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Figure 11 in Phylogeny of the genera of the parasitic wasps subfamily Doryctinae (Hymenoptera: Braconidae) based on morphological evidence
Figure 11. Strict consensus of the 30 000 most parsimonious trees obtained from each of three different character sets examined in this study following the QHS strategy. Numbers above branches show bootstrap values ≥ 50. A, strict consensus (length 502) including only the external characters for all taxa (ONLY EXTERNAL); B, strict consensus (length 556) including only taxa with ≥ 70% scored characters (> 70% DATA); C, strict consensus (length 180) including only characters systems others than external morphology and taxa with ≥ 50% of scored characters (REPRODUCTIVE + LARVAL).
Figure 10 in Phylogeny of the genera of the parasitic wasps subfamily Doryctinae (Hymenoptera: Braconidae) based on morphological evidence
Figure 10. Strict consensus of 30 000 most parsimonious trees (length 790) produced by the QHS strategy using all the available information for all taxa (ALL DATA). Only resolved clades of Doryctinae are shown. Numbers above branches show bootstrap values ≥ 50. Numbers below branches refer to the major clades recovered (see text).
Figure 13 in The first British record and a new species of the superfamily Terrestricytheroidea (Crustacea, Ostracoda): morphology, ontogeny, lifestyle and phylogeny
Figure 13. Terrestricythere elisabethae sp. nov. A-3 instar. L5 (2003.1042), L6 (2003.1040), L7 (2003.1041), Fu (2003.1041).
Figure 17 in The first British record and a new species of the superfamily Terrestricytheroidea (Crustacea, Ostracoda): morphology, ontogeny, lifestyle and phylogeny
Figure 17. Terrestricythere elisabethae sp. nov. A-1 instar. L5 (2003.1048), L6(2003.1048), L7(2003.1048), Fu (2003.1048).
Figure 8 in The first British record and a new species of the superfamily Terrestricytheroidea (Crustacea, Ostracoda): morphology, ontogeny, lifestyle and phylogeny
Figure 8. Terrestricythere elisabethae sp. nov. A-8 instar (2003.1029). A-7 instar; reconstruction of body plan based on 2003.1033. An1 (2003.1032), An2 (2003.1030), Md (2003.1030), Mx (2003.1030), Fu (2003.1031).
Figure 4 in The first British record and a new species of the superfamily Terrestricytheroidea (Crustacea, Ostracoda): morphology, ontogeny, lifestyle and phylogeny
Figure 4. Terrestricythere elisabethae sp. nov. Maximum number and position of pore systems on left valves of instars.
Figure 5 in The first British record and a new species of the superfamily Terrestricytheroidea (Crustacea, Ostracoda): morphology, ontogeny, lifestyle and phylogeny
Figure 5. Terrestricythere elisabethae sp. nov. Adult instar. An1 (2003.1024 female), An2 (2003.1023 female, 2003.1025 male), Md (2003.1024 female), detail of rake seta (2003.1027 male), Mx (2003.1025 male).
Figure 9 in Phylogeny of the genera of the parasitic wasps subfamily Doryctinae (Hymenoptera: Braconidae) based on morphological evidence
Figure 9. Selected features of the venom apparatus in the Doryctinae. A, Megaloproctus sp.; B, Nervellius sp.; C, Aleiodes pulchripes Wesmael; D, Halycaea sp.; E, Hecabolus sp.; F, Syngaster sp. v, venom reservoir; p, primary venom duct; s, secondary venom duct.
Figure 8 in Phylogeny of the genera of the parasitic wasps subfamily Doryctinae (Hymenoptera: Braconidae) based on morphological evidence
Figure 8. Male genitalia in the Doryctinae. A, Doryctes striatellus (Nees); B, Hecabolus sulcatus Curtis; C, Euscelinus sarawacus Westwood; D, Monarea sp.; E, Zombrus bicolor Enderlein; F, Acanthodoryctes morleyi (Froggatt); G, Syngaster lepidus Brullé; H, Ecphylus silesiacus (Ratzerburg); I, Dendrosoter protuberans Wesmael.
Figure 7 in Phylogeny of the genera of the parasitic wasps subfamily Doryctinae (Hymenoptera: Braconidae) based on morphological evidence
Figure 7. External morphological features in the Doryctinae. A, C, D, F, G, female; B, E, male. A–F, metasoma, dorsal view; G, metasoma, lateral view. A, B, Halycaea rubata Belokobylskij; C, Rhaconotus ceylonicus Belokobylskij; D, R. excavatus Belokobylskij; E, Dendrosoter hartigii (Ratzeburg); F, G, Arhaconotus papuanus Belokobylskij.
Figure 6 in Phylogeny of the genera of the parasitic wasps subfamily Doryctinae (Hymenoptera: Braconidae) based on morphological evidence
Figure 6. External morphological features in the Doryctinae. A, C, first metasomal tergite, lateral view; B, F–J, metasoma, dorsal view; D, first tergite, ventral view; E, first-third metasomal tergites, dorsal view. A, B, Spathius wusheensis Belokobylskij; C–E, Fijibracon insularis Belokobylskij; F, Heterospilus hemitestaceus Belokobylskij; G, Liodoryctes australiensis (Szépligeti); H, Glyptocolastes rugulosus (Cresson); I, Bathycentor kraesselini Saussure; J, Siragra nitida Cameron.
Figure 5. A, strict consensus tree from 11 in A new leptarctine (Carnivora: Mustelidae) from the early Miocene of the northern Tibetan Plateau: implications for the phylogeny and zoogeography of basal mustelids
Figure 5. A, strict consensus tree from 11 shortest trees (tree length = 79 steps) recovered using the Branch and Bound option in PAUP (Swofford, 1993) on a 17 ¥ 31 data matrix (Table 2); B, bootstrap analysis performed on the same data matrix. Numbers at the nodes indicate per cent bootstrap support from heuristic search based on 100 replicates. Only groups with a frequency of greater than 50% are retained.
Figure 1 in High-level phylogeny of early Tertiary rodents: dental evidence
Figure 1. Occlusal dental morphology of upper and lower teeth and related nomenclature (modified after Wood & Wilson, 1936) used for describing the selected characters employed in the phylogenetic analysis. Upper molars: Aah, anterior arm of hypocone; Aam, anterior arm of metacone; Al, anteroloph; Ay, anterostyle; Enl, endoloph; Ey, enterostyle; H, hypocone; M, metacone; Mcu, metaconule; Mel, metaloph; Mpc, metacone-protocone connection; Mr, mure; Ms, mesostyle; Msl, mesoloph; Msul, mesolophule; Nenl, neo-endoloph; P, protocone; Pa, paracone; Pap, posterior arm of paracone; Pcu, protoconule; Prl, protoloph; PruII, protolophule II; Psl, posteroloph; Py, parastyle. Lower molar: Aaed, anterior arm of entoconid; Aahd, anterior arm of hypoconid; Ad, anteroconid; Acd, anterocingulid (anterolophid); Ald, anterolophulid; Ecd, ectolophid; Emsd, ectomesolophid; Et, entoconid; Etd, ectostylid; Hd, hypoconid; Hld, hypolophid; Hud, hypoconulid; Mcd, mesoconid; Md, metaconid; MedicalI, metalophulid I (ancestral paralophid); MedicalII, metalophulid II (= protolophid or posterior arm of protoconid); Mfd, metafossettid; Msd, mesolophid; Mstd, mesostylid; Pamd, posterior arm of metaconid; Prd, protoconid; Psd, posterolophid.
Figure 1 in A new leptarctine (Carnivora: Mustelidae) from the early Miocene of the northern Tibetan Plateau: implications for the phylogeny and zoogeography of basal mustelids
Figure 1. Above, map of the Tabenbuluk (Danghe) area in the Tibetan Plateau. Below, map of selected vertebrate fossil localities and their geological relationships in the Danghe area (adapted from Wang et al., 2003c: fig. 2). Only the early Miocene localities in the Xishuigou Fauna are plotted (in upper right quadrant), along with the late Oligocene Yindirte Fauna (in lower left quadrant).
Figure 7 in High-level phylogeny of early Tertiary rodents: dental evidence
Figure 7. Schematic of occlusal dental patterns of upper (left) and lower (right) molars for the most explicit representatives of each major early Tertiary rodent group. The taxa represented are: Caviomorpha [Ca] (Branisamys), Phiomorpha [Ph] (Metaphiomys), Baluchimyinae [Ba] (Baluchimys), Tsaganomyidae [Ts] (Tsaganomys), Chapattimyidae [Ch] (Birbalomys), Diatomyidae [Da] (Fallomus), Yuomyidae [Yu] (Yuomys), Tamquammyidae [Ta] (Tamquammys), Ctenodactylidae [Ct] (Yindirtemys), Cylindrodontidae [Cy] (Ardynomys), Gliridae [Gl] (Gliravus), Sciuravidae [Sv] (Pauromys), Zegdoumyidae [Ze] (Glibia), Eutypomyidae [Eu] (Eutypomys), Anomaluridae [An] (Nementchamys), Eomyidae [Eo] (Yoderimys), Cricetidae [Cr] (Pappocricetodon), Dipodidae [Di] (Sinosminthus), Aplodontidae [Ap] (Plesispermophilus), Sciuridae [Sc] (Palaeosciurus), Ischyromyoidea [Is] (Acritoparamys), Theridomyidae [Th] (Pseudoltinomys), Cocomyidae [Co] (Cocomys), Alagomyidae [Al] (Alagomys). The lettering of the symbols used for dental features is adapted from the extended nomenclature (Fig. 1).
Figure 6 in A new leptarctine (Carnivora: Mustelidae) from the early Miocene of the northern Tibetan Plateau: implications for the phylogeny and zoogeography of basal mustelids
Figure 6. Cladogram of basal musteloids. A single tree with a length of 77 was found using the Branch and Bound option in PAUP (Swofford, 1993) on a 16 ¥ 31 data matrix (Table 2). Character distributions were optimized using ClaDos (version 1.2, Kevin Nixon). As ClaDos does not accept a matrix with two-state codings, we converted the two-state characters into a single derived state.
Figure 4 in Phylogeny of the genera of the parasitic wasps subfamily Doryctinae (Hymenoptera: Braconidae) based on morphological evidence
Figure 4. External morphological features in the Doryctinae. Wing venation characters, fore and hind wings. A, Labania straminea Hedqvist; B, Doryctes fulviceps Reinhard; C, Percnobracon secundus Muesebeck; D, Dendrosoter hartigi (Ratzeburg); E, Fijibracon insularis Belokobylskij; F, Rhaconotus insularis Belokobylskij; G, Nipponecphylus matsumurai Belokobylskij & Konishi; H, Doryctophasmus ferrugineiceps Enderlein.
Figure 3 in A new leptarctine (Carnivora: Mustelidae) from the early Miocene of the northern Tibetan Plateau: implications for the phylogeny and zoogeography of basal mustelids
Figure 3. Holotype of Kinometaxia guangpui gen. et sp. nov., IVPP V13057, A, stereophotos of occlusal view of upper left P4 and M1; B, anterior and C, posterior views of skull.
Figure 3 in Phylogeny of the genera of the parasitic wasps subfamily Doryctinae (Hymenoptera: Braconidae) based on morphological evidence
Figure 3. External morphological features in the Doryctinae. Wing venation characters, fore and hind wings. A, Holcobracon fulvus Cameron; B, Caenophanes luculentus Belokobylskij; C, Acanthodoryctes morleyi (Froggatt); D, Heterospilus tirnax Papp; E, Neurocrassus fabimaculatus Belokobylskij; F, Pambolidea yuma Ashmead.
Figure 2 in A new leptarctine (Carnivora: Mustelidae) from the early Miocene of the northern Tibetan Plateau: implications for the phylogeny and zoogeography of basal mustelids
Figure 2. Holotype of Kinometaxia guangpui gen. et sp. nov., IVPP V13057, A, lateral, B, ventral, and C, dorsal views.
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