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Supplementary material 12: Collector dashboard: specimens collected by Y. M. Marusik from: Integrating and visualizing primary data from prospective and legacy taxonomic literature - Biodiversity Data Journal 3: e5063 (12 May 2015) https://doi.org/10.3897/BDJ.3.e5063
Dashboard charts showing only specimens collected by Y. M. Marusik. This page shows data from species-rank treatments. When viewed using a browser (such as Google Chrome) with an internet connection, this page sends a series of queries to Plazi and integrates the results with the Google Charts API to produce 37 interactive dashboard charts.
Dataset supplementing Stoll, J., Thrun, M., Nuthmann, A., & Einhäuser, W. (2015). Overt attention in natural scenes: Objects dominate features. Vision Research, 107, 36-48. doi: 10.1016/j.visres.2014.11.006
<p>These data supplement the publication</p> <p>Stoll, J., Thrun, M., Nuthmann, A., & Einhäuser, W. (2015). Overt attention in natural scenes: Objects dominate features. Vision Research, 107, 36-48. doi: 10.1016/j.visres.2014.11.006</p> <p>and be used freely for scientific purposes provided the aforementioned paper is appropriately cited.</p> <p>Note that the image files cannot be provided on this site due to copyright restrictions.</p> <p>The dataset contains the following files:</p> <p>maps_01.mat - maps_72.mat:</p> <p>For each image the 6 maps used in the paper are contained, the maps of experiment 1 are labelled as in the paper (AWS, OOM, nOOM, PVL,UNI), AWS2 is the AWS map for the modified stimuli of experiments 2 and 3.</p> <p>exp?_fixations.mat contains all fixations of the respective experiment.</p> <p>For experiment 1, there are the variables xFix, yFix, durFix, which contain the x position, the y condition, and the fixation duration of each fixation. Dimensions are images x subjects x fixation number, where the first fixation is the 0th (initial) fixation. The variable condition (image x subject) contains the condition in which the respective image was shown to the subject. For the main analysis only the "0" condition was used, refer to the paper's appendix for the other conditions.</p> <p>For experiment 2 and 3, variables are called xFixByImage, yFixByImage, dFixByImage and the dimensions are subject x image x fixation number. In addition tFixByImage contains the start of the fixation relative to trial onset (negative for the 0th fixation).<br> In both cases, empty entries are filled with nans.</p> <p><br> computeROC.m is a helper function called by other functions.</p> <p><br> figure1.m through figure7.m reproduce the figures from the paper to exemplify data usage.</p> <p> </p>
ChinaSoyArea10m: a dataset of soybean planting areas with a spatial resolution of 10 m across China from 2017 to 2021
<p>This dataset provides 10m-resolution maps of soybean planting areas in China during 2017-2021.</p><p>*** The data file is in ".tif" format</p><p>*** Temporal Resolution: Annually</p><p>*** Temporal coverage: 2017-2021</p><p>*** Pixel size: 10 m</p><p>*** Projection information: EPSG: 4326</p><p>The map boundary employed in this database does not imply the expression of any opinion whatsoever on the part of us concerning the legal status of any country, territory, city or area or its authorities, or concerning the delimitation of its frontiers or boundaries.</p>
Land Use/cover dataset of the Guangdong-Hong Kong Macao Greater Bay Area at 30 m Resolution from 1976 to 2020
<p>High spatiotemporal resolution, large-scale, multi-category land use data are crucial for studying regional ecological and environmental changes, urbanization impacts, and sustainable development planning.</p><p>In this study, the Google Earth Engine platform, Landsat satellite imagery, and a substantial number of manually interpreted samples were used to develop a dataset of annual land use in the Guangdong-Hong Kong Macao Greater Bay Area (GBA) at a 30 m resolution from 1976 to 2020. This dataset, termed Annual Land Use/Cover of the Greater Bay Area (LUC-GBA), was used to analyze the annual land use variation in 11 cities within the GBA. The high level accuracy achieved with the LUC-GBA dataset was evidenced by an overall accuracy (OA) of 93.98% and a kappa coefficient of 0.92 in 2020. The OA of interannual classification models ranges from 83.9% to 93.9%, and the kappa coefficients from 0.805 to 0.923, thus demonstrating the good performance of the model in multi-category land use classification within the GBA.</p><p>Resolution: 30m</p><p>Time span: 1976-2020 (excluding 1981-1985)</p>
Abb. Ap1-Ap6:(Ap1) Parnassius phoebus (FABRICIUS, 1793). Populationstype 3♂♂ 3♀♀. Austria, Vorarlberg, Verwall, Zeinisjoch, 1820 m, div. Jahre, leg. Aistleitner. (Ap2) Parnassius phoebus styriacus ♂ FRUHSTORFER, 1851. Austria, Steirische Kalkalpen. (Ap3) Parnassius phoebus styriacus ♀ FRUHSTORFER, 1851. Austria, Steirische Kalkalpen. (Ap4) Rosenwurz (Rhodiola rosea). Larvalsubstrat von P. phoebus styriacus. (Ap5) Parnassius phoebus styriacus, Raupe, Austria, Stmk., Eisenerzer Alpen. (Ap6) Parnassius phoebus styriacus, Puppe, Austria, Stmk., Eisenerzer Alpen. Abb. Ap1 © Aistleitner,Abb.Ap2-Ap6 © Hatzenbichler. in Zur Chorologie und Faunistik der Tagfalter in den Ost- und Südalpen 1. Tagfalter (Papilionoidea) aus der Sammlung von Herbert Meier † sowie Daten aus den Sammlungen des Entomologischen Forschungsmuseums EFMEA in Feldkirch
Abb. Ap1-Ap6:(Ap1) Parnassius phoebus (FABRICIUS, 1793). Populationstype 3♂♂ 3♀♀. Austria, Vorarlberg, Verwall, Zeinisjoch, 1820 m, div. Jahre, leg. Aistleitner. (Ap2) Parnassius phoebus styriacus ♂ FRUHSTORFER, 1851. Austria, Steirische Kalkalpen. (Ap3) Parnassius phoebus styriacus ♀ FRUHSTORFER, 1851. Austria, Steirische Kalkalpen. (Ap4) Rosenwurz (Rhodiola rosea). Larvalsubstrat von P. phoebus styriacus. (Ap5) Parnassius phoebus styriacus, Raupe, Austria, Stmk., Eisenerzer Alpen. (Ap6) Parnassius phoebus styriacus, Puppe, Austria, Stmk., Eisenerzer Alpen. Abb. Ap1 © Aistleitner,Abb.Ap2-Ap6 © Hatzenbichler.
FIGURES 18–23 in Reid, C.A.M. & Beatson, M. (2010) Revision of the Australo-Papuan genus Macrolema Baly (Coleoptera: Chrysomelidae: Spilopyrinae), with description of a new genus. Zootaxa, 2486, 1-60.
FIGURES 18–23. Face: 18, Allsortsia maculata (Lea); 19, Macrolema aenescens (Bowditch); 20, M. albascutica Reid & Beatson; 21, M. atripennis (Bowditch); 22, M. dickdaviesi Reid & Beatson; 23, M. giya Reid & Beatson.
FIGURES 24–29 in Reid, C.A.M. & Beatson, M. (2010) Revision of the Australo-Papuan genus Macrolema Baly (Coleoptera: Chrysomelidae: Spilopyrinae), with description of a new genus. Zootaxa, 2486, 1-60.
FIGURES 24–29. Face of Macrolema species: 24, M. karimui Reid & Beatson; 25, M. longicornis Jacoby; 26, M. metallica (Lea); 27, M. pulchra Reid & Beatson; 28, M. quadrivittata (Jacoby); 29, M. submetallica (Jacoby).
Fig. 6. Misgolas trangae n in Trapdoor Spiders of the Genus Misgolas (Mygalomorphae: Idiopidae) in the Sydney Region, Australia, With Notes on Synonymies Attributed to M. rapax
Fig. 6. Misgolas trangae n.sp. (A–D) Ƌ, holotype AM KS49026. (A), right palp retrolateral. (B,C), right bulb: (B),
Fig. 12 in Trapdoor Spiders of the Genus Misgolas (Mygalomorphae: Idiopidae) in the Sydney Region, Australia, With Notes on Synonymies Attributed to M. rapax
Fig. 12. Species distribution of Misgolas species in the Sydney region (eastern Australia) based on material examined. Key to symbols for maps (A) and (B): O Misgolas gracilis; A M. melancholicus; Z M. villosus. Map (C): • M. beni; Z M. cliffi; Δ M. lynabra; M. maculosus; O M. michaeli; * M. rodi; A M. trangi; * M. wayorum.
Fig. 9. Misgolas rodi n in Trapdoor Spiders of the Genus Misgolas (Mygalomorphae: Idiopidae) in the Sydney Region, Australia, With Notes on Synonymies Attributed to M. rapax
Fig. 9. Misgolas rodi n.sp. (A–D) Ƌ, holotype AM KS50083. (A), right palp retrolateral. (B,C), right bulb: (B),
Fig. 3 in Trapdoor Spiders of the Genus Misgolas (Mygalomorphae: Idiopidae) in the Sydney Region, Australia, With Notes on Synonymies Attributed to M. rapax
Fig. 3. Misgolas gracilis. (A–D) Ƌ, AM KS22910. (A), right palp retrolateral. (B,C), right bulb: (B), dorsal; (C), prolateral. (D), venter. (E) Ƌ, AM KS34720, venter. (F,G) ♀, AM KS44339; (F), tarsus and metatarsus IV retrodorsal; (G), venter. (H,I) Ƌ, AM KS86211; (H), ventral aspect, palpal tibia excavation; (I), tibial excavation texture.
Fig. 4. Misgolas cliffi n in Trapdoor Spiders of the Genus Misgolas (Mygalomorphae: Idiopidae) in the Sydney Region, Australia, With Notes on Synonymies Attributed to M. rapax
Fig. 4. Misgolas cliffi n.sp. (A–D) Ƌ, holotype AM KS36559. (A), right palp retrolateral. (B,C), right bulb: (B), dorsal; (C), prolateral. (D), venter. (E) ♀, allotype AM KS7472, tarsus and metatarsus IV retrodorsal.
Fig. 10. Misgolas beni n in Trapdoor Spiders of the Genus Misgolas (Mygalomorphae: Idiopidae) in the Sydney Region, Australia, With Notes on Synonymies Attributed to M. rapax
Fig. 10. Misgolas beni n.sp. (A–D) Ƌ, holotype AM KS38550. (A), right palp retrolateral. (B,C), right bulb: (B), dorsal; (C), prolateral. (D), venter.
Dataset for paper "Multidetection scheme for transient-grating-based spectroscopy" by Brioschi M. et al.
<p>This dataset complements the publication "Multidetection scheme for transient-grating-based spectroscopy" by Brioschi M. et al.</p><p>The data hierarchy is explained in the file "Readme.docx", which also reports relevant metadata.</p>
FIG. 19. Dipodomys merriami AMNH-M 182081 in The Serrialis Bone, Interparietals, "X" Elements, Entotympanics, And The Composition Of The Notoungulate Caudal Cranium
FIG. 19. Dipodomys merriami AMNH-M 182081, caudal cranium in left lateral (rev.) (A) and dorsal (B) aspects; certain sutures emphasized to improve visibility. Names for middle-ear spaces and sutural bounds after Webster (1975). Insignificant rod (small black arrows in A, suprmeat sp squ in B) running across surface of multipartite middle ear (hypotympanum, epitympanum, antrum) is all there is of squamous portion of squamosal in this heteromyid. Rod ends freely over external acoustic meatus, and is nowhere fused to cranial sidewall. In A, black asterisk lies on equally insignificant "body" of squamosal. Apparent suture (large white arrows) crossing caudal bulge of immense middle ear in A and B marks track of an internal "mastoid" septum, seen through translucent walls. Roof of external acoustic meatus is formed by ectotympanic, whose
FIG. 18. Lepus californicus AMNH-M 177068 in The Serrialis Bone, Interparietals, "X" Elements, Entotympanics, And The Composition Of The Notoungulate Caudal Cranium
FIG. 18. Lepus californicus AMNH-M 177068, left side (rev.) of caudal cranium in ventral (A) and oblique rostrolateral (B) aspects, illustrating extent of rarefaction (fenestration) and several osteological features related to intracranial "joint" (ICJ) between rostral and caudal parts of cranium. Both to scale in B. Only features of direct relevance are labeled; for a detailed cranial osteology of lagomorphs, see Wible (2007). The leporid ICJ, conceived by Bramble (1989) as a linked series of narrow gaps (sphenooccipital synchondrosis/ foramen ovale/piriform fenestra/midcranial hiatus), divides the skull into rostral and caudal moieties. In life these gaps would be filled with dense connective tissues, including sutural soft tissues and, within sphenooccipital synchondrosis only, cartilage. Hiatal plate (black asterisk), filling dorsal part of midcranial hiatus in B, is a process of the interparietal; it projects under processus squamosus (squ pr), perhaps acting as a strengthening member in absence of a caudally extensive squamous squamosal. Among cranial elements
FIG. 1. — A, Dendrobium laudereavorum M in Two new species of Dendrobium Sw. from New Caledonia in the section Macrocladium Schltr. and a note about Dendrobium kanakorum Kraenzl.
FIG. 1. — A, Dendrobium laudereavorum M. Pignal, sp. nov.; B, D. dangioanum M. Pignal, sp. nov.; C, D. finetianum Schltr. Abbreviations: f, flower; lf, labellum face; lp, labellum profile. Photos: C. Laudereau. Scale bars: f, 10 mm; lf, lp, 3 mm.
Figs 27–31. Sabaha spp., male genitalia. 27–29 – S in New species of gelechiid moths of the genus Sabaha M. Omelko et N. Omelko, 2019 (Lepidoptera: Gelechiidae) from Borneo Island
Figs 27–31. Sabaha spp., male genitalia. 27–29 – S. parda sp. n: 27 – ventral view, paratype; 28 – aedeagus, lateral view, holotype; 29 – uncus, gnathos and culcitula, lateral view, holotype. 30, 31 – S. cheemai sp. n., holotype: 30 – ventral view; 31 – aedeagus, lateral view. Scale bar 0.5 mm.
Fig. 1 in Synonymisation Of Myotis Aurascens With M. Davidii (Chiroptera, Vespertilionidae) Is Premature
Fig. 1. Bivariate plots of the Myotis samples listed by Benda et al. (2012) to demonstrate the correspondence of Iranian steppe whiskered bats with M. mystacinus s. str. and M. davidii. LCr is the greatest length of skull; LMd is condylar length of mandible; CM3 is length of upper toothrow between C and M3 (incl.); CM is length 3 of lower toothrow between C and M3 (incl.); LaI is width of interorbital constriction; LaN is neurocranium width; CC is rostral width between canines (incl.); M3M3 is rostral width between the third upper molars (incl.). The measurements are in mm. All measurements are from Benda et al. (2012: 329, table 16). Fig. 1, A partly repeats Fig. 95 of Benda et al. (2012: 330), however Benda et al. also added the data given by DeBlase (1980) to this figure as well as to fig. 96. M. mystacinus s. str. specimens are shown in green; M. aurascens specimens from Iran attributed by Benda et al. (2012) to M. davidii are shown in yellow; type specimen of M. davidii is shown in black. See Benda et al. (2012: 329, table 16) for more details about these specimens. The figure was obtained using R software (R Core Team, 2021).
Figure 6 in A new bat species of the genus Myotis with comments on the phylogenetic placement of M. keaysi and M. pilosatibialis
Figure 6. Principal component (PĆs) from a PCA based on 9 bioclimatic variables extracted from 19 distribution localities of pilosatibialis species complex, with confidence ellipses and corresponding vectors correlations of climatic variables with the first two eigenvectors. Samples: M. armiensis sp. n. (circles), M. sp. (triangles), and M. pilosatibialis str.(+ symbols).
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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.