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.
42
datasets available to search
ShareScore release 0.7.1
Dataset results
42 results for “Philander”
Thomas Philander Ryder (r1980)
<b>-- <a href="https://doi.org/10.5281/zenodo.11582199">Documentation</a> --</b><br><br><u>Name</u>: Thomas Philander Ryder<br><u>musiXplora-ID</u>: r1980<br><u>musiXplora-URI</u>: <a href="https://musixplora.de/mxp/r1980">https://musixplora.de/mxp/r1980</a><br><u>Gender</u>: m<br><u>Date of Birth</u>: 29 June 1836<br><u>Place of Birth</u>: Massachusetts<br><u>Date of Death</u>: 02 December 1887<br><u>Place of Death</u>: Somerville/MA<br><u>First Mentioned</u>: 1879<br><u>Sectors</u>: Chor, Instrumentenbau, Kirche<br><u>Professions (Musical)</u>: Chorleiter, Dirigent, Komponist, Organist, Orgelbauer, Orgellehrer<br><u>Other Places of Activity</u>: Boston<br><br><br><u>Titel/Medien:</u><br><table><tbody><tr><th>Role</th><th>Sigel</th><th>Title</th><th>mXp-ID</th></tr><tr><td>Related</td><td>Hupfeld 1912</td><td>73. Hupfeld. Phonola. Generalkatalog. September 1912</td><td><a href="https://musixplora.de/mxp/5020600">5020600</a></td></tr><tr><td>Related</td><td>Hupfeld 1920</td><td>Original Phonola Künstler Rollen. II. Abteilung des Hauptkataloges</td><td><a href="https://musixplora.de/mxp/5020601">5020601</a></td></tr></tbody></table><br><u>Ereignisse:</u><br><table><tbody><tr><th>Role</th><th>Sigel</th><th>Title</th><th>mXp-ID</th></tr><tr><td>Komponist</td><td></td><td>Herstellung</td><td><a href="https://musixplora.de/mxp/6031352">6031352</a></td></tr></tbody></table><br><br><u>Changelog</u>:<br> - v0.0.1: Initial Upload.<br>
FIG. 21 in A Revision of Philander (Marsupialia: Didelphidae), Part 1: P. quica, P. canus, and a New Species from Amazonia
FIG. 21. Projections of specimen scores on the first two principal components (A) and on factors representing general size and size-invariant shape differences (B) from analyses of craniodental measurements of Philander canus (open triangles) and P. pebas (filled triangles). The coefficients of these axes are provided in table 13.
FIG. 22 in A Revision of Philander (Marsupialia: Didelphidae), Part 1: P. quica, P. canus, and a New Species from Amazonia
FIG. 22. Collecting specimens for this study (Philander pallidus, trapped at Lamanai Outpost Lodge, Orange Walk, Belize; 2012).
FIG. 20. Lower molar differences between Philander pebas and P in A Revision of Philander (Marsupialia: Didelphidae), Part 1: P. quica, P. canus, and a New Species from Amazonia
FIG. 20. Lower molar differences between Philander pebas and P. canus (see text for explanation). A, Labial view of right m1–m3 of P. pebas (MVZ 190343, holotype); B, labial view of right m1–m3 of P. canus (AMNH 210413). Abbreviations: pcid, postcingulid.
FIG. 18 in A Revision of Philander (Marsupialia: Didelphidae), Part 1: P. quica, P. canus, and a New Species from Amazonia
FIG. 18. Dorsal view of the rostrum in Philander canus (A, AMNH 133096) and P. opossum (B, AMNH 96608), illustrating differences in nasal morphology.
FIG. 14 in A Revision of Philander (Marsupialia: Didelphidae), Part 1: P. quica, P. canus, and a New Species from Amazonia
FIG. 14. Lateral view of P2–M1 of Philander canus (A, AMNH 210409) and P. quica (B, MVZ 182066). Whereas P3 has a complete labial cingulum that extends along the entire base of the tooth in P. canus, the labial cingulum of P3 is incomplete (extending only along the posterior part of that tooth) in P. quica.
FIG. 17 in A Revision of Philander (Marsupialia: Didelphidae), Part 1: P. quica, P. canus, and a New Species from Amazonia
FIG. 17. Projections of specimen scores on the first two principal components (A) and on factors representing general size and size-invariant shape differences (B) from analyses of craniodental measurements of Philander canus (open triangles) and P. opossum (filled circles). The coefficients of these axes are provided in table 12.
FIG. 16. Relationships among 46 cytochrome-b in A Revision of Philander (Marsupialia: Didelphidae), Part 1: P. quica, P. canus, and a New Species from Amazonia
FIG. 16. Relationships among 46 cytochrome-b sequences of Philander canus and P. pebas. This subtree shows the full details of the cartooned clades labeled "canus" and "pebas" in figure 5.
FIG. 15 in A Revision of Philander (Marsupialia: Didelphidae), Part 1: P. quica, P. canus, and a New Species from Amazonia
FIG. 15. Projections of specimen scores on the first two principal components (A) and on factors representing general size and size-invariant shape differences (B) from analyses of craniodental measurements of Philander quica (open circles) and P. opossum (filled circles). The coefficients of these axes are provided in table 10.
FIG. 13. Relationships among 28 cytochrome-b in A Revision of Philander (Marsupialia: Didelphidae), Part 1: P. quica, P. canus, and a New Species from Amazonia
FIG. 13. Relationships among 28 cytochrome-b sequences of Philander quica. This subtree shows the full details of the cartooned clade labeled "quica" in figure 5.
FIG. 12 in A Revision of Philander (Marsupialia: Didelphidae), Part 1: P. quica, P. canus, and a New Species from Amazonia
FIG. 12. Dorsal and ventral views of adult male crania of Philander species formally treated in this report: A, D, P. quica (MVZ 183247); B, E, P. canus (AMNH 210413); C, F, P. pebas (MVZ 190343, holotype). All views about ×1.3.
FIG. 10 in A Revision of Philander (Marsupialia: Didelphidae), Part 1: P. quica, P. canus, and a New Species from Amazonia
FIG. 10. Dorsal pelage of cis-Andean species of Philander compared in the text. From left to right: P. quica (MVZ 183246), P. canus (LACM 10086), P. pebas (MVZ 190343, holotype), P. mcilhennyi (LSU 16393), P. andersoni (LACM 91620), P. opossum (AMNH 266996). The dorsal fur of these species is always grayish or blackish in life, but museum skins often acquire brownish tones after long storage.
FIG. 6 in A Revision of Philander (Marsupialia: Didelphidae), Part 1: P. quica, P. canus, and a New Species from Amazonia
FIG. 6. Result of Bayesian analysis of concatenated sequence data from cytochrome b and five nuclear loci (Anon128, BRCA1, IRBP, OGT, SLC38) from exemplar specimens of each putative species (table 3). Gray boxes provide nodal support statistics (PP/BS) from analyses of nuclear genes only.
FIG. 7 in A Revision of Philander (Marsupialia: Didelphidae), Part 1: P. quica, P. canus, and a New Species from Amazonia
FIG. 7. Dendrogram resulting from UPGMA clustering of putative species of Philander using generalized distances computed from log-transformed craniodental measurement data (appendix 4).
FIG. 11 in A Revision of Philander (Marsupialia: Didelphidae), Part 1: P. quica, P. canus, and a New Species from Amazonia
FIG. 11. Ventral pelage of cis-Andean species of Philander compared in the text. From left to right: P. quica (MVZ 183246), P. canus (LACM 10086), P. pebas (MVZ 190343, holotype), P. mcilhennyi (LSU 16393), P. andersoni (LACM 91620), P. opossum (AMNH 266996).
FIG. 8 in A Revision of Philander (Marsupialia: Didelphidae), Part 1: P. quica, P. canus, and a New Species from Amazonia
FIG. 8. Dorsal, ventral, and lateral cranial views of Philander opossum (based primarily on AMNH 266387, an adult female from Paracou, French Guiana).
FIG. 19. Upper molar differences between Philander pebas and P in A Revision of Philander (Marsupialia: Didelphidae), Part 1: P. quica, P. canus, and a New Species from Amazonia
FIG. 19. Upper molar differences between Philander pebas and P. canus (see text for explanation). A, Occlusal view of left M2–M4 of P. pebas (MVZ 190343, holotype); B, occlusal view of left M2–M4 of P. canus (AMNH 210413). Abbreviations: poc, postcingulum; prc, precingulum.
FIG. 4 in A Revision of Philander (Marsupialia: Didelphidae), Part 1: P. quica, P. canus, and a New Species from Amazonia
FIG. 4. Dorsal and ventral cranial views and occlusal view of the maxillary dentition of Philander opossum, showing the anatomical limits of craniodental measurements defined in the text.
FIG. 9 in A Revision of Philander (Marsupialia: Didelphidae), Part 1: P. quica, P. canus, and a New Species from Amazonia
FIG. 9. Collection localities of examined specimens of Philander quica, P. canus, and P. pebas. The symbol for sympatry marks localities where P. canus and P. pebas have been collected together.
FIG. 5 in A Revision of Philander (Marsupialia: Didelphidae), Part 1: P. quica, P. canus, and a New Species from Amazonia
FIG. 5. Ultrametric tree from BEAST analysis of cytochrome-b sequences of Philander with putative species represented as cartooned terminals. Dashed vertical line indicates the threshold between Yule and coalescent processes as estimated by the likelihood implementation of the general mixed Yule coalescent model (GMYC). Bases of triangles at branch tips are proportional to the number of sequences belonging to each clade. Filled semicircles at each internal node indicate strong support from Bayesian (BEAST: PP) and maximum-likelihood (GARLI: BS) analyses of these data.
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.