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9,153 results for “behavior”
Figure 1 in Sandfly fauna and behavior (Diptera: Psychodidae) in municipalities of the Mesoregion North Pioneer of Paraná, Brazil
Figure 1 Geographic location of ecotopes in the locations where sandflies collections were carried out, in municipalities in the Northern Pioneer of the Paraná State, Brazil.
Figure 1 in Feeding and reproductive behavior of the dung beetle Canthon rutilans cyanescens (Coleoptera: Scarabaeinae)
Figure 1 Reproductive behavior and development stages of Canthon rutilans cyanescens observed in the laboratory. A - Copula; B - Female producing the oviposition chamber inside the brood ball with its mouth parts; C - Couple next to the future brood ball; D – Female defecating inside the future brood ball chamber; E - Brood balls with external feces pellets; F - Egg; G - Newly hatched larvae; H - Larva growing as it feeds; I - Larva in its maximum size, frequently defecating; J - Last larval stage, when preparing to pupa stage, expelling all fecal contents; K - Pupa; L - Newly hatched adult with moult remains in the clypeus and pronotum.
Figs. 43–44 in Mating behavior and description of immature stages of Cyclocephala melanocephala (Fabricius, 1775) (Coleoptera: Scarabaeidae: Dynastinae), identification key and remarks on known immatures of Cyclocephalini species
Figs. 43–44. Cyclocephala melanocephala, third instar larva; 43, raster; 44, setae detail; a, pali; b, hamate setae; c, short setae; d, long setae. Scale, Fig. 43 = 1 mm; Fig. 44 = 0.5 mm.
Figs. 26–42 in Mating behavior and description of immature stages of Cyclocephala melanocephala (Fabricius, 1775) (Coleoptera: Scarabaeidae: Dynastinae), identification key and remarks on known immatures of Cyclocephalini species
Figs. 26–42. Cyclocephala melanocephala, third instar larva; 26–28, right legs and pleurites (anterior, medial, posterior); 29–31, right pro-, meso- and metapretarsus, dorsal; 32–33, detail of perforations of mesothoracic spiracle (dorsal arm, medial area); 34–42, mesothoracic spiracle and abdominal spiracles I–VIII. Scale, Fig. 26 = 0.3 mm; Figs. 29, 34 = 0.1 mm; Fig. 32 = 0.05 mm.
Figs. 23–25 in Mating behavior and description of immature stages of Cyclocephala melanocephala (Fabricius, 1775) (Coleoptera: Scarabaeidae: Dynastinae), identification key and remarks on known immatures of Cyclocephalini species
Figs. 23–25. Cyclocephala melanocephala, third instar larva; 23, maxilla, internal; 24, maxilla, hypopharynx, ligula, dorsal; 25, maxilla, labium, ventral. ppa, posterior preoral area. Scale = 0.5 mm.
Figs. 7–12 in Mating behavior and description of immature stages of Cyclocephala melanocephala (Fabricius, 1775) (Coleoptera: Scarabaeidae: Dynastinae), identification key and remarks on known immatures of Cyclocephalini species
Figs. 7–12. Cyclocephala melanocephala, third instar larva; 7, cranium and clypeus, dorsal; 8, labrum, dorsal (epipharyngeal ventral setae omitted); 9–12, left antenna (dorsal, internal, external, ventral; external and internal sides with apex detail; some sensilla numbered to easily the correspondence; sensillum h can be absent). Chaetotaxy (italic) on the text. Scale = 0.5 mm (antennal details with magnification four times bigger than antennae).
Fig. 44 in Description of immatures and mating behavior of Liogenys bidenticeps Moser, 1919 (Coleoptera: Melolonthidae: Melolonthinae)
Fig. 44. Mating behavior of Liogenys bidenticeps on leaves of Schinus terebinthifolius (Anacardiaceae); A–B, pairs copulating; C–D, a male competitor next to the pair copulating.
Figs. 37–38 in Description of immatures and mating behavior of Liogenys bidenticeps Moser, 1919 (Coleoptera: Melolonthidae: Melolonthinae)
Figs. 37–38. Liogenys bidenticeps, third instar larva; 37, raster; 38, abdominal segment X, posterior. Scale: 1 mm.
Figs. 9–12 in Description of immatures and mating behavior of Liogenys bidenticeps Moser, 1919 (Coleoptera: Melolonthidae: Melolonthinae)
Figs. 9–12. Liogenys bidenticeps, third instar larva; 9, labrum; 10, epipharynx; 11–12, cibarium (right, left). Scale: 0.5 mm.
Figs. 19–21 in Description of immatures and mating behavior of Liogenys bidenticeps Moser, 1919 (Coleoptera: Melolonthidae: Melolonthinae)
Figs. 19–21. Liogenys bidenticeps, third instar larva; 19, maxilla, internal; 20, maxilla, hypopharynx, ligula, dorsal; 21, maxilla, labium, ventral. Scale: 0.5 mm.
Figs. 1–8 in Description of immatures and mating behavior of Liogenys bidenticeps Moser, 1919 (Coleoptera: Melolonthidae: Melolonthinae)
Figs. 1–8. Liogenys bidenticeps, third instar larva; 1, habitus; 2, head; 3, chaetotaxy of cranium and clypeus; 4−8, antennae; 4, dorsal (antennomere IV detached); 5, internal; 6, external; 7, antennomere II, ventral; 8, antennomere IV, ventral. Scale: 1−3, 0.5 mm; 4−8, 0.25 mm.
Figs. 13–18 in Description of immatures and mating behavior of Liogenys bidenticeps Moser, 1919 (Coleoptera: Melolonthidae: Melolonthinae)
Figs. 13–18. Liogenys bidenticeps, third instar larva; 13−15, right mandible (ventral, internal, dorsal); 16−18, left mandible (dorsal, internal, and ventral). Scale: 0.5 mm.
Fig. 4 in Morphology of immature stages and mating behavior in Liogenys fusca (Blanchard) (Coleoptera, Melolonthidae, Melolonthinae)
Fig. 4. Sequential activities involved in the mating behavior of Liogenys fusca observations (numbers indicate the proportion of individual/pairs that engaged in each activity; n = 50).
Fig. 1. Gargaphia decoris Drake, 1931 in Maternal care in Gargaphia decoris (Heteroptera, Tingidae), with comments on this behavior within the genus and family
Fig. 1. Gargaphia decoris Drake, 1931 female guarding an egg batch with first instar nymphs. Scale bar: 1 mm. Photo: Marsaro Júnior, A.L.
Fig. 2 in Sexual behavior of the digger wasp Sphex ingens Smith (Hymenoptera, Sphecidae)
Fig. 2. Sequence of the phase of identification and pre-copulation: (A) immobilization attempts by males while the female is supplying its nest with prey, (B) efficient immobilization of the female and mount in the nesting area, (C) aedeagus extrusion. Female shows a mixed behavior of receptiveness (last pairs of appendages up) and aggressiveness (partially opened mandibles). Photo by: Jonas Pederassi.
Figure 3 in A behavioral analysis of achromatic cue perception by the ant Cataglyphis aenescens (Hymenoptera; Formicidae)
Figure 3. Angular distributions and tracks of foragers on the orientation platform during intensity threshold experiments with 370 nm (a, b) and 440 nm (c, d). Only the results of the control tests and the last critical tests with which the ants' homeward orientations were lost were given for each stimulus. a) 370 nm control test, I = 1.1 × 1011 photons, P <0.0005; b) last critical test, I = 0.44 × 1010 photons, P> 0.05, not significant (n.s.); c) 440 nm control test, I = 1.1 × 1011 photons, P <0.01; d) last critical test, I = 1.1 × 1010 photons, P> 0.05, n.s. The triangle above each circle indicates the home angle. The dots around the circumference show the actual distribution of angles of foragers. Sample size = 30; h.a. = home angle; a = mean vector angle; r = mean vector length; u = critical values of the V test; d = deviation values around the 95% confidence interval. The dashed lines denote the 95% confidence interval around each sample mean.
Figure 4 in Mating behavior and structural aspects of spermatophore of two Indian scorpion species of the genus Heterometrus (Scorpiones: Scorpionidae)
Figure 4. Labeled diagram of pre-and post-insemination spermatophore of H. bengalensis (Koch, 1841).
Novel benzotriazole-nanomaterials for maritime applications: comparative anti-corrosion performance, environmental behavior, and hazard
<div>The present dataset contains chemical, characterization, and ecotoxicological data upon exposure of benzotriazole (BTA) in the soluble form and nanoforms (Mg-Al LDH-BTA and Zn-Al LDH-BTA). Chemical analyses data include the quantification of relevant anions (nitrites, nitrates, phosphates and chlorides, determined through High-Performance Liquid Chromatography) and target metals (Al, Mg and Zn) determined through Inductively Coupled Plasma Optical Emission Spectrometry). Characterization data include DLS (size) and zeta potential analysis. Ecotoxicological data includes acute and chronic endpoints determined in a wide-range of marine species.</div> <div> </div> <div> </div> <div> </div>
Environmental behavior of novel "smart" anti-corrosion nanomaterials in a global change scenario
<div>The present dataset contains dynamic light scattering data and quantification of anions (corrosion inhibitors) and target metals (Zn and Al) in saltwater dispersions aiming to assess and compare the environmental behavior of four anti-corrosion nanomaterials in the following conditions: “temperate seawater” (T=20 ºC, pH=8.0, without HA); “tropical seawater” (T=30 ºC, pH=8.0, without HA), “acidified temperate seawater” (T=20 ºC, pH=7.6, without HA), “acidified tropical seawater” (T=30 ºC, pH 7.6, without HA); “temperate seawater enriched with natural organic matter (NOM)” (T=20 ºC, pH=8.0, with HA); “tropical seawater enriched NOM” (T=30 ºC, pH=8.0, with HA).</div> <div> </div> <div> </div>
Figure 1 in Reproduction, postnatal development, and social behavior of Ellobius lutescens Thomas 1897 (Mammalia: Rodentia) in captivity
Figure 1. Development of E. lutescens pups (A- newly born, B- 7 days, C- 14 days, D- 21 days, E- 28 days, F- 42 days, G- 56 days, H- 70 days, I- 84 days).
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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.