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.
4,028
datasets available to search
ShareScore release 0.7.1
Dataset results
4,028 results for “Behaviour”
Figure 8 in Ecology and behaviour of the 'road tarantulas' Eupalaestrus weijenberghi and Acanthoscurria suina (Araneae, Theraphosidae) from Uruguay
Figure 8. Temporal distribution of males, females and juveniles of Acanthoscurria suina collected in pit-fall traps.
Figure 4 in Ecology and behaviour of the 'road tarantulas' Eupalaestrus weijenberghi and Acanthoscurria suina (Araneae, Theraphosidae) from Uruguay
Figure 4. Schematic representation of burrows of Acanthoscurria suina and Eupalaestrus weijenberghi; ch, chamber; tt, terminal tube (see text).
Figure 1 in Ecology and behaviour of the 'road tarantulas' Eupalaestrus weijenberghi and Acanthoscurria suina (Araneae, Theraphosidae) from Uruguay
Figure 1. Map of Uruguay with the routes and roads surveyed in the study, showing the distribution of Eupalaestrus weijenberghi (triangles), and the five sites where density studies were performed (stars). Each triangle represents the occurrence of one or more individuals of the species.
Figure 10 in Ecology and behaviour of the 'road tarantulas' Eupalaestrus weijenberghi and Acanthoscurria suina (Araneae, Theraphosidae) from Uruguay
Figure 10. Temporal distribution of moults of adult Eupalaestrus weijeberghi under laboratory conditions.
Figure 9 in Ecology and behaviour of the 'road tarantulas' Eupalaestrus weijenberghi and Acanthoscurria suina (Araneae, Theraphosidae) from Uruguay
Figure 9. Temperature, atmospheric pressure, relative humidity and rainfall during the trap capture period in the two sites studied (Melilla and Carrasco).
Figure 7 in Ecology and behaviour of the 'road tarantulas' Eupalaestrus weijenberghi and Acanthoscurria suina (Araneae, Theraphosidae) from Uruguay
Figure 7. Temporal distribution of males, females and juveniles of Eupalaestrus weijenberghi collected in pit-fall traps.
Figure 12 in Ecology and behaviour of the 'road tarantulas' Eupalaestrus weijenberghi and Acanthoscurria suina (Araneae, Theraphosidae) from Uruguay
Figure 12. Defensive threat display of a male Acanthoscurria suina (photograph: Marcelo Casacuberta).
Figure 2 in Observations of unusual acoustic behaviour in two Australian leafhoppers (Hemiptera; Cicadellidae)
Figure 2. Austrolopa brunensis. (A) An acoustic exchange between two females. The two individuals can be distinguished by different frequencies of the signal (the lower and higher frequency signals are indicated by the arrows). Individual calls also overlap in part. The cartoon illustrates the typically close proximity of the females during these exchanges. (B) The male call which is usually divided into three distinct phrases of regular pulses. In each figure part, spectrograms are shown above and oscillograms below.
Figure 3 in Tadpole deposition behaviour in male stream frogs Mannophryne trinitatis (Anura: Dendrobatidae)
Figure 3. Histogram showing the number of tadpoles in different weight classes collected from pond B at Mount Saint Benedict. Newly deposited tadpoles are nearly all in the first size class (,0.045 g; see depositions in Table I).
Figure 1 in Tadpole deposition behaviour in male stream frogs Mannophryne trinitatis (Anura: Dendrobatidae)
Figure 1. Map of the Mount Saint Benedict site used for the deposition experiment. The numbers correspond to the tubs positioned at the site (see Table I for tub distances from the stream and altitude measurements).
Figure 2 in Tadpole deposition behaviour in male stream frogs Mannophryne trinitatis (Anura: Dendrobatidae)
Figure 2. Histogram showing the number of tadpole depositions in each size class at Mount Saint Benedict (with collection of tadpoles every other day, N522).
Figure 6 in ''Riding'' behaviour by males of Conops quadrifasciata (Diptera: Conopidae): Do females set up ''riders'' as targets for takeovers by larger males?
Figure 6. After the successful takeover the female permits an immediate act of copulation. She would not have permitted her former rider to mate at this point.
Figure 5 in ''Riding'' behaviour by males of Conops quadrifasciata (Diptera: Conopidae): Do females set up ''riders'' as targets for takeovers by larger males?
Figure 5. The attacker has forced himself in between rider and female and is about to move backwards on to her thorax. The rider (note his considerably smaller abdomen) retreats off to one side and is about to fly off.
Figure 4 in ''Riding'' behaviour by males of Conops quadrifasciata (Diptera: Conopidae): Do females set up ''riders'' as targets for takeovers by larger males?
Figure 4. This attacking male (on left) has rammed a riding couple with such force that they were knocked off their flower on to a leaf. The female remained stationary for the several minutes needed for a successful replacement of her partner. Comparison of head-widths indicates that the attacker is considerably larger than the rider.
Figure 3. A male attacker waiting beside a in ''Riding'' behaviour by males of Conops quadrifasciata (Diptera: Conopidae): Do females set up ''riders'' as targets for takeovers by larger males?
Figure 3. A male attacker waiting beside a rider who is engaged in a repeat copulation. Both males are about the same size.
Figure 2. Despite being some 20 in ''Riding'' behaviour by males of Conops quadrifasciata (Diptera: Conopidae): Do females set up ''riders'' as targets for takeovers by larger males?
Figure 2. Despite being some 20% larger than the incumbent rider, this attacker has failed to establish genitalic contact with the female, having been thwarted by repeated abdomen lifts. 'Ramming' seems to be the only effective way of making a takeover.
Figure 8 in Complex display behaviour during the intraspecific interactions of myrmecomorphic jumping spiders (Araneae, Salticidae)
Figure 8. Myrmarachne assimilis male (on right) watching and following decamping M. assimilis female.
Figure 6 in Complex display behaviour during the intraspecific interactions of myrmecomorphic jumping spiders (Araneae, Salticidae)
Figure 6. Myrmarachne assimilis male (upper right) beginning to premount tap female. Male's legs I semi-erect in Position 1. Female: palps spread apart.
Figure 4 in Complex display behaviour during the intraspecific interactions of myrmecomorphic jumping spiders (Araneae, Salticidae)
Figure 4. Myrmarachne assimilis male (on right) with semi-erect legs in Position 1, with his body arched up and while peering over toward conspecific female. Female facing the male while waving palps.
Figure 1 in Complex display behaviour during the intraspecific interactions of myrmecomorphic jumping spiders (Araneae, Salticidae)
Figure 1. Myrmarachne bakeri female (facing right and slightly up in photograph) in a normal body posture and with palps and chelicerae also held in a normal posture. Erect legs in Position 3.
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.