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.
9,153
datasets available to search
ShareScore release 0.7.1
Dataset results
9,153 results for “behavior”
Fig. 4 in Feeding behavior and activity period of three Neotropical bat species (Chiroptera: Phyllostomidae) on Musa paradisiaca inflorescences (Zingiberales: Musaceae)
Fig. 4. Activity period of (A) two glossophagine species (Anoura caudifer + Glossophaga soricina) and Phyllostomus discolor on Musa paradisiaca inflorescence, and of (B) two approaching strategies (upside landing and hovering) performed by two glossophagine species in an orchard located in the state of São Paulo, Brazil.
Fig. 3 in Feeding behavior and activity period of three Neotropical bat species (Chiroptera: Phyllostomidae) on Musa paradisiaca inflorescences (Zingiberales: Musaceae)
Fig. 3. Phyllostomus discolor (Wagner, 1843) with its wings completely open and its head directed toward the flowers performing the downside landing strategy on the banana inflorescence in an orchard located in the state of SÃo Paulo, Brazil. Photo: Wilson Uieda.
Fig. 2 in Feeding behavior and activity period of three Neotropical bat species (Chiroptera: Phyllostomidae) on Musa paradisiaca inflorescences (Zingiberales: Musaceae)
Fig. 2. Glossophaga soricina (Pallas, 1766) with its wings folded alongside the body performing the upside landing strategy on the banana inflorescence in an orchard located in the state of SÃo Paulo, Brazil. Photo: Wilson Uieda.
Fig. 1 in Feeding behavior and activity period of three Neotropical bat species (Chiroptera: Phyllostomidae) on Musa paradisiaca inflorescences (Zingiberales: Musaceae)
Fig. 1. Anoura caudifer (É. Geoffroy, 1818) with its snout partially inserted in floral tube performing the hovering strategy on the banana inflorescence in an orchard located in the state of SÃo Paulo, Brazil. Photo: Wilson Uieda.
Fig. 1. Phyllodytes luteolus Wied, 1824 in Disgusting or delicious? Predatory behavior of the hylid frog Phyllodytes luteolus on sympatric ants
Fig. 1. Phyllodytes luteolus Wied, 1824 manipulating its prey, an ant of the genus Gnamptogenys. Note that the frog has kept the abdominal region of the ant outside of the mouth in order to prevent injuries caused by its sting.
Recordings of zebra finch group behaviors with manually annotated vocal segments
<div> <div>This dataset contains recording files and manually annotated vocal segments of freely behaving zebra finches in the BirdPark. The files contain animal-borne accelerometer, microphone and video channels. Birds are housed in groups of different sizes (2, 4, or 8 birds, (one 7-mins file per group). The dataset contains 112 mins of recordings from 4 different experiments.</div> </div> <p>The dataset is published as an appendix of the following paper:</p> <p><a href="https://doi.org/10.1101/2022.09.23.509166">Rüttimann, L., Wang, Y., Rychen, J., Tomka, T., Hörster, H., Rocha, M. D., & Hahnloser, R. H. (2024). Multimodal system for recording individual-level behaviors in songbird groups. bioRxiv.</a></p> <p>See the README.pdf file for a detailed description.</p>
Figure 5 in Predator exposure and size-related variation in web-building and web-decorating behavior in Argiope appensa
Figure 5. Frequency distribution of cruciate-patterned web decorations from spiders in Rota and Guam. Stacks represent size class of spiders.
Figure 1 in Predator exposure and size-related variation in web-building and web-decorating behavior in Argiope appensa
Figure 1. Web decoration in A. appensa: (A) close-up of web decoration; (B) linear/ diagonal pattern; (C) cruciate pattern.
Figure 3 in Predator exposure and size-related variation in web-building and web-decorating behavior in Argiope appensa
Figure 3. Variation in web-building behavior in A. appensa between locations and between spider size class categories, (A) web diameter, SNK: small <medium <large; and (B) web decoration length, SNK: small = medium <large. Dashed lines represent the mean for each location with all the size classes pooled.
Fig. 3 in Decompression syndrome and diving behavior in Odontochelys, the first turtle
Fig. 3. Enface view of right proximal humeral articular surface of Odontochelys semitestacea Li, Wu, Rieppel, Wang, and Zhao, 2008 from the Lower Carnian (Upper Triassic) Wayao Member of the Falang Formation; Guanling, Guizhou Province, southwest China (IVPP V 13240). Irregular defect (arrow) is characteristic for the avascular necrosis found with decompression syndrome.
Fig. 2 in Decompression syndrome and diving behavior in Odontochelys, the first turtle
Fig. 2. Enface view of left proximal humeral articular surface of Odontochelys semitestacea Li, Wu, Rieppel, Wang, and Zhao, 2008 from the Lower Carnian (Upper Triassic) Wayao Member of the Falang Formation; Guanling, Guizhou Province, southwest China (IVPP V 13240). Irregular defect (arrow) is characteristic for the avascular necrosis found with decompression syndrome.
Fig. 1 in Decompression syndrome and diving behavior in Odontochelys, the first turtle
Fig. 1. Ventral view of anterior body of Odontochelys semitestacea Li, Wu, Rieppel, Wang, and Zhao, 2008 from the Lower Carnian (Upper Triassic) Wayao Member of the Falang Formation; Guanling, Guizhou Province, southwest China (IVPP V 13240). Defects are present on proximal humeral articular surfaces.
Data for dual behavioral-physiological buffering of mothers' milk
<p>This file (Ariaal_dual_buffering_data) contains the dataset used for the journal article manuscript entitled, "Dual behavioral-physiological buffering of mothers’ milk facilitate drought adaptability of pastoralists and agropastoralists in northern Kenya" by Fujita, Wander, Straight, and Wamwere-Njoroge. This manuscript is under review for publication as of August, 2024. The variables and data are found under the data tab, and the data coding information in the info & code tab.</p> <p> </p> <p>Please contact Masako Fujita (ORCID 0000-0001-9173-6678, E-mail masakof@msu.edu) for questions regarding the data.</p> <p> </p> <p>Condition for data use: Please cite DOI (DOI: 10.5281/zenodo.13285825) for this data file and the article, and acknowledge the support from the grant agencies listed below:</p> <p>Data source/article:</p> <p>Fujita M. 2024. Data for dual behavioral-physiological buffering of mothers' milk. DOI: 10.5281/zenodo.13285825.</p> <p>Fujita M, Wander K, Straight B, Wamwere-Njoroge G. [Year] Dual behavioral-physiological buffering of mothers’ milk facilitate drought adaptability of pastoralists and agropastoralists in northern Kenya. [Journal name, article DOI].</p> <p>Grant support:</p> <p> National Science Foundation (BCS-0622358, BCS-1638167)</p> <p> Wenner-Gren Foundation (Gr. 7460, Gr. 9278)</p>
Fig. 1 in Behavioral repertoires and interactions between Apis mellifera (Hymenoptera: Apidae) and the native bee Lithurgus littoralis (Hymenoptera: Megachilidae) in flowers of Opuntia huajuapensis (Cactaceae) in the Tehuacán desert
Fig. 1. Behavior accumulation curves of bees in 150 flowers of Opuntia huajuapensis. A: Apis mellifera (1) and Lithurgus littoralis (2). B: L. littoralis females (3) and L. littoralis males (4). Dotted lines indicate the 95% confidence intervals.
Fig. 2 in Behavioral repertoires and interactions between Apis mellifera (Hymenoptera: Apidae) and the native bee Lithurgus littoralis (Hymenoptera: Megachilidae) in flowers of Opuntia huajuapensis (Cactaceae) in the Tehuacán desert
Fig. 2. Time spent (A) and mean feeding duration (B) in flowers of Opuntia huajuapensis by Apis mellifera females and Lithurgus littoralis females and males. No A. mellifera males were recorded at any time during the experiment. Vertical bars indicate 95% confidence intervals.
Fig. 1 in Additional evidence for the drilling behavior of Paleozoic gastropods
Fig. 1. Specimens of Arthroacantha carpenteri (Hinde, 1885) with drillholes. Each photograph displays the anal interray, position of the anal vent (single arrowheads), and the location of platyceratid drillholes (double arrowheads); scale bar 1 cm. Note the presence of a reaction rim surrounding the drillhole and underdeveloped spine facets below it. Specimens are deposited at the University of Michigan Museum of Paleontology (UMMP). A. UMMP 73711. B. UMMP 73712.
Associations between Perceived Cancer Impact and Measures of Health Behavior in Survivors of Childhood Cancer
<p>This dataset corresponds to a manuscript titled "Associations between Perceived Cancer Impact and Measures of Health Behavior in Survivors of Childhood Cancer" which can be found in the Journal of Cancer Survivorship. https://doi.org/10.1007/s11764-024-01667-3</p>
Figure 2 in A Physiological behavior and tolerance of Lactuca sativa to lead nitrate and silver nitrate heavy metals
Figure 2. Leaves of lettuce under lead and silver nitrate concentrations. A: 0 mg.Kg-1 Pb and Ag; B: 12,5 mg.Kg-1 Ag; C: 25 mg.Kg-1 Ag; D: 37 mg.Kg-1 Ag; E: 90 mg.Kg-1 Pb; F: 180 mg.Kg-1 Pb and G: 270 mg.Kg-1 Pb. Ade: adaxial epidermis;Chp:Chlorophyll parenchyma; Tr:trichome; X: xylem; Abe: abaxial epidermins P: phoema Hy: Hypodermis; VB:vascular bundles; AB: Assesory bundles Bars 50µm.
Figure 1 in A Physiological behavior and tolerance of Lactuca sativa to lead nitrate and silver nitrate heavy metals
Figure 1. Germination and growth characteristics of lettuce plants subjected to increasing lead and Ag concentrations. A) Emergence speed index and emergence mean time; B) Emergence percentage; C) Plant height as a function of lead and silver concentrations; D) Behavior of leaf area in plants subjected to lead; E) SPAD as a function of lead and silver concentrations; F) Weight of dry matter. Each point on the graphs represents an average of 50 repetitions. The standards variations vary between ±2.5 and ±6.8 around the average from the graphs at the different points.
Figure 3 in A Physiological behavior and tolerance of Lactuca sativa to lead nitrate and silver nitrate heavy metals
Figure 3. Roots of lettuce under lead and silver nitrate concentrations. A: 0 mg.Kg-1 Pb and Ag; B: 12,5 mg.Kg-1 Ag; C: 25 mg.Kg-1 Ag; D: 37 mg.Kg-1 Ag; E: 90 mg.Kg-1 Pb; F: 180 mg.Kg-1 Pb and G: 270 mg.Kg-1 Pb. En: endoderm; Ep: epidermis; Ex: exoderm; Co: cortex; Px: protoxylem; Mx: metaxylem. Bars: 50µm.
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.