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356 results for “PIE”
Figure 2 in Morphology-based cladistics splinters the century-old dichotomy of the pied harvestmen (Arachnida: Gonyleptoidea: Cosmetidae)
Figure 2. Habitus in vivo of some Discosomaticinae from Brazil. A, Roquettea singularis from Pará. B, Gryne leprosa from Pará. C, Gryne marginalis from Pará. D, Gryne dimorpha from Goiás. E–G, Gryne orensis from Mato Grosso do Sul. Photographs of Arthur Anker & Pedro H. Martins (A, C–D), Bruno Garcia (B) and Adriano Kury (E–G).
Figure 13 in Morphology-based cladistics splinters the century-old dichotomy of the pied harvestmen (Arachnida: Gonyleptoidea: Cosmetidae)
Figure 13. SEM images of some structures of Acantholibitia biocellata, male (MNRJ 19042). A–D, penis: A, dorsal view; B, lateral view; C, ventral view; D, detail of MS-C, ventral view. E, left pedipalpus, mesal view. F, left basichelicerite, dorsal view. G, left cheliceral hand, dorsal view. H, claws of leg IV, oblique view. Scale bars: 10 μm (D), 20 μm (H), 50 μm (A–C), 200 μm (E), 100 μm (F, G).
Figure 29 in Morphology-based cladistics splinters the century-old dichotomy of the pied harvestmen (Arachnida: Gonyleptoidea: Cosmetidae)
Figure 29. Paraprotus atroluteus, syntype (SMF RI 291). A, dDorsal view. B, lateral view. C, panoramic dorsal view. D, original label. Scale bars: 1 mm. Photos courtesy Abel Pérez.
Figure 3 in Morphology-based cladistics splinters the century-old dichotomy of the pied harvestmen (Arachnida: Gonyleptoidea: Cosmetidae)
Figure 3. Habitus in vivo of some non-discosomaticinae. A, Cosmetus delicatus from Espírito Santo (Brazil). B, Paecilaema u-flavum from Rio de Janeiro (Brazil). C, Cynorta conspersa from Pará (Brazil). D, Meterginus basalis from Cusuco National Park (Honduras). E, Rhaucus serripes from Cundinamarca (Colombia). F, Eucynorta virescens from Antisana Ecological Reserve (Ecuador). Photographs of Miguel Medrano (A, E, F), Sébastien Cally (B), Bruno Garcia (C), Jonathan Kolbi (D).
Figure 33 in Morphology-based cladistics splinters the century-old dichotomy of the pied harvestmen (Arachnida: Gonyleptoidea: Cosmetidae)
Figure 33. Protus distinctus, male (CAS AK 105). A, dorsal view. B, lateral view. C, panoramic dorsal view. Scale bars: 1 mm.
Figure 41 in Morphology-based cladistics splinters the century-old dichotomy of the pied harvestmen (Arachnida: Gonyleptoidea: Cosmetidae)
Figure 41. SEM images of some structures of Protus speciosus, male (ICN-Ao- 467). A–C, penis: A, dorsal view; B, lateral view; C, ventral view. D, left cheliceral hand, frontal view. E, left basichelicerite, dorsal view. F, left pedipalpus, mesal view. G, same, dorsal view. H, same, detail of tarsus, ventral view. Scale bars: 100 μm (A–C, E, H), 200 μm (D), 500 μm (F, G).
Figure 40 in Morphology-based cladistics splinters the century-old dichotomy of the pied harvestmen (Arachnida: Gonyleptoidea: Cosmetidae)
Figure 40. Protus speciosus, male (ICN-Ao-381). A, dorsal view. B, lateral view. C, panoramic dorsal view. Scale bars: 1 mm.
Figure 32 in Morphology-based cladistics splinters the century-old dichotomy of the pied harvestmen (Arachnida: Gonyleptoidea: Cosmetidae)
Figure 32. SEM images of some structures of Protus bolivari, male (USNMENT 01538074). A–D, penis: A, dorsal view; B, lateral view; C, ventral view; D, detail of stylus, oblique view. E–F, right claw IV: E, ventral view; F, ventro-lateral view. Scale bars: 50 μm (A–C), 20 μm (D, F), 100 μm (E).
Figure 25 in Morphology-based cladistics splinters the century-old dichotomy of the pied harvestmen (Arachnida: Gonyleptoidea: Cosmetidae)
Figure 25. Kayania compressicoxa, schematic female illustration modified from Avram & Soares (1983). A, dorsal view. B, ovipositor and detail of macrosetae. C, left chelicera, mesal view. D, right pedipalpus, mesal view.
Figure 24 in Morphology-based cladistics splinters the century-old dichotomy of the pied harvestmen (Arachnida: Gonyleptoidea: Cosmetidae)
Figure 24. Kayania bicolumnata, male holotype (SMF 12782/16). A, dorsal view. B, ventral view. C, distal part of the penis emerging through genital operculum. D, habitus, lateral view. E, postero-lateral view. F, original labels by Weyrauch and Roewer. Scale bars: 1 mm. Photos courtesy Abel Pérez.
Figure 37. Protus marllusi. A–B in Morphology-based cladistics splinters the century-old dichotomy of the pied harvestmen (Arachnida: Gonyleptoidea: Cosmetidae)
Figure 37. Protus marllusi. A–B, Male holotype (MNRJ 7602): A, dorsal view; B, lateral view. C–E, variation of spots of dorsal scutum, female paratypes, dorsal view: C. MNRJ 4842. D. MNRJ 7602. E. MNRJ 2173. Scale bars: 1 mm.
Figure 38 in Morphology-based cladistics splinters the century-old dichotomy of the pied harvestmen (Arachnida: Gonyleptoidea: Cosmetidae)
Figure 38. SEM images of some structures of Protus marllusi, holotype (MNRJ 7602). A–C, penis: A, dorsal view; B, lateral view; C, ventral view. D, left cheliceral hand, dorsal view. E, left basichelicerite, dorsal view. F, left pedipalpal tarsus, ventral view. G, left pedipalpus, ventral view. H, same, mesal view. Scale bars: 100 μm (A–C, E, F), 200 μm (D), 500 μm (G, H).
Figure 28 in Morphology-based cladistics splinters the century-old dichotomy of the pied harvestmen (Arachnida: Gonyleptoidea: Cosmetidae)
Figure 28. Paraprotus albithorax, female holotype (SMF RII 132/2). A, dorsal view. B, lateral view. C, panoramic dorsal view. D, original label. Scale bar: 1 mm. Photos courtesy Abel Pérez.
Data for "Syntactic modulation of rhythm in Australian pied butcherbird song"
<p>Australian pied butcherbird song data necessary for reproducing results in "<em>Syntactic modulation of rhythm in Australian pied butcherbird song</em>". </p> <p>Code to reproduce results are found in: https://github.com/xingjeffrey/syntax_rhythm_pbb</p> <p>All WAV files in this data repository have been transformed into .pickle format to respect the wishes of the author who contributed the field recordings. The WAV files were only involved in generating spectrograms for computation/manual annotations, and are not absolutely necessary for reproducing the statistical analyses of this study. If needed, the .pickle files corresponding to the WAV files may be used to generate waveforms of the analyzed Australian pied butcherbird songs. If you have any concerns or questions, contact the corresponding author (Jeffrey Xing) at j8xing@ucsd.edu</p>
FIGURE 1 in Inordinate Fondness Multiplied And Redistributed: The Number Of Species On Earth And The New Pie Of Life
<p>FIGURE 1. TRADITIONAL AND NEW ESTIMATES OF THE PIE OF LIFE The pie on the left shows a traditional estimate of the relative richness of different groups of organisms based on numbers of described species (Wilson 1992), the middle shows an estimate based on projected richness of different groups (Mora et al. 2011), and the pie on the right shows estimates based on the projected richness of different groups in the present study. The pie on the right is estimated based on Scenario 1 (Table 1), but other scenarios and assumptions give very similar estimates of the relative richness of different groups (Tables 1 – 4), even as total species richness changes. See the online edition for a color version of this figure.</p> <p>Figure from the online version (the print version is black and white)</p>
Photos de pêcheurs à pied à Ambleteuse
<p>Photos prises lors d'une observation le 7 octobre 2017, présentant des pêcheurs de moule près du fort d'Ambleteuse.</p>
Personal Ionospheric Experiment (PIE) data
<ul> <li>Raw spectra (as HDF5 datasets) collected with the personal ionopheric experiment (PIE).</li> <li>Files for each month are compressed into zip files for easy access.</li> <li>Codes to process these data are available at <a href="https://github.com/jnthek/pie-codes/" target="_blank" rel="noopener">https://github.com/jnthek/pie-codes/</a> </li> <li>Usage of the code and data are permitted ONLY for scientific studies, for example research involving the ionosphere, magnetosphere or space physics. Any other use is prohibited.</li> <li>If these data are used for your work, please cite the zenodo link as well as the associated article at https://doi.org/10.22541/essoar.172612553.32913210/v1. </li> <li>I also request you to contact me if you intend to publish any paper using these data - it would encourage me to maintain this experiment :) </li> </ul>
Egg covering in great tits and effects on pied flycatchers
<p><span><span><span><span><span><span><span><span><span><span><span>This dataset contains data from experiments carried out in a woodland area and described in the paper: "T. Slagsvold, and Wiebe, K. L. (2021) "Egg covering in cavity nesting birds may prevent nest usurpation by other species." <a href="https://doi.org/10.1007/s00265-021-03045-w">https://doi.org/10.1007/s00265-021-03045-w</a></span></span></span></span></span></span></span></span></span></span></span></p> <p><span><span><span><span><span><span><span><span><span><span><span>The experiments investigated a new hypothesis, namely that the cavity nesting birds, like titmice, cover their eggs when they leave the nest during the egg laying period to prevent usurpation of the cavity by other birds. We provided nest boxes in a woodland area and filmed great tit (<i>Parus major</i>)nests during the egg-laying period to study the behavior of the female. Then we presented prospecting male pied flycatchers (<i>Ficedula hypoleuca</i>) with a dyad of nest boxes, to study whether they hesitated to enter a box when the tit eggs were covered or not, depending on the size and depth of the box.</span></span></span></span></span></span></span></span></span></span></span></p> <p><span><span><span><span><span><span><span><span><span><span><span>Main results of the experiments were that (1) during the egg-laying period, the female great tit spent bouts of highly variable length outside the nest box, from a few minutes to more than an hour. Therefore, when visiting a nest cavity, prospecting birds would have difficulty predicting whether an aggressive tit owner would soon return. (2) The pied flycatchers hesitated longer to enter a nest box with no visible tit eggs than a box with exposed eggs. (3) This was most evident for nest boxes with dark versus light interior paint, supporting the idea that better interior illumination makes prospecting birds more confident about entering an unfamiliar cavity.</span></span></span></span></span></span></span></span></span></span></span></p>
Replication package for: Beyond Dividing the Pie: Multi-Issue Bargaining in the Laboratory
<p>Replication package for the article Bochet, Olivier, Manshu Khanna, Simon Siegenthaler (2023), Beyond Dividing the Pie: Multi-Issue Bargaining in the Laboratory. The Review of Economic Studies.</p> <p>The replication package contains the data and software code to replicate the statistical analysis, tables, and figures published in the article and the online appendix. It only contains the experimental instructions.</p>
Base de datos de Correlación entre pie diabético y retinopatía diabética en pacientes del hospital provincial de Zaire, Angola
<p>Base de datos de la investigación realizada en Hospital Provincial María Eugenia Neto de la provincia de Zaire, República de Angola con el objetivo de determinar la correlación existente entre la aparición de pie diabético y la presencia o no de la retinopatía diabética durante el bienio septiembre de 2020 a septiembre de 2022. El universo del estudio quedó conformado por 181 pacientes con diagnóstico de pie diabético, que a la vez conformó la muestra del estudio. Se tomaron en consideración como variables secundarias las sociodemográficas: edad y sexo. Las variables principales del estudio fueron las clínicas, tales como: enfermedades crónicas asociadas, presencia o no de retinopatía diabética, úlcera en miembros inferiores, amputación en miembro inferior, años con la diabetes.</p>
ScienceDex guides
Understand access before you commit
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.