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Figure 3 in Coexistence of Syrian Woodpecker Dendrocopos syriacus and Great Spotted Woodpecker Dendrocopos major in nonforest tree stands of the agricultural landscape in SE Poland
Figure 3. Frequency of the Syrian Woodpecker's (open dots and dashed line) and Great Spotted Woodpecker's (filled dots and continuous line) park occupancy depending on the density of Syrian Woodpeckers in the study area (breeding pairs/10 km2).
Figure 1 in Coexistence of Syrian Woodpecker Dendrocopos syriacus and Great Spotted Woodpecker Dendrocopos major in nonforest tree stands of the agricultural landscape in SE Poland
Figure 1. Correlation between the density (number of breeding pairs/10 km2) of the Syrian Woodpecker and Great Spotted Woodpecker in nonforest tree stands of the agricultural landscape in SE Poland.
Figure 2 in Coexistence of Syrian Woodpecker Dendrocopos syriacus and Great Spotted Woodpecker Dendrocopos major in nonforest tree stands of the agricultural landscape in SE Poland
Figure 2. Locations of Syrian Woodpecker and Great Spotted Woodpecker territories in nonforest tree stands of the agricultural landscape in SE Poland. Legend: gray bars – territories with parks, white bars – territories without parks.
Figure 2 in Diet of the Lesser Spotted Eagle (Clanga pomarina) in Amvrakikos Wetlands National Park, Greece
Figure 2. The Louros river floodplain at the village of Petra bridge with the Valaoritis mountain in the background (at Right) and Zalongo Mountain in the distance (at Left) (Photo: S. Zogaris).
Fig. 36. Character 51, discrete pale proximoventral calf spot. State 1 in PHYLOGENETIC SYSTEMATICS OF DART-POISON FROGS AND THEIR RELATIVES (AMPHIBIA: ATHESPHATANURA: DENDROBATIDAE)
Fig. 36. Character 51, discrete pale proximoventral calf spot. State 1, present (imbricolus, AMNH 102082).
Figs 3–11. Ants from Buxa Tiger Reserve. 3–5 in THE BUXA TIGER RESERVE AS A 'HOT SPOT' OF ANT DIVERSITY IN WEST BENGAL STATE (HYMENOPTERA: FORMICIDAE)
Figs 3–11. Ants from Buxa Tiger Reserve. 3–5 – Calyptomyrmex friederikae Kutter, 1976; 6–8 – Dolichoderus brevis Santschi, 1920; 9–11 – Tetramorium curtulum Emery, 1895. (3, 6, 9 – body, dorsal view; 4, 7, 10 – body, lateral view; 5, 8, 11 – head, frontal view).
Fig. 2. Adult spotted wing drosophila emergence from berries 2 in Efficacy of entomopathogenic fungal products for biological control of spotted wing drosophila (Diptera: Drosophilidae) under laboratory conditions
Fig. 2. Adult spotted wing drosophila emergence from berries 2 wk afer re- moval from the arenas. Bars with the same letter are not significantly different from each other (P> 0.05). Error bars represent standard error of the mean.
Fig. 1 in Efficacy of entomopathogenic fungal products for biological control of spotted wing drosophila (Diptera: Drosophilidae) under laboratory conditions
Fig. 1. Percent mortality of spotted wing drosophila afer 24, 48, 72, and 168 h in each treatment (Untrt = deionized water treated control, BotL = BotaniGard low rate, BotH = BotaniGard high rate, PFRL = PFR 97 low rate, and PFRH = PFR 97 high rate). Bars with the same letter are not significantly different from each other (P> 0.05). N. S. = no significant differences (P> 0.05). Error bars represent standard error of the mean.
Figure 2 in Notes on the origin of Müller and Henle's illustration and type material of the blue-spotted maskray Neotrygon kuhlii (Myliobatoidei: Dasyatidae)
Figure 2. – Vanikoro maskray (raie bleue; foro; Raia coerula), dorsal side. Original watercolour by J.R.C. Quoy executed at Vanikoro in 1828, during the Astrolabe expedition (Dumont d'Urville, 1833); p. 89 of Quoy and Gaimard field notes assembled as MS 840 at Bibliothèque centrale du MNHN, Paris (Bauchot, 1994). Quoy represented ocellated blue spots (N = 14), dark-brown spots (N = 13), dark speckles (N = 3), and lighter-brown scapular blotches (N = 2, one on each shoulder). Edited from a photograph by Bibliothèque centrale du MNHN. Copyright: Muséum national d'Histoire naturelle (Paris) – Direction des bibliothèques et de la documentation, 2016.
Fig. 1 in Topical ivermectin is a highly effective seal 'spot-on': A randomised trial of hookworm and lice treatment in the endangered Australian sea lion (Neophoca cinerea)
Fig. 1. Flow diagram of the trial course showing pup recruitment and recapture count for the three experimental groups for each of the three colony visits. P1 = time between recruitment and first recapture; P2 = time between first recapture and second recapture. Observation of deceased pups is shown relative to (i.e., before or after) the pup's sampling at that visit.
Cercospora Leaf Spot in Chili Pepper Leaves Image Dataset
<p>A custom dataset consisting of 1,738 preprocessed images of chili pepper leaves affected by Cercospora leaf spot for research purposes related to lesion detection using artificial intelligence algorithms.</p>
Fig. 2 in Acanthoatractis xinguensis n. gen., n. sp. (Nematoda: Cosmocercoidea: Atractidae) parasite of yellow-spotted Amazon river turtle, Podocnemis unifilis Troschel (Testudines: Podocnemididae) in Brazilian Amazon
Fig. 2. Line drawings of Acanthoatractis xinguensis n. gen., n. sp. (Female) (A) Posterior extremity of body, region of vulva and anus, lateral view. (B) Reproductive tract showing monodelphic uterus, lateral view.
Fig. 1 in Acanthoatractis xinguensis n. gen., n. sp. (Nematoda: Cosmocercoidea: Atractidae) parasite of yellow-spotted Amazon river turtle, Podocnemis unifilis Troschel (Testudines: Podocnemididae) in Brazilian Amazon
Fig. 1. Line drawings of Acanthoatractis xinguensis n. gen., n. sp. (Male) (A) Cephalic extremity, apical view. (B) Cephalic extremity, apical view, highlighting the oral opening surrounded by sclerotized pieces and the distribution of open end wrench-shaped sclerotized structures. (C) Anterior extremity of body, ventral view. (D) Whole body, lateral view. (E) Details of spicules. (F) Posterior extremity of body, ventral view.
Fig. 3 in Acanthoatractis xinguensis n. gen., n. sp. (Nematoda: Cosmocercoidea: Atractidae) parasite of yellow-spotted Amazon river turtle, Podocnemis unifilis Troschel (Testudines: Podocnemididae) in Brazilian Amazon
Fig. 3. Scanning electron micrographs of Acanthoatractis xinguensis n. gen., n. sp. (A) Male, cephalic extremity, subapical view. (B) Anterior extremity of body, ventrolateral view. Inset: Detail of deirid, lateral view (Scale-bar: 10 μm); Detail of excretory pore, ventral view (Scale-bar: 10 μm). (C) Posterior extremity of male, ventrolateral, distribution of caudal papillae (arrowheads). Detail of phasmid, ventrolateral view (Scale-bar: 5 μm); Postcloacal papillae, ventrolateral view (Scalebar: 10 μm). (D) Posterior extremity of female, ventrolateral view, lines indicate vulva and anus. Abbreviations: Amphid, Am; anus, An; deirid, De; excretory pore, Ep; single median papilla, Sm; vulva, Vu.
Fig. 1 in A new species of Orientatractis (Nematoda: Cosmocercoidea: Atractidae) parasite of Yellow-Spotted Amazon River Turtle, Podocnemis unifilis Troschel, 1848 (Testudines: Podocnemididae) in Brazilian Amazon
Fig. 1. Line drawings of Orientatractis matosi n. sp. (A) Female, whole body, ventral view. (B) Female, cephalic extremity, apical view (C) Posterior end of female, lateral view. (D) Male, whole body, lateral view. (E) Anterior extremity of body, ventrolateral view. (F) Details of spicules and gubernaculum. (G) Male, posterior end, ventral view.
Fig. 2 in A new species of Orientatractis (Nematoda: Cosmocercoidea: Atractidae) parasite of Yellow-Spotted Amazon River Turtle, Podocnemis unifilis Troschel, 1848 (Testudines: Podocnemididae) in Brazilian Amazon
Fig. 2. Scanning electron micrographs of Orientatractis matosi n. sp. (A) Cephalic extremity, apical view (amphidial pores, arrowheads). (B) Anterior extremity of body, lateral view, lines indicate deirid and excretory pore. (C) Posterior extremity of female, ventrolateral view, lines indicate vulva and anus. (D) Posterior extremity of male, ventrolateral, distribution of caudal papillae (arrows) and phasmids (arrowheads). Abbreviations: anus, An; deirid, De; excretory pore, Ep; vulva, Vu; single large submedian spine, a; submedian pointed spines, b. Inset: Cephalic end details, ventrolateral view (Scale-bar: 5 μm), Detail of excretory pore (Scale-bar: 5 μm).
Fig. 2 in Black-spotted pond frog Pelophylax nigromaculatus as a new host for the renal coccidian genus Hyaloklossia (Alveolata: Apicomplexa)
Fig. 2. Phylogenetic tree of based on cox1 sequences of Hyaloklossia and related species belonging to Toxoplasmatinae (Toxoplasma, Neospora, Hammondia, Heydornia), Cystososporinae (Cystoisospora) and Eumonosporinae (Eumonospora) constructed using the neighbor joining method. The nodes are labeled using support from the bootstrap values obtained for the neighbor joining (left) and maximum likelihood (right) methods. Pn: Pelophylax nigromaculatus.
Fig. 1 in Black-spotted pond frog Pelophylax nigromaculatus as a new host for the renal coccidian genus Hyaloklossia (Alveolata: Apicomplexa)
Fig. 1. Light microscopy of Hyaloklossia oocysts in the kidney of Pelophylax nigromaculatus. A. Immature oocyst showing the sporont with granular cytoplasm that does not fill the space inside the oocyst completely. B. An immature oocyst showing the sporoblast with very thin wall. C. An immature oocyst (left) and mature sporocyst (right). D. A mature oocyst with two sporocysts. Arrowhead and arrows indicate oocyst wall and sporocyst residuum, respectively. Scale bar = 5 μm.
Fig. 2. Geometric mean ratio and 95 in Associations between Toxoplasma gondii infection and steroid hormone levels in spotted hyenas
Fig. 2. Geometric mean ratio and 95% CI estimates from separate sex stratified models of the relationship between T. gondii infection and plasma cortisol. The red dashed line represents the null, and estimates are based on percentile bootstrapping (2000 simulations).
Fig. 1. Geometric mean ratio and 95 in Associations between Toxoplasma gondii infection and steroid hormone levels in spotted hyenas
Fig. 1. Geometric mean ratio and 95% CI estimates from separate sex and age stratified models of the relationship between T. gondii infection and plasma testosterone. The red dashed line represents the null, and estimates are based on percentile bootstrapping (2000 simulations).
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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.