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13 results for “Caprimulgidae”
Figura 4 in Notas sobre la biología reproductiva de Nyctidromus albicollis (Aves: Caprimulgidae) en Santa Cruz, Bolivia
Figura 4. (A) Despliegue defensivo ante una araña del genero Lycosa durante la incubación. (B) Volantones en el día 19 previo al abandono del sitio de crianza y depredación del polluelo observado a la izquierda de la fotografía.
Figura 1 in Notas sobre la biología reproductiva de Nyctidromus albicollis (Aves: Caprimulgidae) en Santa Cruz, Bolivia
Figura 1. Nidificación de Nyctidromus albicollis. (A) Comportamiento defensivo "ala rota" por el macho para distraer la atención sobre el nido. (B) Vista de los huevos y sitio de nidificación. (C) Bosque seco chiquitano y camino de acceso próximo al sitio de nidificación. (D) Incubación de huevos por el macho durante el día. (E) Incubación de huevos por la hembra durante la noche. (F) Huevos sin cuidado parental. (G-H) Cuidado, acomodación e incubación de huevos.
Figura 3 in Notas sobre la biología reproductiva de Nyctidromus albicollis (Aves: Caprimulgidae) en Santa Cruz, Bolivia
Figura 3. Depredación de polluelos. (A) Polluelo sin cuidado parental por más de 12 h (B) Culebra verde del genero Philodryas atacando al polluelo abandonado. (C) Despliegue defensivo ante una araña del genero Lycosa durante la incubación. (D) Volantones en el día 19 previo al abandono del sitio de crianza y depredación del polluelo observado a la izquierda de la fotografía.
Figura 2 in Notas sobre la biología reproductiva de Nyctidromus albicollis (Aves: Caprimulgidae) en Santa Cruz, Bolivia
Figura 2. Desarrollo de polluelos y cuidados parentales de Nyctidromus albicollis (A) Aspecto del primer polluelo a las 4 h de nacido. (B) Día 3, Pichones realizando desplazamientos cortos caminando. (C) Polluelos desplazándose caminando y con las alas levantadas para ser alimentados. (D) Día 15, volantones con plumaje de adulto casi completo. (E) Volantones sin cuidado parental reaccionando al vuelo de uno de los padres. (F) Macho alimentando a los polluelos.
Data from: What is an eared nightjar? Ultraconserved elements clarify the evolutionary relationships of Eurostopodus and Lyncornis nightjars (Aves: Caprimulgidae)
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Figure 8. A summary tree showing 52 in Deciphering the diversity and history of New World nightjars (Aves: Caprimulgidae) using molecular phylogenetics
Figure 8. A summary tree showing 52 New World nightjar species using the taxonomy recommended in this study. Also shown are 15 Old World species. Maximum-likelihood (ML) and maximum-parsimony (MP) bootstrap scores are displayed above and below the nodes.
Figure 3. A phylogeny from a in Deciphering the diversity and history of New World nightjars (Aves: Caprimulgidae) using molecular phylogenetics
Figure 3. A phylogeny from a maximum-likelihood (ML) analysis of a concatenated 5298-bp molecular data set. The figure shows the Old World taxa in the basal genera Eurostopodus, Gactornis, and Lyncornis, as well as the members of the Old World crown clade. ML bootstrap values higher than 60 and Bayesian posterior probability values higher than 0.95 are displayed on the nodes. Names on the tree represent current taxonomy; names on the right represent those resulting from this revision (see text).
Figure 2 in Deciphering the diversity and history of New World nightjars (Aves: Caprimulgidae) using molecular phylogenetics
Figure 2. Phylogenetic overview of relationships among the main clades of the Caprimulgidae based on a maximum-likelihood (ML) analysis of a concatenated 5298-bp molecular data set. ML bootstrap values higher than 60 and Bayesian posterior probability values higher than 0.85 are displayed on the nodes.
Figure 7. A in Deciphering the diversity and history of New World nightjars (Aves: Caprimulgidae) using molecular phylogenetics
Figure 7. A phylogeny of the Hydropsalis group of the South American clade based on a maximum-likelihood (ML) analysis of a concatenated 5298-bp molecular data set. ML bootstrap values higher than 60 and Bayesian posterior probability values higher than 0.95 are displayed on the nodes. Names on the tree represent current taxonomy; names on the right represent those resulting from this revision (see text).
Figure 1. A in Deciphering the diversity and history of New World nightjars (Aves: Caprimulgidae) using molecular phylogenetics
Figure 1. A summary figure, showing the individual gene trees of the four markers: ND2 (1041 bp); CYTB (1143 bp); RAG-1 (2873 bp); and ACO1 I9 (871 bp). The trees show the relationships among the three basal nightjar genera and the four core radiations. Bootstrap values from maximum-likelihood (ML) analyses are displayed on the nodes (only values> 60 are displayed).
Figure 4. A in Deciphering the diversity and history of New World nightjars (Aves: Caprimulgidae) using molecular phylogenetics
Figure 4. A phylogeny of the nighthawk clade based on a maximum-likelihood (ML) analysis of a concatenated 5298-bp molecular data set. ML bootstrap values higher than 60 and Bayesian posterior probability values higher than 0.95 are displayed on the nodes. Names on the tree represent current taxonomy; names on the right represent those resulting from this revision (see text).
Figure 6. A in Deciphering the diversity and history of New World nightjars (Aves: Caprimulgidae) using molecular phylogenetics
Figure 6. A phylogeny of the genera Lurocalis, Nyctidromus, and Nyctiprogne within the South American clade, based on a maximum-likelihood (ML) analysis of a concatenated 5298-bp molecular data set. ML bootstrap values higher than 60 and Bayesian posterior probability values higher than 0.95 are displayed on the nodes. Names on the tree represent current taxonomy; names on the right represent those resulting from this revision (see text).
Figure 5. A in Deciphering the diversity and history of New World nightjars (Aves: Caprimulgidae) using molecular phylogenetics
Figure 5. A phylogeny of the poorwill clade based on a maximum-likelihood (ML) analysis of a concatenated 5298-bp molecular data set. ML bootstrap values higher than 60 and Bayesian posterior probability values higher than 0.95 are displayed on the nodes. Names on the tree represent current taxonomy; names on the right represent those resulting from this revision (see text).
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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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.