Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
112
datasets available to search
ShareScore release 0.9.0
Dataset results
112 results for “Rhinoceros”
Figure 2 in The rare rhinoceros beetle, Ceratophileurus lemoulti Ohaus, 1911, in French Guiana and Suriname (Coleoptera, Scarabaeidae, Dynastinae, Phileurini)
Figure 2. Male specimen of Ceratophileurus lemoulti Ohaus collected at Raleighvallen, Suriname. Photograph by Alain and Marcel Galant.
Figure 1 in The rare rhinoceros beetle, Ceratophileurus lemoulti Ohaus, 1911, in French Guiana and Suriname (Coleoptera, Scarabaeidae, Dynastinae, Phileurini)
Figure 1. Male specimen of Ceratophileurus lemoulti Ohaus collected in French Guiana (YPC). Photograph by Yannig Ponchel. Aedeagus (aed) attached to card mount underneath specimen, in oblique view.
Figure 3 in The rare rhinoceros beetle, Ceratophileurus lemoulti Ohaus, 1911, in French Guiana and Suriname (Coleoptera, Scarabaeidae, Dynastinae, Phileurini)
Figure 3. Distribution map for Ceratophileurus lemoulti Ohaus. Collection localities in black circles.
Triangular Mesh of a Black Rhinoceros Brain (Diceros Bicornis)
<p>Triangular Mesh of a Black Rhinoceros Brain (Diceros Bicornis) from http://braincatalogue.org/Black_rhinoceros.</p>
Fig. 1 in The identification of Theileria bicornis in captive rhinoceros in Australia
Fig. 1. Photomicrograph of Diff-Quik stained blood smear from black rhinoceros, Siabuwa infected with T. bicornis. The morphology of T. bicornis is not well-described in the literature. We observed comma-shaped piroplasms approximately 1.5 μm in length closely resembling T. orientalis. Ring forms were also occasionally observed (not shown). Bar = 5 μm.
Fig. 2 in The identification of Theileria bicornis in captive rhinoceros in Australia
Fig. 2. Molecular phylogenetic analysis of the piroplasm 18S rRNA gene, including the three rhinoceros samples (Aluka, Umfana and Siabuwa) used in this study. The 18S rRNA sequences were extracted from Genbank during BLAST analysis. The rooted phylogenetic tree was constructed using the neighbour-joining method with T. gondii forming the outgroup. Bootstrap percentages are represented on each node based on 1000 replicates. Phylogenetic analyses were conducted using the PHYLIP packages (Felsenstein, 2005). The haplotypes of the three T. bicornis sequences from this study are indicated at the end of the sequence label.
Fig. 3 in The identification of Theileria bicornis in captive rhinoceros in Australia
Fig. 3. Truncated alignment of the 18S rRNA T. bicornis haplotypes including the new haplotype H4 identified in this study. Geneious version (7.1.9) (Kearse et al., 2012) was used to generate alignments to highlight the differences between the four T. bicornis haplotypes. 18S rRNA sequences of the three previously described T. bicornis haplotypes H1 to H3 (accession numbers KC771140 to KC771142 respectively) were extracted from Genbank for this analysis. The new T. bicornis haplotype H4 was submitted to Genbank and assigned accession number MF567493.
Fig. 5 in A new late Miocene elasmotheriine rhinoceros from Morocco
Fig. 5. Distribution map of the Elasmotheriinae. The size of the symbols reflects the number of species in each site (one species for the smallest symbols, up to four for the largest one: Guonigou in China). Eoazara xerrii gen. et sp. nov. is from the area called "Skoura". Data from Geraads et al. 2021.
Fig. 4 in A new late Miocene elasmotheriine rhinoceros from Morocco
Fig. 4. Majority rule consensus tree of the 16 most parsimonious trees ob- tained by TNT on the data matrix of the 59 taxa that have at least 50% of the characters scored. Length = 1644; CI = 17; RI = 55. American taxa in green, Eurasian taxa in blue, African taxa in red. The dashed line extends to the taxa that might belong to the Elasmotheriinae as well.
Fig. 2 in A new late Miocene elasmotheriine rhinoceros from Morocco
Fig. 2. Elasmotheriine rhinoceros Eoazara xerrii gen. et sp. nov. from the upper Miocene of Skoura, Morocco. Skull FSC-Sk-250, occlusal surface of right M2–M3; buccal is to the top, anterior to the right.
Fig. 3 in A new late Miocene elasmotheriine rhinoceros from Morocco
Fig. 3. Elasmotheriine rhinoceros Eoazara xerrii gen. et sp. nov. from the upper Miocene of Skoura, Morocco. A. Second left metacarpal (FSC-Sk-45) in proximal (A1), anterior (A2), and lateral (A3) views. B. Imperfectly preserved right second metatarsal (FSC-Sk-53) in anterior (B1) and lateral (B2) views. C. Left first upper molar (FSC-Sk-33) in occlusal view. Scale bars: A, 50 mm; B, C, 100 mm.
Fig. 1 in A new late Miocene elasmotheriine rhinoceros from Morocco
Fig. 1. Elasmotheriine rhinoceros Eoazara xerrii gen. et sp. nov. from the upper Miocene of Skoura, Morocco. Skull (FSC-Sk-250) in left latero-dorsal (A1) and right lateral (A2) views. Antero-ventral view of the front part, showing the right lower incisor, premaxillae, and nasals (A3). Stereo view of the right auditory area (A4). A3, A4, in oblique view, not to scale.
FIGURE 7 in Pleistocene rhinoceros from Bogovina Cave: The first report of Stephanorhinus hundsheimensis Toula, 1902 (Mammalia, Rhinocerotidae) from Serbia
FIGURE 7. Equid and bovid dental specimens from Bogovina Cave: left lower molar of a caballoid horse NMKVRS.P12 in (A) occlusal view; indeterminate bovid right p4 NMKVRS.P14 in (B) occlusal view; indeterminate bovid left M1/M2 NMKVRS.P15 in (C) occlusal view.
FIGURE 5 in Pleistocene rhinoceros from Bogovina Cave: The first report of Stephanorhinus hundsheimensis Toula, 1902 (Mammalia, Rhinocerotidae) from Serbia
FIGURE 5. Fragmented upper teeth of Stephanorhinus hundsheimensis from Bogovina Cave: right M1/M2 HMP-136 in (A) occlusal and (B) lingual views; right M HMP-132 in (C) occlusal and (D) vestibular views; right M HMP-134 in (E) occlusal and (F) vestibular views; right DP4 HMP-130 in (G) occlusal and (H) vestibular views.
FIGURE 6 in Pleistocene rhinoceros from Bogovina Cave: The first report of Stephanorhinus hundsheimensis Toula, 1902 (Mammalia, Rhinocerotidae) from Serbia
FIGURE 6. Lower teeth of Stephanorhinus hundsheimensis from Bogovina Cave: right m1/m2 HMP-129 in (A) occlusal, (B) vestibular, (C) lingual, (D) mesial and (E) distal views; right p3/p4 HMP-407 in (F) occlusal, (G) vestibular, (H) lingual, (I) mesial and (J) distal views; right p2 HMP-139a in (K) occlusal, (L) vestibular, (M) lingual, (N) mesial, and (O) distal views.
FIGURE 4 in Pleistocene rhinoceros from Bogovina Cave: The first report of Stephanorhinus hundsheimensis Toula, 1902 (Mammalia, Rhinocerotidae) from Serbia
FIGURE 4. Upper molars of Stephanorhinus hundsheimensis from Bogovina Cave: right M1/M2 HMP-131 in (A) occlusal, (B) vestibular, (C) lingual, (D) mesial and (E) distal views; right M1/M2 HMP-X in (F) occlusal, (G) vestibular, (H) lingual, (I) mesial and (J) distal views; left M1/M2 HMP-135 in (K) occlusal, (L) vestibular, (M) lingual, (N) mesial, and (O) distal views.
FIGURE 3 in Pleistocene rhinoceros from Bogovina Cave: The first report of Stephanorhinus hundsheimensis Toula, 1902 (Mammalia, Rhinocerotidae) from Serbia
FIGURE 3. Upper premolars of Stephanorhinus hundsheimensis from Bogovina Cave: left P3/P4 NMKVRS.P13 in (A) occlusal, (B) vestibular, (C) lingual, (D) mesial and (E) distal views; right P3/P4 HMP-139b in (F) occlusal, (G) lingual, and (H) distal views.
Evaluating Qualitative Behavioural Assessment and ethogram techniques for captive black rhinoceros (Diceros bicornis)
<p>Data set + R Code for: Evaluating Qualitative Behavioural Assessment and ethogram techniques <br>for captive black rhinoceros (<em>Diceros bicornis</em>)</p>
Fig. 1 in Short Communication: The Javan Rhinoceros Rhinoceros Sondaicus In Borneo
Fig. 1. Comparison of the terminal phalanx fragment from Niah Cave West mouth Trench E/D 8, 0–12 ins with: a, the forefoot of Rhinoceros sondaicus (BMNH 1861.3.11.1); b, hindfoot of R. sondaicus (BMNH 1861.3.11.1); c, forefoot of Dicerorhinus sumatrensis (BMNH 1879.6.14.2)
Fig. 3 in Hybridisation In The Wild Between The Great Hornbill (Buceros Bicornis) And The Rhinoceros Hornbill (Buceros Rhinoceros) In Thailand And Its Genetic Assessment
Fig. 3. Nucleotide sequences of core tandem repeats of hypervariable mitochondrial control region III (CR III) in four hornbill individuals; the female great hornbill (GU560189), the male rhinoceros hornbill (GU560192), and two interspecific hybrids (GU560190 for 2004- hybrid and GU560191 for 2008-hybrid). Underlined sequence shows the core sequence of 11 bp in 23 bp tandem repeats in the rhinoceros hornbill that is similar to that of the great hornbill. Bold letters indicate nucleotide sequences at 10th nucleotide position of 11 bp core sequences in the four birds.
ScienceDex guides
Understand access before you commit
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.