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6 results for “Conopophaga”

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Figure 6 in Nesting behavior of the Chestnut-crowned Gnateater (Conopophaga castaneiceps)

Figure 6. Relationship between two egg dimensions (length and width) for seven species of Conopophaga. Conopophaga castaneiceps (this study), C. ardesiaca (Greeney 2018, p. 132, Londoño pers. comm.), C. melanops (von Ihering 1900; Alves et al. 2002; Sánchez and Aponte 2006; Studer et al. 2019), C. aurita (Whitney 2003), C. peruviana (Greeney 2018, p. 95), C. roberti (Peixoto Velho 1932) and C. lineata (Straube 1989; Alves et al. 2002; Sánchez and Aponte 2006; Bodrati and Di Sallo 2020). From Pearson correlation test, R = 0.36 and P =.024.

opennotspecifiedJan 2023View details →
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Figure 4 in Nesting behavior of the Chestnut-crowned Gnateater (Conopophaga castaneiceps)

Figure 4. Sleeping behaviour exhibited by female on the nest during the nocturnal brooding. Photo sequence in four steps (taken on 2014 nest).

opennotspecifiedJan 2023View details →
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Figure 2 in Nesting behavior of the Chestnut-crowned Gnateater (Conopophaga castaneiceps)

Figure 2. Nestling development in C. castaneiceps throughout the 15-day nestling period. (a) Two dayold naked nestling. (b) Four-day-old nestlings with pinfeathers emerging on wings, back and flanks. (c) Seven-day-old nestlings with black bill, grey pin feathers emerging on all tracts, and pinfeathers on the flanks and wing coverts showing orange wing-bars. (d) Ten-day-old nestling, with orange feathers emerging on the head, nape, wing covers, belly and neck, and black feathers beginning to emerge on the wings.

opennotspecifiedJan 2023View details →
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Figure 5 in Nesting behavior of the Chestnut-crowned Gnateater (Conopophaga castaneiceps)

Figure 5. Phylogenetic mapping of the egg colouration and shape among Conopophaga species; we used Grallaricula ferrugineipectus as the outgroup. This phylogeny was obtained from 8000 trees extracted from the BirdTree database (http://birdtree.org; Jetz et al. 2012). Summarised by computing a 50% majority-rule consensus tree using the phytools package (Revell 2012). Egg illustrations done with watercolours by Lizarazo, where egg shape and measurements are 1:1 from the bibliographic record as well the descriptions, photos and data taken from our study and other references (von Ihering 1900; Peixoto Velho 1932; Straube 1989; Alves et al. 2002; Whitney 2003; Sánchez and Aponte 2006; Niklison et al. 2008; Greeney 2018; Studer et al. 2019; Bodrati and Di Sallo 2020; Londoño pers. comm.).

opennotspecifiedJan 2023View details →
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Figure 3 in Nesting behavior of the Chestnut-crowned Gnateater (Conopophaga castaneiceps)

Figure 3. Morphological development in two C. castaneiceps nestlings during 12 days. Solid lines are the model estimated for each growth rate. (a) Tarsus (light grey) and wing (dark grey) growth lines; different symbols represent data for both. (b) Mass as a solid black line. From the logistic regression model, the mass gain through the nestling period (A or the asymptote) is 20.7 g, the growth constant is 0.4 (K), and the inflection point on the x-axis (Ti) is 6.8 g. Fledgling illustration done with watercolours by Lizarazo.

opennotspecifiedJan 2023View details →
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Figure 1 in Nesting behavior of the Chestnut-crowned Gnateater (Conopophaga castaneiceps)

Figure 1. Nests and eggs of C. castaneiceps. (a) Side view of the 2014 nest. (b) Cup nest anchored between bromeliad and four sapling branches. (c) Creamy eggs of a 2014 nest with scattered, reddish dots. (d) Side view of 2015 nest. (e) Cup nest anchored between three branches and the base of tree. (f) Cream-coloured eggs of 2015 nest with more marked and scattered reddish dots.

opennotspecifiedJan 2023View details →

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Allen Brain Atlas

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DANDI Archive for NWB datasets

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electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
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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.

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OpenNeuro

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neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record