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1,429 results for “detail”
Figs 49–52 in Further details of the morphology of the enigmatic African fly Mormotomyia hirsuta Austen (Diptera: Mormotomyiidae)
Figs 49–52. (49) Living male of Mormotomyia hirsuta; (50) Ukasi Hill (north face), Kenya, type locality of M. hirsuta, illustrating rock fissure in which flies normally reside; (51) Accumulated deposit of damp bat guano washed from rock fissure on north face of Ukasi Hill, breeding site from which larvae and puparia were extracted; (52) Empty puparium of M. hirsuta (arrowed) attached to fissure wall c. 0.3 metres from substrate. Figs 49, 52 © R. Copeland, Figs 50, 51 © A.Kirk-Spriggs.
Figs 22–29 in Further details of the morphology of the enigmatic African fly Mormotomyia hirsuta Austen (Diptera: Mormotomyiidae)
Figs 22–29. Scanning electron and light micrographs of third-instar larva of M. hirsuta: (22) anal division, posterior; (23) detail of lateral process on anal division, posterior; (24) posterior spiracular plate, dorsal; (25) detail of peristigmal tuft; (26) anterior spiracle between prothorax and mesothorax laterally; (27) detail of papilla on anterior spiracle; (28) light micrograph of cephaloskeleton, lateral; (29) same, dorsal. Scale bars: Fig. 22 = 200 µm; Figs 23, 28 = 100 µm; Fig. 24 = 20 µm; Fig. 25 = 10 µm; Fig. 26 = 50 µm; Fig. 27 = 5 µm.
Figs 36–48 in Further details of the morphology of the enigmatic African fly Mormotomyia hirsuta Austen (Diptera: Mormotomyiidae)
Figs 36–48. (36–42) Scanning electron micrographs of adult male M. hirsuta: (36) tarsomere 1, lateral; (37) same, detail of setation; (38) foretibia, dorsolateral; (39) tarsal claw and pulvillus of foreleg, ventrolateral; (40) same, dorsal; (41) tarsal claw and pulvillus of hindleg, ventral; (42) same, detail of pulvillus, ventrolateral; (43–46) SEMs of Nycteribiidae and Streblidae: (43) Nycteribiidae, tarsal claw and pulvillus of foreleg, ventral; (44) same, detail of pulvillus, ventral; (45) Streblidae (Nycteribosca sp.), tarsal claw and pulvillus of foreleg, ventral; (46) same, detail of pulvillus, ventral; (47, 48) SEMs of female M. hirsuta: (47) wing base, dorsal; (48) halter, dorsal. Scale bars: Fig. 36 = 200 µm; Figs 37, 45, 48 = 20 µm; Fig. 38 = 500 µm; Figs 39, 41, 43 = 100 µm; Figs 40, 47 = 50 µm; Fig. 42 = 10 µm; Fig. 44 = 5 µm; Fig. 46 = 2 µm.
Figs 12–21 in Further details of the morphology of the enigmatic African fly Mormotomyia hirsuta Austen (Diptera: Mormotomyiidae)
Figs 12–21. Scanning electron micrographs of third-instar larva of M. hirsuta: (12) dorsolateral tubule on first abdominal segment, from above; (13) detail of mesothorax indicating positions of dorsal pits; (14) dorsomedial pit on mesothorax; (15) dorso-sublateral pit on mesothorax; (16) dorsomedial pit on third abdominal segment; (17) dorso-sublateral pit on third abdominal segment; (18) creeping welt at junction on mesothorax, ventral; (19) detail of same; (20) creeping welt on second abdominal segment, ventral; (21) detail of same. Scale bars: Figs 12, 14–17, 19, 21 = 10 µm; Fig. 13 = 200 µm; Figs 18, 20 = 50 µm.
Figs 32–35 in Further details of the morphology of the enigmatic African fly Mormotomyia hirsuta Austen (Diptera: Mormotomyiidae)
Figs 32–35. Line illustrations of internal female reproductive tract of M. hirsuta: (32) cuticular parts, left lateral (one accessory gland lost during dissection); (33) ventral receptacle, dorsal; (34) same, lateral; (35) spermatheca. Scale bars = 100 μm.
Figs 1–11 in Further details of the morphology of the enigmatic African fly Mormotomyia hirsuta Austen (Diptera: Mormotomyiidae)
Figs 1–11. Scanning electron micrographs of third-instar larva and puparium of Mormotomyia hirsuta: (1–3) larva habitus, dorsal (1), lateral (2), ventral (3); (4) puparium habitus, lateral (arrows indicate lateral creases allowing articulation); (5–11) larva pseudocephalon, ventral (5), detail of upper oral ridges (6), detail of lower oral ridges (7), maxillary palpus (8), antenna (9); (10) Keilin's organ on prothorax, ventral; (11) ventrolateral and dorsolateral tubules on first abdominal segment. Scale bars: Figs 1–4 = 1 mm; Fig. 5 = 100 µm; Figs 6–9 = 10 µm; Fig. 10 = 5 µm; Fig. 11 = 50 µm.
Figs 30–31 in Further details of the morphology of the enigmatic African fly Mormotomyia hirsuta Austen (Diptera: Mormotomyiidae)
Figs 30–31. Light micrographs of internal female reproductive tract of M. hirsuta: (30) cuticular parts, left lateral (one accessory gland lost during dissection); (31) anterior part of vagina with genital papilla, left lateral. Scale bars = 100 μm.
Travel details dataset
<p>This dataset is taken from the dataset (https://www.kaggle.com/datasets/rkiattisak/traveler-trip-data).</p> <p> </p>
→ Fig. 2. Marellomorph arthropod Mimetaster florestaensis sp. nov. from Tremadocian of Mojotoro Mountains, Salta, Argentina. A–C. CNS-I 133/1-1, part. A. Cephalic shield and spines. Detail of the secondary spines on mediolateral spine (A2). B. View of the imprint of the ventral posterior margin of the cephalic shield. C. Explanatory drawing revealing the most important morphological characters. D. CNS-I 133/1-1´, counterpart showing detail of strong secondary spines on anterolateral spine. Arrows indicate the secondary spines. in A new marrellomorph euarthropod from the Early Ordovician of Argentina
→ Fig. 2. Marellomorph arthropod Mimetaster florestaensis sp. nov. from Tremadocian of Mojotoro Mountains, Salta, Argentina. A–C. CNS-I 133/1-1, part. A. Cephalic shield and spines. Detail of the secondary spines on mediolateral spine (A2). B. View of the imprint of the ventral posterior margin of the cephalic shield. C. Explanatory drawing revealing the most important morphological characters. D. CNS-I 133/1-1´, counterpart showing detail of strong secondary spines on anterolateral spine. Arrows indicate the secondary spines.
Evaluation Results - Semantic Zoom With Immersive Detail View for ExplorViz
<p>This archive contains the evaluation results of the master thesis 'Semantic Zoom With Immersive Detail View for ExplorViz'.</p> <p>The evaluation is divided into a user evaluation of usability and user performance and a rendering performance evaluation.</p> <p>The evaluation compares the version of ExplorViz with Semantic Zoom and without Semantic Zoom.</p> <p>The complete user survey can be viewed in the PDF: 'Printed version of the survey - ExplorViz with Semantic Zoom.pdf'.</p> <p><br>- The file 'survey_archive_277626.lsa' is exported from LimeSurvey and contains the survey and the responses.<br>- results-survey277626.csv' contains the results in csv format.<br>- The file 'results-statistics.pdf' is a pdf that contains statistics about the survey results.<br>- The file 'results-all-answers-ExplorViz with Semantic Zoom.pdf' lists all the participants' answers in text format.<br>- The file 'allChartImages.zip' displays the results data in graphs.</p> <p><br>As part of a performance evaluation of the frontend, a Python script using Selenium was used.<br>The results can be found in the csv files:<br>- 'performance_RendertimeTracegen - XXXL world with high communication2024-11-19--22-13-36-SZLongTerm'<br>- 'performance_RendertimeTracegen - XXXL world with high communication2024-11-19--22-09-24-NoSZLongTerm'</p> <p>The Python script is split into two files:<br>- 'selenium_test.py'<br>- 'helpers.py'</p>
Dataset for ´´A New Detailed Global Map of Lunar Light Plains´´ research article
<p>The shapefiles (.shp) provided in this repository are the datasets for the paper ´A new detailed global map of lunar light plains´ published in PSJ journal Special Issue. </p> <p>These shapefiles can be directly imported in ArcMap/ArcPRO. The third dataset is a .tif or image of the global map for a fast and easy overview.</p> <p>Two geomorphologic maps of lunar light plains are provided as described in the article: one with an FeO wt% cut off of about 12 wt% (Area_lightplains), and the other around 8 wt% (Area_LPFeOLow). </p> <p> </p>
Supplementary material for the paper EXTREME ULTRAVIOLET AND X-RAY DRIVEN PHOTOCHEMISTRY OF GASEOUS EXOPLANETS - Chemical network details
<p>Supplementary material for the paper</p> <p>EXTREME ULTRAVIOLET AND X-RAY DRIVEN PHOTOCHEMISTRY OF GASEOUS EXOPLANETS</p> <p>by Locci et al. 2021, submitted to PSJ (R1 version)</p> <p>This document contains the complete list of the chemical reactions included in the model: bimolecular reactions (neutral-neutral and ion-neutral) in Table 1, termolecular reactions in Table 2, thermodissociative reactions in Table 3, reverse reactions in Table 4, and finally photochemical reactions in Table 5.</p>
Fig. 1. Anchonidium unguiculare, morphological details. Scale bars 0.25 in On Anchonidium Bedel, 1884 sensu stricto, with descriptions of two new species from the Iberian peninsula (Coleoptera, Curculionidae: Molytinae)
Fig. 1. Anchonidium unguiculare, morphological details. Scale bars 0.25 mm. (A) Dorsum of rostrum. (B) Underside rostrum with beard like bristles and conjoint antennal grooves. (C) Ventral view on pronotum with faint and shallow rostral notch and narrow standing procoxae. (D) Lateral view on rostrum. (E) Mesocoxae and mesosternal process. (F) Pronotum surface. (G) Dorsofrontal view on head and pronotum. (H) Right protarsus and apex of protibia. (I) Right antenna with bowl shaped club.
Dataset for A MILP approach for detailed pipeline scheduling and storage management problem in the phosphate industry
<p>Case studies of a multi-product slurry pipeline scheduling and storage management problem in the phosphate industry.</p>
Dataset for "Detailed cartography of Cotopaxi's 1877 primary lahar deposits obtained by drone-imagery and field surveys in the proximal northern drainage"
<p>Contains the following datasets supporting the results in "Detailed cartography of Cotopaxi’s 1877 primary lahar deposits obtained by drone-imagery and field surveys in the proximal northern drainage": 1) Drone-NDVI 25cm/pixel imagery for the four surveyed plains. 2) Geospatial vector layer for the geological fieldwork control points. 3) Geospatial vector layer for the 1877 deposit contact lines. 4) Geospatial vector layer for the 1877 deposit polygons.</p>
IHTApark. Multi-detailed 3D architectural model for sound perception research in Virtual Reality
<p><strong>IHTApark – Multi-detailed 3D architecture model</strong></p> <p>This dataset describes visual and acoustic 3D architectural models of the park next to the IHTA.</p> <p>Institute of Hearing Technology and Acoustics (IHTA), RWTH Aachen, 52056 Aachen, Germany</p> <p>Files are stored in FBX format for geometry, JPEG format for visual textures, and Unreal Engine for the virtual reality scenes.</p> <p><strong>VERSION 1: Visual photogrammetry + Acoustic model</strong></p> <p>As used in the publication:</p> <p>[1] Llorca-Bofí, J. and Vorländer, M. (2021). Multi-Detailed 3D Architectural Framework for Sound Perception Research in Virtual Reality. Front. Built Environ. 7:687237.doi: https://doi.org/10.3389/fbuil.2021.687237</p> <p>Data is available separately for each definition, and for each visual and acoustic cue. The level of detail for each definition is shown here:</p> <ul> <li>Visual cues <ul> <li>Geometries <ul> <li>HighLOD</li> </ul> </li> </ul> </li> <li>Acoustic cues <ul> <li>Geometries <ul> <li>HighLOD</li> </ul> </li> </ul> </li> </ul> <p>This version of the model includes only the modules used for the description of the referenced paper. The authors reserve the right to complete other levels of detail if future applications require them.</p> <p>An additional data file contains a unique file in [IHTApark_UnrealEngine] Unreal Engine format, with the set up scenario. The instructions to open the final scenario are described here:</p> <ol> <li>Download the [IHTApark_UnrealEgine] file, and save it in your working space.</li> <li>Extract the content of the [IHTApark_UnrealEngine]. The folder naming and arrangement are prepared for the scenario.</li> <li>Run the .uproject file.</li> <li>Open a <strong>Content Browser</strong> tab to navigate through the folder hierarchy. You can open the <strong>Content Browser</strong> under the tabs <strong>Window > Content Browser</strong></li> <li>Open the <strong>IHTApark</strong> map under the folder <strong>Content > Maps</strong> by double clicking on it.</li> <li>The scenario will be visible in the <strong>Viewport 1</strong> tab. Go to <strong>Window > Viewports > Viewport 1</strong> to open the tab.</li> <li>Press key <strong>G</strong> to hide or unhide the helpers and editor actors.</li> <li>Press keys <strong>0,</strong> <strong>1</strong>, <strong>2</strong>, <strong>3</strong>… <strong>9</strong> to jump into different saved view positions.</li> <li>Drag the mouse while pressing right click to rotate the viewer direction</li> <li>While pressing right click, press key <strong>W</strong> to navigate through the scenario.</li> </ol> <p><strong>VERSION 2: Object-based visualization in three different weather conditions</strong></p> <p>As used and described in the publication:</p> <p>[2] Submitted to journal.</p> <p>The file [IHTApark_3weath_comp] Unreal Engine format contains the set up scenario. The instructions to open the final scenario are described here:</p> <ol> <li>Download the [IHTApark_3weath_comp] file, and save it in your working space.</li> <li>Extract the content of the [IHTApark_3weath_comp]. The folder naming and arrangement are prepared for the scenario.</li> <li>Run the .uproject file.</li> <li>Open a <strong>Content Browser</strong> tab to navigate through the folder hierarchy. You can open the <strong>Content Browser</strong> under the tabs <strong>Window > Content Browser</strong></li> <li>Open the <strong>IHTApark_warm</strong>, <strong>IHTApark_wet </strong>or<strong> IHTApark_snowy</strong> maps under the folder <strong>Content > Maps</strong> by double clicking on it to visualize each weather condition.</li> <li>The scenario will be visible in the <strong>Viewport 1</strong> tab. Go to <strong>Window > Viewports > Viewport 1</strong> to open the tab.</li> <li>Press key <strong>G</strong> to hide or unhide the helpers and editor actors.</li> <li>Press keys <strong>0,</strong> <strong>1</strong>, <strong>2</strong>, <strong>3</strong>… <strong>9</strong> to jump into different saved view positions.</li> <li>Drag the mouse while pressing right click to rotate the viewer direction</li> <li>While pressing right click, press key <strong>W</strong> to navigate through the scenario.</li> </ol> <p>The folder [IHTApark_3weathers_audio] contains the sound signals, as .wav files, in fist order ambisonics format (B-format).</p> <p> </p>
Technical Details of the artworks of the Museo del Prado
<ul> <li>9,680 rows</li> <li>9 attributes (columns). <ul> <li><strong> ID:</strong> catalog number that the Museum gives to each work. This number is unique and unrepeatable, to be able to easily identify each work.</li> <li><strong>Title:</strong> the title of the work.</li> <li><strong>Date:</strong> year of creation of the work. Due to the antiquity of the works, some of them hold as closes “XII Century” or “Before 1489” (for example), it is very difficult to define a concrete year.</li> <li><strong>Author:</strong> author of the work.</li> <li><strong>Technique: </strong>type of painting or technique applied in the making of the artwork (fresh painting, oil, temple, salt paper, albumen…)</li> <li><strong>Height(cm):</strong> height of the frame in centimeters (cm).</li> <li><strong>Width(cm):</strong> width of the frame in centimeters (cm).</li> <li><strong>Support:</strong> the pictorial support is the base of the work, the surface on which the color is applied in a painting.</li> </ul> </li> </ul>
Fig. 6 in New Details Of The Eurasian Beaver'S, Castor Fiber (Rodentia, Castoridae), Expansion In The Lowland Part Of Transcarpathia, Ukraine
Fig. 6. The channel's course at location 2 (see fig. 8). Fig. 7. The channel's course at location 3 (see fig. 8).
Text-fig. 3. Upper Cretaceous to Oligocene/Miocene Sciadopityspollenites taxa, all scale bars in LM and SEM overview images 10 µm, scale bars in SEM detailed images 2 µm. a–f: cf. Sciadopityspollenites serratus from Vilui basin (Siberia), a – LM image, equatorial view, b – SEM equatorial overview with leptoma, c – detail SEM of leptoma? and echinate verrucae, d – LM image equatorial view, e – SEM of distal polar view, f – SEM detailed view of verrucate, echinate perforate sexine sculpturing; g–i: Sciadopityspollenites serratus from Bayerhof Maar (Germany), g – LM image of proximal polar side, h – SEM overview of distal polar side, i – SEM detail of verrucate, echinate, perforate sculpturing. in The Occurrence Of Pollen Of Sciadopityaceae Luerss. Through Time
Text-fig. 3. Upper Cretaceous to Oligocene/Miocene Sciadopityspollenites taxa, all scale bars in LM and SEM overview images 10 µm, scale bars in SEM detailed images 2 µm. a–f: cf. Sciadopityspollenites serratus from Vilui basin (Siberia), a – LM image, equatorial view, b – SEM equatorial overview with leptoma, c – detail SEM of leptoma? and echinate verrucae, d – LM image equatorial view, e – SEM of distal polar view, f – SEM detailed view of verrucate, echinate perforate sexine sculpturing; g–i: Sciadopityspollenites serratus from Bayerhof Maar (Germany), g – LM image of proximal polar side, h – SEM overview of distal polar side, i – SEM detail of verrucate, echinate, perforate sculpturing.
Text-fig. 2. Aptian to Albian Cerebropollenites taxa, all scale bars in LM and SEM overview images 10 µm, scale bars in SEM detailed images 2 µm. a–c: Cerebropollenites thiergartii from St. Pölten (Austria), a – LM image, equatorial view, b – SEM equatorial overview with visible, less sculptured leptoma, c – detail of echinate verrucae; d–f: Cerebropollenites thiergartii from Khovil basin (Mongolia), d – LM image polar view with well visible thin-walled leptoma, e – SEM of proximal polar view with faintly sculptures leptoma, f – SEM detailed view of transition from leptoma to normal sexine sculpturing; g–i: Cerebropollenites macroverrucosus from Khovil basin (Mongolia), g – LM image of oblique equatorial view, h – SEM of oblique equatorial view with concave leptoma, i – SEM detail of the rugulate to verrucate sexine and smaller sculpturing in leptoma area. in The Occurrence Of Pollen Of Sciadopityaceae Luerss. Through Time
Text-fig. 2. Aptian to Albian Cerebropollenites taxa, all scale bars in LM and SEM overview images 10 µm, scale bars in SEM detailed images 2 µm. a–c: Cerebropollenites thiergartii from St. Pölten (Austria), a – LM image, equatorial view, b – SEM equatorial overview with visible, less sculptured leptoma, c – detail of echinate verrucae; d–f: Cerebropollenites thiergartii from Khovil basin (Mongolia), d – LM image polar view with well visible thin-walled leptoma, e – SEM of proximal polar view with faintly sculptures leptoma, f – SEM detailed view of transition from leptoma to normal sexine sculpturing; g–i: Cerebropollenites macroverrucosus from Khovil basin (Mongolia), g – LM image of oblique equatorial view, h – SEM of oblique equatorial view with concave leptoma, i – SEM detail of the rugulate to verrucate sexine and smaller sculpturing in leptoma area.
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.