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358 results for “advertising”
Data from: Limited plasticity in the phenotypic variance-covariance matrix for male advertisement calls in the black field cricket, Teleogryllus commodus
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Data from: Attitudes towards smoking restrictions and tobacco advertisement bans in Georgia
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Data for: Long duration advertisement calls of nesting male plainfin midshipman fish are honest indicators of size and condition
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Data from: The advertisement call of the toad Rhinella humboldti (Bufonidae)
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Data from: On the advertisement call of Dermatonotus muelleri (Boettger, 1885) (Anura, Microhylidae)
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Figure 4 from: Carbajal-Márquez RA, Díaz-Gamboa LF, Ramírez-Valverde T, García-Balderas CM, Nahuat-Cervera PE, Cedeño-Vázquez JR (2019) Description of the male of Craugastor yucatanensis (Lynch, 1965) (Anura, Craugastoridae), its advertisement call, and additional data on females. ZooKeys 900: 129-139. https://doi.org/10.3897/zookeys.900.37591
Figure 4 Spectrogram (top), and oscillogram (bottom) from a single note of the Craugastor yucatanensis advertisement call, recorded 11 km south of Nuevo Xcán, Yucatán, Mexico.
Figure 2 from: Carbajal-Márquez RA, Díaz-Gamboa LF, Ramírez-Valverde T, García-Balderas CM, Nahuat-Cervera PE, Cedeño-Vázquez JR (2019) Description of the male of Craugastor yucatanensis (Lynch, 1965) (Anura, Craugastoridae), its advertisement call, and additional data on females. ZooKeys 900: 129-139. https://doi.org/10.3897/zookeys.900.37591
Figure 2 An adult male Craugastor yucatanensis found sitting on vegetation at Xcán, Yucatán, Mexico. Photo by Pedro E. Nahuat Cervera.
Figure 3 from: Carbajal-Márquez RA, Díaz-Gamboa LF, Ramírez-Valverde T, García-Balderas CM, Nahuat-Cervera PE, Cedeño-Vázquez JR (2019) Description of the male of Craugastor yucatanensis (Lynch, 1965) (Anura, Craugastoridae), its advertisement call, and additional data on females. ZooKeys 900: 129-139. https://doi.org/10.3897/zookeys.900.37591
Figure 3 An adult female Craugastor yucatanensis found inside a cave at Opichén, Yucatán, Mexico. Photo by Pedro E. Nahuat Cervera.
Figure 1 from: Carbajal-Márquez RA, Díaz-Gamboa LF, Ramírez-Valverde T, García-Balderas CM, Nahuat-Cervera PE, Cedeño-Vázquez JR (2019) Description of the male of Craugastor yucatanensis (Lynch, 1965) (Anura, Craugastoridae), its advertisement call, and additional data on females. ZooKeys 900: 129-139. https://doi.org/10.3897/zookeys.900.37591
Figure 1 Male of Craugastor yucatanensis (ECO-CH-H-4542) view inside of mouth (A) in dorsal aspect (B) ventral view of hand (C) and ventral view of foot (D). Photos by Humberto Bahena Basave.
Figure 2 from: Emmrich M, Vences M, Ernst R, Köhler J, Barej MF, Glaw F, Jansen M, Rödel M-O (2020) A guild classification system proposed for anuran advertisement calls. Zoosystematics and Evolution 96(2): 515-525. https://doi.org/10.3897/zse.96.38770
Figure 2 Key to anuran advertisement call guilds (compare text); each guild illustrated by schematic waveform and spectrogram.
Figure 3 from: Emmrich M, Vences M, Ernst R, Köhler J, Barej MF, Glaw F, Jansen M, Rödel M-O (2020) A guild classification system proposed for anuran advertisement calls. Zoosystematics and Evolution 96(2): 515-525. https://doi.org/10.3897/zse.96.38770
Figure 3 Examples for all different anuran advertisement call guilds (A–H), with a time scale of 0 to 1 s on x-axis and frequency scale of 0 to 8 kHz on y-axis (compare text). Guild A) non-frequency modulated, non-pulsed simple call (Bombina bombina; Bombinatoridae; dfrq/ms = 0.00 Hz/ms) (based on Schneider 2005); Guild B) frequency modulated, non-pulsed simple call (Leptodactylus fuscus; Leptodactylidae; dfrq/ms = 7.22 Hz/ms) (based on Márquez et al. 2002); Guild C) non-frequency modulated pulsed call (Hyla meridionalis; Hylidae; dfrq/ms = 0.67 Hz/ms) (based on Masó and Pijoan 2011); Guild D) frequency modulated pulsed call (Hyperolius pickersgilli; Hyperoliidae; dfrq/ms = 2.32 Hz/ms) (based on Du Preez and Carruthers 2009); Guild E) non-frequency modulated call with uniform notes (Sclerophrys mauritanica; Bufonidae; dfrq/ms = 0.31 Hz/ms) (based on Masó and Pijoan 2011); Guild F) frequency modulated call, with uniform notes (Pseudopaludicola boliviana; Leptodactylidae; dfrq/ms = 2.38 Hz/ms) (based on Márquez et al. 2002); Guild G) non-frequency modulated complex call (Smilisca sila; Hylidae; dfrq/m = 0.43 Hz/ms) (based on Ibanéz 1999); Guild H) frequency modulated complex call (Hyperolius nasutus; Hyperoliidae; dfrq/ms = 1.66 Hz/ms) (based on Du Preez and Carruthers 2009).
Figure 1 from: Emmrich M, Vences M, Ernst R, Köhler J, Barej MF, Glaw F, Jansen M, Rödel M-O (2020) A guild classification system proposed for anuran advertisement calls. Zoosystematics and Evolution 96(2): 515-525. https://doi.org/10.3897/zse.96.38770
Figure 1 Basic types of anuran vocalizations based on their temporal structure, shown as schematic waveforms, modified after Littlejohn (2001): (a) non-pulsed call, (b) pulsed call, (c) call with uniform pulsed notes, (d) complex call containing different note types, and (e) two complex calls in a call series. Black arrows mark inter-note intervals and red arrow marks inter-call interval.
Supplementary material 1 from: Emmrich M, Vences M, Ernst R, Köhler J, Barej MF, Glaw F, Jansen M, Rödel M-O (2020) A guild classification system proposed for anuran advertisement calls. Zoosystematics and Evolution 96(2): 515-525. https://doi.org/10.3897/zse.96.38770
Database for the definition of anuran call guilds
Data from: Distinct neural and neuromuscular strategies underlie independent evolution of simplified advertisement calls
Independent or convergent evolution can underlie phenotypic similarity of derived behavioural characters. Determining the underlying neural and neuromuscular mechanisms sheds light on how these characters arose. One example of evolutionarily derived characters is a temporally simple advertisement call of male African clawed frogs (Xenopus) that arose at least twice independently from a more complex ancestral pattern. How did simplification occur in the vocal circuit? To distinguish shared from divergent mechanisms, we examined activity from the calling brain and vocal organ (larynx) in two species that independently evolved simplified calls. We find that each species uses distinct neural and neuromuscular strategies to produce the simplified calls. Isolated Xenopus borealis brains produce fictive vocal patterns that match temporal patterns of actual male calls; the larynx converts nerve activity faithfully into muscle contractions and single clicks. In contrast, fictive patterns from isolated Xenopus boumbaensis brains are short bursts of nerve activity; the isolated larynx requires stimulus bursts to produce a single click of sound. Thus, unlike X. borealis, the output of the X. boumbaensis hindbrain vocal pattern generator is an ancestral burst-type pattern, transformed by the larynx into single clicks. Temporally simple advertisement calls in genetically distant species of Xenopus have thus arisen independently via reconfigurations of central and peripheral vocal neuroeffectors.
ASA Rulings on Misleading and Harmful Advertising Related to Covid-19
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EFFECTIVENESS OF ADVERTISING ACTIVITY OF TRADE ORGANIZATIONS AND WAYS OF ITS IMPROVEMENT
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NATIONAL MEDIASPECIFIC COMBINATION OF NATIONAL AND INTERNATIONAL EXPERIENCE IN THE TRANSMISSION OF ADVERTISING
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CLASSIFICATION OF ADVERTISING TEXTS.
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COGNITIVE CHARACTERISTICS OF WORD ORDER IN ADVERTISING TEXTS
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Figure 1 from: Dias IR, Mira-Mendes CV, Souza-Costa CA, Juncá FA, Solé M (2017) The advertisement call and comments on the distribution of Eleutherodactylus bilineatus Bokermann, 1975, an endemic frog of Bahia State, Brazil (Amphibia, Anura). ZooKeys 677: 151-159. https://doi.org/10.3897/zookeys.677.12309
Figure 1 - Different individuals of Eleutherodactylus bilineatus showing some variation of the dorsal pattern of the species. A and B RPPN Mata do Passarinho, Macarani C Estação Ecológica Wenceslau Guimarães and D Serra do Corcovado, Almadina, Bahia, Brazil (photographs A, B and D Iuri R. Dias, C Rafael O. Abreu).
ScienceDex guides
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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.