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FIGURES 27–46 in On the morphological variability of Limotettix (Limotettix) striola (Fallén, 1806) (Homoptera: Auchenorrhyncha: Cicadellidae: Deltocephalinae: Limotettigini) with notes on the taxonomic status and distribution of L. striola ferganensis Dubovskiy, 1966
FIGURES 27–46. Limotettix striola, penis, lateral view. 27―L. striola ferganensis, after Dubovskiy, 1966, 28―L. ferganensis, after Hamilton, 1994.
FIGURES 1–17 in On the morphological variability of Limotettix (Limotettix) striola (Fallén, 1806) (Homoptera: Auchenorrhyncha: Cicadellidae: Deltocephalinae: Limotettigini) with notes on the taxonomic status and distribution of L. striola ferganensis Dubovskiy, 1966
FIGURES 1–17. Limotettix striola, male calling signal oscillograms. Faster oscillograms of the parts of signals indicated as "9– 17" are given under the same numbers. Hereinafter, the localities where the material was collected are given under the figures.
Distribution. Sub-Saharan Africa, primarily in E & S Africa. From N Cameroon and S Chad to S Sudan, Ethiopia, and Eritrea, then E Africa south to Angola, Zambia, Malawi, Mozambique, Zimbabwe, Namibia, Botswana, Swaziland, and South Africa. In W Africa scattered populations from Senegal to Nigeria but their taxonomic status is still under discussion. in Elephantidae
Distribution. Sub-Saharan Africa, primarily in E & S Africa. From N Cameroon and S Chad to S Sudan, Ethiopia, and Eritrea, then E Africa south to Angola, Zambia, Malawi, Mozambique, Zimbabwe, Namibia, Botswana, Swaziland, and South Africa. In W Africa scattered populations from Senegal to Nigeria but their taxonomic status is still under discussion.
FIGURE 59 in Complementary description of three species of Steneotarsonemus (Acari: Tarsonemidae) from rice agroecosystems of Eastern India with notes on their taxonomic status, spatial distribution, intraspecific variation and species composition
FIGURE 59. Abundance of Steneotarsonemus spinki vs S. subfurcatus within the species complex of rice sheath mites across the different agroecological zones of West Bengal. Equal letters for each species category do not differ significantly at p<0.05.
FIGURE 58 in Complementary description of three species of Steneotarsonemus (Acari: Tarsonemidae) from rice agroecosystems of Eastern India with notes on their taxonomic status, spatial distribution, intraspecific variation and species composition
FIGURE 58. Results of Non-metric multidimensional scaling (NMDS), using Bary Curtis matrix, applied to test similarity in morphological variant composition of Steneotarsonemus spinki males in Eastern India (The states are colour coded as green: West Bengal; Blue: Orissa; Yellow: Tripura; Red: Manipur).
FIGURE 57 in Complementary description of three species of Steneotarsonemus (Acari: Tarsonemidae) from rice agroecosystems of Eastern India with notes on their taxonomic status, spatial distribution, intraspecific variation and species composition
FIGURE 57. Abundance of morphological variants (mean±S.E.) of Steneotarsonemus spinki male in Eastern India. Mean followed by same letter do not differ significantly at 5% level of Significance.
FIGURES 41.—47. Steneotarsonemus spinki 41 in Complementary description of three species of Steneotarsonemus (Acari: Tarsonemidae) from rice agroecosystems of Eastern India with notes on their taxonomic status, spatial distribution, intraspecific variation and species composition
FIGURES 41.—47. Steneotarsonemus spinki 41—Dorsal surface (female), 42—Ventral surface (female), 43. Dorsal surface (male), 44—Ventral surface (male), 45. Leg IV (male, variant S), 46. Leg IV (male, variant I), 47. Leg IV (male, variant L).
FIGURES 38.—40 in Complementary description of three species of Steneotarsonemus (Acari: Tarsonemidae) from rice agroecosystems of Eastern India with notes on their taxonomic status, spatial distribution, intraspecific variation and species composition
FIGURES 38.—40. Three variants of Steneotarsonemus spinki (male Leg IV). 38.Variant S, 49. Variant I and 40. Variant L (top to bottom).
FIGURES 53.—56. Steneotarsonemus subfurcatus 53 in Complementary description of three species of Steneotarsonemus (Acari: Tarsonemidae) from rice agroecosystems of Eastern India with notes on their taxonomic status, spatial distribution, intraspecific variation and species composition
FIGURES 53.—56. Steneotarsonemus subfurcatus 53—Dorsal surface (female), 54—Ventral surface (female), 55. Dorsal surface (male), 56—Ventral surface (male).
FIGURES 28.—31 in Complementary description of three species of Steneotarsonemus (Acari: Tarsonemidae) from rice agroecosystems of Eastern India with notes on their taxonomic status, spatial distribution, intraspecific variation and species composition
FIGURES 28.—31. Steneotarsonemus subfurcatus (female). 28.—leg I, 29.—leg II, 30.—leg III, 31.—leg IV.
FIGURES 34.—37 in Complementary description of three species of Steneotarsonemus (Acari: Tarsonemidae) from rice agroecosystems of Eastern India with notes on their taxonomic status, spatial distribution, intraspecific variation and species composition
FIGURES 34.—37. Steneotarsonemus subfurcatus (male). 34.—leg I, 35.—leg II, 36.—leg III, 37.—leg IV.
FIGURES 48.—52. Steneotarsonemus furcatus 48 in Complementary description of three species of Steneotarsonemus (Acari: Tarsonemidae) from rice agroecosystems of Eastern India with notes on their taxonomic status, spatial distribution, intraspecific variation and species composition
FIGURES 48.—52. Steneotarsonemus furcatus 48—Dorsal surface (female), 49—Ventral surface (female), 50. Dorsal surface (male), 51—Dorsal surface (male), 52. Ventral surface (male).
FIGURE 1 in Complementary description of three species of Steneotarsonemus (Acari: Tarsonemidae) from rice agroecosystems of Eastern India with notes on their taxonomic status, spatial distribution, intraspecific variation and species composition
FIGURE 1. Map of India depicting the locations of survey areas from where the specimens were collected.
FIGURE 4 in Implications of combined taxonomic, morphometric, and molecular characteristics for the species status of Paracentrobia tapajosae and Paracentrobia subflava (Hymenoptera: Trichogrammatidae), egg parasitoids of different leafhopper hosts in the Americas
FIGURE 4. Canonical variables (CVA) analysis of male Paracentrobia of the segments measured by traditional morphometry (● Paracentrobia tapajosae from Tapajosa rubromarginata, Argentina, x Paracentrobia tapajosae from Dalbulus maidis, Argentina, □ Paracentrobia subflava from Dalbulus maidis, Mexico).
FIGURE 1 in Implications of combined taxonomic, morphometric, and molecular characteristics for the species status of Paracentrobia tapajosae and Paracentrobia subflava (Hymenoptera: Trichogrammatidae), egg parasitoids of different leafhopper hosts in the Americas
FIGURE 1. Anatomical landmarks used in geometric morphometric analysis of male genitalia of Paracentrobia subflava and Paracentrobia tapajosae (● landmarks, ● semilandmarks).
FIGURE 7 in Implications of combined taxonomic, morphometric, and molecular characteristics for the species status of Paracentrobia tapajosae and Paracentrobia subflava (Hymenoptera: Trichogrammatidae), egg parasitoids of different leafhopper hosts in the Americas
FIGURE 7. Maximum likelihood phylogram of Paracentrobia specimens from Mexico and Argentina based on the sequence of the ITS2 region. The support of the tree was assessed by bootstrap analysis with 1000 replicates (* Paracentrobia tapajosae from Dalbulus maidis and Paracentrobia subflava from Dalbulus maidis, ** Paracentrobia tapajosae from Tapajosa rubromarginata).
FIGURE 3 in Implications of combined taxonomic, morphometric, and molecular characteristics for the species status of Paracentrobia tapajosae and Paracentrobia subflava (Hymenoptera: Trichogrammatidae), egg parasitoids of different leafhopper hosts in the Americas
FIGURE 3. Canonical variables (CVA) analysis of female Paracentrobia of the segments measured by traditional morphometry (● Paracentrobia tapajosae from Tapajosa rubromarginata, Argentina, x Paracentrobia tapajosae from Dalbulus maidis, Argentina, □ Paracentrobia subflava from Dalbulus maidis, Mexico).
FIGURE 6 in Implications of combined taxonomic, morphometric, and molecular characteristics for the species status of Paracentrobia tapajosae and Paracentrobia subflava (Hymenoptera: Trichogrammatidae), egg parasitoids of different leafhopper hosts in the Americas
FIGURE 6. Maximum likelihood phylogram of Paracentrobia specimens from Mexico and Argentina based on the sequence of the COI gene. The support of the tree was assessed by bootstrap analysis with 1000 replicates (* Paracentrobia tapajosae from Dalbulus maidis and Paracentrobia subflava from Dalbulus maidis, ** Paracentrobia tapajosae from Tapajosa rubromarginata).
FIGURE 5 in Implications of combined taxonomic, morphometric, and molecular characteristics for the species status of Paracentrobia tapajosae and Paracentrobia subflava (Hymenoptera: Trichogrammatidae), egg parasitoids of different leafhopper hosts in the Americas
FIGURE 5. Scatter plot of the between-groups principle component analysis (bgPCA) for the geometric morphometric analysis of male genitalia of Paracentrobia. Thin-plate spline (TPS) deformation grids at the extreme of each axis illustrate shape change implied by the corresponding bgPC (● Paracentrobia tapajosae from Tapajosa rubromarginata, Argentina, ○ Paracentrobia tapajosae from Dalbulus maidis, Argentina, ● Paracentrobia subflava from Dalbulus maidis, Mexico).
Subspecies and Distribution. L.s.sinensisGray,1832—SEChinaSoftheYangtzeRiver. L.s.formosusThomas,1908—Taiwan. L. s. Province (yuenshanensis China). Shih, 1930 — Hunan Taxonomic status of the Chinese Hare in NE Vietnam has to be determined. in Leporidae
Subspecies and Distribution. L.s.sinensisGray,1832—SEChinaSoftheYangtzeRiver. L.s.formosusThomas,1908—Taiwan. L. s. Province (yuenshanensis China). Shih, 1930 — Hunan Taxonomic status of the Chinese Hare in NE Vietnam has to be determined.
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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.