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2,007 results for “ecological species”
FIGURE 24 in Phylogenetic systematics, ecology, and conservation of marsupial frogs (Anura: Hemiphractidae) from the Andes of southern Ecuador, with descriptions of four new biphasic species
FIGURE 24. Macro and microhabitat of Gastrotheca yacuri in Parque Nacional Yacuri. Photos by PS.
Supplementary material 1 from: Janovsky RM, Larson ER (2019) Does invasive species research use more militaristic language than other ecology and conservation biology literature? NeoBiota 44: 27-38. https://doi.org/10.3897/neobiota.44.32925
: Data type: statistical data
Supplementary material 1 from: Dupont SM, Guinnefollau L, Weber C, Petit O (2019) Impact of artificial light at night on the foraging behaviour of the European Hamster: consequences for the introduction of this species in suburban areas. Rethinking Ecology 4: 133-148. https://doi.org/10.3897/rethinkingecology.4.36467
: Data type: statistical data
Fig. 1 in Ecology, acoustics and chromosomes of the East African genus Afroanthracites Hemp & Ingrisch (Orthoptera, Tettigoniidae, Conocephalinae, Agraeciini) with the description of new species
Fig. 1 Map of northern Tanzania and southern Kenya
Fig. 3 Male A. lutindi n in Ecology, acoustics and chromosomes of the East African genus Afroanthracites Hemp & Ingrisch (Orthoptera, Tettigoniidae, Conocephalinae, Agraeciini) with the description of new species
Fig. 3 Male A. lutindi n. sp., dorso-lateral view on pronotum
Fig. 8 in Ecology, acoustics and chromosomes of the East African genus Afroanthracites Hemp & Ingrisch (Orthoptera, Tettigoniidae, Conocephalinae, Agraeciini) with the description of new species
Fig. 8 Female subgenital plates of a A. pseudodiscolor n. sp. and b A. lutindi n. sp.
Fig 13 in Ecology, acoustics and chromosomes of the East African genus Afroanthracites Hemp & Ingrisch (Orthoptera, Tettigoniidae, Conocephalinae, Agraeciini) with the description of new species
Fig 13 Sonogram and power spectrum of calling song of Afroanthracites viridis
Fig. 3 in Biogeography, ecology, acoustics and chromosomes of East African Eurycorypha Stål species (Orthoptera, Phaneropterinae) with the description of new species
Fig. 3 Spectra of calling songs of Eurycorypha species
Fig. 5 in Biogeography, ecology, acoustics and chromosomes of East African Eurycorypha Stål species (Orthoptera, Phaneropterinae) with the description of new species
Fig. 5 Oscillograms of calling songs of Eurycorypha species, details
Fig. 6 Lunidia viridis n. gen. n in A new genus and species of African Phaneropterinae (Orthoptera: Tettigoniidae), with data on its ecology, bioacoustics and chromosomes
Fig. 6 Lunidia viridis n. gen. n. sp., male nymph, last instar
Fig. 4 Lunidia viridis n. gen. n in A new genus and species of African Phaneropterinae (Orthoptera: Tettigoniidae), with data on its ecology, bioacoustics and chromosomes
Fig. 4 Lunidia viridis n. gen. n. sp., female imitating a leaf
Fig. 4 in Protocol for collecting Mutillidae (Hymenoptera, Aculeata) in ecological studies: species-area effects on Mutillidae communities
Fig. 4. Canonical Variable Analysis (CVA) from the multivariate analysis of variance (MANOVA) of the species composition of Mutillidae between the Cerrado fragments (Pillai Trace = 0.7078, F(1.314) = 51.81, p = 0.02). Matas do Segredo State Park (Segredo), Prosa State Park (Prosa), Private Natural Heritage Reserve of Universidade Federal de Mato Grosso do Sul (UFMS) and Private Natural Heritage Reserve of Universidade Católica Dom Bosco (UCDB).
Fig. 1 in Protocol for collecting Mutillidae (Hymenoptera, Aculeata) in ecological studies: species-area effects on Mutillidae communities
Fig. 1. Diagram of the Latin square model experimental design and arrangement of treatments used for each of the 25 sample points distributed in the four urban fragments.
Fig. 6 in A new subspecies of Pachyrhynchus corpulentusSchultze, 1922 (Entiminae: Pachyrhynchini) from Northern Mindanao, the Philippines with notes on species ecology
Fig. 6. Rostrum and underside of P. corpulentus balatukan subsp. nov.: A – lateral view; B – dorsal view; C – underside.
Figure 4 in Species composition and ecological structure of ground beetle communities (Coleoptera, Carabidae) in reclaimed rock dumps in the south of Western Siberia
Figure 4. Ratio of species (first column) and numerical abundance (second column) of ground beetles by biotopic preferences, %. Note: Krb1–Krb5 – study sites; AT – alpine-taiga species, E – eurytopic, M – meadow, MS – meadowsteppe, FR – forest, FL – floodplain, S – steppe.
Table ¹: List of fruit species consumed by kinkajous in Pijao and San Juan. in Notes on the ecology, activity patterns and behavior of the kinkajou (Potos flavus)
<p><b>Table ¹:</b> List of fruit species consumed by kinkajous in Pijao and San Juan.</p><table><tbody><tr><th><b>Family</b></th><th><b>Species</b></th><th><b>Locality</b></th></tr></tbody><tbody><tr><th></th><td></td><td><b>Pijao</b></td><td><b>San Įuan</b></td></tr><tr><th>Anacardiaceae</th><td><i>Spondias mombin</i></td><td><b>–</b></td><td>X</td></tr><tr><th>Araliaceae</th><td><i>Dendropanax macrophyllum</i></td><td>X</td><td><b>–</b></td></tr><tr><th>Moraceae</th><td><i>Ficus brevibracteata</i></td><td>X</td><td><b>–</b></td></tr><tr><th></th><td><i>Ficus dendrocida</i></td><td><b>–</b></td><td>X</td></tr><tr><th></th><td><i>Poulsenia armata</i></td><td>X</td><td><b>–</b></td></tr><tr><th>Sapotaceae</th><td><i>Pouteria baehniana</i></td><td><b>–</b></td><td>X</td></tr><tr><th>Ulmaceae</th><td><i>Ampelocera albertiae</i></td><td>X</td><td><b>–</b></td></tr><tr><th>Urticaceae</th><td><i>Cecropia telealba</i></td><td>X</td><td><b>–</b></td></tr><tr><th></th><td><i>Cecropia membanacea</i></td><td><b>–</b></td><td>X</td></tr></tbody></table>
Linked collectors and determiners for: Revision of Alpheus euphrosyne De Man, 1897 and A. microrhynchus De Man, 1897, with description of three new species and taxonomic remarks on several other morphologically and ecologically similar snapping shrimps (Malacostraca: Decapoda: Alpheidae).
Natural history specimen data linked to collectors and determiners held within, "Revision of Alpheus euphrosyne De Man, 1897 and A. microrhynchus De Man, 1897, with description of three new species and taxonomic remarks on several other morphologically and ecologically similar snapping shrimps (Malacostraca: Decapoda: Alpheidae)". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/7912c179-a542-47d7-9b44-6af1c9185a23">https://bionomia.net/dataset/7912c179-a542-47d7-9b44-6af1c9185a23</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/7912c179-a542-47d7-9b44-6af1c9185a23">https://gbif.org/dataset/7912c179-a542-47d7-9b44-6af1c9185a23</a>. Formatted as a Frictionless Data package.
Table 1 in Ecology Of Amblycerus Crassipunctatus Ribeiro-Costa (Coleoptera: Bruchidae) In Seeds Of Humiriaceae, A New Host Family For Bruchids, With An Ecological Comparision To Other Species Of Amblycerus
<p><b>Table 1.</b> Number of eggs and exit holes of <i>Amblycerus crassipunctatus</i> on and in fruits of Vantanea minor.</p><table><tbody><tr><th>Fruit</th><th>Number of</th><th>Emerged</th><th>% emerged</th></tr></tbody><tbody><tr><th>number</th><td>eggs/fruit</td><td>adults</td><td>adults</td></tr><tr><th>1</th><td>1</td><td>0</td><td>0</td></tr><tr><th>2</th><td>0</td><td>0</td><td>0</td></tr><tr><th>3</th><td>0</td><td>0</td><td>0</td></tr><tr><th>4</th><td>0</td><td>0</td><td>0</td></tr><tr><th>5</th><td>0</td><td>0</td><td>0</td></tr><tr><th>6</th><td>0</td><td>0</td><td>0</td></tr><tr><th>7</th><td>0</td><td>0</td><td>0</td></tr><tr><th>8</th><td>2</td><td>0</td><td>0</td></tr><tr><th>9</th><td>1</td><td>1</td><td>100</td></tr><tr><th>10</th><td>2</td><td>2</td><td>100</td></tr><tr><th>11</th><td>5</td><td>1</td><td>20</td></tr><tr><th>12</th><td>0</td><td>0</td><td>0</td></tr><tr><th>13</th><td>0</td><td>0</td><td>0</td></tr><tr><th>14</th><td>3</td><td>1</td><td>33.33</td></tr><tr><th>15</th><td>4</td><td>0</td><td>0</td></tr><tr><th>16</th><td>0</td><td>0</td><td>0</td></tr><tr><th>17</th><td>3</td><td>0</td><td>0</td></tr><tr><th>18</th><td>0</td><td>0</td><td>0</td></tr><tr><th>19</th><td>2</td><td>1</td><td>50</td></tr><tr><th>20</th><td>1</td><td>1</td><td>100</td></tr><tr><th>21</th><td>8</td><td>0</td><td>0</td></tr><tr><th>Total</th><td>32</td><td>7</td><td>21.87%</td></tr></tbody></table>
Figure 3 in Dietary ecology of common amphibian species in a seasonal location in northern Sri Lanka
Figure 3. Relationship between standardised gape width and standardised niche breadth (BA).
Morphology of the limb, shell, and head explain the variation in performance and ecology across 14 turtle taxa (12 species)
<p>Because morphology directly influences an organism's ability to utilize its habitat and dietary resources, it also influences fitness. Comparing the relationship between morphology, performance, and ecology is fundamental to understand how organisms evolve to occupy a wide range of habitats and diets. In turtles, studies have documented important relationships between morphology, performance, and ecology, but none were field based or considered limb, shell, and head morphology simultaneously. We compare morphology, performance, and ecology of 14 turtle taxa (12 species) in Mexico that range in their affinity to water and in their diet. We took linear measurements of limb, shell, and head variables, measured maximum swimming speed, maximum bite force, how often turtles were encountered on land, and used stable isotopes to assess trophic position. We use these data to test three hypotheses. The first, that morphology, performance, and ecology covary. The second, that limb and shell variables, like hand length, correlate to swim speed and the percent time spent on land. The third, was that that head variables, like head width, correlate to bite force and stable isotopes. We find support for these hypotheses and provide the first evidence that morphology influences performance and ecology in turtles in the field.</p>
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)
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.