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1,588 results for “morphologic analysis”
Potential Metabolic Activity, Catalase Activity, Performance traits and Morphological variables of 94 individuals belonging to Podarcis muralis species used in the analysis
<p>Potential Metabolic Activity (ETS26_P, ETS31_P, ETS36_P), Catalase Activity (CAT_P), Performance traits (BITE, SPRINT,CLIMB, MANO) and Morphological variables (snout-vent length (SVL), trunk length (TRL), pileus length (PL), head length (HL), head width (HW), head height (HH), fore limb length (FLL) and hind limb length (HLL) of 94 individuals belonging to <em>Podarcis muralis</em> species. The data was used in the analysis of the paper entitled: Is It Function or Fashion? An Integrative Analysis of Morphology, Performance, and Metabolism in a Colour Polymorphic Lizard, by authors Verónica Gomes, Anamarija Žagar, Guillem Pérez i de Lanuza, Tatjana Simčič and Miguel A. Carretero, published in the journal Diversity 2022, 14, 116. <a href="https://doi.org/10.3390/d14020116">https://doi.org/10.3390/d14020116</a></p>
nNPipe: A neural network pipeline for automated analysis of morphologically diverse catalyst systems - Resources
<p>This dataset comprises of resources required to replicate the results described in "<em>nNPipe</em>: A neural network pipeline for automated analysis of morphologically diverse catalyst systems". <em>nNPipe </em>is a deep learning based method in which two deep convolutional neural networks are used for the automated analysis of 2048x2048 HRTEM images.</p> <p>The file contains:<br> - Relevant experimental images as well as ground truth for Pd/C and Au/Ge systems.<br> - A workflow file explaining the nNPipe workflow.<br> - Mathematica 12.1 code for the generation of computational models.<br> - MATLAB code for HRTEM multislice simulations using MULTEM, as well as code required to form respective training datasets.<br> - Weights and files required for training the YOLOv5x module.<br> - Weights and files required for training the SegNet module.<br> - Mathematica 12.1 code required for reconstruction of 2048x2048 binary segmented maps of HRTEM images. </p>
FIG. 1 in Beyond shells: first detailed morphological description of the mangrove-associated gastropod Haminoea cf. fusca (A. Adams, 1850) (Cephalaspidea, Haminoeidae), with a COI phylogenetic analysis
FIG. 1. — Bayesian phylogenetic tree based on partial sequences of the COI gene. Figures on nodes are posterior probabilities, scale bar refer to branch lengths. Coloured squares refer to species that are Indo West Pacific in origin, whereas grey squares to Atlantic and eastern Pacific species. PP, 1. The specimen here used from the Philippines is depicted in Gosliner et al. 2015: 30, lower right.
Figure 1 in Phylogenetic analysis of the myrmecophilous Cremastocheilus Knoch (Coleoptera, Scarabaeidae, Cetoniinae), based on external adult morphology
Figure 1. Strict consensus of 24 equally parsimonious trees (153 steps, CI = 0.46, RI = 0.80) of Cremastocheilus. Dark bars indicate monophyletic groups that correspond with Alpert's (1994) subgenera and respective species groups. Jackknife values are shown above branches, with support <50 not shown. Bremer support values are shown in bold below branches. Black dot indicates the genus Cremastocheilus.
Fig. 2 in The identification of the species of the 'Spilogona contractifrons species-group' and the 'Spilogona nitidicauda species-group' (Diptera, Muscidae) based on morphological and molecular analysis
Fig. 2. Spilogona orthosurstyla Xue & Tian, 1988. A. Terminalia, lateral view. B. Terminalia, dorsal view. C. Sternite 5. Scare bars: 0.25 mm.
Fig. 1 in The identification of the species of the 'Spilogona contractifrons species-group' and the 'Spilogona nitidicauda species-group' (Diptera, Muscidae) based on morphological and molecular analysis
Fig. 1. Males of Spilogona Schnabl, 1911. A–C. Male head and scutum, anterior view. A. S. contractifrons (Zetterstedt, 1838). B. S. arctica (Zetterstedt, 1838). C. S. alticola (Malloch, 1920). D–F. Sternite 5. D. S. contractifrons. E. S. arctica. F. S. alticola. G–I. Abdomen, dorsal view. G. S. contractifrons. H. S. arctica. I. S. alticola. J–L. Terminalia, lateral view. J. S. contractifrons. K. S. arctica. L. S. alticola. Scale bars: 1 mm.
Fig. 5 in The identification of the species of the 'Spilogona contractifrons species-group' and the 'Spilogona nitidicauda species-group' (Diptera, Muscidae) based on morphological and molecular analysis
Fig. 5. Males of Spilogona Schnabl, 1911. A–C. Terminalia, lateral view. A. S. imitatrix (Malloch, 1921). B. S. nitidicauda (Schnabl, 1911). C. S. platyfrons Sorokina, 2018. D–F. Cercal plate, posterior view. D. S. imitatrix. E. S. nitidicauda. F. S. platyfrons. G–I. Sternite 5. G. S. imitatrix. H. S. nitidicauda. I. S. platyfrons. Scale bars: 0.25 mm.
Fig. 6 in The identification of the species of the 'Spilogona contractifrons species-group' and the 'Spilogona nitidicauda species-group' (Diptera, Muscidae) based on morphological and molecular analysis
Fig. 6. Localities of the species of Spilogona Schnabl, 1911 used in the DNA analysis. Symbols denote the species, whilst the colour shows the same DNA sequences. A. 'S. contractifrons species-group'. B. 'S. nitidicauda species-group'.
Fig. 4 in The identification of the species of the 'Spilogona contractifrons species-group' and the 'Spilogona nitidicauda species-group' (Diptera, Muscidae) based on morphological and molecular analysis
Fig. 4. Males of Spilogona Schnabl, 1911. A–C. Head, lateral view. A. S. imitatrix (Malloch, 1921). B. S. nitidicauda (Schnabl, 1911). C. S. platyfrons Sorokina, 2018. D–F. Frons, anterior view. D. S. imitatrix. E. S. nitidicauda. F. S. platyfrons. G–I. Abdomen, dorsal view. G. S. imitatrix. H. S. nitidicauda. I. S. platyfrons. Scale bars: 1 mm.
Fig. 1. Morphological characters used for the phylogenetic analysis and key. A–C. Terminal maxillary palpomere. D–E. Eyes. F–H. Pronotum. I–J. Leg. K–L in Taxonomic revision of the Lycocerus hanatanii species group (Coleoptera, Cantharidae), with the description of new species from Taiwan
Fig. 1. Morphological characters used for the phylogenetic analysis and key. A–C. Terminal maxillary palpomere. D–E. Eyes. F–H. Pronotum. I–J. Leg. K–L. Inner margin of dorsal plate of aedeagus.
Fig. 14. Cistenides hyperborea Malmgren, 1866 in Taxonomy and distribution of Pectinariidae (Annelida) from Iceland with a comparative analysis of uncinal morphology
Fig. 14. Cistenides hyperborea Malmgren, 1866. SEM micrographs from two medium-sized specimens (BIOICE sample 2060, IINH-40471). A. Anterior end, ventral view. B–C. Unciniger 2, dorsal and ventral uncini, respectively. D–E. Unciniger 7, dorsal and ventral uncini, respectively. F. Scaphal hooks and scaphal basis ciliary patches.
Fig. 10. Cistenides hyperborea Malmgren, 1866 in Taxonomy and distribution of Pectinariidae (Annelida) from Iceland with a comparative analysis of uncinal morphology
Fig. 10. Cistenides hyperborea Malmgren, 1866. SEM micrographs from three large specimens (BIOICE sample 3252, IINH-40477). A. Anterior end, left ventrolateral view. B. Notochaetal scale covering, detail. C–D. Unciniger 1, dorsal and ventral uncini, respectively. E–F. Unciniger 12, dorsal and ventral uncini, respectively.
Fig. 2 in Taxonomy and distribution of Pectinariidae (Annelida) from Iceland with a comparative analysis of uncinal morphology
Fig. 2. Temperature vs depth data of the BIOICE samples where specimens of Pectinariidae were found. A. Amphictene auricoma (O.F. Müller, 1776). B. Lagis koreni Malmgren, 1866. C. Cistenides granulata (Linnaeus, 1767). D. Cistenides hyperborea Malmgren, 1866. Specimens studied under SEM are indicated with black arrows and sample numbers.
Fig. 12. Cistenides hyperborea Malmgren, 1866. SEM micrographs from a in Taxonomy and distribution of Pectinariidae (Annelida) from Iceland with a comparative analysis of uncinal morphology
Fig. 12. Cistenides hyperborea Malmgren, 1866. SEM micrographs from a medium-sized specimen (BIOICE sample 2660, IINH-40474). A. Anterior end, right lateral view (framed: paleae distal end, detail). B–C. Unciniger 1, dorsal and ventral uncini, respectively. D–E. Unciniger 9, dorsal and ventral uncini, respectively. F. Scaphal hooks.
Fig. 8 in Taxonomy and distribution of Pectinariidae (Annelida) from Iceland with a comparative analysis of uncinal morphology
Fig. 8. Cistenides granulata (Linnaeus, 1767). SEM micrographs from two large specimens (BIOICE sample 3249, IINH-40467). A. Anterior end, right lateral view. B–C. Unciniger 1, dorsal and ventral uncini, respectively. D. Unciniger 6, ventral uncini. E. Unciniger 12, dorsal uncini. F. Scaphe, posterodorsal view (framed: scaphal hooks, detail).
Fig. 15. Cistenides hyperborea Malmgren, 1866 in Taxonomy and distribution of Pectinariidae (Annelida) from Iceland with a comparative analysis of uncinal morphology
Fig. 15. Cistenides hyperborea Malmgren, 1866. SEM micrographs from two medium-sized specimens (BIOICE sample 2060, IINH-40471). A. Mid-body parapodium, notochaetae. B. Notochaeta, serrated distal end, detail. C. Scaphe, dorso-lateral view. D. Cuticular structures (framed in C). E. Anal lobe and anal papilla. F. Ciliary field dorsal to anal lobe (framed in E).
FIGURE 6 in CLADISTIC ANALYSIS OF THE ARGENTINIAN SPECIES OF THE GENUS BOSTRYX (GASTROPODA, STYLOMMATOPHORA) BASED ON MORPHOLOGICAL EVIDENCE
FIGURE 6: (A) Character 58. Penis sheath and retractor penis muscle (arrow). (B) Characters 59, 60. Inner wall sculpture in distal portion of the penis. (C) Character 61. Inner wall sculpture in proximal portion of the penis. (D) Characters 62-64. Inner wall sculpture in proximal portion of the penis. (E) Character 68. Inner wall sculpture in duct of bursa copulatrix. (F) Character 69. Inner wall sculpture in epiphallus. (G) Characters 71-73. Shape of bursa copulatrix duct in proximal, middle and distal portion. (H) Characters 70, 75-77. Shape of penis, position of penis retractor muscle and thickness and position of vas deferens. Abbreviations: I: number of area; II: number of area; bc: bursa copulatrix; bd: bursa copulatrix duct; dp: distal portion; mp: middle portion; p: penis; pp: proximal portion; ps: penis sheath; prm: penis retractor muscle; s: smooth inner wall; sf: straight folds; vd: vas deferent; zzf: zigzag folds.
FIGURE 5 in CLADISTIC ANALYSIS OF THE ARGENTINIAN SPECIES OF THE GENUS BOSTRYX (GASTROPODA, STYLOMMATOPHORA) BASED ON MORPHOLOGICAL EVIDENCE
FIGURE 5: Reproductive system dissected out. (A) Character 48. Length of bursa copulatrix duct in relation to spermoviduct length. (B) Characters 49, 54. Length of flagellum in relation to epiphallus length and external transition from epiphallus to penis. (C) Characters 50, 51. Inner wall sculpture of flagellum. (D) Character 52. Length of epiphallus in relation to penis length. (E) Character 53. Shape of epiphallus. (F) Characters 55, 56, 67. Phallic complex showing the thinning in the middle portion of penis and a vas deferens in relation to penis sheath. (G) Character 57. Length of penis sheath in relation to penis length. Abbreviations: bc: bursa copulatrix; bd: bursa copulatrix duct; dp: distal portion; ep: epiphallus; f: flagellum; p: penis; pp: proximal portion; ps: penis sheath; s: spermoviduct; t: thinner middle section.
FIGURE 4 in CLADISTIC ANALYSIS OF THE ARGENTINIAN SPECIES OF THE GENUS BOSTRYX (GASTROPODA, STYLOMMATOPHORA) BASED ON MORPHOLOGICAL EVIDENCE
FIGURE 4: Pallial system dissected out. (A) Character 38. Length of kidney in relation to total pulmonary roof length. (B) Characters 39, 40, 42. Degree of occlusion of secondary ureter. (C) Characters 40. Position of secondary ureter opening. Reproductive system dissected out. (D) Characters 43, 45, 46. Vagina inner wall sculpture. (E) Characters 47, 74. Shape and length of vagina in relation to penis length. Abbreviations: ap.su: aperture of secondary ureter; ia: interramus area; k: kidney; p: penis; pr: pulmonary roof; su: secondary ureter; v: vagina.
FIGURE 3 in CLADISTIC ANALYSIS OF THE ARGENTINIAN SPECIES OF THE GENUS BOSTRYX (GASTROPODA, STYLOMMATOPHORA) BASED ON MORPHOLOGICAL EVIDENCE
FIGURE 3: (A) Character 25. Lateral view of Bostryx martinezi (Hylton Scott, 1965) (0) and Bostryx willinki Weyrauch, 1964 (1). (B) Character 26. Lateral view of Bostryx pastorei (Holmberg, 1912) (0) and Bostryx peristomatus (Doering, 1879) (1). (C) Character 27. Ventral view of Bostryx roselleus Miranda & Cuezzo, 2014 (0) and Bostryx scaber (Parodiz, 1948) (1). (D) Characters 30-34. Microsculpture of protoconch of B. peristomatus (0) and B. scaber (1). (E) Character 35. Ventral view of the shell showing aperture in Bostryx torallyi (d'Orbigny, 1835) (0) and a presence of apertural teeth (arrow) in Plagiodontes daedaleus (Parodiz, 1946) (1). (F) Character 36. Lateral view of Bostryx mendozanus (Strobel, 1874) (0) and Bostryx solutus Troschel, 1847 (1), showing the presence of carina (arrow). (G) Character 37. Carina around of umbilicus in B. peristomatus (0) and around of whorl in Bostryx cuyanus (Pfeiffer, 1867) (1) (arrows). Abbreviations: as: axial sculpture; ss: spiral sculpture.
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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.