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154 results for “Psocidae”
Fig. 1 in Historical biogeography of Thyrsophorini psocids and description of a new neotropical species of Thyrsopsocopsis (Psocodea: Psocomorpha: Psocidae)
Fig. 1. Hypotheses for the current distribution of Thyrsophorini. A. Dispersal of Thyrsopsocopsis Mockford, 2004 from the Neotropics. B. Vicariance, as a consequence of the population split, occurred in the hypothesized most recent common ancestor of Thyrsophorini and Cycetini. C. Parallel evolution between the Neotropical and Asian lineages.
Fig. 4 in Historical biogeography of Thyrsophorini psocids and description of a new neotropical species of Thyrsopsocopsis (Psocodea: Psocomorpha: Psocidae)
Fig. 4. Parsimony based reconstruction of Thyrsophorini historical biogeography. A. Parsimony based ancestral reconstruction implemented in Mesquite 3.04. B. S-DIVA biogeographical reconstruction.
Fig. 3 in Historical biogeography of Thyrsophorini psocids and description of a new neotropical species of Thyrsopsocopsis (Psocodea: Psocomorpha: Psocidae)
Fig. 3. Generic-level cladogram derived from parsimony analysis of the morphological dataset based on a heuristic search with 1000 replicates (L = 127, CI = 40, Ri = 59), followed by TBR branch swapping, with character optimizations, symmetric resampling (*0.33), Bremmer support (*greater than 0.33 for the current dataset) and relative bootstrap (*greater than 70%). Circles represent character optimizations: ○ = unique changes; ● = homoplasic characters.
Fig. 2 in Historical biogeography of Thyrsophorini psocids and description of a new neotropical species of Thyrsopsocopsis (Psocodea: Psocomorpha: Psocidae)
Fig. 2. Thyrsopsocopsis amazonicus sp. nov., ♂, holotype. A. Front view of head. B. Paraprocts, epiproct and clunium. C. Forewing. D. Hindwing. E. Phallosome. F. Hypandrium. Scales in mm.
Fig. 7 in Historical biogeography of Thyrsophorini psocids and description of a new neotropical species of Thyrsopsocopsis (Psocodea: Psocomorpha: Psocidae)
Fig. 7. Morphological homology of the hypandrial tubercles between the Neotropical and Oriental species. A. T. amazonicus sp. nov. B. T. thorntoni Mockford, 2004. Anterior –A and –P axis indicated on left. Scales in mm.
Fig. 5 in Historical biogeography of Thyrsophorini psocids and description of a new neotropical species of Thyrsopsocopsis (Psocodea: Psocomorpha: Psocidae)
Fig. 5. Bayesian algorithms based reconstruction of the Thyrsophorini biogeography. A. Biogeographic regions considered in the analyses: Blue: Neotropics (A), purple: Oriental (B), Cream: Nearctic (C), Orange: Paleartic (D), Green: Australasia (E). B. Reconstructed distribution using Bayesian Binary MCMC (BBM).
Fig. 6 in Historical biogeography of Thyrsophorini psocids and description of a new neotropical species of Thyrsopsocopsis (Psocodea: Psocomorpha: Psocidae)
Fig. 6. Major biogeographical events occurred in Thyrsophorini (left) in accordance to the consensus reconstruction between BBM and S-DIVA analyses (right). Significant reconstructions indicated with *. I. Vicariance of the most recent common ancestor between Longivalvus Li, 1993 and Clematoscenea Enderlein, 1907. II. Allopatric speciation in the MRCA of Sundapsocus Smithers, 1995 and Cervopsocus New, 1978. III. Dispersal event occurred in Thyrsopsocopsis Mockford, 2004.
Fig. 3 in Systematic Position of Trichadenotecnum enderleini (Roesler) (Psocodea: "Psocoptera": Psocidae)
Fig. 3. Female genitalia of Ptycta enderleini. (A) Subgenital plate, ventral view, setae on right half omitted. (B) Gonapophyses, ventral view.
Fig. 2 in Systematic Position of Trichadenotecnum enderleini (Roesler) (Psocodea: "Psocoptera": Psocidae)
Fig. 2. Male terminal structures of Ptycta enderleini. (A) Terminalia, lateral view. (B) Epiproct, dorsal view. (C) Hypandrium, posterior view. (D) Phallosome, ventral view. (E) Ditto, lateral view.
Figure 48 in Systematics and biogeography of the New World species of Trichadenotecnum Enderlein (Insecta: Psocodea: 'Psocoptera': Psocidae)
Figure 48. Phylogenetic relationships among speciesgroups of Trichadenotecnum. Thick nodes indicate New World distribution and thick broken nodes indicate Holoarctic distribution.
Figure 47 in Systematics and biogeography of the New World species of Trichadenotecnum Enderlein (Insecta: Psocodea: 'Psocoptera': Psocidae)
Figure 47. Preferred cladogram of Trichadenotecnum and most parsimonious reconstruction of character states. Character 41 is highlighted (see text).
Figure 46 in Systematics and biogeography of the New World species of Trichadenotecnum Enderlein (Insecta: Psocodea: 'Psocoptera': Psocidae)
Figure 46. Male terminalia structures of Trichadenotecnum cintalapense, showing terminalia in lateral view (A), clunial arm in posterolateral view (B), epiproct in posterior view (C), hypandrium in ventral view (D) and phallosome in ventral (E) and lateral views (F).
Figure 44 in Systematics and biogeography of the New World species of Trichadenotecnum Enderlein (Insecta: Psocodea: 'Psocoptera': Psocidae)
Figure 44. Male terminalia structures of Trichadenotecnum obrienorum, showing terminalia in lateral view (A), epiproct in posterior view (B), hypandrium in ventral view (C) and phallosome in ventral (D) and lateral views (E).
Figure 42 in Systematics and biogeography of the New World species of Trichadenotecnum Enderlein (Insecta: Psocodea: 'Psocoptera': Psocidae)
Figure 42. Male terminalia structures of Trichadenotecnum miffy, showing clunial arm in lateral view (A), epiproct in posterior view (B), paraproct in lateral view (C), hypandrium in ventral view (D) and phallosome in ventral (E).
Figure 45 in Systematics and biogeography of the New World species of Trichadenotecnum Enderlein (Insecta: Psocodea: 'Psocoptera': Psocidae)
Figure 45. Female genitalia of Trichadenotecnum obrienorum, showing subgenital plate (A), gonapophyses (B) and internal plate (C) in ventral view.
Figure 43 in Systematics and biogeography of the New World species of Trichadenotecnum Enderlein (Insecta: Psocodea: 'Psocoptera': Psocidae)
Figure 43. Male terminalia structures of Trichadenotecnum decui, showing terminalia in lateral view (A), epiproct in posterior view (B), hypandrium in ventral view (C) and phallosome in ventral view (D).
Figure 41 in Systematics and biogeography of the New World species of Trichadenotecnum Enderlein (Insecta: Psocodea: 'Psocoptera': Psocidae)
Figure 41. Male terminalia structures of Trichadenotecnum denticulatum, showing terminalia in lateral view (A), epiproct in posterior view (B), hypandrium in ventral view (C) and phallosome in ventral (D) and lateral views (E); everted endophallus is not illustrated in D or E.
Figure 38 in Systematics and biogeography of the New World species of Trichadenotecnum Enderlein (Insecta: Psocodea: 'Psocoptera': Psocidae)
Figure 38. Male terminalia structures of Trichadenotecnum slossonae, showing terminalia in lateral view (A), epiproct in posterior view (B), hypandrium in ventral view (C) and phallosome in ventral (D) and lateral views (E).
Figure 36 in Systematics and biogeography of the New World species of Trichadenotecnum Enderlein (Insecta: Psocodea: 'Psocoptera': Psocidae)
Figure 36. Forewings of Trichadenotecnum aconcinnum (A), T. guttatum (B), T. slossonae (C), T. barrerai (D), T. denticulatum (E), T. miffy (F), T. decui (G), T. obrienorum (H) and T. cintalapense (I).
Figure 37 in Systematics and biogeography of the New World species of Trichadenotecnum Enderlein (Insecta: Psocodea: 'Psocoptera': Psocidae)
Figure 37. Male terminalia structures of Trichadenotecnum aconcinnum (A–D) and T. guttatum (E–H), showing terminalia in lateral view (A), epiproct in posterior view (B, E), epiproct in lateral view (F), hypandrium in ventral view (C, G) and phallosome in ventral view (D, H).
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.