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22 results for “Ameles”
amel-github/sars-ani: Releasing new data fields in SARS-ANI dataset
<p>2022-06-20 - Release v1.1</p> <p>The original SARS-ANI dataset displayed common and scientific names of the animal host as found in the information source and/or inferred from the literature or expert knowledge.<br> Misspelled animal names and errors in taxonomy can lead to incorrect scientific conclusions and poor policy design. Moreover, harmonized host names can aid integrating other datasets (e.g. data on host biological traits, geographic distribution, or association with other pathogens).<br> Therefore, for each event, we programmatically performed taxonomic validation of the animal host name, using the R package taxize (Chamberlain et al. 2013). For more information on our validation process, see the R script <strong>sars_ani_validation.R.</strong></p> <p>Version 1.1. contains seven fields related to the identification of the animal host:</p> <ul> <li> <p>host_com_orig: Most specific designation of the animal host provided by the source(s), in English.</p> </li> <li> <p>host_sci_orig: Scientific name of the animal host as mentioned in the source(s) (scientific names are harmonized so that only the first letter of the genus is capitalized).</p> </li> <li> <p>host_com_res: Common name of the animal host, harmonized against the National Center for Biotechnology Information (<a href="https://www.ncbi.nlm.nih.gov/">NCBI</a>) taxonomic backbone.</p> </li> <li> <p>host_sci_res: Scientific name of the animal host (resolved to species or subspecies level), harmonized against the National Center for Biotechnology Information (<a href="https://www.ncbi.nlm.nih.gov/">NCBI</a>) taxonomic backbone.</p> </li> <li> <p>host_colloq: The colloquial name of the host, i.e. the name commonly used to identify the animal in non-specialist language (e.g. "tiger" for "Sumatran tiger").</p> </li> <li> <p>host_sci_spec_res: The scientific name of the host resolved to the species level.</p> </li> <li> <p>family: Animal family of the animal host.</p> </li> </ul>
Fig. 1 in The effects of short-term climate change on the range of species: the case of the expanding European dwarf mantis Ameles spallanzania in northern Italy (Mantodea: Amelidae)
Fig. 1 – Distribution of Ameles spallanzania in Italy across a, past period and b, current period. Confirmed data refer to already known presence cells in the previous time interval.
Linked collectors and determiners for: Morphological convergences in Ameles Burmeister and Pseudoyersinia Kirby: Taxonomic implications of wing reduction and flight predisposition in some West-Mediterranean Amelini (Insecta: Mantodea).
Natural history specimen data linked to collectors and determiners held within, "Morphological convergences in Ameles Burmeister and Pseudoyersinia Kirby: Taxonomic implications of wing reduction and flight predisposition in some West-Mediterranean Amelini (Insecta: Mantodea)". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/611050b9-15f9-4400-8074-778f071d446d">https://bionomia.net/dataset/611050b9-15f9-4400-8074-778f071d446d</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/611050b9-15f9-4400-8074-778f071d446d">https://gbif.org/dataset/611050b9-15f9-4400-8074-778f071d446d</a>. Formatted as a Frictionless Data package.
Fig. 4 in The effects of short-term climate change on the range of species: the case of the expanding European dwarf mantis Ameles spallanzania in northern Italy (Mantodea: Amelidae)
Fig. 4 – Suitability maps of Ameles spallanzania referred to each decade.
Fig. 5 in The effects of short-term climate change on the range of species: the case of the expanding European dwarf mantis Ameles spallanzania in northern Italy (Mantodea: Amelidae)
Fig. 5 – Boxplots of suitability per decade referred to the historical range and northern Italy.
Fig. 6 in The effects of short-term climate change on the range of species: the case of the expanding European dwarf mantis Ameles spallanzania in northern Italy (Mantodea: Amelidae)
Fig. 6 – Extent of predicted presence areas derived from binary maps.
Fig. 2 in The effects of short-term climate change on the range of species: the case of the expanding European dwarf mantis Ameles spallanzania in northern Italy (Mantodea: Amelidae)
Fig. 2 – Land use in the occurrences of the current period.
Fig. 3 in The effects of short-term climate change on the range of species: the case of the expanding European dwarf mantis Ameles spallanzania in northern Italy (Mantodea: Amelidae)
Fig. 3 – Importance of climatic variables used to model the distribution of Ameles spallanzania.
FIGURE 10 in Morphological convergences in Ameles Burmeister and Pseudoyersinia Kirby: Taxonomic implications of wing reduction and flight predisposition in some West-Mediterranean Amelini (Insecta: Mantodea)
FIGURE 10. Pseudoyersinia maroccana. From left to right (all in dorsal view): male holotype, female allotype, male genitalia (holotype) and line drawings of the distal process of hypophallus showing variation across selected paratypes. Scale bar for genitalia = 1 mm.
FIGURE 14 in Morphological convergences in Ameles Burmeister and Pseudoyersinia Kirby: Taxonomic implications of wing reduction and flight predisposition in some West-Mediterranean Amelini (Insecta: Mantodea)
FIGURE 14. Comparison of the general shape and the opacity of the flight organs among representative specimens of (from the left to right): A. maroccana, A. s. obscura, and A. gracilis. This picture is a single shot under natural light, background artificially removed by a uniform brightness/contrast software manipulation (scale bar = 1cm).
FIGURE 1 in Morphological convergences in Ameles Burmeister and Pseudoyersinia Kirby: Taxonomic implications of wing reduction and flight predisposition in some West-Mediterranean Amelini (Insecta: Mantodea)
FIGURE 1. Ameles andreae, male genitalia. Left: left epiphallus with titillator and pseudophallus, both in dorsal view (observed variation in the latter shown below in line drawings). Centre: distal process of hypophallus, dorsal view (observed variation shown below in line drawings). Right: right epiphallus in ventral view. Scale bar = 1 mm.
FIGURE 5 in Morphological convergences in Ameles Burmeister and Pseudoyersinia Kirby: Taxonomic implications of wing reduction and flight predisposition in some West-Mediterranean Amelini (Insecta: Mantodea)
FIGURE 5. Ameles maroccana, male genitalia. Left: left epiphallus with pseudophallus on the left and titillator on the right in dorsal view. Centre: distal process of hypophallus in dorsal view. Right: right epiphallus in ventral view. Scale bar = 1 mm.
FIGURE 13 in Morphological convergences in Ameles Burmeister and Pseudoyersinia Kirby: Taxonomic implications of wing reduction and flight predisposition in some West-Mediterranean Amelini (Insecta: Mantodea)
FIGURE 13. Correlation between the width of the ocelli (x axis) and the length (in mm) of forewings (y axis, as "tegmina"), showing an almost linear tendency, i.e. larger ocelli mean longer forewings.
FIGURE 12 in Morphological convergences in Ameles Burmeister and Pseudoyersinia Kirby: Taxonomic implications of wing reduction and flight predisposition in some West-Mediterranean Amelini (Insecta: Mantodea)
FIGURE 12. Analysis of the colour components in the cell membrane of hind wings of A. s. obscura (1,2,3), A. maroccana (4), A. andreae (5), A. picteti (6), A. gracilis (7), A. spallanzania (8), A. decolor (9), and L. obscura (10). Comparison of the output obtained from original 32bits photo wit a palette of about 16 millions of colours (4106 used), and scaled to 16bits photo with a palette of 16 colours (15 used).
FIGURE 3. Plate V in Morphological convergences in Ameles Burmeister and Pseudoyersinia Kirby: Taxonomic implications of wing reduction and flight predisposition in some West-Mediterranean Amelini (Insecta: Mantodea)
FIGURE 3. Plate V from the Histoire naturelle des Iles Canaries (Brullé 1840, modified): Ameles limbata (left) and Ameles gracilis (right).
FIGURE 8 in Morphological convergences in Ameles Burmeister and Pseudoyersinia Kirby: Taxonomic implications of wing reduction and flight predisposition in some West-Mediterranean Amelini (Insecta: Mantodea)
FIGURE 8. Ameles spallanzania obscura, male genitalia in dorsal view. Left: left epiphallus complex and hypophallus (variation in the latter shown in line drawings). Right: right epiphallus in dorsal view (variation in pseudophallus shown in line drawings). Scale bar = 1 mm.
FIGURE 4 in Morphological convergences in Ameles Burmeister and Pseudoyersinia Kirby: Taxonomic implications of wing reduction and flight predisposition in some West-Mediterranean Amelini (Insecta: Mantodea)
FIGURE 4. Ameles gracilis, male genitalia (dorsal view). Left: left epiphallus with titillator and pseudophallus Centre: distal process of the hypophallus. Right: right epiphallus in ventral view. Scale bar = 1 mm.
FIGURE 11 in Morphological convergences in Ameles Burmeister and Pseudoyersinia Kirby: Taxonomic implications of wing reduction and flight predisposition in some West-Mediterranean Amelini (Insecta: Mantodea)
FIGURE 11. Comparison of minimum and maximum values (mm) between pronotum (x axis) and forewings lengths (y axis) of short winged species herein considered, in addition to other selected macropterous species (data from Battiston & Fontana, 2005 and Agabiti et al., 2010). The resulting graphic shows how different species can be grouped by estimating the ratio between these two variables.
FIGURE 7 in Morphological convergences in Ameles Burmeister and Pseudoyersinia Kirby: Taxonomic implications of wing reduction and flight predisposition in some West-Mediterranean Amelini (Insecta: Mantodea)
FIGURE 7. Ameles spallanzania obscura, male habitus (left) and its habitat in Sierra de Tejeda, Spain (right). Photos by K. Payne.
FIGURE 9 in Morphological convergences in Ameles Burmeister and Pseudoyersinia Kirby: Taxonomic implications of wing reduction and flight predisposition in some West-Mediterranean Amelini (Insecta: Mantodea)
FIGURE 9. Pseudoyersinia occidentalis. Male holotype (left) from Agadir (Morocco); male genitalia dorsal view (right). Scale bar = 1 mm.
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