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Fig. 1 Landmarks used for the kinematic analyses. 1 upper jaw tip, 2 lower jaw tip, 3 in Flexibility is everything: prey capture throughout the seasonal habitat switches in the smooth newt Lissotriton vulgaris
Fig. 1 Landmarks used for the kinematic analyses. 1 upper jaw tip, 2 lower jaw tip, 3 hyoid (throat), 4 jaw joint, 5 nape, 6 dorsal trunk reference, 7 tongue tip (only digitized when visible)
Fig. 4 in Flexibility is everything: prey capture throughout the seasonal habitat switches in the smooth newt Lissotriton vulgaris
Fig. 4 Scatter plot of the first two principal components. Principal component 1 (PC1) and principal component 2 (PC2) are derived from the 12 kinematic variables to illustrate the relationship among kinematic patterns for the four feeding modes coded by symbols and the ten individuals coded by color. Each data point represents one feeding event, and the ellipses indicate 95 % confidence interval in the four feeding modes. P@1 explains 57 % and P@2 explains 15.5 % of the total variance. See Table 3 for complete loadings of each principal component
Fig. 3 in Flexibility is everything: prey capture throughout the seasonal habitat switches in the smooth newt Lissotriton vulgaris
Fig. 3 Kinematic profiles of the four feeding modes. Kinematic means (dark and bold curves)±SD (pale and slim curves) of gape (blue), hyoid (Vreen), head rotation (oranVe), and tongue movement (Vray, only shown
Fig. 1 in Observations of Cerceris fumipennis (Hymenoptera: Crabronidae) phenology and variation in its buprestid prey in Louisiana
Fig. 1. Total Buprestidae prey taken per day from Cerceris fumipennis at aggregations located at Highland Road Park, Baton Rouge, Louisiana (HRP), Verda Elementary School playground (VESP) and observed at Verda Ballfield (VB), Verda, Louisiana, May to Aug 2012. Days reflecting zero beetles collected were not included in the ANOVA.
Figure 1 in Prey capture behavior in Heterometrus petersii (Thorell, 1876) (Scorpiones: Scorpionidae)
Figure 1: A flow chart modified from Bub & Bowerman (1979), Rein (2003), and Stewart (2006) showing prey capture behavior of Heterometrus petersii. The phases of Travel, Inactive, Cheliceral Activity, Manipulation and Cleaning show no particular temporal order, and are united in a frame.
Figure 3 in Prey capture behavior in the East African scorpions Parabuthus leiosoma (Ehrenberg, 1828) and P. pallidus Pocock, 1895 (Scorpiones: Buthidae)
Figure 3: Ethogram showing the behavioral components in prey capture in Parabuthus leiosoma and P. pallidus. The behavioral components are defined in the text. Arrows indicate the direction of the prey capture sequence. The framing of the behavioral components inactive, manipulation, cheliceral activity, cleaning and travel refers to any of these behaviors observed either prior to, or after any of the others.
Data for "Inexperienced preys know when to flee or to freeze in front of a threat"
<p>Dataset for the manuscript: "<strong>Inexperienced preys know when to flee or to freeze in front of a threat</strong>” (Accepted for publication in PNAS in October 2019).</p> <p> </p> <p>The file contains:</p> <p>1/ Data related to Experiment 1 (Looming <em>vs </em>Sweeping stimuli): ‘Speed during (%)’, ‘Speed after (%), ‘Distance traveled during the 30 s following the stimulus offset’</p> <p>2/ Data related to Experiment 2 (Looming <em>vs </em>Receding stimuli): ‘Speed during (%)’, ‘Speed after (%), ‘Distance traveled during the 30 s following the stimulus offset’</p> <p>3/ Data related to Experiment 3 (Looming <em>vs </em>Dimming stimuli): ‘Speed during (%)’, ‘Speed after (%), ‘Distance traveled during the 30 s following the stimulus offset’</p> <p>4/ Data related to the determination of the initiation of the escape in response to the looming stimulus (point by point % of point speed variation during the looming displays)</p>
Figure 1 Hilarempis sigillata Collin, 1933 and prey. A in Prey of the Patagonian species Hilarempis sigillata Collin (Diptera, Empididae, Empidinae, Hilarini), and the first record of nocturnal activity in the tribe
Figure 1 Hilarempis sigillata Collin, 1933 and prey. A, white light sheet used to capture insects with H. sigillata smaller than specimens of trichopterans; B, male with prey (black arrow) and female without prey (white arrow) standing on sheet; C, detail of male holding the prey on sheet. Figures D–G. Multilayered photo montage from alcohol preserved specimens. D, male specimens holding the prey by the mid tarsi; E, a chironomid specimen, specifically a prey specimen belonging to the genus Cricotopus, adult partially contained within the pupal exuviae; F, Hilarempis sigillata, male; G, Hilarempis sigillata, female.
Fig. 4 in A community analysis approach to parasite transmission in multi-host systems: Assemblages of small mammal prey and Echinococcus multilocularis in an urban area in North America
Fig. 4. Map showing the geographic distribution of three small mammal assemblage types predicted for the City of Calgary area by a multinomial logistic regression (MLR) model associating the environmental variables to assemblage types, developed from data collected in 2012 and 2013 (Liccioli et al., 2014). Note how large portion of BWM and NHP were classified as assemblage 1 as expected, but also large portion of FCPP, where it was not expected.
Fig. 1 in A community analysis approach to parasite transmission in multi-host systems: Assemblages of small mammal prey and Echinococcus multilocularis in an urban area in North America
Fig. 1. Study sites for the characterization of the small mammal assemblages in urban Calgary, AB, Canada in 2012–2013, showing the location of five areas in Urban Calgary and detailed map of Bowmont, Southland Lowlands, and Weaselhead. Bowmont (BM), Fishcreek Provincial Park (FCPP), Nose Hill Park (NHP), Southland Lowlands (SL), and Weaselhead (WSH).
Fig. 2 in A community analysis approach to parasite transmission in multi-host systems: Assemblages of small mammal prey and Echinococcus multilocularis in an urban area in North America
Fig. 2. Dendrograms derived from the Bray-Curtis similarity of small mammal assemblages in five parks and natural areas in urban Calgary, AB, Canada, 2012–2013. a) Dendrogram using abundance data and group-average clustering algorithm. The dashed line indicates the cluster cut-off line of 45% similarity. Symbols for each site indicate the prevalence of definitive hosts (EmDH) and presence (1) or absence (0) of infected small mammals (EmIH). b) Dendrogram using abundance data and complete-linkage clustering algorithm. Note how it is similar to the dendrogram using group-average algorithm. c) Dendrogram using proportion data and group-average clustering algorithm. Note how all BM sites are in single cluster and all NHP sites and most sites are in another cluster, similar to the dendrogram using abundance data.
Figure 2. A in Exotic and predatory: a spider (Araneae: Salticidae) that preys on native stingless bees (Hymenoptera: Meliponini) in Brazil
Figure 2. A. Nest in PVC pipe. B, C, D, E. Menemerus bivitattus (Dufour, 1831) on the move to prey on the sentinels of Nannotrigona (Nannotrigona) testceicornis (Lepeletier, 1836). / A. Nido en tubo de PVC. B, C, D, E. Menemerus bivitattus (Dufour, 1831) en movimiento para aprovecharse de los centinelas de Nannotrigona (Nannotrigona) testceicornis (Lepeletier, 1836).
Figure 1 in Exotic and predatory: a spider (Araneae: Salticidae) that preys on native stingless bees (Hymenoptera: Meliponini) in Brazil
Figure 1. Location map of the natural nest of Nannotrigona (Nannotrigona) testceicornis (Lepeletier, 1836), in the neighborhood of Pituba, Salvador, Bahia, Brazil. / Mapa de ubicación del nido natural de Nannotrigona (Nannotrigona) testceicornis (Lepeletier, 1836), en el barrio de Pituba, Salvador,
Figure 6-7 in Rhopalocera (Lepidoptera) prey records of Asilidae (Diptera) in eastern New Mexico and western Texas, United States of America
Figure 6-7. Triorla interrupta male feeding on Phyciodes picta. / Triorla interrupta macho alimentándose de Phyciodes picta.
Figure 3 in Rhopalocera (Lepidoptera) prey records of Asilidae (Diptera) in eastern New Mexico and western Texas, United States of America
Figure 3. New Mexico, nr. jct. 480 and Roos. Rd. AG (20.v.2017). / Nuevo México, cerca jct. 480 y Roos. Calle AG (20.v.2017).
Figure 2 in Rhopalocera (Lepidoptera) prey records of Asilidae (Diptera) in eastern New Mexico and western Texas, United States of America
Figure 2. New Mexico, field just NE of Floyd (15.vii.2017). / Nuevo México, campo al NE de Floyd (15.vii.2017).
Figure 1 in Rhopalocera (Lepidoptera) prey records of Asilidae (Diptera) in eastern New Mexico and western Texas, United States of America
Figure 1. New Mexico, Portales, nr. softball complex (28.viii.2021). / Nuevo México, Portales, cerca del complejo de softbol (28.viii.2021).
Figure 4 in Rhopalocera (Lepidoptera) prey records of Asilidae (Diptera) in eastern New Mexico and western Texas, United States of America
Figure 4. Texas, Bailey Co., Muleshoe Nat. Wildlife Refuge nr. Goose Lake (10.vii.2022). / Texas, Bailey Co., Muleshoe Nacional. Refugio de vida silvestre cerca del lago del Ganso (10.vii.2022).
Figure 2 in High temperatures adversely affect the hoverfly Episyrphus balteatus (Diptera: Syrphidae) fitness and aphid prey consumption
Figure 2. Kaplan-Meier survival curves of Episyrphus balteatus larvae reared under 20 °C (red color and filled line), 23 °C (green color and tiny dashed line), and 26 °C (blue color and large dashed line). Shade-colored areas indicate a 95% confidence interval computed from the medians of KaplanMeier survival curves.
Figure 1 in High temperatures adversely affect the hoverfly Episyrphus balteatus (Diptera: Syrphidae) fitness and aphid prey consumption
Figure 1. Mean values (± S.E.) for mass (A), body length (B), and pea aphid (Acyrthosiphon pisum) consumption rate (C) of Episyrphus balteatus larvae per day of experiment depending on rearing temperature. Dot shapes correspond to temperature treatments: circle to 20 °C (red), triangle to 23 °C (green), and square to 26 °C (blue). After post-hoc tests with Bonferroni correction, the character '*' corresponds to one significant pairwise comparison, '**' corresponds to two significant pairwise comparisons among the temperature treatments. Details of the mean values and statistical test outcomes per day of the experiment are given in Table 1.
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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.