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.
1,338
datasets available to search
ShareScore release 0.9.0
Dataset results
1,338 results for “Iberian Peninsula.”
FIGURE 1. A in Evidence of cryptic speciation in a fossorial reptile: description of a new species of Blanus (Squamata: Amphisbaenia: Blanidae) from the Iberian Peninsula
FIGURE 1. A) Phylogenetic Maximum Likelihood (ML) relationship between the central and southwestern clades of Blanus cinereus based on ND4 and16S mitochondrial haplotypes. B. mettetali, B. tingitanus and B. strauchi are used as outgroups. Node numbers represent, from left to right, ML bootstrap values, Bayesian Inference posterior probabilities, Maximum Parsimony and Minimum Evolution bootstrap values. Bootstrap values below 50% are not shown. Inset: ML tree based on anonymous unknown nuclear locus (AUNL) haplotypes of three species of Blanus, showing the split between the southwestern and central clade in Blanus cinereus. B) Map of the Iberian Peninsula showing sampling localities of Blanus cinereus included in the DNA study. See Material Examined for further details. Grey dots represent populations of the southwestern clade, and black dots represent populations of the central clade. Modified from Albert et al., 2007.
FIGURE 5 in Evidence of cryptic speciation in a fossorial reptile: description of a new species of Blanus (Squamata: Amphisbaenia: Blanidae) from the Iberian Peninsula
FIGURE 5. Photograph showing the holotype of Blanus mariae MNCN44638, which is deposited in the Museo Nacional de Ciencias Naturales, Madrid, Spain. The scale shown in the lowest part of the picture is in centimeters.
FIGURE 4 in Evidence of cryptic speciation in a fossorial reptile: description of a new species of Blanus (Squamata: Amphisbaenia: Blanidae) from the Iberian Peninsula
FIGURE 4. Haplotypes of the anonymous unknown nuclear locus (AUNL) belonging to Blanus from Iberia (B. cinereus; central clade and B. mariae; southwestern clade) and from Morocco (B. tingitanus; Northern Morocco and B. mettetali; Southwestern Morocco). The following Genbank accession numbers correspond to these sequences: EI011512-EI011566.
FIGURE 3 in Evidence of cryptic speciation in a fossorial reptile: description of a new species of Blanus (Squamata: Amphisbaenia: Blanidae) from the Iberian Peninsula
FIGURE 3. Discriminate scores for percentage of individuals belonging to the central (grey color) and southwestern (black color) clades along Discriminate Function Analysis 1.
Figure 1 in Biodiversity of marine tardigrades from the northern coast of Portugal (Iberian Peninsula)
Figure 1. Map of northern Portugal showing sample collecting sites. Squares indicate intertidal rocky shores. Triangles indicate shallow subtidal soft bottoms. Circles mark intertidal sandy beaches.
Figure 2. A in Biodiversity of marine tardigrades from the northern coast of Portugal (Iberian Peninsula)
Figure 2. A, observed species accumulation curve (Sobs) and Chao2 species richness estimate for all samples. B, number of species, species restricted to a single habitat (unique) and singletons for each of the three studied habitats. C, nMDS ordinations for each of the sampled localities (note that two shallow subtidal localities are overlapped due to their high similarity).
Fig. 3 in What Caused the Disjunct Distributions of the Lachnaia tristigma Species-Group (Coleoptera: Chrysomelidae) on the Iberian Peninsula?
Fig. 3. Potential distributions of Lachnaia gallaeca (a, b), Lachnaia pseudobarathraea (c, d), and Lachnaia tristigma (e, f) during the Last Glacial Maximum as estimated from Bioclim (a, c, e) and Domain (b, d, f) models.
Fig. 2 in What Caused the Disjunct Distributions of the Lachnaia tristigma Species-Group (Coleoptera: Chrysomelidae) on the Iberian Peninsula?
Fig. 2. Climatic niches of Lachnaia gallaeca (red dots), Lachnaia pseudobarathraea (green dots), and Lachnaia tristigma (blue dots), as represented in two Principal Components Analysis axes (first axis (RC1) is correlated with precipitation; second axis (RC2) is correlated with temperature) for the core (a) and extended (b) datasets.
Fig. 1 in What Caused the Disjunct Distributions of the Lachnaia tristigma Species-Group (Coleoptera: Chrysomelidae) on the Iberian Peninsula?
Fig. 1. Known records for Lachnaia gallaeca (red dots), Lachnaia pseudobarathraea (green dots), and Lachnaia tristigma (blue dots), using the core (a) and extended (b) datasets.
Figure 6 in Morphology of the Podarcis wall lizards (Squamata: Lacertidae) from the Iberian Peninsula and North Africa: patterns of variation in a putative cryptic species complex
Figure 6. Observed frequencies for the different character states of the categorical pholidotic characters presenting sufficient variation across the sample examined, and multidimensional scaling (MDS) scatter plot of Manly's overlap index between lineages. White always represents character state 0 and black represents character state 1, except for SL_SUBOC, in which white represents state 4 and black represents state 5. See Table 1 for group codes, Material and methods for variable abbreviations, and Figure 1 for the visual symbols used to represent each lineage.
Figure 5 in Morphology of the Podarcis wall lizards (Squamata: Lacertidae) from the Iberian Peninsula and North Africa: patterns of variation in a putative cryptic species complex
Figure 5. Scatter plots of individuals scores (small symbols) and group means (big symbols) of the first three principal components of variation in continuous pholidotic traits for the mitochondrial lineages examined, considering males (top) and females (bottom) separately. The most highly (+, positively; -, negatively) contributing variables (Table 4) are indicated next to each axis. See Table 1 for group codes and Material and methods for variable abbreviations.
Figure 4 in Morphology of the Podarcis wall lizards (Squamata: Lacertidae) from the Iberian Peninsula and North Africa: patterns of variation in a putative cryptic species complex
Figure 4. Least-squares means for continuous pholidotic traits in the different mitochondrial lineages examined. Vertical bars denote the observed range. Females of each group are always presented first, denoted with a grey vertical bar, and males are in black. See Table 1 for group codes, Material and methods for variable abbreviations, and Figure 1 for the symbols used to represent each lineage. Notice that no data are available for SCGN and SDLN in the PHJS lineage (Table 3).
Figure 3 in Morphology of the Podarcis wall lizards (Squamata: Lacertidae) from the Iberian Peninsula and North Africa: patterns of variation in a putative cryptic species complex
Figure 3. Scatter plots of individual scores (small symbols) and group means (big symbols) of the first three principal components of body shape variation for the mitochondrial lineages examined, considering males (top) and females (bottom) separately. The most highly (+, positively; -, negatively) contributing variables (Table 4) are indicated next to each axis. See Table 1 for group codes and Material and methods for variable abbreviations.
Figure 2 in Morphology of the Podarcis wall lizards (Squamata: Lacertidae) from the Iberian Peninsula and North Africa: patterns of variation in a putative cryptic species complex
Figure 2. Least-squares means for multivariate body size and size-corrected biometric variables in the different mitochondrial lineages examined. Only the characters most relevant for global biometric variation and group discrimination (after principle components analysis and canonical variates analysis, respectively; see Results) are presented. Error bars denote ± standard deviation. Females of each group are always presented first, denoted with a grey vertical bar, and males are in black. See Table 1 for group codes, Material and methods for variable abbreviations, and Figure 1 for symbols used to represent each lineage.
Figure 1 in Morphology of the Podarcis wall lizards (Squamata: Lacertidae) from the Iberian Peninsula and North Africa: patterns of variation in a putative cryptic species complex
Figure 1. Mitochondrial DNA lineages sampled, maximum likelihood tree of phylogenetic relationships between them (A, modified from Kaliontzopoulou et al., 2011), and map of the localities from which the samples analysed morphologically were obtained (B).
FIGURE 5 in When unexpected guests come to eat: two new species of Phyllolabis Osten Sacken (Diptera: Limoniidae) collected with carrion-baited traps in the centre of the Iberian Peninsula
FIGURE 5. Ovipositor of Phyllolabis eiroae sp. nov. A. lateral view; B. dorsal view; C. ovipositor after cleared in KOH, indicating the spermathecae, lateral view; D. ovipositor after cleared in KOH, indicating the spermathecae, ventral view.
FIGURE 9 in When unexpected guests come to eat: two new species of Phyllolabis Osten Sacken (Diptera: Limoniidae) collected with carrion-baited traps in the centre of the Iberian Peninsula
FIGURE 9. Ovipositor of Phyllolabis martinhalli sp. nov. A. lateral view; B. dorsal view; C. ovipositor after cleared in KOH, indicating the spermathecae, lateral view; D. ovipositor after cleared in KOH, indicating the spermathecae, ventral view.
FIGURE 8 in When unexpected guests come to eat: two new species of Phyllolabis Osten Sacken (Diptera: Limoniidae) collected with carrion-baited traps in the centre of the Iberian Peninsula
FIGURE 8. Male terminalia of Phyllolabis martinhalli sp. nov. showing aedeagal complex, after cleared in KOH. A. dorsal view; B. lateral view; C. gonocoxite and gonostylus, lateral view; D. gonocoxite and gonostylus, dorsal view; E. aedeagal complex, lateral view; F. aedeagal complex, dorsal view.
FIGURE 4 in When unexpected guests come to eat: two new species of Phyllolabis Osten Sacken (Diptera: Limoniidae) collected with carrion-baited traps in the centre of the Iberian Peninsula
FIGURE 4. Male terminalia of Phyllolabis eiroae sp. nov. showing aedeagal complex, after cleared in KOH. A. dorsal view; B. lateral view; C. gonocoxite and gonostylus, lateral view; D. gonocoxite and gonostylus, dorsal view; E. aedeagal complex, lateral view; F. aedeagal complex, dorsal view.
FIGURE 11 in When unexpected guests come to eat: two new species of Phyllolabis Osten Sacken (Diptera: Limoniidae) collected with carrion-baited traps in the centre of the Iberian Peninsula
FIGURE 11. Male genitalia of the specimen of P. savtshenkoi from Jaén (Andalusia). A. dorsal view; B. ventral view; C. lateral view; D. gonocoxite and gonostylus, lateral view; E. gonocoxite and gonostylus, dorsal view; F. aedeagal complex, lateral view; G. aedeagal complex, dorsal view.
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.