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.
349
datasets available to search
ShareScore release 0.9.0
Dataset results
349 results for “tortoises”
Fig. 4 in A Different Perspective on Sex Dimorphism in the Adult Hermann's Tortoise: Geometric Morphometry.
Fig. 4. Dorsal view of landmarks used for the plastron. A, Landmark points used on the photo. B, The differences between females and males are indicated by landmarks (MorphoJ). The round marks represent the female, and extensions from those marks indicate the direction and changes in the male turtles.
Fig. 3. 95 in A Different Perspective on Sex Dimorphism in the Adult Hermann's Tortoise: Geometric Morphometry.
Fig. 3. 95% confidence ellipses for carapace landmarks (used past, Version 2.17c). PC1-PC2 and PC1-PC3. Blue dots are male; red dots are female.
Figure 4 in Using digital images in the study of fluctuating asymmetry in the spur-thighed tortoise Testudo graeca
Figure 4. The distribution of the differences between the average values for area (A), height (B), and width (C) for the left (LSP) and right (RSP) sides of the plastron relative to straight carapace length (SCL) and the corresponding average value in each SCL class (females n = 79, male n = 76).
Figure 5 in Using digital images in the study of fluctuating asymmetry in the spur-thighed tortoise Testudo graeca
Figure 5. The distribution of the differences between the average values for area (A), height (B), and width (C) for the left (LSP) and right (RSP) sides of the plastron relative to straight carapace length (SCL) and the corresponding average value in each CCL class (females n = 79, male n = 76).
Figure 2 in Activity patterns and habitat preference of eastern Hermann's tortoise (Testudo hermanni boettgeri) in Serbia
Figure 2. Percent of occurrence of tortoises in specific habitat types in consecutive years. For description of habitat types, see Section 2.2.
Figure 1 in Activity patterns and habitat preference of eastern Hermann's tortoise (Testudo hermanni boettgeri) in Serbia
Figure 1. The study area. The map was constructed with Google Earth. The white line borders the area where monitoring was conducted. Triangles mark the position of open habitat or grassland. Squares mark the position of human-modified habitat. Surface without symbols represents forest.
Figure 2 in Population Genetic Structure of Testudo hermanni boettgeri (Hermann's Tortoise) in Türkiye
Figure 2.UPGMA distance tree created using the Reynolds (1983) weighted model (the node values are bootstrap values estimated with 1000 permutations).
Figure 1 in Population Genetic Structure of Testudo hermanni boettgeri (Hermann's Tortoise) in Türkiye
Figure 1. Sampling localities of T. h. boettgeri (Loc 1: Malkara, Loc 2: Orhaniye, Loc 3: Hanlıyenice, Loc 4: Adasarhan, Loc 5: Balabanlı, Loc 6: İpsala, Loc 7: Hacılar, Loc 8: Şeytanderesi, Loc 9: Meriç, Loc10: Taşlısekban, Loc 11: Kırklareli, Loc 12: Çöpköy, Loc 13: Demirköy, Loc 14: Erikler, and Loc 15: Keşan; the colorations symbolize the clusters).
Figure 3 in Population Genetic Structure of Testudo hermanni boettgeri (Hermann's Tortoise) in Türkiye
Figure 3. Population assignment test performed with Structure. (A) Barplots that estimated membership coefficients of the analyzed individuals in each locality. (B) Barplot, K = 2, clusters for 8 groups in the UPGMA distance tree. (C) Graph of ∆K as a function of the number of groups K, (Evanno's method) (the numbers on the barplots symbolize the sampling localities).
Figure 4 in Population Genetic Structure of Testudo hermanni boettgeri (Hermann's Tortoise) in Türkiye
Figure 4. Maps of the population clusters (K) identified by GENELAND. (A) Map spatial distribution of each group defined, K = 2. (B) Map of the posterior probability defined, K = 2 (the numbers symbolize the sampling localities, the colors in A and B symbolize the clusters inferred in STRUCTURE).
Fig. 3 in Geographic range extension of Speke's Hinge-back Tortoise Kinixys spekii Gray, 1863
Fig. 3. Top: Lateral views of the putative hybrids from the Afungi Peninsula, Cabo Delgado Province, Mozambique, which have mtDNA sequences of Kinixys spekii but morphologically resemble K. zombensis. Bottom: Lateral views of genetically verified K. zombensis from KwaZulu-Natal Province, South Africa. Photos: Luke Verburgt and Flora Ihlow.
Fig. 1 in Geographic range extension of Speke's Hinge-back Tortoise Kinixys spekii Gray, 1863
Fig. 1. Known distribution of Kinixys spekii. Range according to TTWG (2017) is displayed as green shaded area. Open circles refer to iNaturalist observations, while solid green circles represent literature records and specimens deposited in scientific collections. Solid red circles correspond to genetically verified records, and triangles to name-bearing type specimens of Kinixys spekii and its synonyms.
Fig. 2 in Geographic range extension of Speke's Hinge-back Tortoise Kinixys spekii Gray, 1863
Fig. 2. Top: Lateral views of adult Kinixys lobatsiana (left) and K. spekii (right). Center: Ventral views of young (SCL 106 mm) and adult (SCL 161 mm) K. lobatsiana (left) and young (SCL 131 mm) and adult (SCL 151 mm) K. spekii (right). Note the strongly serrated posterior marginal scutes in K. lobatsiana compared to the smooth carapace rim in K. spekii. Bottom: Lateral views of adult K. natalensis (left) and young K. spekii (right). Photos: James Harvey and Flora Ihlow.
Fig. 4 in Geographic range extension for the Lobatse Hinge-back Tortoise, Kinixys lobatsiana (Power, 1927), with first records from the Soutpansberg region
Fig. 4. Top: Juvenile Lobatse Hinge-back Tortoise (Kinixys lobatsiana, SCL = 81 mm) from Sigurwana, western Soutpansberg, Limpopo. Bottom: Young Speke's Hinge-back Tortoise (K. spekii, SCL = 106 mm) from Leshiba Wilderness, western Soutpansberg. Scale bar: 1 cm. Species identification of both tortoises was genetically confirmed. Photos by Flora Ihlow.
Fig. 5 in Geographic range extension for the Lobatse Hinge-back Tortoise, Kinixys lobatsiana (Power, 1927), with first records from the Soutpansberg region
Fig. 5. Speke's Hinge-back Tortoise (Kinixys spekii) from the vicinity of Vaalwater (left) and Lobatse Hinge-back Tortoise (K. lobatsiana) from the Lapalala Wilderness Reserve (right) with very similar color patterns. Species identification of both tortoises was genetically confirmed. Photos by Flora Ihlow.
Fig. 2 in Geographic range extension for the Lobatse Hinge-back Tortoise, Kinixys lobatsiana (Power, 1927), with first records from the Soutpansberg region
Fig. 2. Distribution range of the Lobatse Hinge-back Tortoise (Kinixys lobatsiana) according to TTWG (2017), with genetically confirmed range extensions (dots), not yet processed samples (dots with bold black outline), and recent observations (triangles). Observations marked with an asterisk refer to collection material in the Ditsong National Museum of Natural History (TM 36366, TM 67909, TM 79431). Right: Characteristic habitats from different parts of the distribution range. Photos by Flora Ihlow.
Fig. 1 in Geographic range extension for the Lobatse Hinge-back Tortoise, Kinixys lobatsiana (Power, 1927), with first records from the Soutpansberg region
Fig. 1. Putative range of the Lobatse Hinge-back Tortoise (Kinixys lobatsiana) according to TTWG (2017), with historic records compiled from scientific collections. Inset: K. lobatsiana from the Lapalala Wilderness Reserve. Photo by Flora Ihlow.
Fig. 3 in Geographic range extension for the Lobatse Hinge-back Tortoise, Kinixys lobatsiana (Power, 1927), with first records from the Soutpansberg region
Fig. 3. Lobatse Hinge-back Tortoise (Kinixys lobatsiana, TM 36366) collected at Rochdale Farm, Waterpoort, from the Ditsong National Museum of Natural History. Photo by Adriaan Jordaan.
Fig. 3 in Hyalomma aegyptium the dominant hard tick in tortoises Tesdudo hermanni boettgeri found in different regions of Albania
Fig. 3. Presence of Hyalomma ticks on the Hermann'tortoise shell A. Two ticks fixed in the sutures of the left inguinal scute in the female tortoise; B. Tick presented in the marginal scute of the carapace on male tortoise; C. One tick fixed in the suture between plastron and inguinal scute and the second tick is found deeply in suture of right inguinal suture in female tortoise.
Fig. 2 in Hyalomma aegyptium the dominant hard tick in tortoises Tesdudo hermanni boettgeri found in different regions of Albania
Fig. 2. Hyalomma ticks in different Hermann's tortoise body part A. Tick fixed in the right inguinal region in female tortoise; B. Tick fixed in the base of the tail of female tortoise; C. Tick fixed in the left hind leg of female tortoise.
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.