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661 results for “nose”
Odour observations from Odourcollect app (D-NOSES)
<p>This is the anonymized dump (28 November 2021) of the OdourCollect tool from the D-NOSES project ( Grant Agreement No 789315. ). There are 10332 Odour Observations from volunteers, including type and subtype of odour.</p> <p>The OdourCollect tool is provide as web-page: <a href="https://odourcollect.eu/">https://odourcollect.eu/ </a>and as <a href="https://play.google.com/store/apps/details?id=es.nobone.manchesterwebapp&hl=en_US">android</a> and <a href="https://apps.apple.com/mx/app/odourcollect/id1457119732">iphone</a> apps.</p> <p>Find out more about the project in the main webpage: <a href="http://dnoses.eu">http://dnoses.eu</a></p>
Figure 2 in Swimming and bipedal bottom-running in the pig-nosed turtle Carettochelys insculpta Ramsay, 1886
Figure 2. Detail of hindlimb action during bipedal bottom running in large Carettochelys insculpta. Numerals indicate field sequence. Tail is stippled. Short horizontal lines indicate substratum beneath hindlimbs. Note that, at field 6, neither rear limb is in contact with the substratum.
Figure 1 in Conservation in a changing landscape: habitat occupancy of the critically endangered Tennent's leaf-nosed lizard (Ceratophora tennentii) in Sri Lanka
Figure 1. Location of Knuckles forest reserve within Kandy and Matale Districts (left) and the four study sites [two at Riverston (1 and 2), Hunasgiriya (3) and Deanston (4)] within the reserve (right).
Figure 3 in Conservation in a changing landscape: habitat occupancy of the critically endangered Tennent's leaf-nosed lizard (Ceratophora tennentii) in Sri Lanka
Figure 3. Comparison of climatic and structural parameters among the four habitat types during the dry (dashed line) and wet (solid line) seasons. Data from both locations with lizards and random locations are considered in combination. (C = Cardamom plantations, M = Mixed cardamom forests, N = Natural forests, P = Pine plantations.)
Figure 2 in Conservation in a changing landscape: habitat occupancy of the critically endangered Tennent's leaf-nosed lizard (Ceratophora tennentii) in Sri Lanka
Figure 2. Mean number of sightings of Ceratophora tennentii within three habitat types at Knuckles Range, Sri Lanka.
Data from: Creating small food-habituated groups might alter genetic diversity in the endangered Yunnan snub-nosed monkey. https://doi.org/10.1016/j.gecco.2020.e01422
<p>Ecotourism is increasing worldwide for financial, educational and social purposes. Organized viewing of wildlife, especially at feeding sites where wildlife is “ready-to-view”, increases the opportunities for tourists to observe animals in the wild. However, feeding sites might retain only a subsample of wild populations. We thus hypothesized that such human intervention could induce population subdivisions and alter random mating by artificially creating small groups. The endangered Yunnan snub-nosed monkey (Rhinopithecus bieti) is an emblematic example reflecting the contradictions between conservation and ecotourism. In Gehuaqing/Xiangguqing (Yunnan, China), some individuals are maintained at feeding sites, while the rest of the monkey subpopulation wanders in a large surrounding area. Using faecal sampling and molecular analyses, we showed that this subpopulation is genetically structured into two moderately differentiated subgroups. The fed subgroup exhibited lower genetic diversity and higher relatedness than the rest of the subpopulation. Simulation model results indicated that a single translocation probably would not restore genetic diversity in fed individuals. Thus, feeding sites implementation and associated management practices might rapidly induce founder effects. We discuss the possibilities of conciliating ecotourism and the conservation of endangered animal species from this viewpoint.</p>
Plant pathogens provide clues to the origin of bat white-nose syndrome Pseudogymnoascus destructans
<p>Phylogenomic analyses of P. destructans.</p> <p>This is a snapshot of the GitLab repository available at https://gitlab.gwdg.de/molsysevol/pseudogymnoascus-destructans-phylogeny/.</p>
FIGURE 27 in The decline of silky lacewings and morphological diversity of long-nosed antlion larvae through time
FIGURE 27. Different plots of the data of the analysed long-nosed antlion larvae. A. Range of PC1 and PC2 for specimens from different time slices. For Cretaceous specimens, the grey bars provide the sample-size-corrected ranges. B. Scatter plot of head capsule width w(h) vs. capsule length l(h) (without labrum). C. PC1 and PC2 plotted against head capsule length (without labrum). Note the low degree of correlation as well as low coefficient of determination: PC1: R2=0.039, PC2: R2=0.027.
FIGURE 28 in The decline of silky lacewings and morphological diversity of long-nosed antlion larvae through time
FIGURE 28. Comparison of different heads of lacewing larvae with labrum. A. Psychopsidae (MacLeod 1964, his fig. 66). B. Nevrorthidae (Beutel et al. 2010, their fig. 2). C. Myrmeleontidae (Acanthaclisis occitanica; Badano 2012, image on p. 90; re-figured in Badano et al. 2017, their fig. 7C). D. Coniopterygidae (MacLeod 1964, his fig. 62). E. Dilaridae (MacLeod 1964, his fig. 33). F. Berothidae (MacLeod 1964, his fig. 36).
FIGURE 23. Specimen 49 in The decline of silky lacewings and morphological diversity of long-nosed antlion larvae through time
FIGURE 23. Specimen 49 (PED 0125); Burmese amber. A. Lateral view. B. Dorsal view. C. Lateral view, other side. D. Close-up of labrum (arrow) in dorsal view. E. Close-up of eyes in lateral view. F. Close-up of empodium (arrow) of a walking appendage. Abbreviations: at = antenna; hc = head capsule; lp = labial palp; sy = stylet; th = thorax.
FIGURE 21. Specimen 45 in The decline of silky lacewings and morphological diversity of long-nosed antlion larvae through time
FIGURE 21. Specimen 45 (PED 0045); Burmese amber. A. Dorsal view. B. Dorsal view, colour marked. C. Ventral view. D. Close-up of labrum (arrow) in dorsal view. E. Close-up of labial palp. Abbreviations: at = antenna; hc = head capsule; lp = labial palp; sy = stylet; th = thorax.
FIGURE 20 in The decline of silky lacewings and morphological diversity of long-nosed antlion larvae through time
FIGURE 20. Specimens in Burmese amber, continued. A–D. Specimen 43 (PED 0153). A. Dorsal view. B. Dorsal view, colour marked. C. Close-up of labrum (arrow) in dorsal view. D. Close-up of empodium (arrow) of second walking appendage. E–F. Specimen 44 (BUB 3179). E. Dorsal view. F. Dorsal view, colour marked. Abbreviations: ad = abdomen; at = antenna; hc = head capsule; lp = labial palp; ms = mesothorax; mt = metathorax; pt = prothorax; sy = stylet.
FIGURE 24 in The decline of silky lacewings and morphological diversity of long-nosed antlion larvae through time
FIGURE 24. Specimens in Burmese amber, continued. A–C. Specimen 50 (PED 0039). A–C. Dorsal view. A. Ring light. B. Colour marked. C. Cross-polarised light. D. Specimen 51 (PED 0109). Abbreviations: at = antenna; hc = head capsule; sy = stylet; th = thorax.
FIGURE 17. Specimen 39 in The decline of silky lacewings and morphological diversity of long-nosed antlion larvae through time
FIGURE 17. Specimen 39 (PED 0060); Burmese amber. A. Dorsal view. B. Dorsal view, colour marked. C. Ventral view. D. Close-up of antenna; arrow points to spine-like seta. E. Close-up of labrum (arrow) in dorsal view. F. Close-up of syn-inclusion, insect larva in lateral view. Abbreviations: ad = abdomen; at = antenna; hc = head capsule; ms = mesothorax; mt = metathorax; pt = prothorax; sy = stylet.
FIGURE 15. Specimen 37 in The decline of silky lacewings and morphological diversity of long-nosed antlion larvae through time
FIGURE 15. Specimen 37 (PED 0205); Burmese amber. A. Ventral view. B. Dorsal view, colour marked. C. Dorsal view. D. Close-up of antenna; arrow points to spine-like seta. E. Close-up of labrum (arrow) in dorsal view. F. Close-up of empodium (arrow) of second walking appendage. Abbreviations: ad = abdomen; at = antenna; hc = head capsule; ms = mesothorax; mt = metathorax; pt = prothorax; sy = stylet; ta = tarsus; ti = tibia.
FIGURE 14. Specimen 36 in The decline of silky lacewings and morphological diversity of long-nosed antlion larvae through time
FIGURE 14. Specimen 36 (PED 0137); Burmese amber. A. Dorsal view. B. Dorsal view, colour marked. C. Ventral view. D. Close-up of labrum (arrow) in dorsal view. E. Close-up of empodium (arrow) of second walking appendage. Abbreviations: ad = abdomen; at = antenna; cl = claw; hc = head capsule; lp = labial palp; ms = mesothorax; mt = metathorax; pt = prothorax; sy = stylet.
FIGURE 26 in The decline of silky lacewings and morphological diversity of long-nosed antlion larvae through time
FIGURE 26. Scatterplot of PC1 and PC2 surrounded by all analysed heads. Numbers in the ellipses correspond to the numbers of the heads. Extant specimens as grey ellipses, Eocene specimens as white ellipses, Cretaceous specimens as black ellipses. The heads grouped together in circles cluster relatively closely together and possibly form relatively discrete types.
FIGURE 22 in The decline of silky lacewings and morphological diversity of long-nosed antlion larvae through time
FIGURE 22. Specimens in Burmese amber, continued. A–C Specimen 46 (PED 0133). A. Ventral view. B. Dorsal view, colour marked; arrow points to labrum. C. Dorsal view. D–F. Specimen 47 (PED 0128). D. Ventral view. E. Dorsal view, colour marked; arrow points to labrum. F. Dorsal view. G–H. Specimen 48 (BUB 3386). G. Dorsal view. H. Dorsal view, slightly different angle; arrow points to labrum. Abbreviations: at = antenna; hc = head capsule; lp = labial palp; ms = mesothorax; mt = metathorax; pt = prothorax; sy = stylet.
FIGURE 7. Specimen 16 in The decline of silky lacewings and morphological diversity of long-nosed antlion larvae through time
FIGURE 7. Specimen 16 (IGR.ARC-205.2); Charentese amber. A. Ventral view. B. Dorsal view. C. Dorsal view, colour marked. D. Close-up of labrum (arrow) in ventral view. E. Close-up of antenna in dorsal view; arrow points to spine-like seta. F. Close-up of empodium (arrow) of first walking appendage. Abbreviations: ad = abdomen; at = antenna; hc = head capsule; ms = mesothorax; mt = metathorax; pt = prothorax; sy = stylet.
FIGURE 3 in The decline of silky lacewings and morphological diversity of long-nosed antlion larvae through time
FIGURE 3. Fossils of long-nosed antlion larvae, i.e., larvae of silky lacewings (Psychopsidae), continued. Drawings partly simplified. A. Specimen 15, from Weitschat and Wichard (1998, 2002). B. Specimen 17, from Scheven (2004). C. Specimen 18, from Engel and Grimaldi (2008). D. Specimen 19, from Gröhn (2015). E. Specimen 20, from Zhang (2017). F. Specimen 21, from Badano et al. (2018). G. Specimen 22, from Makarkin (2018). H. Specimen 23, from Makarkin (2018).
ScienceDex guides
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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.