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.
7,081
datasets available to search
ShareScore release 0.7.1
Dataset results
7,081 results for “Habitats”
Supplementary material for: "Who gets the pole position? Spatial and social behaviour of snowfinches at winter feeders in Alpine habitat"
<p><strong>Abstract</strong></p> <p><span>In collective foraging, an individual’s ability to compete with conspecifics can considerably influence its foraging strategy and success. Strong competitors can fight for prioritised access to food, while weak competitors may avoid aggressions and rather seek out less contested foraging opportunities. However, insecure access to food can be detrimental to weak competitors, especially during periods of low and unpredictable resource availability. Here we investigated individual foraging behaviour of White-winged snowfinches <em>Montifringilla nivalis</em>, specialists of alpine habitats and their strategies for coping with competition for food resources in winter. A difference in condition dependence of survival rates between males and females in this species has made us hypothesise that males may be more dominant in accessing food resources than females. We set up artificial experimental food patches in the Swiss Alps to observe foraging male and female snow finches and recorded their behaviour in interactions with conspecifics and their spatial position relative to the food. We found that individuals frequently occupying positions close to the food resources were more involved in agonistic interactions than individuals staying in more distant positions.</span><span> </span><span>This result suggests that different individuals use different foraging strategies, probably depending on their level of competitiveness. Furthermore, we observed males to forage slightly closer to the food source than females,</span><span> </span><span>which could imply that females may have less access to artificial feeders than males. </span></p>
Data from: Phenology of penaeid shrimp nursery habitat use: trends and environmental drivers over four decades
<p>These datasets are those used in analysis published in Batchelder et al. 2024 (for full abstract see: https://doi.org/10.3354/meps14741). </p>
Distribution of the Natura 2000 habitat type 7220 (Cratoneurion) in Flanders and Brussels Capital Region, Belgium (version 2025)
<p>The dataset is a geospatial collection of points that correspond with the presence or absence of the Natura 2000 habitat type <code>7220</code> (Petrifying springs with tufa formation (<em>Cratoneurion</em>)) in springs and streaming water segments in the Flemish and Brussels Capital Region, Belgium. The dataset also contains a number of locations that were visited during mapping projects but where <code>7220</code> was found absent, or where additional survey is needed to decide on presence/absence of the habittype. The file is a GeoJSON format RFC7946 (WGS84).</p> <p>The data source is produced, owned and administered by the Research Institute for Nature and Forest (INBO, Department of Environment of the Flemish government).</p> <p>Headers are: </p> <ul> <li><code>id</code>; </li> <li><code>source</code>: original data source;</li> <li><code>validity status</code>: field inventory carried out (<code>gecontroleerd</code>) or not (<code>niet gecontroleerd</code>);</li> <li><code>name</code>: unique name of the site;</li> <li><code>system_type</code>: stream type (<code>rivulet</code>), mire type (<code>mire</code>), unknown (<code>unknown</code>) or na (<code>NA</code>);</li> <li><code>habitattype</code>: <code>7220</code>, no Natura 2000 type <code>(gh)</code>, unconfirmed <code>7220</code> <code>(7220, gh)</code>, alkaline fen<code>(7230)</code>;</li> <li><code>unit_id</code>: spatially related sites are identified by a common identifier</li> <li><code>area_m2</code>: area in square meters;</li> <li><code>year</code>: year of field inventory;</li> <li><code>sbz</code>: inside (1) or outside (0) special area of conservation;</li> <li><code>geometry</code>: latitude, longitude in decimal degrees.</li> </ul>
CLDF dataset derived from Grollemund et al.'s "Bantu expansion shows habitat alters the route and pace of human dispersals" from 2015
<p>Cite the source of the dataset as:</p> <blockquote> <p>Grollemund, Rebecca, Branford, Simon, Bostoen, Koen, Meade, Andrew, Venditti, Chris, & Pagel, Mark (2015) Bantu expansion shows habitat alters the route and pace of human dispersals. Proc Natl Acad Sci USA. doi:10.1073/pnas.1503793112.</p> </blockquote>
Fig. 4 in Rediscovery of two species of Croton (Euphorbiaceae) from littoral habitats of eastern Madagascar
Fig. 4. – Croton chapelieri Baill. (A-F) and C. vatomandrensis Leandri (G-L). A-C. Staminate flower: side view (A), top view (B) and top view with stamens removed to show the five nectaries (C). D-F. Pistillate flower: side view (D), top view (E), and top view with ovary removed to show the five nectaries (F). G-I. Staminate flower: side view (G), top view (H), and top view with stamens removed to show the five nectaries (I). J-L. Pistillate flower: side view (J), top view (K), and top view with ovary removed to show the five nectaries (L). [A-F: van Ee et al. 1181; G-L: van Ee et al. 1194]
Fig. 2. – Croton chapelieri Baill. A in Rediscovery of two species of Croton (Euphorbiaceae) from littoral habitats of eastern Madagascar
Fig. 2. – Croton chapelieri Baill. A. Typical littoral habit at Mahabo, Atsimo-Atsinanana Region, Fianarantsoa Province; B. Shrubs growing
Fig. 1 in The impact of land use on species composition and habitat structure in Sudanian savannas - A modelling study in protected areas and agricultural lands of southeastern Burkina Faso
Fig. 1. − Study area including the Pama reserve and neighbouring PAs of the western WAPO complex. The Pama, Tindangou and Madjoari areas are enclaves where agriculture is allowed. The small country map in the lower right shows the position of the study area within Burkina Faso.
Fig. 3 in The impact of land use on species composition and habitat structure in Sudanian savannas - A modelling study in protected areas and agricultural lands of southeastern Burkina Faso
Fig. 3. − Maps of mean maximum plant size (calculated as average of maximum plant size of all species predicted as present within a grid cell). A. Grasses (Poaceae) (30-360 cm); B. Woody species (3-25 m). The color coding stretches from light yellow for the lowest values via orange and red to violet for the highest values.
Fig. 2 in The impact of land use on species composition and habitat structure in Sudanian savannas - A modelling study in protected areas and agricultural lands of southeastern Burkina Faso
Fig. 2. − Maps of species richness. A. All plant species (2-211 spp.); B. Graminoids (0-50 spp.); C. Forbs (0-86 spp.); D. Woody species (0-52 spp.); E. Weedy species (0-48 spp.); F. Non-weedy species (0-140 spp.). The color coding stretches from light yellow for the lowest values via orange and red to violet for the highest values.
Fig. 5 in Rugosuscandona, a New Genus of Candonidae (Crustacea: Ostracoda) from Groundwater Habitats in Texas, North America
Fig. 5. Rugosuscandona scharfi gen. nov. sp. nov. A, B, E: holotype male (OK-TX-AW016-008: 01), C, D: allotype female (OK-TX- AW016-008: 02). A) T2, B) T3, C) T1, D) UR with genital organ and furcal attachment, E) labium. Scale bar: 100 µm.
Fig. 4 in Rugosuscandona, a New Genus of Candonidae (Crustacea: Ostracoda) from Groundwater Habitats in Texas, North America
Fig. 4. Rugosuscandona scharfi gen. nov. sp. nov. A, B, D, E: holotype male (OK-TX-AW016-008: 01), C: allotype female (OK-TX- AW016-008: 02). A) A1, B) A2, C) A2, D) Md, E) Mxl with vibratory plate. Scale bar: 100 µm.
Fig. 3 in Rugosuscandona, a New Genus of Candonidae (Crustacea: Ostracoda) from Groundwater Habitats in Texas, North America
Fig. 3. SEM photographs of Rugosuscandona scharfi gen. nov. sp. nov. removed RV, paratype (OK-TX-AW016-008: 07) female. A) LV, interior view, B) right pair of A2, C) UR shown with thin arrow, D) sperm packs, E) close view of sperm packs. Scale bars: 100 µm for A; 10 µm for B–E. Arrows indicate forward.
Fig. 2 in Rugosuscandona, a New Genus of Candonidae (Crustacea: Ostracoda) from Groundwater Habitats in Texas, North America
Fig. 2. SEM photographs of carapace of Rugosuscandona scharfi gen. nov. sp. nov. A, C, D, H, I: paratype (OK-TX-AW016-008: 05) male. B, E, F, G, J: paratype (OK-TX-AW016-008: 06) female. A) right side view, B) dorsal view, C) posterior end of right side, D) anterior end of right side, E) dorsal view of anterior margin, F) dorsal view of posterior margin, G) pore canals on dorsal side, H) central muscle scars, I) pore canals on anterior end, J) pore canals and surface ornamentation. Scale bars: 100 µm for A, B; 10 µm for C–J. Arrows indicate forward.
Fig. 6 in Rugosuscandona, a New Genus of Candonidae (Crustacea: Ostracoda) from Groundwater Habitats in Texas, North America
Fig. 6. Rugosuscandona scharfi gen. nov. sp. nov. holotype male (OK-TX-AW016-008: 01). A) left clasping organ, B) right clasping organ, C) Zenker's organ, D) hemipenis. Scale bar: 100 µm.
Fig. 1 in Geographic Variation In Habitat Requirements Of Two Coexisting Newt Species In Europe
Fig. 1. (A) Distribution of the northern crested newt (Triturus cristatus) and (B) the smooth newt (T. vulgaris) in Europe (ARNOLD 2002), and their habitat studies performed by country. The symbols indicate (i) landscape types where study was conducted (1 = woodland mosaic with bogs; 2 = woodland mosaic with semi-natural areas; 3 = woodland mosaic with agricultural areas; 4 = inland dunes; 5 = bogs; 6 = agricultural areas; 7 = urban areas) and (ii) the inclusion of terrestrial and aquatic habitat features (filled symbols – both examined; half filled – aquatic habitat only; hollow symbol – terrestrial habitat only). Vegetation zones (according to AASMÄE 2005): A, tundra; B, alpine tundra; C, taiga; D, tem-
Figure 10 in Habitat characteristics of two scorpion species, Liocheles australasiae (Fabricius, 1775) and Isometrus maculatus (De Geer, 1778) in Miyako Islands, Japan
Figure 10: Figure 10A. Southwestern part of Shimojishima Island, location. Red point: place of discovery. Figure 10B. Environment. Figure 10C. A discovered juvenile of Isometrus maculatus.
Figures 1–3 in Habitat characteristics of two scorpion species, Liocheles australasiae (Fabricius, 1775) and Isometrus maculatus (De Geer, 1778) in Miyako Islands, Japan
Figures 1–3: Figure 1. Location of Nansei Islands and Bonin Islands. Figure 2. Distribution of Liocheles australasiae (Fabricius, 1775) in the Nansei Islands. Figure 3. Distribution of Isometrus maculatus (De Geer, 1778) in the Nansei Islands.
Figure 4 in Habitat characteristics of two scorpion species, Liocheles australasiae (Fabricius, 1775) and Isometrus maculatus (De Geer, 1778) in Miyako Islands, Japan
Figure 4: Figure 4A. Northeastern part of Kurimajima Island, location. Red point: place of discovery. Figure 4B. Environment. Figure 4C. A discovered female of Liocheles australasiae. Figure 4D. A discovered Porcellio scaber.
Figure 11 in Habitat characteristics of two scorpion species, Liocheles australasiae (Fabricius, 1775) and Isometrus maculatus (De Geer, 1778) in Miyako Islands, Japan
Figure 11: Figure 11A. Central part of Shimojishima Island, location. Red point: place of discovery. Figure 11B. Environment. Figure 11C. A discovered female of Isometrus maculatus.
Figure 6 in Habitat characteristics of two scorpion species, Liocheles australasiae (Fabricius, 1775) and Isometrus maculatus (De Geer, 1778) in Miyako Islands, Japan
Figure 6: Figure 6A. Southeast part of Irabujima Island, location. Red point: place of discovery. Figure 6B. Environment. Figure 6C. A discovered female of Liocheles australasiae.
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.