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.
84
datasets available to search
ShareScore release 0.9.0
Dataset results
84 results for “Cimicomorpha”
Fig. 2 in Ecological And Faunistic Review Of The True Bugs Of Infraorder Cimicomorpha (Heteroptera) Of Urban Cenoses Of Kharkiv City (Ukraine)
Fig. 2. Ratio between main trophic groups of true bugs in terms of number of species and relative abundance (% out of the total number of true bugs). Names of groups in acronyms are the same as in the table 1.
Fig. 3 in Ecological And Faunistic Review Of The True Bugs Of Infraorder Cimicomorpha (Heteroptera) Of Urban Cenoses Of Kharkiv City (Ukraine)
Fig. 3. Ratio between hygropreference of main groups of true bugs in terms of number of species and relative abundance (% out of the total number of true bugs). Names of groups in acronyms are the same as in the table 1.
Fig. 1 in Ecological And Faunistic Review Of The True Bugs Of Infraorder Cimicomorpha (Heteroptera) Of Urban Cenoses Of Kharkiv City (Ukraine)
Fig. 1. Ratio between main biotopic groups of true bugs in terms of number of species and relative abundance (% out of the total number of true bugs). Names of groups in acronyms are the same as in the table 1.
Figs. 2–5. Geocoris montandoniellus Kiritshenko, 1915. 2 in Studies on the Cimicomorpha and Pentatomomorpha (Hemiptera: Heteroptera) of Khuzestan and the adjacent provinces of Iran
Figs. 2–5. Geocoris montandoniellus Kiritshenko, 1915. 2 – general habitus, female; 3 – dorsal view of head and apical part of pronotum of female; 4 – general habitus, male; 5 – male genitalia (A – pygophore; B – paramere).
Fig. 8 in Studies on the Cimicomorpha and Pentatomomorpha (Hemiptera: Heteroptera) of Khuzestan and the adjacent provinces of Iran
Fig. 8. Geocoris phaeopterus (Germar, 1838): A – male; B–E – variability of head, pronotum and scutellum (after PÉRICART 1999).
Fig. 1 in Studies on the Cimicomorpha and Pentatomomorpha (Hemiptera: Heteroptera) of Khuzestan and the adjacent provinces of Iran
Fig. 1. Provinces of Iran. 1 – West Azerbaijan; 2 – East Azerbaijan; 3 – Ardabil; 4 – Gilan; 5 – Zanjan; 6 – Kurdestan; 7 – Kermanshah; 8 – Hamedan; 9 – Ghazvin; 10 – Mazandaran; 11 – Tehran; 12 – Qom; 13 – Markazi; 14 – Lorestan; 15 – Ilam; 16 – Khuzestan; 17 – Chaharmahal & Bakhtiari; 18 – Kohgiluyeh & Boyerahmad; 19 – Esfahan; 20 – Semnan; 21 – Golestan; 22 – Khorasan; 23 – Yazd; 24 – Fars; 25 – Bushehr; 26 – Hormozgan; 27 – Kerman; 28 – Sistan & Baluchestan (after ALIPANAH & USTJUZHANIN 2005).
Figs. 1-2 in Pavlostysia wunderlichi gen. nov. and sp. nov., the first fossil spider-web bug (Hemiptera: Heteroptera: Cimicomorpha: Plokiophilidae) from the Baltic Eocene amber
Figs. 1-2. Pavlostysia wunderlichi gen. nov. and sp. nov., holotype, male habitus in dorsal view. 1 – photograph of amber inclusion (photo by D. E. Shcherbakov); 2 – reconstruction.
Figure 1 in A new genus and species of Tingidae (Heteroptera: Cimicomorpha) from Myanmar, with the analysis of the evolution of hood, carinae and paranota
Figure 1. Holotype of Cucullitingis biacantha sp. nov. A. Photograph of dorsal view. B. Photograph of labium in ventral view. C. Line drawing of dorsal view. D. Detail photograph of head. Scale bars: A, C = 500 μm; B, D = 250 μm.
Figure 2 in A new genus and species of Tingidae (Heteroptera: Cimicomorpha) from Myanmar, with the analysis of the evolution of hood, carinae and paranota
Figure 2. Abdomen of Cucullitingis biacantha sp. nov. A. Photograph of holotype, CNU-HEM-MA2017001. B. Line drawing of holotype, CNU-HEM-MA2017001. C. Photograph of paratype, CNU-HEM-MA2017002. D. Line drawing of paratype, CNU-HEM- MA2017002. Scale bars = 200 μm.
Fig. 4 in Ecological And Faunistic Review Of The True Bugs Of Infraorder Cimicomorpha (Heteroptera) Of Urban Cenoses Of Kharkiv City (Ukraine)
Fig. 4. Indicators of hemiptera biodiversity in main urbocenoses of Kharkiv City.
A new remarkable cimicoid genus and species (Hemiptera, Heteroptera, Cimicomorpha) from mid-Cretaceous Burmese amber, with implications for its aberrant male genitalia
<p>Figure files of three different versions: published ver., without scale bars and captions ver., and the original figures.</p> <p> </p> <p>Original reference:</p> <p>Yamada, K., Yamamoto, S., Takahashi, Y. (2023) A new remarkable cimicoid genus and species (Hemiptera, Heteroptera, Cimicomorpha) from mid-Cretaceous Burmese amber, with implications for its aberrant male genitalia. <em><strong>Fossil Record</strong></em>, 26(1): 27–38. (doi: <a href="https://fr.pensoft.net/article/86784/">10.3897/fr.26.e86784</a>).</p> <p> </p> <p>Abstract.</p> <p>A new genus and species of cimicoid true bug, <em>Ecpaglocoris ditomeus</em> Yamada & Yamamoto, <strong>gen. et sp. nov.</strong>, is described and illustrated from mid-Cretaceous (Cenomanian–Albian) amber in the Kachin State of northern Myanmar (Burma). This new fossil genus and species is reminiscent of members of Anthocoridae by the strongly flattened and elongated body, four-segmented labium, distinct costal fracture and presence of fossula spongiosa on fore tibiae, but should not be ascribed to this family. The new taxon cannot be placed in any extant cimicoid families, based upon hemelytral, male genital and other morphological structures. Based on the hemelytral membrane venation and presence of dorsal laterotergites on abdominal segments I to VIII, it can be assumed that this new genus belongs to the extinct family Vetanthocoridae. <em>Ecpaglocoris ditomeus</em> <strong>gen. et sp. nov.</strong> has aberrant male genitalia characterised by sickle-shaped left and right parameres and grooves running throughout the paramere. This characteristic indicates that traumatic insemination occurred in this genus. The peculiar combination of male genital characteristics seen in <em>Ecpaglocoris</em> <strong>gen. nov.</strong> prevents its placement in any of the extant cimicoid families.</p>
Fig. 8. A in DESCRIPTION OF THE FIRST RECENT MACROPTEROUS SPECIES OF VIANAIDINAE (HETEROPTERA: TINGIDAE) WITH COMMENTS ON THE PHYLOGENETIC RELATIONSHIPS OF THE FAMILY WITHIN THE CIMICOMORPHA
Fig. 8. A. Pygophore, dorsal view, Cantacader sp. B. Pygophore, dorsal view, A. bolivianus. C. Female abdomen, ventral view, coleopteroid Anommatocoris sp. D. Female abdomen, ventral view, Corythucha sp.
Fig. 7. A. Pretarsus, A. bolivianus. B. Paremodia, A. bolivianus. C in DESCRIPTION OF THE FIRST RECENT MACROPTEROUS SPECIES OF VIANAIDINAE (HETEROPTERA: TINGIDAE) WITH COMMENTS ON THE PHYLOGENETIC RELATIONSHIPS OF THE FAMILY WITHIN THE CIMICOMORPHA
Fig. 7. A. Pretarsus, A. bolivianus. B. Paremodia, A. bolivianus. C. Pretarsus, coleopteroid Anommatocoris sp. D. Pretarsus, Cantacader sp. E. Pretarsus, Corythucha sp. F. Parempodia, Corythucha sp.
Fig. 5. A in DESCRIPTION OF THE FIRST RECENT MACROPTEROUS SPECIES OF VIANAIDINAE (HETEROPTERA: TINGIDAE) WITH COMMENTS ON THE PHYLOGENETIC RELATIONSHIPS OF THE FAMILY WITHIN THE CIMICOMORPHA
Fig. 5. A. Meso- and metathoracic pleuron, A. bolivianus. B. External scent-efferent system, A. bolivianus. C. Meso- and metathoracic sternum and external scent-efferent system, coleopteroid Anommatocoris sp. D. Peritreme, A. bolivianus. E. External scent-efferent system, A. bolivianus. F. External scent-efferent system, coleopteroid Anommatocoris sp.
Fig. 6. A in DESCRIPTION OF THE FIRST RECENT MACROPTEROUS SPECIES OF VIANAIDINAE (HETEROPTERA: TINGIDAE) WITH COMMENTS ON THE PHYLOGENETIC RELATIONSHIPS OF THE FAMILY WITHIN THE CIMICOMORPHA
Fig. 6. A. Meso- and metathoracic pleuron, Cantacader sp. B. External scent-efferent system, Cantacader sp. C. Meso- and metathoracic pleuron, Corythucha sp. D. External scent-efferent system, Corythucha sp.
Fig. 3 in DESCRIPTION OF THE FIRST RECENT MACROPTEROUS SPECIES OF VIANAIDINAE (HETEROPTERA: TINGIDAE) WITH COMMENTS ON THE PHYLOGENETIC RELATIONSHIPS OF THE FAMILY WITHIN THE CIMICOMORPHA
Fig. 3. Comparative views of antenna, forewing, pronotum, and scutellum in various Miridae, Thaumastocoridae, and Tingidae spp.
FIGURE 8 in Gigantometopus coronobtectus sp. nov., the first Isometopinae (Hemiptera Cimicomorpha: Miridae) from Vietnam
FIGURE 8. Male and female genital structures of G. coronobtectus sp. nov. A–B: genital segment; C: right paramere; D: left paramere; E: endosoma; F–G: female genitalia in dorsal view (F) and in lateral view (G).
FIGURE 3 in Gigantometopus coronobtectus sp. nov., the first Isometopinae (Hemiptera Cimicomorpha: Miridae) from Vietnam
FIGURE 3. Images of light microscopy of G. coronobtectus sp. nov. A: Paratype, female, dorsal view; B: ditto, ventral view.
FIGURE 5 in Gigantometopus coronobtectus sp. nov., the first Isometopinae (Hemiptera Cimicomorpha: Miridae) from Vietnam
FIGURE 5. Images of light microscopy and SEM of G. coronobtectus sp. nov. A: Final nymph; B: head in the frontal view; C: ditto, front-ventrolateral view; D: head and calli region.
FIGURE 1 in Gigantometopus coronobtectus sp. nov., the first Isometopinae (Hemiptera Cimicomorpha: Miridae) from Vietnam
FIGURE 1. Images of light microscopy of G. coronobtectus sp. nov. A: Holotype, male, dorsal view; B: ditto, ventral view.
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.