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159 results for “Feeding Ecology”
Figure 2 in Feeding ecology of the common sun skink, Eutropis multifasciata (Reptilia: Squamata: Scincidae), in the plains of central Vietnam
Figure 2. Expected prey-taxon accumulation curves from the data of (A) stomach contents and (B) food item counts consumed by Eutropis multifasciata in the plains of central Vietnam. Circles represent the expected mean values, and the graphs show the 95% confidence intervals for male (filled circles) and female (open circles) skinks.
Figures 3–4. Aporus hirsutus adult feeding. 3 in Nesting behavior, ecology, and functional morphology of the trapdoor spider-hunting spider wasp Aporus (Plectraporus) hirsutus (Banks) (Hymenoptera: Pompilidae)
Figures 3–4. Aporus hirsutus adult feeding. 3) Aporus hirsutus female taking nectar from flowers of Eriogonum parvifolium, Vandenberg Air Force Base, Santa Barbara County, CA; 6 August 2014; A. Abela. Photograph © Alice Abela. 4) Aporus hirsutus female with immobilized Aptostichus simus, immature, on sand, Surf Beach at Vandenberg Air Force Base, Santa Barbara County, CA; 28 March 2015; A. Abela. The wasp appressed her mouthparts and basal antennal segments to the paralyzed prey and, apparently, used this individual only for adult feeding. Photograph © Alice Abela.
Fig. 1 in Functional And Ecological Adaptations Of Several Acaridid Mite Species (Acariformes, Astigmata) For Feeding On Stored Produce
Fig. 1. Cluster analysis of similarity of acaridid complexes in studied substrates (Ward's method, correlation coefficient 0.5844).
Рис. 1. ЭкоΛого-географическая характеристика зоопΛанктона гиΔротермаΛьной зоны оз. Кенон в июΛе 2019 г.: А — зоогеография, Б — местообитание, В — способ переΔвижения, Г — способ питания Fig. 1. Ecological and geographic characteristics of zooplankton in the hydrothermal zone of Lake Kenon in July 2019: А — zoogeography, Б — habitat, В — type of locomotion, Г — type of feeding in Zooplankton Structure And Distribution In The Hydrothermal Zone Of Cooling Reservoirs (Trans-Baikal Territory)
Рис. 1. ЭкоΛого-географическая характеристика зоопΛанктона гиΔротермаΛьной зоны оз. Кенон в июΛе 2019 г.: А — зоогеография, Б — местообитание, В — способ переΔвижения, Г — способ питания Fig. 1. Ecological and geographic characteristics of zooplankton in the hydrothermal zone of Lake Kenon in July 2019: А — zoogeography, Б — habitat, В — type of locomotion, Г — type of feeding
FIGURE 18 in Feeding in marine mammals: An integration of evolution and ecology through time
FIGURE 18. Ancestral state reconstruction of prey capture strategies and prey type preference in stem and crown Mysticeti. Topology follows Gatesy et al. (2013) and Fordyce and Marx (2018). Details on the tree can be found in Appendix 1. All data matrices and complete trees with branch lengths can be found in the Supplementary Information (https://doi.org/10.6086/d14671).
FIGURE 3 in Feeding in marine mammals: An integration of evolution and ecology through time
FIGURE 3. Anatomical features associated with suction feeding in walrus (Odobenus rosmarus skull, from Jefferson et al., 2015) and North Sea beaked whale (Mesoplodon bidens skull, authors' work).
FIGURE 11 in Feeding in marine mammals: An integration of evolution and ecology through time
FIGURE 11. Sirenia stem and familial level diversity through time. "Protosirenidae / Prorastomidae" includes all taxa that are not included in the two extant groups. Dashed vertical lines: black, epoch boundaries; gray, age boundaries.
FIGURE 7 in Feeding in marine mammals: An integration of evolution and ecology through time
FIGURE 7. Pinnipedimorpha stem taxa and familial level diversity through time. "Stem-Pinnipedimorpha" includes all stem taxa that are not included in Desmatophocidae and the three extant groups. Dashed vertical lines: black, epoch boundaries; gray, age boundaries.
FIGURE 5 in Feeding in marine mammals: An integration of evolution and ecology through time
FIGURE 5. Anatomical features associated with grazing in African manatee (Trichechus senegalensis skull, from Werth, 2000), Desmostylia (Paleoparadoxia skull, public domain), and aquatic sloth (Thalassocnus sp. skull, modified from de Muizon et al., 2004).
FIGURE 8 in Feeding in marine mammals: An integration of evolution and ecology through time
FIGURE 8. Cetacean stem and Neoceti taxa diversity through time. "Archaeoceti" includes all stem taxa that are not included in the two extant groups. Dashed vertical lines: black, epoch boundaries; gray, age boundaries.
FIGURE 16 in Feeding in marine mammals: An integration of evolution and ecology through time
FIGURE 16. Ancestral state reconstruction of prey capture strategies and tooth pattern and cusp shape in Odobenidae. Topology follows Berta et al. (2018). Details on the tree can be found in Appendix 1. All data matrices and complete trees with branch lengths can be found in the Supplementary Information uploaded to Dryad repository (https:// doi.org/10.6086/d14671).
FIGURE 17 in Feeding in marine mammals: An integration of evolution and ecology through time
FIGURE 17. Ancestral state reconstruction of prey type preference in stem and crown Pinnipedimorpha. Topology follows Rybczynski et al. (2009), Dewaele et al. (2017), and Berta et al. (2018). Details on the tree can be found in Appendix 1. All data matrices and complete trees with branch can be found in the Supplementary Information (https:// doi.org/10.6086/d14671).
FIGURE 19 in Feeding in marine mammals: An integration of evolution and ecology through time
FIGURE 19. Ancestral state reconstruction of prey capture strategies and tooth pattern and cusp shape in stem Odontoceti. Topology follows Gatesy et al. (2013) and Boessenecker et al. (2017). Details on the tree can be found in Appendix 1. All data matrices and complete trees with branch lengths can be found in the Supplementary Information (https://doi.org/10.6086/d14671).
FIGURE 20 in Feeding in marine mammals: An integration of evolution and ecology through time
FIGURE 20. Ancestral state reconstruction of prey capture strategies and tooth pattern and cusp shape in crown Odontoceti. Topology follows McGowen et al. (2009) and Gatesy et al. (2013). Details on the tree can be found in Appendix 1. All data matrices and complete trees with branch lengths can be found in the Supplementary Information (https://doi.org/10.6086/d14671).
FIGURE 1 in Feeding in marine mammals: An integration of evolution and ecology through time
FIGURE 1. Feeding strategies of extant marine mammal predators (from Kienle et al., 2017) with the addition of grazing (sirenians, authors' work).
FIGURE 2 in Feeding ecology of electric eel Electrophorus varii (Gymnotiformes: Gymnotidae) in the Curiaú River Basin, Eastern Amazon
FIGURE 2 | Variation in Stomach Repletion Index (RI) values (black spots) of Electrophorus varii in Curiaú River EPA Amapá, Brazil. A. Size class; and B. Season. The lower and upper bars of the boxplot represent 25 and 75 quartiles, respectively. The horizontal bar within each boxplot represents the mean RI value. The lower and upper vertical line represent the RI values amplitude.
Fig. 4 in Feeding ecology of immature Lithodoras dorsalis (Valenciennes, 1840) (Siluriformes: Doradidae) in a tidal environment, estuary of the rio Amazonas
Fig. 4. Trophic niche breadth recorded for Lithodoras dorsalis on the rio Amazonas mouth, Pará, Brazil, from July 2010 to June 2011. The solid line represents the niche breadth values and the dashed line indicates mean pluviosity registered for the studied region.
Fig. 2 in Feeding ecology of immature Lithodoras dorsalis (Valenciennes, 1840) (Siluriformes: Doradidae) in a tidal environment, estuary of the rio Amazonas
Fig. 2. Box-plot of Lithodoras dorsalis Repletion Index (RI%) at the rio Amazonas mouth, Brazil, from July 2010 to June 2011.
Fig. 3 in Feeding ecology of immature Lithodoras dorsalis (Valenciennes, 1840) (Siluriformes: Doradidae) in a tidal environment, estuary of the rio Amazonas
Fig. 3. Non-metric Multidimensional Scaling based on the Alimentary Index (AIi%) of all food items consumed by the rock-bacu Lithodoras dorsalis among pluviometric periods, rio Amazonas mouth region, Brazil.
Fig. 1 in Feeding ecology of immature Lithodoras dorsalis (Valenciennes, 1840) (Siluriformes: Doradidae) in a tidal environment, estuary of the rio Amazonas
Fig. 1. Location of study area near the mouth of the rio Amazonas in Brazil. A, Location of Brazil on South America; B, rio Amazonas mouth with the sampling site; C, Study area (specimens were collected within the shaded area).
ScienceDex guides
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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)
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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.