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Fig. 1. A in Feeding habits and habitat of herbivorous mammals from the Early-Late Hemphillian (Miocene) of Costa Rica
Fig. 1. A. Geographic location of studied area. B. Geological map of the San Gerardo de Limoncito area, modified from Denyer and Alvarado (2007).
Fig. 3 in The hidden threat: Exploring the parasite burden and feeding habits of invasive raccoon dogs (Nyctereutes procyonoides) in central Europe
Fig. 3. Examples of ecto- and endoparasites and parasite eggs found in fecal investigation of the examined raccoon dogs, A-B ectoparasites, C-D endoparasites, E-F eggs from endoparasites found through MIFC. A: Chaetopsylla globiceps; B: Trichodectes canis; C: Isthmiophora melis; D: Echinococcus multilocularis; E: eggs from Alaria alata; F: Egg from Toxocara canis.
Fig. 2 in The hidden threat: Exploring the parasite burden and feeding habits of invasive raccoon dogs (Nyctereutes procyonoides) in central Europe
Fig. 2. Examples of different stomach contents of the examined raccoon dogs, A-F each from one stomach. A: mouse, plants, amphibian; B: grass, maize, feathers and bird foot; C: amphibian, insects; D: insects; E: opened stomach filled with grass; F: hair, plant material, feathers, bones and hair.
Fig. 1 in The hidden threat: Exploring the parasite burden and feeding habits of invasive raccoon dogs (Nyctereutes procyonoides) in central Europe
Fig. 1. Origin of the examined raccoon dogs in the different federal states of Germany, red areas show the sampling sites (N = 73). (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 4 in The hidden threat: Exploring the parasite burden and feeding habits of invasive raccoon dogs (Nyctereutes procyonoides) in central Europe
Fig. 4. Diet of the raccoon dog Nyctereutes procyonoides according to percentages of the individual components, components that cannot be further determined are summarized in the respective class, with * marked species are most likely to have been eaten as carrion. On the right side are listed the parasites, which are transmitted via a known intermediate host, which made up part of the food of the examined animals.
Fig. 26 in A new ornithomimid dinosaur with gregarious habits from the Late Cretaceous of China
Fig. 26. Histogram of femur lengths of Sinornithomimus dongi gen. et sp. nov. (Table 5). Kurtotic distribution curves are drawn for all samples (dashed line) and for juveniles (solid line).
Fig. 25. A in A new ornithomimid dinosaur with gregarious habits from the Late Cretaceous of China
Fig. 25. A. Gastrolith masses of Sinornithomimus dongi gen. et sp. nov. IVPP−V11797−10 in lateral view. B. IVPP−V11797−9 in lateral (B1) and ventral (B2) views. Italicized letters in A indicate disarticulated and isolated elements not from IVPP−V11797−10. Scale bars 10 cm for A and 5 cm for B.
Fig. 24 in A new ornithomimid dinosaur with gregarious habits from the Late Cretaceous of China
Fig. 24. Left pedal digits of Sinornithomimus dongi gen. et sp. nov. in IVPP−V11797−10 in lateral view. Photograph (A) and explanatory drawing of the same (B). Scale bar 5 cm.
Fig. 22 in A new ornithomimid dinosaur with gregarious habits from the Late Cretaceous of China
Fig. 22. Left tibiofibularis with tarsals of Sinornithomimus dongi gen. et sp. nov. (IVPP−V11797−23) in anterior (A), posterior (B), lateral (C), medial (D), proximal (E), and distal (F) views (distal one−fourth is crushed and displaced). Scale bars 5 cm for A–D, and 2 cm for E and F.
Fig. 21 in A new ornithomimid dinosaur with gregarious habits from the Late Cretaceous of China
Fig. 21. Left femur of Sinornithomimus dongi gen. et sp. nov. (IVPPV11797−23) in anterior (A), posterior (B), lateral (C), medial (D), proximal (E), and distal (F) views. Scale bars 5 cm for A–D, and 2 cm for E and F.
Fig. 20 in A new ornithomimid dinosaur with gregarious habits from the Late Cretaceous of China
Fig. 20. Left hindlimb of Sinornithomimus dongi gen. et sp. nov. (IVPPV11797−10) in lateral view. Photograph (A) and explanatory drawing of the same (B). Scale bars 5 cm.
Fig. 18 in A new ornithomimid dinosaur with gregarious habits from the Late Cretaceous of China
Fig. 18. Left manual digits of Sinornithomimus dongi gen. et sp. nov. (IVPP−V11797−18) in lateral view. Digit I (A), digit II (B), and digit III (C). Scale bar 5 cm.
Figure 19 in A new ornithomimid dinosaur with gregarious habits from the Late Cretaceous of China
Figure 19. Pelvic girdle elements of Sinornithomimus dongi gen. et sp. nov. Right ilium of IVPP−V11797−10 in lateral view (A), pubes of IVPPV11797−9 in posterolateral view (B), and ischia of IVPP−V11797−15 in lateral view (C). Scale bars 5 cm.
Fig. 17 in A new ornithomimid dinosaur with gregarious habits from the Late Cretaceous of China
Fig. 17. Left hand of Sinornithomimus dongi gen. et sp. nov. (IVPP−V11797−10) in dorsal view. Photograph (A) and explanatory drawing of the same (B). Scale bar 5 cm.
Fig. 16. A in A new ornithomimid dinosaur with gregarious habits from the Late Cretaceous of China
Fig. 16. A. Sinornithomimus dongi gen. et sp. nov. (IVPP−V11797−10) humerus in dorsal (A1) and lateral (A2) views, and ulna and radius in dorsal (A3) and lateral (A4) views. B. Wrist of IVPP−V11797−18 in dorsal view. Scale bars are 3 cm for A and 2 cm for B.
Fig. 15. A in A new ornithomimid dinosaur with gregarious habits from the Late Cretaceous of China
Fig. 15. A. Scapula of Sinornithomimus dongi gen. et sp. nov. (IVPP−V11797−10) in lateral view. B. Coracoid of IVPP−V11797−20 in lateral (B1) and dorsal (B2) views. Scale bars 5 cm.
Fig. 27 in A new ornithomimid dinosaur with gregarious habits from the Late Cretaceous of China
Fig. 27. The single most parsimonious tree of Ornithomimosauria. Synapomorphies for each node (ACCTRAN/DELTAN): Node 1 (5(0), 8, 11, 13, 15, 17, 18, 20, 22, 25, 28, 29, 31, 32, 33/ 8, 11, 18, 20, 25, 32, 33); Node 2 (1, 3, 6, 9, 16/ 1, 3, 5, 6, 9, 13, 16, 17, 22); Node 3 (2, 7, 10, 12, 14, 26(2), 38/ 2, 7, 10, 12, 38); Node 4 (15(0), 36, 37/ 26(2), 28, 29, 31, 37); Node 5 (19/ 19, 36); Node 6 (30/ 30); Node 7 (14(0), 16(0), 17(0), 21, 23, 27/ 21, 23); Node 8 (5, 35/ 5, 14, 35); Node 9 (22(0), 24, 28(2)/ 22(0), 24). See Appendix 1 for list of characters.
Fig. 13 in A new ornithomimid dinosaur with gregarious habits from the Late Cretaceous of China
Fig. 13. Sacral vertebrae of Sinornithomimus dongi gen. et sp. nov. (IVPPV11797−15) in ventral view. Italicized letters indicate an isolated element not from IVPP−V11797−15. Scale bar 3 cm.
Fig. 23 in A new ornithomimid dinosaur with gregarious habits from the Late Cretaceous of China
Fig. 23. Left metatarsals of Sinornithomimus dongi gen. et sp. nov. (IVPPV11797−23) in anterior (A) and medial (B) views. IVPP−V11797−25 in proximal (C), anterior (B), posterior (E) views. Scale bar 5 cm.
Fig. 14. A in A new ornithomimid dinosaur with gregarious habits from the Late Cretaceous of China
Fig. 14. A. Caudal vertebrae of Sinornithomimus dongi gen. et sp. nov.: anterior caudal vertebrae of IVPP−V11797−10 in lateral view. B. Posterior caudal vertebrae of IVPP−V11797−30 in lateral (B1), dorsal (B2), and ventral (B3) views. The numbers in A2 indicate the positions of caudal vertebrae. Scale bars 3 cm.
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.