Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
138
datasets available to search
ShareScore release 0.9.0
Dataset results
138 results for “Zygaenoidea”
Figure 42 in The phylogenetic relationships of Chalcosiinae (Lepidoptera, Zygaenoidea, Zygaenidae)
Figure 42. Female genitalia of Chalcosiinae. A, Eterusia aedea formosana. B, Soritia elizabethae. C, Pidorus atratus. D, Chalcosia zehma. E, Pseudopidorus fasciatus.
Figure 25. Anterolateral syndeses. A, Anomoetes levis. B in The phylogenetic relationships of Chalcosiinae (Lepidoptera, Zygaenoidea, Zygaenidae)
Figure 25. Anterolateral syndeses. A, Anomoetes levis. B, Heterogynis sp. C, Saliunca styx. D, Pollanisus viridipulverulenta. E, Cleoda syntomoides. F, Heteropan alberti. G, Pompelon marginale. H, Chalcosia sp. cf. argentata.
Figure 59 in The phylogenetic relationships of Chalcosiinae (Lepidoptera, Zygaenoidea, Zygaenidae)
Figure 59. Strict consensus of jackknife (A) and bootstrap (B) trees (values above and below branches, respectively) based on the whole data matrix.
Figure 24. Scale morphology. A, Agalope trimacula. B, Elcysma westwoodi. C, D, Aglaope infausta. E, Formozygaena shibatai. F, Campylotes maculosus. G, Histia flabellicornis ultima. H, Pidorus atratus. I, Cyclosia midama. J, Clelea formosana. K, Heteropan lycaenoides. L in The phylogenetic relationships of Chalcosiinae (Lepidoptera, Zygaenoidea, Zygaenidae)
Figure 24. Scale morphology. A, Agalope trimacula. B, Elcysma westwoodi. C, D, Aglaope infausta. E, Formozygaena shibatai. F, Campylotes maculosus. G, Histia flabellicornis ultima. H, Pidorus atratus. I, Cyclosia midama. J, Clelea formosana. K, Heteropan lycaenoides. L, Trypanophora semihyalina.
Figure 23. Scale morphology. A, B, Adscita statices. C, Inouela formosensis. D, Phauda mimica. E, Callizygaena auratus. F, Callizygaena splendens. G, H, Chalcosiopsis variata. I, Lactura dives. J, K, Himantopteris fuscinervis. L in The phylogenetic relationships of Chalcosiinae (Lepidoptera, Zygaenoidea, Zygaenidae)
Figure 23. Scale morphology. A, B, Adscita statices. C, Inouela formosensis. D, Phauda mimica. E, Callizygaena auratus. F, Callizygaena splendens. G, H, Chalcosiopsis variata. I, Lactura dives. J, K, Himantopteris fuscinervis. L, Anomoetes levis.
Figure 22 in The phylogenetic relationships of Chalcosiinae (Lepidoptera, Zygaenoidea, Zygaenidae)
Figure 22. Selected character states of wing shapes and wing patterns. A, Philopator basimaculata, male. B, ditto, female. C, Eterusia angustipennis, male. D, ditto, female. E, Erasmiphlebohecta picturata. F, Phauda kantonensis. G, Soritia major. H, Watermenia bifasciata. I, Campylotes kotzechi. J, Chalcosiopsis variata. K, Psaphis azurea. L, Histia flabellicornis. M, Elcysma dohertyi. N, Heteropan appendiculata. O, Caprima gelida. P, Cyclosia midama. Q, Eterusia tricolor. R, Milleria dualis. S, Erasmia pulchella. T, Hampsonia ueharai. U, Corma maculata. V, Amesia sanguiflua. W, Chalcosia pectinicornis. X, Eterusia subcyanea. Y, Pidorus cyrtus. Z, Eusphalera cadamium. Z-1, Rhodopsona costata. Z-2, Cyclosia hecabe. Z-3, Eucorma obliquaria mindanaoensis.
Figure 21 in The phylogenetic relationships of Chalcosiinae (Lepidoptera, Zygaenoidea, Zygaenidae)
Figure 21. Wing venation of Chalcosiinae. A, Histia libelluloides. B, Pompelon marginale. C, Boradiopsis grisea. D, Chalcosia thaivana. E, Allocaprima duganga. F, Pseudopidorus fasciatus. G, Trypanophora semihyalina. H, Neochalcosia remota. I, Pidorus atratus.
Figure 7 in The phylogenetic relationships of Chalcosiinae (Lepidoptera, Zygaenoidea, Zygaenidae)
Figure 7. Diagrammatic head of Chalcosiinae. A, lateral view, with reference lines and points for morphometric measurements. B, lateral view. C, dorsal view. D, frontal view.
Figure 15 in The phylogenetic relationships of Chalcosiinae (Lepidoptera, Zygaenoidea, Zygaenidae)
Figure 15. Chaetosemata of different zygaenoid groups. A, Adscita statices. B, Artona hainana. C, Inouela formosensis. D, Zygaena filipendulae. E, Callizygaena glaucon. F, Chalcosiopsis variata. G, Lactura dives. H, Phauda mimica.
Figure 16 in The phylogenetic relationships of Chalcosiinae (Lepidoptera, Zygaenoidea, Zygaenidae)
Figure 16. Chaetosemata of different zygaenid subfamilies. A, E, F, Aglaope infausta. B, Cyclosia midama. C, Agalope trimacula. D, Adscita statices. G, Elcysma westwoodi. H, Histia flabellicornis ultima. Chalcosiinae: A–C, G–H; Procridinae: D.
Figure 11 in The phylogenetic relationships of Chalcosiinae (Lepidoptera, Zygaenoidea, Zygaenidae)
Figure 11. Characters of frontoclypeus, vertex and prothorax. A, Cyclosia midama. B, Cadphises sp. cf. moorei. C, Campylotes histrionicus taliensis. D, Phlebohecta fuscescens. E, Eterusia vitessa. F, Aglaope infausta. G, Agalope harutai. H, Elcysma dohertyi. I, Amesia aliris.
Figure 20 in The phylogenetic relationships of Chalcosiinae (Lepidoptera, Zygaenoidea, Zygaenidae)
Figure 20. Wing venation of Chalcosiinae. A, Chalcophaedra zuleika. B, Pseudoscaptesyle bicolor. C, Barbaroscia amabilis. D, Psaphis euschemoides. E, Clematoessa virgata. F, Chalcosia zehma, male. G, Ditto, female.
Figure 1 in The phylogenetic relationships of Chalcosiinae (Lepidoptera, Zygaenoidea, Zygaenidae)
Figure 1. Schematic classifications and phylogenetic concepts of Zygaenoidea and Zygaenidae proposed by different authors. In each of the hypotheses, members of Zygaenidae are in bold and non-zygaenoid groups are in italic. A, Alberti (1954). B, Minet (1986, 1991, 1994). C, Common (1970) and Nielsen & Common (1991). D, Scoble (1992). E, Epstein (1996). F, Heppner (1998). G, Fänger et al. (1999). H, Epstein et al. (1999). I, Holloway et al. (2001).
Figure 6 in The phylogenetic relationships of Chalcosiinae (Lepidoptera, Zygaenoidea, Zygaenidae)
Figure 6. In the Zygaenidae biosynthesis of the cyanoglucosides linamarin and lotaustralin begins with the universally available amino acids valine and isoleucine, respectively. The cyanoglucosides found in the tissues of most developmental stages of the Zygaenidae are derived from a de novo biosynthesis. Only a relatively small proportion of cyanoglucosides may be plant-derived in species living on cyanogenic hostplants, usually species of Fabaceae (after Witthohn & Naumann, 1987a).
Figure 5 in The phylogenetic relationships of Chalcosiinae (Lepidoptera, Zygaenoidea, Zygaenidae)
Figure 5. The two chemically related cyanoglucosides linamarin and lotaustralin are found in comparatively high concentrations in zygaenid moths and form the chemical basis for the evolution of the aposematic and mimicry patterns of this family. The release of hydrocyanic acid (hcn) by chemical decomposition of linamarin or lotaustralin depends on the presence of highly specialized glucosidases and is also ph–dependent (after Naumann et al., 1999).
Figure 14. Antennae. A, Agalope trimacula. B, Rhodopsona rutila. C, D, Eterusia aedea formosana. E, Cyclosia midama. F, Heteropan scintillans. G, H, Callizygaena glacon. I, Adscita statices. J, Inouela formosensis. K, Zygaena filipendulae. L, Phauda mimica. M, N, Lactura dives. O, Anomoeotis levis. P, Himantopteus fuscinervis. Q, R in The phylogenetic relationships of Chalcosiinae (Lepidoptera, Zygaenoidea, Zygaenidae)
Figure 14. Antennae. A, Agalope trimacula. B, Rhodopsona rutila. C, D, Eterusia aedea formosana. E, Cyclosia midama. F, Heteropan scintillans. G, H, Callizygaena glacon. I, Adscita statices. J, Inouela formosensis. K, Zygaena filipendulae. L, Phauda mimica. M, N, Lactura dives. O, Anomoeotis levis. P, Himantopteus fuscinervis. Q, R, Chalcosiopsis variata.
Figure 12 in The phylogenetic relationships of Chalcosiinae (Lepidoptera, Zygaenoidea, Zygaenidae)
Figure 12. Stylized drawings of selected characters of adult head. See Appendixes 2 and 3 for character descriptions and their distributions. A–E, frontal view. F–I, dorsal view. J–M, lateral view. N–P, labial palpus. Q–V, dorsal view of chaetosemata. W–Z-5, mandibular lobes.
Figure 9 in The phylogenetic relationships of Chalcosiinae (Lepidoptera, Zygaenoidea, Zygaenidae)
Figure 9. Ingroup (part) and outgroups. From top to bottom, left to right. Row I: (Ingroup) Chalcosiopsis variata, Heteropan sp. (left), Heteropan appendiculata (right), Inouela sp., Doclea syntomoides, (outgroups from here) Callizygaena ada (Callizygaeninae). Row II: Artona gracilis, Clelea formosana, Theresimima ampellophaga (Procridinae), Dianeura jacksoni (Anomoeotidae). Row III: Himantopterus fuscinervis (Himatopteridae), Janseola titaea (placed in Heterogynidae by Scoble, 1992), Burlacena sp. (Zygaenidae, subfamily unassigned), Saliunca sp. (Procridinae). Row IV: Harrisina sp., Pollanisus viridipulverulenta, Adscita statices, Illiberis pruni (Procridinae), Staphylinochrous sp. (Anomoeotidae). Row V: Pryeria sinica, Zygaena fausta (Zygaeninae), Heterogynis sp. (Heterogynidae), Lactura dives (Lacturidae), Phauda sp. (Phaudinae).
Figure 4 in The phylogenetic relationships of Chalcosiinae (Lepidoptera, Zygaenoidea, Zygaenidae)
Figure 4. Distribution of some zygaenid subfamilies: Chalcosiinae s.l. (dark green), Callizygaeninae (light green) and Zygaeninae (yellow).
Figure 19 in The phylogenetic relationships of Chalcosiinae (Lepidoptera, Zygaenoidea, Zygaenidae)
Figure 19. Wing venation of Chalcosiinae. A, Cyclosia pagenstecheri. B, Corma maculata. C, Corma zenotia. D, Docleomorpha boholica. E, Neoherpa nevosa. F, Aglaope infausta. G, Agalope trimacula. H, I, Agalope immaculata (I shows variation of R veins).
ScienceDex guides
Understand access before you commit
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.