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Figs 50–55. 50–52. Macrolampis longula Motschulsky, 1854a in New world lampyrid types at the Zoological Institute of the Russian Academy of Sciences
Figs 50–55. 50–52. Macrolampis longula Motschulsky, 1854a, holotype, ♂. 50. Habitus, dorsal view. 51. Habitus, ventral view. 52. Labels. 53–55. Nyctocrepis demoulini Motschulsky, 1853, holotype, ♂. 53. Habitus, dorsal view. 54. Habitus, ventral view. 55. Labels.
Figs 32–37. 32–34. Ellipolampis suturella Motschulsky, 1854a in New world lampyrid types at the Zoological Institute of the Russian Academy of Sciences
Figs 32–37. 32–34. Ellipolampis suturella Motschulsky, 1854a, paralectotype, ♂. 32. Habitus, dorsal view. 33. Habitus, ventral view. 34. Labels. 35–37. Lychnacris triguttula Motschulsky, 1854a, holotype, ♀. 35. Habitus, dorsal view. 36. Habitus, ventral view. 37. Labels.
Figs 14–19. 14–16. Ellychnia californica Motschulsky, 1854a in New world lampyrid types at the Zoological Institute of the Russian Academy of Sciences
Figs 14–19. 14–16. Ellychnia californica Motschulsky, 1854a, lectotype, ♀. 14. Habitus, dorsal view. 15. Habitus, ventral view. 16. Labels. 17–19. Ellychnia latipennis Motschulsky, 1854a, holotype, ♀. 17. Habitus, dorsal view. 18. Habitus, ventral view. 19. Labels.
Figs 38–43. 38–40. Lychnogaster cinctus Motschulsky, 1854a in New world lampyrid types at the Zoological Institute of the Russian Academy of Sciences
Figs 38–43. 38–40. Lychnogaster cinctus Motschulsky, 1854a, paralectotype, sex undetermined. 38. Habitus, dorsal view. 39. Habitus, ventral view. 40. Labels. 41–43. Lychnuris klugii Motschulsky, 1854a, lectotype, ♂. 41. Habitus, dorsal view. 42. Habitus, ventral view. 43. Labels.
Figs 8–13. 8–10. Dilychnia basalis Motschulsky, 1853 in New world lampyrid types at the Zoological Institute of the Russian Academy of Sciences
Figs 8–13. 8–10. Dilychnia basalis Motschulsky, 1853, syntype, sex undetermined. 8. Habitus, dorsal view. 9. Habitus, ventral view. 10. Labels. 11–13. Ellychnia albilatera Motschulsky, 1854a, holotype, ♀. 11. Habitus, dorsal view. 12. Habitus, ventral view. 13. Labels.
Figs 1–7. 1–4. Amydetes fucatus Motschulsky, 1854b in New world lampyrid types at the Zoological Institute of the Russian Academy of Sciences
Figs 1–7. 1–4. Amydetes fucatus Motschulsky, 1854b, holotype, ♂. 1. Habitus, dorsal view. 2. Habitus, ventral view. 3. Antenna, lateral view. 4. Labels. 5–7. Bicellonycha lividipennis Motschulsky, 1854b, lectotype, ♂. 5. Habitus, dorsal view. 6. Habitus, ventral view. 7. Labels.
Figs 20–25. 20–22. Ellychnia mexicana Motschulsky, 1854a in New world lampyrid types at the Zoological Institute of the Russian Academy of Sciences
Figs 20–25. 20–22. Ellychnia mexicana Motschulsky, 1854a, holotype, ♀. 20. Habitus, dorsal view. 21. Habitus, ventral view.22. Labels. 23–25. Ellipolampis elongata Motschulsky, 1854a, paralectotype, ♂. 23. Habitus, dorsal view. 24. Habitus, ventral view. 25. Labels.
Fig. 3 in Three Decades Of Zoological Survey In National Parks In Hungary (1974-2002)
Fig. 3. Correlation between Heteroptera genus and species' numbers of Hungarian National Parks, the Bátorliget Nature Reserve and the Őrség LPA (y = 1.9177x – 38.027, R2 = 0.986)
Fig 2 in Three Decades Of Zoological Survey In National Parks In Hungary (1974-2002)
Fig 2. Heteroptera species numbers as a function of the area of Hungarian National Parks and Bátorliget Nature Reserve (y = 3.8999x + 136.3, R2 = 0.435)
Fig. 4 in Three Decades Of Zoological Survey In National Parks In Hungary (1974-2002)
Fig. 4. Species' numbers as a function of the number of specialists (authors) involved in preparing the publication of the fauna of Hungarian National Parks and Bátorliget Nature Reserve (y = 0.0502x +
Fig 1 in Three Decades Of Zoological Survey In National Parks In Hungary (1974-2002)
Fig 1. Species' number as a function of the area of Hungarian National Parks and Bátorliget Nature Reserve (y = 0.0748x + 5.0967, R2 = 0.658)
Fig. 1. Projection cover during vegetation period Fig. 2 in P H E N O L O G Y O F H E R B A C E O U S V Eg E Tat I O N I N Br Oa Dl Eaved Fo Res T O F K Am Sa Bo Tanic Al - Zoological Reserve
Fig. 1. Projection cover during vegetation period Fig. 2. Phenological spectrum of herbs in a) in a) 2009, b) 2010. 2009, b) 2010.
Рис. 1. 1 — Eriogyna koreanis (Brechlin, 2009) (Saturniidae), ♂, Казакевичево, из коΛΛекции ЗооΛогического иссΛеΑоватеΛьского музея АΛексанΑра Кёнига (Германия). Фото В. В. ЗоΛотухина; 2 — Nola confusalis; 3 — Negritothripa hampsoni; 4 — Autographa urupina; 5 — Athetis lapidea; 6–7 — Euplexia koreaeplexia; 8 — Nonagria puengeleri; 9 — Lacanobia oleracea; 10 —Actebia squalida Fig. 1. 1 — Eriogyna koreanis (Brechlin, 2009) (Saturniidae), ♂, Kazakevichevo (Kassakewitschevo), collection of the Zoological Research Museum Alexander Koenig (Germany). Photo by V. V. Zolotuhin; 2 — Nola confusalis; 3 — Negritothripa hampsoni; 4 — Autographa urupina; 5 — Athetis lapidea; 6–7 — Euplexia koreaeplexia; 8 — Nonagria puengeleri; 9 — Lacanobia oleracea; 10 —Actebia squalida in Additions To The Macromoth Fauna (Insecta, Lepidoptera, Macroheterocera) Of Bolshekhekhtsyrsky Nature Reserve (Khabarovsky Krai)
Рис. 1. 1 — Eriogyna koreanis (Brechlin, 2009) (Saturniidae), ♂, Казакевичево, из коΛΛекции ЗооΛогического иссΛеΑоватеΛьского музея АΛексанΑра Кёнига (Германия). Фото В. В. ЗоΛотухина; 2 — Nola confusalis; 3 — Negritothripa hampsoni; 4 — Autographa urupina; 5 — Athetis lapidea; 6–7 — Euplexia koreaeplexia; 8 — Nonagria puengeleri; 9 — Lacanobia oleracea; 10 —Actebia squalida Fig. 1. 1 — Eriogyna koreanis (Brechlin, 2009) (Saturniidae), ♂, Kazakevichevo (Kassakewitschevo), collection of the Zoological Research Museum Alexander Koenig (Germany). Photo by V. V. Zolotuhin; 2 — Nola confusalis; 3 — Negritothripa hampsoni; 4 — Autographa urupina; 5 — Athetis lapidea; 6–7 — Euplexia koreaeplexia; 8 — Nonagria puengeleri; 9 — Lacanobia oleracea; 10 —Actebia squalida
Fig. 1 in Some Neuroptera of the Horn of Africa from the Museum of Zoology of the University of Rome "La Sapienza" (Neuroptera: Chrysopidae, Mantispidae, Ascalaphidae, Myrmeleontidae)
Fig. 1 – Apertochrysa eurydera (Navás, 1910) [♀]: A, Left fore- and hindwings; B, IX tergite and ectoprocts (dorsal view); C, Callus cerci; D, Claw hind leg; E, Spermatheca (lateral view; F, Id. (ventral view); G, Subgenital (ventral view). – [Scale bars: 5 mm (Fig. A); 0.2 mm (Figs B, E-G); 0.1 mm (Figs C-D)].
Fig. 4 in Some Neuroptera of the Horn of Africa from the Museum of Zoology of the University of Rome "La Sapienza" (Neuroptera: Chrysopidae, Mantispidae, Ascalaphidae, Myrmeleontidae)
Fig. 4 – Stenares irroratus Navás, 1912 [♂]: A, Right fore- and hindwing; B, Front; C, Vertex, thorax (dorsal view); D, Ectoproct (lateral view); E, Subgenital plate (ventral view); F, Gonarcus-parameres complex (dorsal view); G, Id. (lateral view); H, Id. (ventral view). – [Scale bars: 10 mm (Fig. A); 5 mm (Figs B-D); 1 mm (Figs E-H)].
Fig. 3 in Some Neuroptera of the Horn of Africa from the Museum of Zoology of the University of Rome "La Sapienza" (Neuroptera: Chrysopidae, Mantispidae, Ascalaphidae, Myrmeleontidae)
Fig. 3 – Stenares completus Banks, 1915 [♂]: A, Right fore- and hindwing; B, Front; C, Vertex, thorax (dorsal view); D, Ectoproct (lateral view); E, Subgenital plate (ventral view); F, Gonarcus-parameres complex (dorsal view); G, Id. (lateral view); H, Id. (ventral view). – [Scale bars: 10 mm (Fig. A); 5 mm (Figs B-D); 1 mm (Figs E-H)].
Fig. 2 in Some Neuroptera of the Horn of Africa from the Museum of Zoology of the University of Rome "La Sapienza" (Neuroptera: Chrysopidae, Mantispidae, Ascalaphidae, Myrmeleontidae)
Fig. 2 – Gonarcus-parameres complex: A, Goniocercus reticulatus (lateral view), B, id. (caudal view); C, G. similis (lateral view), D. id. (caudal view); E, G. klugi (lateral view), F, id. (caudal view). – [Scale bar: 0.5 mm].
Figure 5 in How long do dolphins live? Survival rates and life expectancies for bottlenose dolphins in zoological facilities ťs. wild populations
Figure 5. Kaplan-Meier survival curves depicting the proportion of bottlenose dolphins in zoological care surviving to each age (calculated in days, then transformed to years) during four time periods.
Figure 2 in How long do dolphins live? Survival rates and life expectancies for bottlenose dolphins in zoological facilities ťs. wild populations
Figure 2. ASR (95% confidence intervals) of bottlenose dolphin calves <1 yr old in zoological care across historical time periods.
Figure 4 in How long do dolphins live? Survival rates and life expectancies for bottlenose dolphins in zoological facilities ťs. wild populations
Figure 4. The population age structure for bottlenose dolphins in zoological care on the last day of each time period.
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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.
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.