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150 results for “100 years”
FIG. 1 in A 100-million-year-old ensiferan with unusual mouthparts and comments on the evolution of raptorial appendages within Polyneoptera
FIG. 1. — Holotype of Gryllobencain patrickmuelleri n. gen., n. sp., PED 0147: A, overview in dorsal view; B, overview in ventral view; C, close-up on maxillary palp, distal part; D, close-up on thorax appendage 1. Abbreviations: an, antenna; ce, cercus; cl1, claw of thorax appendage 1; f1-2, femur of thorax appendage 1-2; hc, head capsule; mp, maxillary palp; sp, spine-like seta; t1-3, thorax segment 1-3; ta1-3, tarsus of thorax appendage 1-3; tcl, tibia claw; ti1-3, tibia of thorax appendage 1-3. Scale bars: A, B, 1 mm; C, 0.25 mm; D, 0.5 mm.
Fig. 2. SNSB-BSPG 2020 XCIII 18 containing a in A new glimpse on trophic interactions of 100-million-year old lacewing larvae
Fig. 2. SNSB-BSPG 2020 XCIII 18 containing a neuropteran larva with attached mite from Hukawng Valley, Kachin State, Myanmar; Turonian– Cenomanian, Cretaceous, 90–100 mya; in dorsal (A1) and ventral (A2) views.
Fig. 1 in A new glimpse on trophic interactions of 100-million-year old lacewing larvae
Fig. 1. Neuropteran larvae from Hukawng Valley, Kachin State, Myanmar; Turonian–Cenomanian, Cretaceous, 90–100 mya. A. SNSB-BSPG 2020 XCIII 19 with assemblage of neuropteran stylets; A1, overview; A2, close-up image of enclosed stylets; A3, stylets, with five clearly visible (1–5) and possibly three additional stylets (6?–8?); A4, close-up image of representative of Hymenoptera. B. SNSB-BSPG 2020 XCIII 26 (previously BUB 033 in Haug et al. 2019c); B1, head of neuropteran larva with stylets pair in situ; B2, drawing of a single stylet of the specimen in B1; note the high number of teeth, similar to that of stylets 1 and 2 in A3.
FIGURE 16 in An overview of crawling water beetle larvae and a first possible record from 100-million-years-old Myanmar amber
FIGURE 16. Scatter plot of PC2 vs. PC1 of body outlines of larvae of Haliplidae and the new fossils. The differentiated stages are all representatives of Haliplus. Note how tightly together the fossils cluster, indicating a very similar overall shape. This is different for the larvae of the extant forms that show quite some variation, especially over ontogeny.
FIGURE 15 in An overview of crawling water beetle larvae and a first possible record from 100-million-years-old Myanmar amber
FIGURE 15. Scatter plot of head length over total length of larvae of Haliplidae and the new fossils. The differentiated stages are all representatives of Haliplus. Note the possible three stages of the fossils: a single one on the lower left might represent a stage 1 larva; those clustering in the middle might represent stage 2 larvae, the single fossil far up right might represent a stage 3 larva.
FIGURE 13. Fossil larva BUB 1222. A. Overview ventral side. B in An overview of crawling water beetle larvae and a first possible record from 100-million-years-old Myanmar amber
FIGURE 13. Fossil larva BUB 1222. A. Overview ventral side. B. Colour-marked version of A. C. Dorsal side. D. Close-up on head. E. Close-up trunk end. F. Close-up on leg; arrow points to claw. Abbreviations: ad = abdomen; at = antenna; fe = femur; hc = head capsule; ms = mesothorax; mt = metathorax; pl = palp; pt = prothorax.
FIGURE 17 in An overview of crawling water beetle larvae and a first possible record from 100-million-years-old Myanmar amber
FIGURE 17. Scatter plot of PC1 versus total length of larvae of Haliplidae and the new fossils. The differentiated stages are all representatives of Haliplus. Note that modern day stage 1 and 2 larvae plot away from the smaller fossils, with a single exception. For the fossils, the outline seems to be very similar, independent of the size.
FIGURE 11. Fossil larva BUB 4436, specimen 9. A. Overview dorsal side. B in An overview of crawling water beetle larvae and a first possible record from 100-million-years-old Myanmar amber
FIGURE 11. Fossil larva BUB 4436, specimen 9. A. Overview dorsal side. B. Colour-marked version of A. C. Ventral side. D. Close-up trunk end. E. Close-up on head. F. Close-up on thorax. Abbreviations: ad = abdomen; at = antenna; fe = femur; hc = head capsule; ms = mesothorax; mt = metathorax; pt = prothorax.
FIGURE 10. Fossil larva BUB 4436, specimen 8. A. Overview ventral side. B in An overview of crawling water beetle larvae and a first possible record from 100-million-years-old Myanmar amber
FIGURE 10. Fossil larva BUB 4436, specimen 8. A. Overview ventral side. B. Colour-marked version of C. C. Dorsal side. D. Close-up on head. E. Close-up trunk end. F. Close-up on leg. G. Close-up on tergites. Abbreviations: ad = abdomen; at = antenna; hc = head capsule; ms = mesothorax; mt = metathorax; pt = prothorax.
FIGURE 12. Fossil larvae BUB 4436, specimens 10 and 11. A–F. Specimen 10. A. Overview dorsal side. B in An overview of crawling water beetle larvae and a first possible record from 100-million-years-old Myanmar amber
FIGURE 12. Fossil larvae BUB 4436, specimens 10 and 11. A–F. Specimen 10. A. Overview dorsal side. B. Colourmarked version of A. C. Ventral side. D. Close-up on head. E. Close-up trunk end. F. Close-up on leg. G–K. Specimen 11. G. Overview ventral side. H. Colour-marked version of G. I. Dorsal side. J. Close-up on head. K. Close-up on trunk end. Abbreviations: ad = abdomen; at = antenna; hc = head capsule; ms = mesothorax; mt = metathorax; pt = prothorax; th = thorax; ti = tibia.
FIGURE 5. Fossil larva BUB 4436, specimen 2. A in An overview of crawling water beetle larvae and a first possible record from 100-million-years-old Myanmar amber
FIGURE 5. Fossil larva BUB 4436, specimen 2. A. Overview on lateral side. B. Colour-marked version of A. C. Other side. D. Close-up on trunk end. E. Close-up on thorax. Abbreviations: ad = abdomen; at = antenna; hc = head capsule; ms = mesothorax; mt = metathorax; pt = prothorax.
FIGURE 6. Fossil larva BUB 4436, specimen 3. A. Overview dorsal side. B in An overview of crawling water beetle larvae and a first possible record from 100-million-years-old Myanmar amber
FIGURE 6. Fossil larva BUB 4436, specimen 3. A. Overview dorsal side. B. Colour-marked version of B. C. Ventral side. D. Close-up on anterior region in ventral view. E. Close-up on head. F. Close-up on very terminal end. Abbreviations: ad = abdomen; at = antenna; hc = head capsule; ms = mesothorax; mt = metathorax; pt = prothorax; te = trunk end.
FIGURE 1 in An overview of crawling water beetle larvae and a first possible record from 100-million-years-old Myanmar amber
FIGURE 1. Simplified drawings of larvae of Haliplus and Brychius, stage 3 larvae or larvae of unknown stage, based on various sources. A–N. Haliplus. A. H. confinis, Böving and Craighead (1931). B. Peterson (1957). C–I. Stage 3 larvae. C–F. Vondel (2012). C. H. halsei. D. H. pilbaraensis. E. H. fortescueensis. F. Haliplus pinderi. G–H. Vondel (2004). G. H. testudo. H. H. timmsi. I. H. variomaculatus, Vondel (2011b). J. Spangler (1991). K–N. Stage 3 larvae. K. H. laminatus, Vondel (1986). L. H. varius, Vondel (1996). M. H. subseriatus, Vondel (2001). N. H. kamiyai, Watanabe and Yamasaki (2020). O. Haliplus variegatus, stage 3 larva, Vondel (1997). P. Brychius elevatus, Bertrand (1933).
FIGURE 8. Fossil larva BUB 4436, specimen 5. A. Overview ventral side. B in An overview of crawling water beetle larvae and a first possible record from 100-million-years-old Myanmar amber
FIGURE 8. Fossil larva BUB 4436, specimen 5. A. Overview ventral side. B. Colour-marked version of B. C. Dorsal side. D. Close-up on head. E. Close-up on leg. F. Terminal end in different contrasting to highlight setae. Abbreviations: ad = abdomen; at = antenna; hc = head capsule; th = thorax.
FIGURE 7. Fossil larva BUB 4436, specimen 4. A. Overview dorsal side. B in An overview of crawling water beetle larvae and a first possible record from 100-million-years-old Myanmar amber
FIGURE 7. Fossil larva BUB 4436, specimen 4. A. Overview dorsal side. B. Colour-marked version of B. C. Ventral side. D. Close-up on trunk end. E. Close-up on head. Abbreviations: ad = abdomen; at = antenna; hc = head capsule; pt = prothorax; te = trunk end.
FIGURE 3 in An overview of crawling water beetle larvae and a first possible record from 100-million-years-old Myanmar amber
FIGURE 3. Simplified drawings of larvae of Peltodytes, based on various sources. A. P. caesus, stage 3 larva, Vondel (2011b). B. Spangler (1991).
FIGURE 4. Fossil larvae BUB 4436, specimens 1 and 6. A–D. Specimen 1. A in An overview of crawling water beetle larvae and a first possible record from 100-million-years-old Myanmar amber
FIGURE 4. Fossil larvae BUB 4436, specimens 1 and 6. A–D. Specimen 1. A. View on one side. B. Colour-marked version of A. C. View on other side. D. Very terminal end, with different contrasting to highlight the setae. E–G. Specimen 6. E. Overview. F. Colour-marked version of E. G. Close-up on very terminal end. Abbreviations: ad = abdomen; at = antenna; hc = head capsule; ms = mesothorax; mt = metathorax; pt = prothorax; te = trunk end.
FIGURE 2 in An overview of crawling water beetle larvae and a first possible record from 100-million-years-old Myanmar amber
FIGURE 2. Simplified drawings of larvae of Haliplus, partially representing ontogenetic sequences, based on various sources. A–D. Vondel (2011a). A, B. H. abbreviatus or H. maculatus. A. Stage 1 larva. B. Stage 2 larva. C, D. Stage 3 larvae. C. H. maculatus. D. H. abbreviatus. E–G. H. lineatocollis, Bertrand (1933). E. Stage 1 larva. F. Stage 2 larva. G. Stage 3 larva. H–J. H. apicalis. H, I. Vondel (1997). H. Stage 1 larva. I. Stage 2 larva. J. Stage 3 larva, Vondel (1995). K, L. Stage 1 larvae. K. H. indistinctus, Michat et al. (2020). L. H. halsei, Vondel (2012). M. H. fulvus, Klausnitzer (1978).
Рис. 1. Δинамика чисΛенности меΛких мΛекопитающих в Цасучейском бору: 1 — суммарная чисΛенность (особей / 100 циΛинΑро-суток); Αоминирующие виΑы: 2 — забайкаΛьский хомячок, 3 — бурозубка тунΑряная, 4 — бурозубка крошечная, 5 — поΛёвка монгоΛьская, 6 — поΛёвка РаΑΑе, 7 — красная поΛёвка; A — остепнённый сосняк, B — первичная гарь, С — старая гарь, D — повторная гарь; стреΛка указывает время прохожΑения пожара. Ось X — гг., ось Y — чисΛенность Fig. 1. Population dynamics of small mammals in the Tsasucheysky Pine Forest: 1 — total abundance (individuals / 100 cylinder-days); dominant species: 2 — Cricetulus pseudogriseus, 3 — Sorex tundrensis, 4 — S. minutissimus, 5 — Alexandromys mongolicus, 6 — Lasiopodomys raddei, 7 — Myodes rutilus; A — steppe pine forest, B — primary burns site, С — old burns site; D — repeated burns site; the arrow indicates the time of the fire. The X-axis shows years; the Y-axis shows population density in Population dynamics of small mammals after spring fires in steppe pine forest
Рис. 1. Δинамика чисΛенности меΛких мΛекопитающих в Цасучейском бору: 1 — суммарная чисΛенность (особей / 100 циΛинΑро-суток); Αоминирующие виΑы: 2 — забайкаΛьский хомячок, 3 — бурозубка тунΑряная, 4 — бурозубка крошечная, 5 — поΛёвка монгоΛьская, 6 — поΛёвка РаΑΑе, 7 — красная поΛёвка; A — остепнённый сосняк, B — первичная гарь, С — старая гарь, D — повторная гарь; стреΛка указывает время прохожΑения пожара. Ось X — гг., ось Y — чисΛенность Fig. 1. Population dynamics of small mammals in the Tsasucheysky Pine Forest: 1 — total abundance (individuals / 100 cylinder-days); dominant species: 2 — Cricetulus pseudogriseus, 3 — Sorex tundrensis, 4 — S. minutissimus, 5 — Alexandromys mongolicus, 6 — Lasiopodomys raddei, 7 — Myodes rutilus; A — steppe pine forest, B — primary burns site, С — old burns site; D — repeated burns site; the arrow indicates the time of the fire. The X-axis shows years; the Y-axis shows population density
Fig. 2. Florida Entomologist now projects a in A short history of Florida Entomologist in recognition of 100 years of publication
Fig. 2. Florida Entomologist now projects a modern image, and has grown not only in popularity (number of papers printed) but also in physical dimensions. Page size has increased from 11 × 19 cm in the original "Buggist" to 18.5 × 25 cm now. Color has been added to the cover, and is an option for both printed and online articles.
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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.