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Figure 2 in Cryptic complexity in felid vertebral evolution: shape differentiation and allometry of the axial skeleton
Figure 2. Vertebral measurements: A–C, atlas; D and E, axis; F, C6; G–J, L2. Abbreviations: LDA, length of dorsal arch; Pre_Z-D, prezygapophyseal distance; Post_Z-D, postzygapophyseal distance; TPLA, transverse process lever arm; WDA, width of dorsal arch. B. LVA, length of ventral arch; WVA, width of ventral arch. C. HNC, height of the neural canal. D. DW, dens width. E. DA, dens angle; DL, dens length; NSL, neural spine anteroposterior length at tip. F. LIL, length of inferior lamella. G. CL, centrum length; IZL, interzygapophyseal length; NSL, neural anteroposterior length at tip; NSLA, neural spine lever arm. H. APD, accessory process distance; CH, centrum height; CW, centrum width; NSLA, neural spine lever arm. I. TPDV, transverse process dorsoventral angle; TPLA, transverse process lever arm. J. LW, lamina width; TPAP, transverse process anteroposterior angle. Vertebral images are from of a CT scan of Acinonyx jubatus (cheetah).
Figure 1. Felid phylogeny showing studied species, from a in Cryptic complexity in felid vertebral evolution: shape differentiation and allometry of the axial skeleton
Figure 1. Felid phylogeny showing studied species, from a subset of Nyakatura & Bininda-Emonds (2012), with felid lineage designation according to Johnson et al. (2006), and locomotory (A, S, and T) and prey size specialization (circles at tip of phylogeny) according to Meachen-Samuels & Van Valkenburgh (2009b). Abbreviations: arboreal (A), scansorial (S) and terrestrial (T). Prey size symbols: black circles – large prey specialist; dark grey circles – mixed prey specialist; and light grey with black rim circles – small prey specialist.
Figure 4. Janosikia ulmensis comb. nov., SMNS 96579, smaller partial skeleton. A in Fossil lizard from central Europe resolves the origin of large body size and herbivory in giant Canary Island lacertids
Figure 4. Janosikia ulmensis comb. nov., SMNS 96579, smaller partial skeleton. A, prepared block of sediment containing most of lower jaw together with postorbitofrontal. B, prepared block of sediment containing much of cranial skeleton.
Figure 13. Psilocalyx wilsoni, skeleton. A in Systematics and spicule evolution in dictyonal sponges (Hexactinellida: Sceptrulophora) with description of two new species
Figure 13. Psilocalyx wilsoni, skeleton. A, lophodiscohexaster (scale bar = 10 Mm). B, scopule head (scale bar = 15 Mm). C, hexasters and scopule within the dictyonal skeleton. D, dictyonal framework, transition to the thickened dermal layer (scale bar = 300 Mm). E, dermal dictyonal (hypersilicified) cortex layer (scale bar = 100 Mm).
Figure 4. Sarostegia oculata, skeleton. A-B in Systematics and spicule evolution in dictyonal sponges (Hexactinellida: Sceptrulophora) with description of two new species
Figure 4. Sarostegia oculata, skeleton. A-B, sarules (A, scale bar = 30 Mm; B, scale bar = 50 Mm). C, dictyonal framework (scale bar = 150 Mm). D–E, discohexasters (scale bars = 10 Mm). F, oxyhexaster (scale bar = 10 Mm).
FIGURE 27. Fish skeleton from a in Two new Pseudorchomene species from the Southern Ocean, with phylogenetic remarks on the genus and related species (Crustacea: Amphipoda: Lysianassoidea: Lysianassidae: Tryphosinae)
FIGURE 27. Fish skeleton from a baited trap, cleaned up by swarms of Pseudorchomene plebs (Hurley, 1965) (and by a few Natatolana spp.); ANT–XXIII/8 sta. 625–1/625–2, Elephant Island, trap deployed on 23.xii.2006 and hauled up on 25.xii.2006.
WuYun: Exploring hierarchical skeleton-guided melody generation using knowledge-enhanced deep learning
<p>Here, we provide the Wikifonia dataset in MIDI format and two sets of MIDI files generated in the experiments. We used MuseScore software (i.e., batch convert) to <strong>synthesize MIDI files into audio files</strong></p>
Primary Data (Synthesis of Boronates with a Protoilludane Skeleton)
<p>Primary data including unprocessed NMR (<sup>1</sup>H/<sup>13</sup>C) and x-ray crystallographic (.cif) files.</p>
Figure 17 in Ontogeny of the skeleton of Moenkhausia pittieri (Ostariophysi: Characiformes) with discussion on functional demands and ossification patterns in the Characidae
Figure 17. Caudal fin of Moenkhausia pittieri. A, 5.4 mm standard length (SL), 21 days post-hatching (dph). B, 5.7 mm SL, 25 dph. C, 6.6 mm SL, 31 dph. D, 6.8 mm SL, 34 dph. E, 9.1 mm SL, 37 dph. F, adult, 28.8 mm SL. Abbreviations are explained in Table 1. Scale bars: 0.5 mm.
Figure 18 in Ontogeny of the skeleton of Moenkhausia pittieri (Ostariophysi: Characiformes) with discussion on functional demands and ossification patterns in the Characidae
Figure 18. Sequence of ossification of the skeleton of Moenkhausia pittieri. A, early stages, showing bones that start to ossify from 3.4 mm notocord length (NL) to 6.1 mm standard length (SL). B, later stages, showing bones that start to ossify from 6.2 mm SL onwards. The thin vertical lines represent lengths (NL and SL, in mm) at which ossification can be present or absent. The thick horizontal lines represent the fixed presence of ossifications.
Figure 15 in Ontogeny of the skeleton of Moenkhausia pittieri (Ostariophysi: Characiformes) with discussion on functional demands and ossification patterns in the Characidae
Figure 15. Dorsal fin of Moenkhausia pittieri. A, 7.7 mm standard length (SL), 37 days post-hatching (dph). B, 15.4 mm SL, 70 dph. C, adult, 28.8 mm SL, with image horizontally inverted. Abbreviations are explained in Table 1. Scale bars: 0.5 mm.
Figure 13 in Ontogeny of the skeleton of Moenkhausia pittieri (Ostariophysi: Characiformes) with discussion on functional demands and ossification patterns in the Characidae
Figure 13. Pectoral fin of Moenkhausia pittieri. A, 10.1 mm standard length (SL), 52 days post-hatching (dph). B, 15.4 mm SL, 70 dph. C, adult, 28.8 mm SL. Arrows indicate laterosensory bone canal of supracleithrum (B) and posttemporal (C). Abbreviations are explained in Table 1. Scale bars: 1 mm.
Figure 4. A, B, D in Ontogeny of the skeleton of Moenkhausia pittieri (Ostariophysi: Characiformes) with discussion on functional demands and ossification patterns in the Characidae
Figure 4. A, B, D, neurocranium of Moenkhausia pittieri, ventral view. A, 9.1 mm standard length (SL), 37 days posthatching (dph). B, 10.9 mm SL, 61 dph. C, dorsal portion of pectoral girdle, adult, 32.5 mm SL; arrow indicates ligament connecting the pterotic and supracleithrum with the intercalar. D, adult, 28.8 mm SL; arrow indicates the anterior process of the lateral ethmoid. Abbreviations are explained in Table 1. Scale bars: 1 mm.
Figure 12 in Ontogeny of the skeleton of Moenkhausia pittieri (Ostariophysi: Characiformes) with discussion on functional demands and ossification patterns in the Characidae
Figure 12. Axial skeleton of Moenkhausia pittieri. A, 5.1 mm notocord length (NL), 12 days post-hatching (dph). B, 9.1 mm SL, 37 dph. C, adult, 28.8 mm SL. Abbreviations are explained in Table 1. Scale bars: 1 mm.
Figure 10 in Ontogeny of the skeleton of Moenkhausia pittieri (Ostariophysi: Characiformes) with discussion on functional demands and ossification patterns in the Characidae
Figure 10. Branchial arches of Moenkhausia pittieri, upper portion, ventral view (A, left side; D, right side) and lower portion, dorsal view (B, C). A, B, 10.9 mm standard length (SL), 61 days post-hatching (dph); arrow indicates a single tooth developed in the pharyngobranchial 2 cartilage. C, D, adult, 28.8 mm SL; arrows indicate a second row of gill rakers. Abbreviations are explained in Table 1. Scale bars: 1 mm.
Figure 9 in Ontogeny of the skeleton of Moenkhausia pittieri (Ostariophysi: Characiformes) with discussion on functional demands and ossification patterns in the Characidae
Figure 9. Hyoid arch of Moenkhausia pittieri. A, 9.1 mm standard length (SL), 37 days post-hatching (dph), lateral view. B, 10.9 mm SL, 61 dph, medial view to show dorsal hypohyal. C, adult, 28.8 mm SL, lateral view. D, adult, 32.5 mm SL, lateral view. Abbreviations are explained in Table 1. Scale bars: 0.5 mm.
Figure 11 in Ontogeny of the skeleton of Moenkhausia pittieri (Ostariophysi: Characiformes) with discussion on functional demands and ossification patterns in the Characidae
Figure 11. Weberian ossicles of Moenkhausia pittieri. A, 5.1 mm notocord length (NL), 12 days post-hatching (dph). B, 5.5 mm standard length (SL), 21 dph. C, 9.1 mm SL, 37 dph. D, adult, 28.8 mm SL, with pleural rib 5 removed; arrow indicates the anterior process of neural arch 3. Numbers indicate vertebral centra. Abbreviations are explained in Table 1. Scale bars: 0.5 mm.
Figure 6 in Ontogeny of the skeleton of Moenkhausia pittieri (Ostariophysi: Characiformes) with discussion on functional demands and ossification patterns in the Characidae
Figure 6. Infraorbital series (A, B) and sclerotic bones (C) of Moenkhausia pittieri. A, 15.4 mm standard length (SL), 70 days post-hatching (dph), with image horizontally inverted. B, C, adult, 28.8 mm SL. Abbreviations are explained in Table 1. Scale bars: 1 mm.
Figure 7 in Ontogeny of the skeleton of Moenkhausia pittieri (Ostariophysi: Characiformes) with discussion on functional demands and ossification patterns in the Characidae
Figure 7. Upper and lower jaws of Moenkhausia pittieri, lateral view. A, 5.7 mm standard length (SL), 25 days posthatching (dph). B, 10.9 mm SL, 61 dph. C, 15.4 mm SL, 70 dph. D, adult, 28.8 mm SL, with image horizontally inverted. Abbreviations are explained in Table 1. Scale bars: 0.5 mm.
Figure 2 in Ontogeny of the skeleton of Moenkhausia pittieri (Ostariophysi: Characiformes) with discussion on functional demands and ossification patterns in the Characidae
Figure 2. Neurocranium of Moenkhausia pittieri, dorsal view. A, detail of frontal, left side, dissected from neurocranium of the specimen shown in B, with 9.1 mm standard length (SL), 37 days post-hatching (dph). C, 10.9 mm SL, 61 dph. D, adult, 28.8 mm SL. Abbreviations are explained in Table 1. Scale bars: 1 mm.
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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.