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Figs. 2–9 in Review of the New World genus Cholomyia (Diptera, Tachinidae), with a new species from Costa Rica

Figs. 2–9. Cholomyia acromion (Wiedemann), ♂: 2, dorsal habitus; 3, lateral habitus; 4, head, lateral view; 5, head, frontal view. 6–9, ♂ terminalia: 6, ejaculatory apodeme, lateral view; 7, aedeagus and hypandrium, lateral view; 8, epandrium, surstylus and cerci, lateral view; 9, epandrium, surstylus and cerci, posterior view. (Legends: basiph, basiphallus; cer, cerci; distph, distiphallus; ejac apod, ejaculatory apodeme; ep, epandrium; hypd, hypandrium; phapod, phallapodeme; pregt, pregonite; posgt, postgonite; sur, surstylus). Scale bar from figures 2 to 5: 1 mm; figures 6 to 9: 0.1 mm.

opencc-by-4.0Jun 2016View details →
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Figs. 37–44 in Review of the New World genus Cholomyia (Diptera, Tachinidae), with a new species from Costa Rica

Figs. 37–44. Cholomyia zumbadoi sp. nov., ♂: 37, dorsal habitus; 38, lateral habitus; 39 head, lateral view; 40 head, frontal view. 41–44, ♂ terminalia: 41, ejaculatory apodeme, lateral view; 42, aedeagus and hypandrium, lateral view; 43, epandrium, surstylus and cerci, lateral view; 44, epandrium, surstylus and cerci, posterior view. Scale bar from figures 37 to 40: 1 mm; figures 41 to 44: 0.1 mm.

opencc-by-4.0Jun 2016View details →
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Figure 6 in Does logging affect soil biodiversity and its functions? A review

Figure 6. Number of reviewed studies showing positive, neutral, negative, neutral/negative or negative/positive effects of logging on soil functions.

opencc-by-4.0Nov 2023View details →
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Figure 3 in Does logging affect soil biodiversity and its functions? A review

Figure 3. Worldwide distribution of logging studies included in this review. The bar chart represents the number of articles in each country (■).

opencc-by-4.0Nov 2023View details →
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Figure 1 in Does logging affect soil biodiversity and its functions? A review

Figure 1. General overview of this synthesis review. Silvicultural practices, which can affect soil biodiversity and ecosystem functioning driven by soil organisms, can be categorized into two main aspects: (a) alterations in tree strata and understory vegetation, as silvicultural practices often lead to the simplification of tree strata and bring about changes in the composition of understory vegetation. It is important to note that logging equipment also involves the utilization of temporary roads, trails, and log collection points as integral components of this practice, and (b) technology and infrastructure: the incorporation of technology and the development of infrastructure play a crucial role in shaping the effects of silvicultural practices on soil organisms and the overall functionality of ecosystems.

opencc-by-4.0Nov 2023View details →
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Fig. 3 in Review paper Stimulation of Plant Growth through Interactions of Bacteria and Protozoa: Testing the Auxiliary Microbial Loop Hypothesis

Fig. 3. Difference in growth responses of 16 cultivars of rice (Oryza sativa L.) grown in autoclaved soil and with a diverse soil bacterial filtrate reinoculated into the farmland soil in presence (black bars) and absence (white bars) of Acanthamoeba sp. Shoot dry weight (a), total root length (b), number of laterals at seminal root (c), and total nitrogen uptake (d). Vertical error bars represent standard deviation (n = 4–9). The symbols * and ** indicate a significant difference at P <0.05 and 0.01 by one way ANOVA, respectively. Data from Somasundaram et al. (2008).

opencc-by-4.0Dec 2012View details →
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Fig. 1 in Review paper Stimulation of Plant Growth through Interactions of Bacteria and Protozoa: Testing the Auxiliary Microbial Loop Hypothesis

Fig. 1. Respiration of glucose-C (µg CO -C * g–1 soil) after addi2 tion of 1,000, 2,000, 4,000, and 8,000 ppm glucose to soil from the Heteren field site (Scheu 1992). 1,000 ppm glucose are completely respired by soil microorganisms within a single day, but glucose was not lasting longer than 4 days after saturation of the soil with glucose at 2,000–8,000 ppm (mean of 3 replicates ± 1 SD, see Ekelund et al. (2009) for a characterization of the soil).

opencc-by-4.0Dec 2012View details →
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Fig. 4 in Ecology of Soil Eumycetozoans Review paper

Fig. 4. Fruiting bodies of Hemitrichia calyculata (Speg.) M. L. Farr (photo by Kim Fleming). Scale bar: 1.0 mm.

opencc-by-4.0Dec 2012View details →
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Figure 2 in Faunistic review and description of a new species of Pselaphinae (Coleoptera: Staphylinidae) from the Strandzha Mountains (Bulgaria and Turkey)

Figure 2. Bryaxis fronticornis sp. nov. (holotype male): a) habitus (scale: 0.75 mm); b) head (scale: 0.43 mm); c) left scapus in dorsal view (scale: 0.1 mm); d, e) abdominal tergite VIII – ventral and posteroventral views (scale: 0.17 mm); f, g) aedeagus – dorsal and lateral view (scale: 0.14 mm).

opencc-by-4.0Jun 2013View details →
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Text-fig. 4. Dendrogram (Ward's method, squared Euclidean distance) showing the relationship between the studied fossil vegetation assemblages of Hrádek/N. (48), Wackersdorf (49), Berzdorf and Wiesa (50) and the Mydlovary Fm. (51) and the studied modern vegetation units from SE China and Japan (Teodoridis et al. 2011a, 2012, Appendix – this volume). in A Review Of The Early Miocene Mastixioid Flora Of The Kristina Mine At Hrádek Nad Nisou In North Bohemia (The Czech Republic)

Text-fig. 4. Dendrogram (Ward's method, squared Euclidean distance) showing the relationship between the studied fossil vegetation assemblages of Hrádek/N. (48), Wackersdorf (49), Berzdorf and Wiesa (50) and the Mydlovary Fm. (51) and the studied modern vegetation units from SE China and Japan (Teodoridis et al. 2011a, 2012, Appendix – this volume).

opencc-by-4.0Dec 2012View details →
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Text-fig. 3. Schematic geological section of the Kristina Mine near Hrádek/N. (state in 1963–1964) – height/length ratio 3:1. Explanations: vertical hatching – lignite seam, seamlet; dotted – coarse-grained sand, pea-gravel; short lines – sandy clay; white – clay; black lines – clay ironstone concretions; black dots – individual fossiliferous horizons designated as (A) plastic clay from the upper part of the main xylitic seam (about 5 m under t of the seam, (B) clay and "Blätterkohle" from the uppermost part of the first seamlet (split off the Main Coal Seam), (C) slightly sandy brown clay under the uppermost part of the Main Coal Seam, (D) base of the sandy clay with large concretions of the clay ironstone above the Main Coal Seam, (E) sandy clay (incl. clay ironstone) supplying most of leaf material with cuticles (F) 1–2 cm thin silty lenticles or thin beds of the sandy clay with xylites and Eomastixia within peagravels and coarse-grained sands, (G) coarse-grained sands with clayish silts with Fagus, Ocotea, Pterocarya, Tectocarya, (H) brown sandy clay underlying the uppermost seamlet, (I) lignite clay, base of the uppermost seamlet (J) Glyptostrobus – "Blätterkohle", base of the uppermost seamlet (according to Holý 1975, modified). in A Review Of The Early Miocene Mastixioid Flora Of The Kristina Mine At Hrádek Nad Nisou In North Bohemia (The Czech Republic)

Text-fig. 3. Schematic geological section of the Kristina Mine near Hrádek/N. (state in 1963–1964) – height/length ratio 3:1. Explanations: vertical hatching – lignite seam, seamlet; dotted – coarse-grained sand, pea-gravel; short lines – sandy clay; white – clay; black lines – clay ironstone concretions; black dots – individual fossiliferous horizons designated as (A) plastic clay from the upper part of the main xylitic seam (about 5 m under t of the seam, (B) clay and "Blätterkohle" from the uppermost part of the first seamlet (split off the Main Coal Seam), (C) slightly sandy brown clay under the uppermost part of the Main Coal Seam, (D) base of the sandy clay with large concretions of the clay ironstone above the Main Coal Seam, (E) sandy clay (incl. clay ironstone) supplying most of leaf material with cuticles (F) 1–2 cm thin silty lenticles or thin beds of the sandy clay with xylites and Eomastixia within peagravels and coarse-grained sands, (G) coarse-grained sands with clayish silts with Fagus, Ocotea, Pterocarya, Tectocarya, (H) brown sandy clay underlying the uppermost seamlet, (I) lignite clay, base of the uppermost seamlet (J) Glyptostrobus – "Blätterkohle", base of the uppermost seamlet (according to Holý 1975, modified).

opencc-by-4.0Dec 2012View details →
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Fig. 2 in A review of sarcoptic mange in North American wildlife

Fig. 2. Microscopic lesions of a bear with sarcoptic mange. (A) Close-up view of hyperkeratotic and crusted skin showing a mite tunnel. (B) Histological section with cross-section of S. scabiei within the epidermis. (Asterisks: mite tunnels; arrowheads: epidermis; arrow pointing to S. scabiei).

opencc-by-4.0Aug 2019View details →
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Fig. 1 in A review of sarcoptic mange in North American wildlife

Fig. 1. Life stages of S. scabiei. Top left: Egg; Top middle: Larva; Top right: Protonymph; Bottom left: Tritonymph; Bottom middle: Adult Male; Bottom right: Adult Female.

opencc-by-4.0Aug 2019View details →
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Figures 19-27. Nysson rugosus Cameron. 19–26 in A review of the genus Nysson Latreille (Hymenoptera: Crabronidae: Bembicinae: Nyssonini) from India

Figures 19-27. Nysson rugosus Cameron. 19–26 ♀ & 27 ♂. 19. Habitus, lateral view. 20. Head, face view. 21. Lower part of head, face view. 22. Head and mesosoma, dorsal view. 23. Fore wing. 24. Hind wing. 25. Metasoma, dorsal view. 26. Last metasomal tergite. 27. Antenna.

opencc-by-4.0Dec 2021View details →
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Figures 10-18. Nysson excavatus Turner. 10–17 in A review of the genus Nysson Latreille (Hymenoptera: Crabronidae: Bembicinae: Nyssonini) from India

Figures 10-18. Nysson excavatus Turner. 10–17 ♀ & 18 ♂. 10. Habitus, lateral view. 11. Head, face view. 12. Lower part of head, face view. 13. Head and mesosoma, dorsal view. 14. Fore wing. 15. Hind wing. 16. Metasoma, dorsal view. 17. Last metasomal tergite. 18. Antenna.

opencc-by-4.0Dec 2021View details →
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Figures 1-9 in A review of the genus Nysson Latreille (Hymenoptera: Crabronidae: Bembicinae: Nyssonini) from India

Figures 1-9. Nysson erythropoda Cameron. ♀. 1. Habitus, lateral view. 2. Head, face view. 3. Lower part of head, face view. 4. Antenna. 5. Head and mesosoma, dorsal view. 6. Fore wing. 7. Hind wing. 8. Metasoma, dorsal view. 9. Last metasomal tergite.

opencc-by-4.0Dec 2021View details →
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Text-fig. 2. Cyclurus macrocephalus, scales. a-i – isolated scales: a – specimen IGP 2011/14; b – specimen IGP 2011/22, scale 2; c – specimen IGP 2011/18, scale 2; d – specimen NMP Pc 2868; e – specimen IGP 2011/17; f – specimen NMP Pc 2867; g – specimen IGP 2011/18, scale 3; h – specimen IGP 2011/16; i – specimen IGP 2011/18, scale 1. e-g – scales from the postanal area of the body; i – scale from the lateral line. Head should be in the left. Scale bars represent 1 mm. in Lepidological Review On The Fish Fauna Of The Kučlín Locality (Upper Eocene, Czech Republic)

Text-fig. 2. Cyclurus macrocephalus, scales. a-i – isolated scales: a – specimen IGP 2011/14; b – specimen IGP 2011/22, scale 2; c – specimen IGP 2011/18, scale 2; d – specimen NMP Pc 2868; e – specimen IGP 2011/17; f – specimen NMP Pc 2867; g – specimen IGP 2011/18, scale 3; h – specimen IGP 2011/16; i – specimen IGP 2011/18, scale 1. e-g – scales from the postanal area of the body; i – scale from the lateral line. Head should be in the left. Scale bars represent 1 mm.

opencc-by-4.0Nov 2011View details →
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Text-fig. 3. Thaumaturus furcatus, scales. a – reconstruction according to Obrhelová (1975); b – specimen NMP Pc 164, scales in situ; c – detail of the postanal part of the specimen NMP Pc 164 with the preserved scale covering. d – specimen NMP Pc 191, scales in situ; e – h isolated scales: e – NMP Pc 185; f – NMP Pc 239, scale 1; g – NMP Pc 239, scale 2; h – NMP Pc 241. Head should be in the left (excluding d). Scale bars represent 5 mm (b, d) 1 mm (c) and 0.5 mm (e-h). in Lepidological Review On The Fish Fauna Of The Kučlín Locality (Upper Eocene, Czech Republic)

Text-fig. 3. Thaumaturus furcatus, scales. a – reconstruction according to Obrhelová (1975); b – specimen NMP Pc 164, scales in situ; c – detail of the postanal part of the specimen NMP Pc 164 with the preserved scale covering. d – specimen NMP Pc 191, scales in situ; e – h isolated scales: e – NMP Pc 185; f – NMP Pc 239, scale 1; g – NMP Pc 239, scale 2; h – NMP Pc 241. Head should be in the left (excluding d). Scale bars represent 5 mm (b, d) 1 mm (c) and 0.5 mm (e-h).

opencc-by-4.0Nov 2011View details →
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Text-fig. 1. Main morphological features of scales (nomenclature according to Lagler 1947). a – ctenoid scale; b – cycloid scale. in Lepidological Review On The Fish Fauna Of The Kučlín Locality (Upper Eocene, Czech Republic)

Text-fig. 1. Main morphological features of scales (nomenclature according to Lagler 1947). a – ctenoid scale; b – cycloid scale.

opencc-by-4.0Nov 2011View details →
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Figure 17 in Review of the genus Pacuvia Curtis, 1844 (Coleoptera: Scarabaeidae: Melolonthinae: Diplotaxini)

Figure 17. Distributional map for Pacuvia castanea (black circles) and Pacuvia philippiana (red triangles) in central Chile.

opencc-by-4.0Dec 2021View details →

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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.

allen-brain-atlas
neuroscienceopenDocumentation, web resources, and API references are available online.
Last verified 2026-04-30Open record

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.

abode-home-cage
behavioral-neuroscienceopenThe DataShare record exposes download links for annotations, documentation, license text, and the zipped per-snippet data directory.
Last verified 2026-04-30Open record

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.

dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
Last verified 2026-04-30Open record

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.

ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

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.

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