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FIGURE 1 in Another new exotic bark beetle in Florida: Ernoporus parvulus (Eggers, 1943) (Coleoptera: Curculionidae: Scolytinae), with additional taxonomic changes
FIGURE 1. Ernoporus parvulus (Eggers, 1943). A: female, dorsal, lateral, and ventral photographs (UFFE:36956); B: male, dorsal, lateral, and ventral photographs (UFFE:36955).
FIGURE 4. Euphorbia mandravioky. A. Habit. B. Bark. C. Leaves. D in Taxonomic revision of the Malagasy endemic and enigmatic Euphorbia section Pachysanthae (Euphorbiaceae)
FIGURE 4. Euphorbia mandravioky. A. Habit. B. Bark. C. Leaves. D. Detail of a fertile branch showing two terminal cyathia without cyathophylls. E. Detail of a cyathium. F. Adaxial and abaxial views of cyathophylls. G. Young fruits. H. Mature fruit (note hanging position). I. Cross section of the fruit and the seed. A after Aubriot et al. 134 (P) and Aubriot et al. 108 (P), B–C after Aubriot et al. 107 (P), D–F after Service Forestier (Capuron) 11254 (P), G after Razafitsalama et al. 628 (P), H–I after Ratovoson 1244 (MO).
FIGURE 3. Euphorbia mananarensis. A. Habit. B. Bark. C. Leaves. D in Taxonomic revision of the Malagasy endemic and enigmatic Euphorbia section Pachysanthae (Euphorbiaceae)
FIGURE 3. Euphorbia mananarensis. A. Habit. B. Bark. C. Leaves. D. Detail of a cyathium. E. Cyathophylls. F. Young female flower. G. Front and side views of two fruits. H. Front view of a seed. I. Cross section of the fruit and the seed. A–C, G–I after Aubriot et al. 55 (P), D–F after Service Forestier (Capuron) 18692 (P).
Figure 4 in Population dynamics of the bark-dwelling spider Eustala perfida Mello-Leitão, 1947 (Araneidae)
Figure 4. (a) Adult male (green) and adult female (brown) of Eustala perfida on the same orb web parallel to a tree bark. Close-ups of the (b) adult male and (c) adult female. Green adult females of E. perfida and the spider's egg sac (d) in natural conditions and (e) in laboratory. Scale bars: 5 mm. Photography: Yuri Fanchini Messas.
Figure 8 in Population dynamics of the bark-dwelling spider Eustala perfida Mello-Leitão, 1947 (Araneidae)
Figure 8. Number of arthropods captured by Eustala perfida (observed) and number expected based on the frequencies of arthropods intercepted in the sticky traps. (a) Numbers by prey type (order or suborder). DI: Diptera, HY: Hymenoptera, CO: Coleoptera, AU: Auchenorrhyncha, AR: Araneae, PS: Psocoptera, HE: Heteroptera, LE: Lepidoptera. (b) Numbers by body classes. Orders with frequencies lower than 1% were not placed in the figure (see Table 5).
Figure 2 in Population dynamics of the bark-dwelling spider Eustala perfida Mello-Leitão, 1947 (Araneidae)
Figure 2. Circular histogram of abundance of the Eustala perfida population. Black vector line inside the circle indicates the mean angle; transverse line on the external sector of the circle indicates the confidence interval (95%).
Figure 1 in Population dynamics of the bark-dwelling spider Eustala perfida Mello-Leitão, 1947 (Araneidae)
Figure 1. Climatic diagram of Serra do Japi, São Paulo, Brazil, registering the temperature and precipitation of the period between 2011 and 2013. Areas containing vertical lines in white areas indicate humid periods; vertical lines in dark areas, super-wet periods; and dotted areas, dry periods.
Figure 7 in Population dynamics of the bark-dwelling spider Eustala perfida Mello-Leitão, 1947 (Araneidae)
Figure 7. Circular frequency histograms of adult females and adult males of Eustala perfida. The black vector line inside the circle indicates the mean angle or direction of the data. The transverse line on the external sector of the circle indicates the confidence interval of 95%.
Figure 6 in Population dynamics of the bark-dwelling spider Eustala perfida Mello-Leitão, 1947 (Araneidae)
Figure 6. Circular histograms of age structure established for the population of Eustala perfida. The black vector line inside the circle indicates the mean angle or direction of the data. The transverse line on the external sector of the circle indicates the confidence interval of 95%.
Figure 1 in Diversity and abundance of fungivorous thrips (Thysanoptera) associated with leaf-litter and bark across forest types and two tree genera in subtropical Australia
Figure 1. Morphological diversity among fungal-feeding thrips. (A) Anaglyptothrips dugdalei; (B) Baenothrips moundi; (C) Corroboreethrips sp. nr subsolanus; (D) Horistothrips australiae; (E) Merothrips floridensis; (F) Uzelothrips scabrosus; (G) Psalidothrips sp. nov. "A"; (H) Zemiathrips uptoni; (I) Gen. nov. Phlaeothripinae "N".
Figure 2 in Diversity and abundance of fungivorous thrips (Thysanoptera) associated with leaf-litter and bark across forest types and two tree genera in subtropical Australia
Figure 2. Location of the D'Aguilar National Park, within the Macpherson–Macleay overlap where the Torresian and Bassian zones come together, which results in increased biodiversity.
Figure 32. A–O in Revision and phylogeny of the European species of the Eurytoma morio species group (Hymenoptera: Eurytomidae), parasitoids of bark and wood boring beetles
Figure 32. A–O, SEM images of female Eurytoma heads in frontal view: A–C, Eurytoma laricis; D–F, Eurytoma aloisifilippoi; G–I, Eurytoma morio; J–L, Eurytoma striolata (major form); M–O, Eurytoma striolata (minor form). A, D, G, J, M, head; B, E, H, K, N, lower face; C, F, I, L, O, clypeus.
Figures 8. A–D in Revision and phylogeny of the European species of the Eurytoma morio species group (Hymenoptera: Eurytomidae), parasitoids of bark and wood boring beetles
Figures 8. A–D, measurements of adult Eurytoma (continued): A, mesosoma in dorsal view; B, gaster in lateral view; C, forewing; D, forewing venation. Abbreviations listed in Appendix S5.
Figure 10. A–D in Revision and phylogeny of the European species of the Eurytoma morio species group (Hymenoptera: Eurytomidae), parasitoids of bark and wood boring beetles
Figure 10. A–D, Eurytoma afra: A–C, female; D, male. A, head in frontal view; B, head and pronotum in lateral view; C, head and mesosoma in dorsal view; D, antenna.
Figure 9. A–I in Revision and phylogeny of the European species of the Eurytoma morio species group (Hymenoptera: Eurytomidae), parasitoids of bark and wood boring beetles
Figure 9. A–I, labelling of some types. A, lectotype ♀ of Eurytoma arctica Thomson, 1875; B, lectotype ♀ of Eurytoma umbilicata Thomson, 1876; C, holotype ♀ of Eurytoma blastophagi Hedqvist, 1963; D, holotype ♀ of Eurytoma fraxinicola Hedqvist, 1963; E, paratype ♀ of Eurytoma annilai Hedqvist, 1974; F, holotype ♀ of Eurytoma kangasi Hedqvist, 1966; G, paratype ♀ of Eurytoma kangasi Hedqvist, 1966; H, allotype ♂ of Eurytoma kangasi Hedqvist, 1966; I, holotype ♀ of Eurytoma kemalpasensis Narendran, Tezcan & Civelek, 1995.
Figures 7. A–F in Revision and phylogeny of the European species of the Eurytoma morio species group (Hymenoptera: Eurytomidae), parasitoids of bark and wood boring beetles
Figures 7. A–F, measurements of adult Eurytoma. Head and antenna: A, head in dorsal view; B, vertex; C, female antenna; D, male antenna; E, head in ventral view; F, head in frontal view. Abbreviations listed in Appendix S5.
Figure 6. A–F in Revision and phylogeny of the European species of the Eurytoma morio species group (Hymenoptera: Eurytomidae), parasitoids of bark and wood boring beetles
Figure 6. A–F, Eurytoma (continued). Eurytoma melanoneura (A); Eurytoma striolata (B, D); Eurytoma maura (C); Eurytoma morio (E); Eurytoma ithma sp. nov. (F). A, B, costal cell of forewing; C, D, apical venation of forewing; E, pronotum and mesoscutum, F, male antenna.
Figure 5. A–K in Revision and phylogeny of the European species of the Eurytoma morio species group (Hymenoptera: Eurytomidae), parasitoids of bark and wood boring beetles
Figure 5. A–K, Eurytoma (continued). Eurytoma asphodeli (A); Eurytoma striolata (B); Eurytoma maura (C, D, E, F, G); Eurytoma morio (H); Eurytoma annilai (I); Eurytoma sp. (= Eurytoma kangasi allotype) (J); Eurytoma saliphila sp. nov. (K). A, B, head in lateral view; C, female pedicel; D, male scape; E, male antenna; F, head in frontal view; G, pronotum; H, propodeum; I–J, mesopleuron; K, base of forewing. Abbreviations: GC, genal carina; PGL, postgenal lamina.
Figure 3 in Revision and phylogeny of the European species of the Eurytoma morio species group (Hymenoptera: Eurytomidae), parasitoids of bark and wood boring beetles
Figure 3. Bayesian majority-rule consensus tree illustrating the relationships within the morio species group based on the concatenation of morphological and molecular (28S + COI) data. Posterior probability values> 0.90 above branches.
Figure 2 in Revision and phylogeny of the European species of the Eurytoma morio species group (Hymenoptera: Eurytomidae), parasitoids of bark and wood boring beetles
Figure 2. Bayesian majority-rule consensus tree based on the barcoding fragment of the mitochondrial gene COI. Posterior probability values> 0.90 above branches.
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.