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2,198 results for “type specimens”
Figs 1–4 in A revision of the types of Heteroptera species described by Géza Horváth based on specimens from collections of Ladislav Duda and Emil Holub
Figs 1–4. Schematic maps of Emil Holub's journeys in southern Africa. 1–3 – First journey (1872–1879): 1 – arrival / departure (1872 / 1878–79, yellow, ship route marked by a dashed line) and 1st expedition (1873, red); 2 – 2nd expedition (1873–74); 3 – 3rd expedition (1875–76). 4 – Second journey (1883–1887, train route marked by a dashed line). Based on Holub's original maps (HOLUB 1880a,b, 1881a,b, 1890a,b), MLÍKOVSKÝ et al. (2011) and ŠÁMAL (2013).
Figs 38–49 in A revision of the types of Heteroptera species described by Géza Horváth based on specimens from collections of Ladislav Duda and Emil Holub
Figs 38–49. Habitus and labels of type specimens. 38–40 – Niamia angulosa Horváth, 1893, ♀, syntype; 41–43 – Cryptacrus princeps Horváth, 1893 [= C. comes comes (Fabricius, 1803)], ♀, syntype; 44–45 – Polytodes ochraceus Horváth, 1893 [= Polytes tigrinus (Vollenhoven, 1868)],?sex, holotype; 46–49 – Dinidor vicarius Horváth, 1893 [= D. impicticollis Stål, 1870], ♀, holotype. Scale bars in mm. (Photo: 38–43, 46–49 – D. Rédei, 44–45 – Ch. Marshall).
Figs 5–22 in A revision of the types of Heteroptera species described by Géza Horváth based on specimens from collections of Ladislav Duda and Emil Holub
Figs 5–22. Habitus and labels of type specimens. 5–7 – Coranopsis vittata Horváth, 1893, ♀, syntype; 8–11 – Cosmolestes fulvus Horváth, 1893, ♀, holotype; 12–15 – Edocla albipennis Horváth, 1893,, holotype; 16–18 – Harpactor dudae Horváth, 1893 [= Rhynocoris dudae],, syntype; 19–22 – Oncocephalus angustatus Horváth, 1893, ♀, syntype. Scale bars in mm. (Photo: D. Rédei).
Fig. 4. A–B. Jullienia munensis Brandt, 1974, probable paratopotype MZSP 95482, L in Second annotated list of type specimens of molluscs deposited in the Museu de Zoologia da Universidade de São Paulo, Brazil
Fig. 4. A–B. Jullienia munensis Brandt, 1974, probable paratopotype MZSP 95482, L = 5.9 mm, W = 5.2 mm. C–D. Jullienia rolfbrandti Temcharoen, 1971, probable paratype MZSP 95463, L = 7.3 mm, W = 6 mm. E–F. Lacunopsis conica Brandt, 1968, probable paratype MZSP 95495, L = 5.3 mm, W = 4.9 mm. G–H. Hubendickia microsculpta Brandt, 1968, probable paratype MZSP 95945, L = 4.35 mm, W = 1.71 mm. I–J. Manningiella polita Brandt, 1970, probable paratype MZSP 95475, L = 4.2 mm, W = 2 mm. K–L. Manningiella rolfbrandti Temcharoen, 1971, probable paratype MZSP 95924, L = 4.2 mm, W = 2.2 mm.
Fig. 6. A–B. Cyclonenia hemmeni Nordsieck, 2005, paratype MZSP 95477, L in Second annotated list of type specimens of molluscs deposited in the Museu de Zoologia da Universidade de São Paulo, Brazil
Fig. 6. A–B. Cyclonenia hemmeni Nordsieck, 2005, paratype MZSP 95477, L = 18 mm, W = 4 mm. C–D. Cylindronenia pangamitoensis pongoensis Nordsieck, 2005, paratype MZSP 95470, L = 13.2 mm, W = 3.6 mm. E–F. Neniella strictecostata Nordsieck, 2005, paratype MZSP 95947, L = 16.8 mm, W = 3.3 mm. G–H. Steeriana nivea Nordsieck, 2005, paratype MZSP 95479, L = 16.9 mm, W = 4.6 mm. I–K. Cernuella selmaniana Brandt, 1959, probable paratype MZSP 95484, L = 11.6 mm, W = 16.4 mm. L–N. Trochoidea regimaensis Brandt, 1959, probable paratype MZSP 95910, L = 10.2 mm, W = 12 mm.
Fig. 3. A–B. Hydrorissoia cambodiensis Brandt, 1970, probable paratype MZSP 95912, L in Second annotated list of type specimens of molluscs deposited in the Museu de Zoologia da Universidade de São Paulo, Brazil
Fig. 3. A–B. Hydrorissoia cambodiensis Brandt, 1970, probable paratype MZSP 95912, L = 3.9 mm, W = 2.3 mm. C–D. Hubendickia cylindrica Brandt, 1974, probable paratype MZSP 95944, L = 4.5 mm, W = 1.8 mm. E–F. Hubendickia rolfbrandti Temcharoen, 1971, probable paratype MZSP 95948, L= 4.1 mm, W = 2 mm. G–H. Paraprososthenia schuetti Brandt, 1968, probable paratype MZSP 95487, L = 6.2 mm, W = 2.1 mm. I–J. Hydrorissoia hospitalis Brandt, 1968, probable paratype MZSP 95949, L = 3.2 mm, W = 1.9 mm. K–L. Hydrorissoia munensis Brandt, 1968, probable paratype MZSP 95929, L = 2.76 mm, W = 1.74 mm.
Fig. 1. A–B in Second annotated list of type specimens of molluscs deposited in the Museu de Zoologia da Universidade de São Paulo, Brazil
Fig. 1. A–B. Astraea danieli Alf & Kreipl, 2006, paratype MZSP 95919, L = 11.5 mm, W = 14.5 mm. C–D. Arinia panhai Maassen, 2001, paratype MZSP 95493, L = 2.58 mm, W = 2 mm. E–F. Diplommatina abundans Maassen, 2002, paratype MZSP 95465, L = 1.34 mm, W = 0.7 mm. G–H. Diplommatina carinaspinosa Maassen, 2002, paratype MZSP 95941, L = 1.83 mm, W = 0.83 mm. I–J. Diplommatina supralamellata Maassen, 2007, probable paratype MZSP 95498, L = 3.37 mm, W = 1.75 mm. K–L. Diplommatina wilhelminae Maassen, 2002, probable paratype MZSP 95462, L = 2.87 mm, W = 1.37 mm.
Fig. 2. A–B. Opisthostoma christae Maassen, 2001, paratype MZSP 95472, L in Second annotated list of type specimens of molluscs deposited in the Museu de Zoologia da Universidade de São Paulo, Brazil
Fig. 2. A–B. Opisthostoma christae Maassen, 2001, paratype MZSP 95472, L = 2.55 mm, W = 1.55 mm. C–D. Opisthostoma secretum Maassen, 2002, probable paratype MZSP 95917, L = 0.9 mm, W = 1.28 mm. E–F. Pachydrobia bavayi Brandt, 1970, probable paratype MZSP 95911, L = 6.8 mm, W = 4 mm. G–H. Pachydrobia crooki Brandt, 1968, probable paratype MZSP 95469, L = 12.8 mm, W = 6.8 mm. I–J. Paraprososthenia brandti Temcharoen, 1971, probable paratype MZSP 95946, L = 5.25 mm, W = 3 mm. K–L. Paraprososthenia fischerpiettei Brandt, 1970, probable paratype MZSP 95496, L = 4.72 mm, W = 2.2 mm.
Fig. 7. A–B. Teracharopa goudi Maassen, 2000, probable paratype MZSP 95494, L in Second annotated list of type specimens of molluscs deposited in the Museu de Zoologia da Universidade de São Paulo, Brazil
Fig. 7. A–B. Teracharopa goudi Maassen, 2000, probable paratype MZSP 95494, L = 2 mm, W = 2.7 mm. C–D. Orculella astirakiensis Gittenberger & Hausdorf, 2004, paratype MZSP 95489, L = 8.3 mm, W = 4 mm. E. Eledone gaucha Haimovici, 1988, paratype MZSP 25242, approximate mantle length = 30 mm.
Fig. 8 in Type specimens of Andrena wollastoni C , 1922 (Hymenoptera, Anthophila): deposition, evaluation and designation of a lectotype
Fig. 8: Paratype of Andrena dourada KRATOCHWIL & SCHEUCHL, 2003, formerly type of A. wollastoni COCKERELL, 1922, collected by W. Porter Cockerell; (a) habitus lateral; (b) head frontal; (c) metasoma dorsal; (d) head dorsal; (e) paratype label (USNM) with type number; (f) barcode label; (g) locality label written by Cockerell (pencil); (h) label written by Wilmatte Porter Cockerell (pencil); (i) cotype label written by Cockerell (ink); photos by K. Darrow (USNM).
Figure 5 in The type specimens and type localities of the orangutans, genus Pongo Lacépède, 1799 (Primates: Hominidae)
Figure 5. The nomenclature and geographic distribution of the subspecies of Pongo pygmaeus, (A) following Groves (2001), and (B) as revised in this paper
JSTOR plant type specimens linked to GBIF occurrences
<p>A mapping between URLs for type specimens in JSTOR Global Plants and the corresponding occurrence in the Global Biodiversity Information Facility (GBIF).</p><p>Guide to fields:</p><ul><li><strong>doi</strong>: JSTOR identifier</li><li><strong>code</strong>: Barcode:</li><li><strong>gbif</strong>: GBIF occurrence id</li><li><strong>occurrenceUrl</strong>: URL to specimen in original herbarium database</li><li><strong>occurrenceID</strong>: occurrenceID stored in GBIF</li><li><strong>title</strong>: Title of specimen in JSTOR</li><li><strong>resource_type</strong>: Type of resource</li><li><strong>canonical</strong>: Canonical taxonomic name</li><li><strong>stored_under_name</strong>: Taxonomic name specimen is stored under</li><li><strong>type_status</strong>: What kind of type</li><li><strong>family</strong>: Family plant species belongs to</li><li><strong>collector</strong>: Collector</li><li><strong>date</strong>: Date of collection</li><li><strong>country</strong>: Country of collection</li><li><strong>herbarium</strong>: Herbarium where specimen is stored</li><li><strong>names</strong>: All taxonomic names associated with specimen as JSON array</li><li><strong>url</strong>: JSTOR URL</li><li><strong>thumbnailUrl</strong>: URL to thumbnail of image in JSTOR</li></ul>
Fig. 3 in Repatriation of knowledge about insects and types through the DORSA virtual museum (Digital Orthoptera Specimen Access)
Fig. 3: Orthoptera (crickets and grasshoppers) collections in Germany – number of holotypes in major museums. A similar distributed pattern is observed for type material of other groups of organisms housed in German museums or research institutions.
Fig. 4 in Repatriation of knowledge about insects and types through the DORSA virtual museum (Digital Orthoptera Specimen Access)
Fig. 4: Documentation of DORSA specimen data on the internet. Left: species page in SYSTAX (red arrows mark scrolling down); top right: species page in OSF; middle right: image and sound file pages in SYSTAX; bottom right: distribution map from a map server (Canadian Biodiversity Information Facility). External links are marked by yellow arrows, internal links by green arrows.
Fig. 2 in Repatriation of knowledge about insects and types through the DORSA virtual museum (Digital Orthoptera Specimen Access)
Fig. 2: Species group names of Orthoptera worldwide (valid names and synonyms) and types specimens in German collections. The category holotype includes also syntypes, lectotypes and neotypes. [From Ingrisch et al. 2004a].
Fig. 1 in Repatriation of knowledge about insects and types through the DORSA virtual museum (Digital Orthoptera Specimen Access)
Fig. 1: Distribution of Orthoptera type specimens (including Para- and Lectotypes) housed in German Museum collections. Note the high number of types from Africa, South East Asia and Australia, collected in the last centuries. [From Riede 2003].
Text-fig. 2. Ferns, Ginkgo, and taxodioid conifers. a: Filicalean fern type 1. UAPC-ALTA S sn. b, c: Filicalean fern type 2. b: Overview of specimen, UAPC-ALTA S 59515. c: Detail of (b) to show pinnule shape. d: Azolla primaeva, small plant fragments and rhizoids, BBM-PAL-P000002. e: Metasequoia occidentalis twig with leafy branchlets, BBM- PAL-P000003. f: Ginkgo biloba leaf showing dichotomous venation, GSC 7567. g: Taxodioid branches with flared shoot apices that may represent small cones, UAPC-ALTA S 25090. h: Metasequoia occidentalis branchlet showing opposite leaves, UAPC-ALTA S 59495. i: Taxodioid branchlet showing variation, BBM-PAL-P000004. j: Taxodioid pollen cone, BBM-PAL-P000045. k: Metasequoia seed cone, BBM-PAL-P000005 A. l: cf. Chamaecyparis, BBM-PAL-P000006. Scale bars: a–c, f–l = 1 cm, d = 0.5 cm, e = 2 cm. in The Early Eocene Flora Of Horsefly, British Columbia, Canada And Its Phytogeographic Significance
Text-fig. 2. Ferns, Ginkgo, and taxodioid conifers. a: Filicalean fern type 1. UAPC-ALTA S sn. b, c: Filicalean fern type 2. b: Overview of specimen, UAPC-ALTA S 59515. c: Detail of (b) to show pinnule shape. d: Azolla primaeva, small plant fragments and rhizoids, BBM-PAL-P000002. e: Metasequoia occidentalis twig with leafy branchlets, BBM- PAL-P000003. f: Ginkgo biloba leaf showing dichotomous venation, GSC 7567. g: Taxodioid branches with flared shoot apices that may represent small cones, UAPC-ALTA S 25090. h: Metasequoia occidentalis branchlet showing opposite leaves, UAPC-ALTA S 59495. i: Taxodioid branchlet showing variation, BBM-PAL-P000004. j: Taxodioid pollen cone, BBM-PAL-P000045. k: Metasequoia seed cone, BBM-PAL-P000005 A. l: cf. Chamaecyparis, BBM-PAL-P000006. Scale bars: a–c, f–l = 1 cm, d = 0.5 cm, e = 2 cm.
Text-fig. 4. Monocots. a, b: Large monocot leaf part and counterpart, UAPC-ALTA S 17955A, B. a: Wide leaf showing entire margin at left. b: Counterpart showing dark wide midrib, and and secondaries parallel to one another, arising at low acute angle. c–e: Monocot leaf with parallel venation. c: Overview of elongate monocot leaf with parallel veins horizontal and linear to oval structures and smaller leaf fragment of same type lacking them (at lower right), UAPC-ALTA S 59491. d: Higher magnification of the smaller fragment with weak cross veins. e: Higher magnification of larger specimen with linear to oval structures between parallel veins. f, g: Monocot leaf with parallel venation. Fig. (f) shows higher magnification and (g) shows overview, BBM-PAL-P000009. Scale bars: a, b = 5 cm, c = 4 cm, d–f = 1 cm, g = 2 cm. in The Early Eocene Flora Of Horsefly, British Columbia, Canada And Its Phytogeographic Significance
Text-fig. 4. Monocots. a, b: Large monocot leaf part and counterpart, UAPC-ALTA S 17955A, B. a: Wide leaf showing entire margin at left. b: Counterpart showing dark wide midrib, and and secondaries parallel to one another, arising at low acute angle. c–e: Monocot leaf with parallel venation. c: Overview of elongate monocot leaf with parallel veins horizontal and linear to oval structures and smaller leaf fragment of same type lacking them (at lower right), UAPC-ALTA S 59491. d: Higher magnification of the smaller fragment with weak cross veins. e: Higher magnification of larger specimen with linear to oval structures between parallel veins. f, g: Monocot leaf with parallel venation. Fig. (f) shows higher magnification and (g) shows overview, BBM-PAL-P000009. Scale bars: a, b = 5 cm, c = 4 cm, d–f = 1 cm, g = 2 cm.
Linked collectors and determiners for: Botanical Museum, Copenhagen. Database of type specimens.
Natural history specimen data linked to collectors and determiners held within, "Botanical Museum, Copenhagen. Database of type specimens". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="http://bionomia.net/dataset/84d3829c-f762-11e1-a439-00145eb45e9a">https://bionomia.net/dataset/84d3829c-f762-11e1-a439-00145eb45e9a</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/84d3829c-f762-11e1-a439-00145eb45e9a">https://gbif.org/dataset/84d3829c-f762-11e1-a439-00145eb45e9a</a>. Formatted as a Frictionless Data package.
Fig. 1 in Rearranging specimens on herbarium type sheets of Streptocarpus betsiliensis Humbert (Gesneriaceae)
Fig. 1. – The type collections of Streptocarpus betsiliensis Humbert (Perrier de la Bâthie 12482) at P before remounting and renumbering. A. Holotype with pure S. betsiliensis [P00088746]; B. Isotype with S. betsiliensis (detail in frame D) and S. lanatus MacMaster (detail in frame E) [P00088747]; C. Isotype mostly with material of S. betsiliensis and a single plant of S. lanatus (detail in frame F) [P00088748].
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