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.
5,864
datasets available to search
ShareScore release 0.7.1
Dataset results
5,864 results for “species diversity”
FIGURE 8 in Unveiling a surprising diversity of the genus Diopatra Audouin & Milne Edwards, 1833 (Annelida: Onuphidae) in the Macaronesian region (eastern North Atlantic) with the description of four new species
FIGURE 8. Diopatra madeirensis (AM W.49214), scanning electron micrographs. A, Anterior part, ventral view; B, prostomium and peristomium, dorsal view; C, part of antenna, showing rows of sensory buds; D, magnified sensory buds; E, nuchal groove; F, parapodium of chaetiger 20, anterior view; G, magnified pectinate chaeta of previous image. Abbreviations: l = limbate chaeta, ng = nuchal groove; p = pectinate chaeta, psl = postchaetal lobe; SAHs = subacicular hooks.
FIGURE 12. Diopatra marocensis, photomicrographs. A in Unveiling a surprising diversity of the genus Diopatra Audouin & Milne Edwards, 1833 (Annelida: Onuphidae) in the Macaronesian region (eastern North Atlantic) with the description of four new species
FIGURE 12. Diopatra marocensis, photomicrographs. A, anterior end, dorsal view; B, tube of worm removed from sediment; C, tube in situ to show protruding tube-cap; D, same.
FIGURE 11 in Unveiling a surprising diversity of the genus Diopatra Audouin & Milne Edwards, 1833 (Annelida: Onuphidae) in the Macaronesian region (eastern North Atlantic) with the description of four new species
FIGURE 11. Diopatra mariae sp. nov., holotype (MNCN 16.01/17819), line drawings. A, Parapodium from chaetiger 2, anterior view; B, median robust pseudompound hook from chaetiger 2; C, upper slender pseudocompound hook from same; D, lower very slender pseudocompound hook from same; E, pectinate chaeta from chaetiger 42; F, subacicular hook from same. Abbreviations: lPCL = lower postchaetal lobe; uPCL = upper postchaetal lobe.
FIGURE 9 in Unveiling a surprising diversity of the genus Diopatra Audouin & Milne Edwards, 1833 (Annelida: Onuphidae) in the Macaronesian region (eastern North Atlantic) with the description of four new species
FIGURE 9. Diopatra madeirensis (AM W.49214), line drawings. A, Parapodium from chaetiger 1, anterior view; B, parapodium from chaetiger 11, anterior view (chaetae omitted, branchia shortened); C, median robust pseudompound hook; D, upper slender pseudocompound hook; E, lower very slender pseudocompound hook; F, mandibles; G, maxillae.
FIGURE 10 in Unveiling a surprising diversity of the genus Diopatra Audouin & Milne Edwards, 1833 (Annelida: Onuphidae) in the Macaronesian region (eastern North Atlantic) with the description of four new species
FIGURE 10. Diopatra mariae sp. nov., holotype (MNCN 16.01/17819), scanning electron micrographs. A, Sensory buds of antenna; B, parapodium of chaetiger 4, posterior view; C, same magnified, note lower postchaetal lobe folded onto parapodium; D, parapodium of chaetiger 20, anterior view; E, parapodium of chaetiger 42, anterior view; F, pectinate chaetae. Abbreviations: a, aciculae, b, branchia, dc = dorsal cirrus, = limbate chaeta, lPCL = lower postchaetal lobe; p = pectinate chaeta, PrCL = prechaetal lobe; SAHs = subacicular hooks; uPCL = upper postchaetal lobe; vc = ventral cirrus.
R code and data for "Intraspecific and intraindividual trait variability decrease with tree species richness in a subtropical tree diversity experiment"
<p>R codes and dataset for tha statistical analyses and production of figures in "Intraspecific and intraindividual trait variability decrease with tree species richness in a subtropical tree diversity experiment" by Castro Sánchez-Bermejo et al.</p>
Mushroom Species: Diversity, Utility, and Conservation
<p><i>Mushrooms, as a taxonomically diverse group of fungi, have garnered increasing scientific interest due to their ecological significance and extensive utility in various industries. This review contributes a comprehensive analysis that integrates the ecological, economic, and medicinal aspects of mushrooms, shedding light on the novel and holistic understanding of these remarkable organisms. It emphasizes the urgent requirement for a more cohesive approach to studying and preserving mushroom diversity, considering their integral role in ecosystems and their potential to address pressing global challenges. The primary aim of this paper is to provide a holistic assessment of mushroom species diversity, delve into their diverse utilities across various sectors, and emphasize the imperative need for their conservation. The article is based on an extensive examination of scientific literature, encompassing research articles, reports, and databases. The paper showcases the extraordinary diversity of mushroom species, with countless yet-to-be-identified species. Despite their ecological and economic importance, mushroom populations face formidable threats from habitat degradation, overharvesting, and climate change. Mushrooms, often overshadowed by more charismatic organisms, are indispensable components of ecosystems and hold tremendous potential for various industries. To ensure their sustained existence, comprehensive conservation strategies are imperative, including the establishment of protected areas, sustainable harvesting practices, and the promotion of cultivation techniques. Additionally, raising awareness among the public and policymakers about the multifaceted significance of mushrooms is essential. Finally, the paper recommends fostering interdisciplinary collaborations to explore untapped mushroom potential, incorporating mushroom conservation into biodiversity plans, and launching educational initiatives to heighten public awareness. This review serves as a foundational resource for future studies and initiatives aimed at preserving mushroom diversity and harnessing their manifold benefits for society and the environment</i>.</p>
Figure 1 in Long forsaken species diversity in the Middle American lizard Holcosus undulatus (Teiidae)
Figure 1. Geographical distribution of the formerly recognized subspecies of H. undulatus in Mexico (reproduced from Smith & Laufe, 1946); and sampling localities for H. undulatus. Numbers at dots refer to specific sample numbers of H. undulatus specimens used in this study. Locality data for these specimens are given in Table S1.
Figure 4 in Long forsaken species diversity in the Middle American lizard Holcosus undulatus (Teiidae)
Figure 4. Bayesian MCC species tree of H. undulatus inferred by simultaneous gene tree and species tree analysis of the mitochondrial and nuclear genes with *BEAST. Numbers above the branches are posterior probabilities.
Figure 3 in Long forsaken species diversity in the Middle American lizard Holcosus undulatus (Teiidae)
Figure 3. Geographical distribution of the six major, significantly supported haplotype clades identified in the Bayesian and ML phylogenetic analyses of the mitochondrial genes.
Figure 2 in Long forsaken species diversity in the Middle American lizard Holcosus undulatus (Teiidae)
Figure 2. Bayesian MCC tree of H. undulatus based on a partitioned analysis of the mitochondrial dataset. Outgroups are not shown. Numbers next to branches indicate posterior probability/bootstrap support values.
FIGURE 12 in Taxonomic diversity of racerunners with descriptions of two new Eremias species (Sauria: Lacertidae) from Central Iran
FIGURE 12. Dorsal patterns of syntopic Eremias pseudofasciata sp.nov. (RAN 4201; 4203–4205; 4208) and E. fasciata (RAN 4202, 4206) from type locality of the new species. Rounded light spots on the femur and tibia are noticeably smaller in E. pseudofasciata.
FIGURE 11 in Taxonomic diversity of racerunners with descriptions of two new Eremias species (Sauria: Lacertidae) from Central Iran
FIGURE 11. Morphological features of Eremias pseudofasciata sp. nov. a) general view of holotype ZMMU R-12982; b) dorsal patterns; c, e, f) three views of the head; d) precloacal region with well developed pores, marked on one side.
FIGURE 10 in Taxonomic diversity of racerunners with descriptions of two new Eremias species (Sauria: Lacertidae) from Central Iran
FIGURE 10. Eremias pseudofasciata sp. nov. a) in situ at the type locality; b) habitat of the new species near Boshehr city (type locality).
FIGURE 6 in Taxonomic diversity of racerunners with descriptions of two new Eremias species (Sauria: Lacertidae) from Central Iran
FIGURE 6. Phylogeny based on Bayesian inference analysis of Eremias. Values at nodes indicate posterior probabilities/ bootstrap support for BI/ML analyses, respectively. Coloration scheme representing main lineages corresponds to that in Fig. 1.
FIGURE 9 in Taxonomic diversity of racerunners with descriptions of two new Eremias species (Sauria: Lacertidae) from Central Iran
FIGURE 9. Sexual dimorphism in five species of Iranian Eremias with females in the left column and males in the right. a–b) Eremias fasciata; c–d) Eremias pseudofasciata sp. nov.; e–g) Eremias graphica sp. nov.; h–i) Eremias andersoni; j–k) Eremias lineolata.
FIGURE 13 in Taxonomic diversity of racerunners with descriptions of two new Eremias species (Sauria: Lacertidae) from Central Iran
FIGURE 13. The main species of Eremias discussed in the present work: a) E. andersoni, b) E. acutirostris, c) E. pseudofasciata sp. nov., d) E. fasciata, e) E. lineolata, g) E. graphica sp. nov., h) E. kavirensis, i) E. s. scripta, j) E. scripta pherganensis, k) E. lasdinii.
FIGURE 5 in Taxonomic diversity of racerunners with descriptions of two new Eremias species (Sauria: Lacertidae) from Central Iran
FIGURE 5. Principal Component Analysis (PCA) of the 24 metric and meristic features of five species of Eremias. See Material and Methods for more details.
FIGURE 1 in Taxonomic diversity of racerunners with descriptions of two new Eremias species (Sauria: Lacertidae) from Central Iran
FIGURE 1. Distribution of Eremias species in Central Asia and sampling localities used in this study. Stars correspond to the type localities of species: a) E. lineolata Lectotype (designated by Szczerbak 1974) ZISP 8801.1—"Feizabad-Nusi in Persia orientali" [Feizabad, Razavi Khorasan Province, Iran, 35.02° N 58.78° E], Coll. N. A. Zarudny, IV-V.1896 (in Ananjeva et al. 2020); b) E. fasciata Lectotype (designated by Szczerbak 1974) ZMB 9329—"Karman" = Kerman, Iran (exact locality unknown); c) E. acutirostris Syntype BMNH 1946.8.7.46—near Nushki, N. Baluchistan, Pakistan; d) E. scripta lasdini Holotype ZISP 12107—Uzbekistan, Surkhandarya Region, Sands Katta-Qumy, vicinity Termez, 18.05.1915, Coll. V.J. Lazdin; e) E. scripta scripta Lectotype (designated by Szczerbak, 1974:213) ZISP (ZIL) 3669—Transcaspia, "Aralo-Caspian desert" (exact locality unknown); f) E. scripta pherganensis Holotype NMNHU (National Museum of Natural History, National Academy of Sciences of Ukraine, Kiev) Re 6–Uzbekistan, Fergana Valley, Ak-Kum sands, 35.05.1969, Coll. E.V. Vashetko. For all other localities see Table 1.
FIGURE 4 in Taxonomic diversity of racerunners with descriptions of two new Eremias species (Sauria: Lacertidae) from Central Iran
FIGURE 4. Results of discriminant analysis of 86 specimens belonging to five species of Eremias by 24 morphometric and meristic characters.
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.