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1,104 results for “morphological variations”
FIGURE 2 in Morphological variation of the widely distributed genus Stenocorse Marsh, 1968 (Hymenoptera: Braconidae: Doryctinae)
FIGURE 2. Projection of variables and individuals along the first two components of PCA with (a) untransformed measurements, (b) with ratios as defined dividing every measurement by the measurement AT2, and (c) with ratios as defined from literature and others proposed here. Variable names are explained in table 1, numbers refer to individuals. Continuous line elllipse includes specimens from Colombia, dashed line ellipse includes specimens from Mexico and USA.
FIGURE 1 in Morphological variation of the widely distributed genus Stenocorse Marsh, 1968 (Hymenoptera: Braconidae: Doryctinae)
FIGURE 1. Continuous characters used in Stenocorse. A1. interorbital distance (EOJ), A2. head width (ACA), A3. head length (LCA), B1. eye height (LOJ), B2. malar space length (EMA), C1. eye-ocellus distance (LOJOC), C2. maximum diameter of lateral ocellus (DOC), D1. hind femur length (LFE), D2. hind femur width (AFE), E1. mesosoma length (LTO), E2. pronotum posterior height (AT1), E3. metapleuron height (AT2), F. petiole length (LPE), G1. petiole basal width (APB), and G2. petiole distal width (APA).
Fig. 9 in Morphological and mitochondrial-DNA variation in Rhinolophus rouxii (Chiroptera)
Fig. 9: Distribution map for R. sínícus and R. rouxíi based on specimens examined for this study and additional literature records from Allen (1938) and Bates and Harrison (1997).
Fig. 6 a in Morphological and mitochondrial-DNA variation in Rhinolophus rouxii (Chiroptera)
Fig. 6 a/ b: (a) Noseleaf and sella of R. sínícus (HZM.2l.28153) from Mussoorie, northern India. Scale = 5 mm. (b) Noseleaf and sella of R. rouxii (HZM. 11.25681) from Talewadi, southern India. Scale = 5 mm.
Fig. l in Morphological and mitochondrial-DNA variation in Rhinolophus rouxii (Chiroptera)
Fig. l. Ordination of all designated OTU's along the first two discriminant functions from analysis of 56 male specimens. Numbers correspond to OTU means. Lines indicate the extent of scatter of individual specimens. OTU's are listed in Table l.
Fig. Sa/b: (a) Strict consensus of 2 most parsimonious trees generated by exact analysis of sequence data. Numbers on branches represent bootstrap node confidence values from 100 replications. (b) Jac support tree. Numbers on branches represent confidence frequencies in nodes as quantified by parsimony jacknifing with Jac (Farris 1995). in Morphological and mitochondrial-DNA variation in Rhinolophus rouxii (Chiroptera)
Fig. Sa/b: (a) Strict consensus of 2 most parsimonious trees generated by exact analysis of sequence data. Numbers on branches represent bootstrap node confidence values from 100 replications. (b) Jac support tree. Numbers on branches represent confidence frequencies in nodes as quantified by parsimony jacknifing with Jac (Farris 1995).
FIGURES 30–33. S. sculptus protonymph. 30, right leg I in Intraspecific morphological variation of Scutovertex sculptus Michael (Acari: Oribatida: Scutoverticidae) and description of its juvenile stages
FIGURES 30–33. S. sculptus protonymph. 30, right leg I; 31, left leg II; 32, left leg III; 33, left leg IV (all antiaxial view).
Figure 1 in Reassessment of molecular and morphological variation within the Anagrus atomus species complex (Hymenoptera: Mymaridae): egg parasitoids of leafhoppers (Hemiptera: Cicadellidae) in Europe and North America
Figure 1. Relationships among species of the Anagrus atomus complex, inferred from ML analysis of a 345bp sequence of the COI gene. Analyses were conducted in RAxML with the GTR + Γ + I model and data partitioning by third codon position. Support for the major branches, expressed as a percentage, was assessed with 1000 rapid bootstrap replicates. Scale bar represents substitutions per nucleotide site. PR numbers relate to GenBank accessions MW012433–MW012491.
FIGURE. Individuals in four Populations of Sanicula orthacantha, showing the variation in plant size and rhizome character (each line represents a population). A. China, Hubei, Xuan'en, Qizimei Mountain, H.M. Li, Y.M. Yi & Y.S. Zhang 1077 (NAS). B. China, Jiangxi, Jiujiang, Lushan, H.M. Li, Y.S. Zhang & Y. Xu 1109 (NAS). C. China, Chongqing, Nanchuan, Jinfo Shan, H.M. Li, Y.S. Zhang & X. Zhang 1141 (NAS). D. China, Sichuan, Emei Shan, H.M. Li & Y.S. Zhang 1157 (NAS). All same scale. in Taxonomic studies on the genus Sanicula (Apiaceae) from China ( ): The clarification of some morphological distinction between S. orthacantha var. orthacantha and S. orthacantha var. brevispina, with the reduction of S. petagnioides to the synonymy of the former, and S. orthacantha var. stolonifera to
FIGURE. Individuals in four Populations of Sanicula orthacantha, showing the variation in plant size and rhizome character (each line represents a population). A. China, Hubei, Xuan'en, Qizimei Mountain, H.M. Li, Y.M. Yi & Y.S. Zhang 1077 (NAS). B. China, Jiangxi, Jiujiang, Lushan, H.M. Li, Y.S. Zhang & Y. Xu 1109 (NAS). C. China, Chongqing, Nanchuan, Jinfo Shan, H.M. Li, Y.S. Zhang & X. Zhang 1141 (NAS). D. China, Sichuan, Emei Shan, H.M. Li & Y.S. Zhang 1157 (NAS). All same scale.
Data from: Evolution of mir-92a underlies natural morphological variation in Drosophila melanogaster
[No abstract entered]
FIGURE 3 in New specimens of Helicops boitata (Serpentes: Dipsadidae: Hydropsini), with data on morphological variation and behavior
FIGURE 3. Field images of the site during the collection of the new specimens of Helicops boitata: (A) general perspective of the collection site on 16 October of 2019, when four out of the five specimens were found; (B) drone-taken image of the collection site of the five new specimens, and (C) a detailed view of UFMT-R 12506 in the field, immediately after collection. Photos by C. Stŗssmann (A), Benedito Pio da Silva Campos Neto, and (C) Evaldo Alvarenga Jr.
FIGURE 5 in A new species of Dwarf Japalura sensu lato (Reptilia: Squamata: Agamidae) from the upper Mekong River in Eastern Tibet, China, with notes on morphological variation, distribution, and conservation of two congeners along the same river
FIGURE 5. Comparisons of live males (columns 1, 2) and females (columns 3, 4) among Japalura drukdaypo sp. nov. (row A), J. batangensis (row B), J. vela (row C), J. laeviventris (row D), and J. flaviceps (row E). Photos by Kai WANG and Xu ZHANG.
FIGURE 3 in A new species of Dwarf Japalura sensu lato (Reptilia: Squamata: Agamidae) from the upper Mekong River in Eastern Tibet, China, with notes on morphological variation, distribution, and conservation of two congeners along the same river
FIGURE 3. Dorsal (1), ventral (2), and lateral close-up (3) comparisons of male Japalura drukdaypo sp. nov. (holotype KIZ 027619) and J. vela (KIZ 027670), showing the relatively shorter tail, shorter hind limbs, smoother ventral scales, and feeble and non-erecting crest of J. drukdaypo sp. nov. compared with the closely distributed population of J. vela from Tongsha, Markam Prefecture, Tibet, China. Images are not to scale. Photos by Kai WANG.
FIGURE 4 in Tadpoles Of The High-Andean Hyloxalus Subpunctatus (Anura: Dendrobatidae) With Description Of Larval Variation And Species Distinction By Larval Morphology
FIGURE 4: Oral discs of free-swimming tadpole of Hyloxalus subpunctatus (Stage 27, ICN 45567) (A) Hyloxalus pulchellus (Stage 30, ICN 9682) (B) and of Rheobates palmatus (Stage 35, ICN 23311) (C). Scale bar equal to 0.5 mm.
FIGURE 1 in Tadpoles Of The High-Andean Hyloxalus Subpunctatus (Anura: Dendrobatidae) With Description Of Larval Variation And Species Distinction By Larval Morphology
FIGURE 1: Variation in total length (TL), body length (BL) and maximum tail height (MTH) in the free-swimming tadpoles of Hyloxalus subpunctatus. Bars represent standard deviation, and the numbers on TL are the number of individuals employed for the three measurements. Stages refer to Gosner (1960).
FIGURE 2 in Tadpoles Of The High-Andean Hyloxalus Subpunctatus (Anura: Dendrobatidae) With Description Of Larval Variation And Species Distinction By Larval Morphology
FIGURE 2: Tadpole of Hyloxalus subpunctatus in lateral (A), dorsal (B) and ventral (C) view at Gosner (1960) stage 31. Total length 31.3 mm and body length 11.5 mm (ICN 55281).
Fig. 5 A phylogenetic heatmap for the Metacarpals including our phylogenetic tree and a in Disentangling morphological variation in metapodials of giraffids: Modern and traditional approaches
Fig. 5 A phylogenetic heatmap for the Metacarpals including our phylogenetic tree and a large portion of the PCs
Fig. 1 in Disentangling morphological variation in metapodials of giraffids: Modern and traditional approaches
Fig. 1 Photos of selected metapodials, illustrating the measurements and the landmarks used in our study. a Metacarpal of Birgebohlinia schaubi (AM20610); b metatarsal of Helladotherium duvernoyi (M11381)
Fig. 2 in Disentangling morphological variation in metapodials of giraffids: Modern and traditional approaches
Fig. 2 PCA (principal component analysis) performed on traditional morphometric measurements of the metapodials (a metacarpal; b metatarsal) of the studied Giraffidae. The loadings for the different
FIGURE 9 in A preliminary study of the morphological variation of rhizomes in Zingiber Mill. and its role in taxonomy
FIGURE 9. Rhizomes of representative Zingiber species, showing rhizome units with different directions of growth. A. Zingiber sp. 1, rhizome units appear nearly vertical; note that this collection was from plants growing near a watercourse, the rhizome on the left is distorted probably by the action of water, while the rhizome units on the right are aligned in a vertical plane. B. Two species with rhizome units curve upwards gradually. Upper: Z. sp. 2. Lower: Z. atrorubens Gagnep. C–D. Z. atroporphyreum Škorničk. & Q.B.Nguyễn, showing rhizome units initially growing downwards for some distance before turning upwards. E–F. Z. leptorrhizum D.Fang, showing horizontal rhizome units. Scale bars = 5 cm. Photos: Lin Bai.
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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.