). Credit photos: G. Denys / MNHN.
Distinguishing between pan assay interference compounds (PAINS) that are promiscuous or represent dark chemical matter - data set and prediction models
<p>Data sets of promiscuous PAINS (PROM_PAINS) and dark chemical matter PAINS (DCM_PAINS) are provided and support vector machine models built on the basis of original and balanced training data (see readme.txt).<br> </p>
Fig. 3 in Distinguishing Quaternary glyptodontine cingulates in South America: How informative are juvenile specimens?
Fig. 3. Dispersion graph including values of thickness and diameter of osteoderms from dorsal carapace of Glyptodon and Glyptotherium in different ontogenetic stages.
Fig. 2 in Distinguishing Quaternary glyptodontine cingulates in South America: How informative are juvenile specimens?
Fig. 2. Juvenile. Osteoderms of the dorsal caparace (A–I) and caudal armor (J–K) of juvenile glyptodont Glyptotherium sp. (UNIRIO-PM 6231) from the Late Pleistocene of Aurora do Tocantins, Brazil; in external (A1–K1), internal (A2, C2), and lateral (A3, B2, C3, D2–K2) views.
Fig. 1 in Distinguishing Quaternary glyptodontine cingulates in South America: How informative are juvenile specimens?
Fig. 1. Map showing the geographic distribution of Glyptodontinae recorded in Brazil (A) and location of studied area within State of Tocantins (B).
Fig. 6 in Distinguishing Quaternary glyptodontine cingulates in South America: How informative are juvenile specimens?
Fig. 6. Osteoderm histology of juvenile glyptodont Glyptotherium sp. (UNIRIO-PM 6231) from the Late Pleistocene of Aurora do Tocantins, Brazil. A. Osteoderm from lateral regions of the dorsal carapace (II), showing highly vascularized superficial cortex composed of woven fibered bone; several vascular canals are opened to the surface. Natural light photograph (A1), under polarized light (A2). Note the monorefrigent nature of the cortical tissue. B. Close up of the woven fibered bone matrix; bone cell lacunae are abundant and they are haphazardly arranged. C. Detail of the cortical bone at the marginal region of the osteoderm; the vascular spaces are larger than in the superficial cortex of the same specimen. Patches of slightly birefringent tissue are present, indicating preferential fiber orientation in some areas (C2). Natural light photograph (C1), under polarized light (C2). D. Osteoderm from lateral regions of the dorsal carapace (III); showing woven fibered bone in the marginal region of the osteoderm viewed under polarized light with lambda compensator. E. Resorpion cavities in the inner core. The bone trabeculae are composed of woven fibered bone. F. Cortical bone at deep cortex. Natural light photograph (F1), under polarized light with lambda compensator (F2). Abbreviations: its, inter-trabecular spaces; nvc, neurovascular canals.
Fig. 5 in Distinguishing Quaternary glyptodontine cingulates in South America: How informative are juvenile specimens?
Fig. 5. Osteoderm microanatomy of juvenile glyptodont Glyptotherium sp. (UNIRIO-PM 6231) from the Late Pleistocene of Aurora do Tocantins, Brazil. General view of the complete sections. A. Osteoderm from the medial zone of the dorsal carapace (I). B, C. Osteoderms from lateral regions of the dorsal carapace (II and III).
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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.