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.
116
datasets available to search
ShareScore release 0.7.1
Dataset results
116 results for “Cingulata”
Supplementary material for "The inner ear anatomy of glyptodonts and pampatheres (Xenarthra, Cingulata): functional and phylogenetic implications"
<p><strong>Left_inner_ear_Doedicurus.stl</strong>: digital model of the inner ear of <em>Doedicurus </em>in stl format.</p> <p><strong>Left_inner_ear_Glyptodon.stl</strong>: digital model of the inner ear of <em>Glyptodon </em>in stl format.</p> <p><strong>Left_inner_ear_Holmesina.stl</strong>: digital model of the inner ear of <em>Holmesina</em> in stl format.</p> <p><strong>Left_inner_ear_Panochthus.stl</strong>: digital model of the inner ear of <em>Panochthus </em>in stl format.</p> <p><strong>Left_inner_ear_Pseudoplohophorus.stl</strong>: digital model of the inner ear of <em>Pseudoplohophorus </em>in stl format.</p> <p><strong>Matrix.nex:</strong> Matrix used to perform the phylogenetic analysis of xenarthrans based on inner ear characters.</p> <p><strong>PC1, PC2, PC3 loadings plot.pdf:</strong> Figures showing the loadings of the morphometric variables in each of the first three principal components.</p> <p><strong>Principal Components Analysis.xlsx:</strong> Spreadsheet with the results of the Principal Components Analysis: PC summary, PC scores, and PC loadings.</p> <p>T<strong>able S1. Deviation from orthogonality.pdf:</strong> Deviation from orthogonality (log<sub>10</sub>90var), and agility categories from Spoor et al. (2007).</p> <p><strong>Tree-PGLS.tre:</strong> Tree based on the most recent phylogenetic hypotheses using molecular and morphological data and time-scaled a posteriori, to perform the PGLS analysis with the morphological data of the inner ear.</p> <p> </p>
Fig. 4 in de Influencia edáfica en la creación de cuevas Chaetophractus vellerosus (Cingulata: Chlamyphoridae) en Matagusanos, San Juan, Argentina
Fig. 4. Número de cuevas y el tipo de consistencia en seco del suelo en cada zona del área de estudio. Para la consistencia se designó la clasificación de: Blando(si el suelo tiene débil coherencia y friabilidad, se deshace en polvo o granos sueltos bajo muy ligera presión) a la zona Distal, con Ligeramente duro (si el suelo resiste una presión ligera, pero se puede romper fácilmente entre el pulgar y el índice) a la zona Intermedia, y Duro (si el suelo resiste una presión moderada, apenas se puede romper entre el pulgar y el índice, pero se puede romper en las manos sin dificultad) a la zona Apical (FAO, 2022).
Fig. 7 in de Influencia edáfica en la creación de cuevas Chaetophractus vellerosus (Cingulata: Chlamyphoridae) en Matagusanos, San Juan, Argentina
Fig. 7. Distintas cuevas observadas en el área de estudio. a) Segmento con cuevas y con cobertura vegetal con su entrada ubicada hacia el Este del abanico aluvial. b) y c) Cuevas ubicadas en la zona central del abanico.
Fig. 5 in de Influencia edáfica en la creación de cuevas Chaetophractus vellerosus (Cingulata: Chlamyphoridae) en Matagusanos, San Juan, Argentina
Fig. 5. Análisis gráfico de la dependencia de las variables por zonas. a)Relación entre valor porcen- tual de cobertura vegetal observada y esperada, b) Relación entre el número de cuevas observado y esperado
Fig. 3 in de Influencia edáfica en la creación de cuevas Chaetophractus vellerosus (Cingulata: Chlamyphoridae) en Matagusanos, San Juan, Argentina
Fig. 3. Edafología de las zonas del abanico estudiado. a) Zona Intermedia, b) Zona Distal y c) Zona Apical
Fig. 2 in de Influencia edáfica en la creación de cuevas Chaetophractus vellerosus (Cingulata: Chlamyphoridae) en Matagusanos, San Juan, Argentina
Fig. 2. Mapa de ubicación geográfica del área de estudio y divisiones del abanico aluvial estudiado.
Fig. 1 in de Influencia edáfica en la creación de cuevas Chaetophractus vellerosus (Cingulata: Chlamyphoridae) en Matagusanos, San Juan, Argentina
Fig. 1. Mapa de ubicación de la provincia en la República Argentina y ubicación geográfica del departamento de Ullum
Fig. 2 in Short Communication First record of Scolopendra cingulata Latreille 1829 (Chilopoda: Scolopendromorpha: Scolopendridae) in NW Italy and biotope characterization
Fig. 2 - Juvenile Scolopendra cingulata, observed on 9 April 2021. / Giovane di Scolopendra cingulata osservato il 9 aprile 2021. (Photo / Foto: Luca Anselmo).
Fig. 1 in Short Communication First record of Scolopendra cingulata Latreille 1829 (Chilopoda: Scolopendromorpha: Scolopendridae) in NW Italy and biotope characterization
Fig. 1 - Adult Scolopendra cingulata, observed on 9 April 2021 (a) and the updated distribution in Italy (b): previous data come from CKmap (Zapparoli & Minelli, 2005) and GBIF (2021). / Adulto di Scolopendra cingulata, osservato il 9 aprile 2021 (a) e distribuzione aggiornata in Italia (b): i dati precedenti provengono da CKmap (Zapparoli & Minelli, 2005) e GBIF (2021).
Figures 11–16. Scolopendra cingulata Latreille, 1829 in A contribution to the centipede (Chilopoda: Geophilomorpha, Scolopendromorpha) fauna of Uzbekistan and Turkmenistan
Figures 11–16. Scolopendra cingulata Latreille, 1829 (PSU No. 1477): 11 – ultimate leg-bearing segment, ventral view; 12 – same, dorsal view; 13 – prefemur of left ultimate leg, dorsal view; 14 – same, ventral view; 15 – head, ventral view; 16 – anterior margin of forcipular coxosternite, ventral view. Scale: 1 mm.
Fig. 3 in Hábitos alimenticios de poblaciones periféricas de Zaedyus pichiy y Chaetophractus villosus (Cingulata, Chlamyphoridae) en la Patagonia chilena
Fig. 3. Gráficos boxplot Que representan la abundancia de taxones identificados en heces de a) Zaedyus pichiy (Desmarest, 1804) y b) Chaetophractus villosus (Desmarest, 1804) en EVCh y RNLC, Patagonia chilena.
Fig. 2 in Hábitos alimenticios de poblaciones periféricas de Zaedyus pichiy y Chaetophractus villosus (Cingulata, Chlamyphoridae) en la Patagonia chilena
Fig. 2. Curvas de acumulaciÓn de taxones identificados en heces de Zaedyus pichiy (Desmarest, 1804) (n=38) y Chaetophractus villosus (Desmarest, 1804) (n=72) en EVCh y RNLC, Patagonia chilena. Las lÍneas continuas representan las regresiones logÍsticas obtenidas a partir de los datos observados.
Fig. 5 in Hábitos alimenticios de poblaciones periféricas de Zaedyus pichiy y Chaetophractus villosus (Cingulata, Chlamyphoridae) en la Patagonia chilena
Fig. 5. Distribución de frecuencia del Índice de Pianka obtenida con simulaciones de Monte Carlo. La barra negra indica el intervalo donde se registro el valor observado del Índice (0,67).
Fig. 4 in Hábitos alimenticios de poblaciones periféricas de Zaedyus pichiy y Chaetophractus villosus (Cingulata, Chlamyphoridae) en la Patagonia chilena
Fig. 4. Curvas de rarefacciÓn de taxones, calculadas para a) Chaetophractus villosus (Desmarest, 1804) y b) Zaedyus pichiy (Desmarest, 1804) en EVCh y RNLC, Patagonia chilena. Se observa que C. villosus ponderó con 109 individuos una riqueza más alta que la observado en Z. pichiy con igual abundancia.
Fig. 1. a in Hábitos alimenticios de poblaciones periféricas de Zaedyus pichiy y Chaetophractus villosus (Cingulata, Chlamyphoridae) en la Patagonia chilena
Fig. 1. a) Áreas de distribuciÓn geográfica de los armadillos Zaedyus pichiy (Desmarest, 1804) y Chaetophractus villosus (Desmarest, 1804) en Sudamérica; b) ubicación de las áreas de estudio donde se colectaron heces de ambas especies de armadillos.
Linked collectors and determiners for: Taxonomic revision of the Dasypus kappleri complex, with revalidations of Dasypus pastasae (Thomas, 1901) and Dasypus beniensis Lönnberg, 1942 (Cingulata, Dasypodidae).
Natural history specimen data linked to collectors and determiners held within, "Taxonomic revision of the Dasypus kappleri complex, with revalidations of Dasypus pastasae (Thomas, 1901) and Dasypus beniensis Lönnberg, 1942 (Cingulata, Dasypodidae)". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/5f293e28-4f71-4042-a192-6a23feb15b70">https://bionomia.net/dataset/5f293e28-4f71-4042-a192-6a23feb15b70</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/5f293e28-4f71-4042-a192-6a23feb15b70">https://gbif.org/dataset/5f293e28-4f71-4042-a192-6a23feb15b70</a>. Formatted as a Frictionless Data package.
Site occupancy of Dasypus novemcinctus (Mammalia, Cingulata) and daily activity of four armadillo species in the Uruguayan Savanna and southern Atlantic Forest
<p>Datasets and R code for the research article "Site occupancy of Dasypus novemcinctus (Mammalia, Cingulata) and daily activity of four armadillo species in the Uruguayan Savanna and southern Atlantic Forest", published in Mammalian Biology. <a href="https://doi.org/10.1007/s42991-023-00366-3">https://doi.org/10.1007/s42991-023-00366-3</a></p>
Figure 2 in The vertebral column of Chaetophractus villosus (Desmarest, 1804) (Chlamyphoridae, Cingulata, Xenarthra): Anatomy and Thoracolumbar variation. Spinal cord relation
Figure 2. Trajectory of the vertebral artery and associated nerves in C. villosus. (A) Schematic drawing that shows the path of the vertebral artery along the cervical region in dorsal view. (B) Schematic drawing that shows the path of the vertebral artery within the lateral mass of the atlas in posterodorsal view.
Figure 1 in The vertebral column of Chaetophractus villosus (Desmarest, 1804) (Chlamyphoridae, Cingulata, Xenarthra): Anatomy and Thoracolumbar variation. Spinal cord relation
Figure 1. Major details in every region of the axial skeleton of C. villosus. (A-B) Anterior and posterior view of the atlas (C1), respectively. t.a. = transverse apophysis, ax.fc. = articular facet for the axis, ax.ne.fc. = articular facet for the neurapophysis of the axis, f.d. = fovea dentis, g.c. = glenoid cavity for the occipital bones, in lateral mass (l.m.), tb. = tuberosity, t.f. = transverse foramen. (C-D) Lateral and ventral view of the mesocervical bone (C2 + C3 + C4), respectively: od.pr. = odontoid process, ax. = axis, t.a. = transverse apophysis, ne. = neurapophysis. (E) left image: laterodorsal view of the axial region including the mesocervical bone, posterior free cervicals (C5-C7), and first thoracic vertebra (T1); right image: lateroventral view of the last free cervical (C7) and first thoracic vertebrae. ne. = neurapophysis, int.f. = intervertebral foramina, grey areas show the articular facets in C7 and T1 for the first rib. (F-G) dorsal and lateral views of the axial region between T4 and T7, respectively. Black arrowheads indicate the dorsal xenarthrales, me. = metapophysis, an. = anapophysis, tb.fc. = facet for the tubercle of the rib, cp.fc. = facet for the capitulum of the rib. The supplementary articulations (= xenarthrales) are clearly shown in the schematic drawing in the circular areas. (H) anterior (left) and posterior (right) view of T9 showing the pre- and postzygapophyses, respectively. Black arrowheads indicate the vertical component in both articular facets. (I) lateral view of the axial region between the last thoracics (T9-T11) and first lumbar (L1). Grey surfaces in T11 (also outlined in black) and L1 indicate the facets of the ventral xenarthrales. an. = anapophysis, a.dfc. = anterior demifacet for the capitulum of the rib, me. = metapophysis. (J-K) Dorsal and lateral views of the axial skeleton (with the exception of the caudal region) of a specimen that bears 11 thoracic and 3 lumbar vertebrae. ac. = Acetabulum, an. = anapophysis, a.r. = anterior ramus of the pubis, di.vb. = diaphragmatic vertebrae, il. = ilium, il.tb. = iliac tuberosity, is. = ischium, is.tb. = ischial tuberosity, me. = metapophysis, o.f. = obturator foramen, pb. = pubis, p.r. = posterior ramus of the pubis, S. = synsacral vertebrae, s.is.f. = sacroischial foramen, v.r. = ventral ramus of the pubis. * Dorsoventral curvature of the cervical vertebrae.
Figure 4 in The vertebral column of Chaetophractus villosus (Desmarest, 1804) (Chlamyphoridae, Cingulata, Xenarthra): Anatomy and Thoracolumbar variation. Spinal cord relation
Figure 4. Schematic drawing of the anterior face of Cd5 and its relationship with the caudal osteoderms. v.b. = vertebral body.
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.