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263 results for “360”
Trento 1851 - Building 360
<u>Coordinates</u>: N/A <br><u>Length</u>: 37.8 m<br><u>Width</u>: 14.75 m<br><u>Height</u>: 41.48 m<br><u>Points</u>: 22 <br><u>Vertices</u>: 120 <br><u>Primitives</u>: 40 <br><br><u>Main Files:</u><br><table><tbody><tr><th>Filename</th><th>.glb</th><th>.xml</th><th>.obj</th></tr><tr><td><a href="https://zenodo.org/api/records/12690964/files/building_360.obj/content">building_360.obj</a></td><td></td><td></td><td><a href="https://zenodo.org/api/records/12690964/files/building_360.obj/content">Link</a></td></tr><tr><td><a href="https://zenodo.org/api/records/12690964/files/building_360.glb/content">building_360.glb</a></td><td><a href="https://zenodo.org/api/records/12690964/files/building_360.glb/content">Link</a></td><td></td><td></td></tr><tr><td><a href="https://zenodo.org/api/records/12690964/files/11565335_edm.xml/content">11565335_edm.xml</a></td><td></td><td><a href="https://zenodo.org/api/records/12690964/files/11565335_edm.xml/content">Link</a></td><td></td></tr><tr><td><a href="https://zenodo.org/api/records/12690964/files/11565335_metsmods.xml/content">11565335_metsmods.xml</a></td><td></td><td><a href="https://zenodo.org/api/records/12690964/files/11565335_metsmods.xml/content">Link</a></td><td></td></tr></tbody></table><br><br><u>Thumbnails:</u><br><table><tbody><tr><th>Perspective</th><th>1000x1000</th><th>512x512</th><th>256x256</th><th>128x128</th></tr><tr><td>Perspective 1</td><td><a href="https://zenodo.org/api/records/12690964/files/building_360_perspective_1.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12690964/files/building_360_perspective_1_512x512.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12690964/files/building_360_perspective_1_256x256.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12690964/files/building_360_perspective_1_128x128.png/content">Link</a></td></tr><tr><td>Perspective 2</td><td><a href="https://zenodo.org/api/records/12690964/files/building_360_perspective_2.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12690964/files/building_360_perspective_2_512x512.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12690964/files/building_360_perspective_2_256x256.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12690964/files/building_360_perspective_2_128x128.png/content">Link</a></td></tr><tr><td>Perspective 3</td><td><a href="https://zenodo.org/api/records/12690964/files/building_360_perspective_3.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12690964/files/building_360_perspective_3_512x512.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12690964/files/building_360_perspective_3_256x256.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12690964/files/building_360_perspective_3_128x128.png/content">Link</a></td></tr><tr><td>Perspective 4</td><td><a href="https://zenodo.org/api/records/12690964/files/building_360_perspective_4.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12690964/files/building_360_perspective_4_512x512.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12690964/files/building_360_perspective_4_256x256.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12690964/files/building_360_perspective_4_128x128.png/content">Link</a></td></tr><tr><td>Perspective Top</td><td><a href="https://zenodo.org/api/records/12690964/files/building_360_perspective_top.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12690964/files/building_360_perspective_top_512x512.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12690964/files/building_360_perspective_top_256x256.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12690964/files/building_360_perspective_top_128x128.png/content">Link</a></td></tr></tbody></table><br><br><br><u>Changelog</u>: <br> - v<a href="https://doi.org/10.5281/zenodo.12532954">0.0.2</a>: Thumbnails added, Description updated with Link Tables.<br> - v<a href="https://doi.org/10.5281/zenodo.12690964">0.0.3</a>: Added XMLs for Europeana Data Model (EDM) and MetsMods.<br>
360 Panoramas
<p>360 Panoramas for both users. Mono and Stereo versions</p>
360-info/tracker-ocean-temperatures: Monthly global ocean surface temperatures: v2024-10-22
<p>Tracks the monthly average sea surface temperatures using the <a href="https://psl.noaa.gov/data/gridded/data.noaa.oisst.v2.highres.html">OISST v2</a> dataset, created by NASA's <a href="https://psl.noaa.gov">Physical Sciences Laboratory</a>.</p><p>OISST updates both daily and monthly (we use the monthly updates here). The dataset <a href="https://www.ncei.noaa.gov/products/optimum-interpolation-sst">blends sea surface temperature observations</a> from satellites, ships, buoys and Argo floats.</p>
360 MEMEX Benchmarks: Lisbon
<p>This is part of a set of synchronized images recorded at three major cities (Barcelona, Lisbon and Paris). Images are uploaded to the Mapillary server and accessed by the scripts provided in https://gitlab.com/feriret/memex-benchmarking</p> <p> </p> <p>Do not hesitate to contact the authors for any further information</p>
360 MEMEX Benchmarks: Paris
<p>This is part of a set of synchronized images recorded at three major cities (Barcelona, Lisbon and Paris). Images are uploaded to the Mapillary server and accessed by the scripts provided in https://gitlab.com/feriret/memex-benchmarking</p> <p> </p> <p>Do not hesitate to contact the authors for any further information</p>
Figs 352–360 in Redefinition and partial revision of the genus Stenaelurillus Simon, 1886 (Arachnida, Araneae, Salticidae)
Figs 352–360. Stenaelurillus modestus Wesołowska, 2014, from South Africa (uMkhuze GR). 352. Male palp, ventral view. 353. Male palp, retrolateral view. 354–357. Embolic division. 354. Retrolateral view. 355. Dorsal view. 356. Median view. 357. Ventral view. 358. VTA and RTA, retrolateral view. 359. Epigyne, ventral view. 360. Spermathecae, dorsal view. Abbreviations: see Material and methods. Scale bars: 0.1 mm.
Figs 357–360 in Nearctic Anthomyzidae: a monograph of Anthomyza and allied genera (Diptera)
Figs 357–360. Living Anthomyza vockerothi sp. nov. and its habitat. 357 – A. vockerothi sp. nov., male, subdorsally, body length ca. 2.8 mm; 358 – female, laterally, body length ca. 3.2 mm (both from Canada: Ontario: Pancake Bay Prov. Park); 359 – strobilating Equisetum ssuviatile with a female of A. vockerothi on stem (same locality as in Fig. 360); 360 – waterlogged growth of Equisetum ssuviatile in Marathon (Canada: Ontario), typical habitat of A. vockerothi. Photo by J. Roháček (Figs 357, 358) and K. N. Barber (Figs 359, 360).
Figs. 360–370 in Review of the Palaearctic genera of Saprininae (Coleoptera: Histeridae)
Figs. 360–370. Gnathoncus rotundatus (Kugelann, 1792), SEM micrographs: 360 – habitus, dorsal view; 361 – ditto, ventral view; 362 – antennal club, ventral view; 363 – head, dorsal view; 364 – ditto, ventral view; 365 – mentum, ventral view; 366 – prosternum; 367 – mesoventrite and metaventrite; 368 – lateral disc of metaventrite, metepisternum and fused metepimeron; 369 – protibia, ventral view; 370 – mesotibia, ventral view.
User 1_360 stereo video
<p>Complete 360 stereoscopic version for User 1.</p> <p><br> Video Composition of the full experience:<br> Interrogation room story video and video<br> compositing for conversation between the<br> users.<br> Equirectangular.<br> Stereoscopic.</p>
Unitymol demo on generating 360 degree videos
<p>This video provides more detailed supportive information about using Unitymol.</p> <p>It requires to run UnityMol from the Unity editor. It will not work with the UnityMol executable.</p> <p>1) from within the Unity editor with an opened UnityMol project, open the Recorder window<br> 2) add a new Movie recorder, setting parameters as shown in the tutorial video<br> 3) launch the UnityMol project (play mode) and start recording<br> 4) do what you want to be captured within UnityMol (can be live action, can be executing a pre-recorded script ..)<br> 5) stop recording when finished</p>
Figs 360–363 in EULOPHIDAE OF COSTA RICA (HYMENOPTERA: CHALCIDOIDEA), 5: The genus Galeopsomyia Girault
Figs 360–363. Galeopsomyia cuscoensis, holotype ♀ – (360) habitus dorsal view; (361) habitus lateral view. Galeopsomyia cyaneoviridis, holotype ♀ – (362) habitus dorsal view; (363) habitus lateral view.
Figs. 351–360 in The Andean Goblin Spiders Of The New Genera Niarchos And Scaphios (Araneae, Oonopidae)
Figs. 351–360. Niarchos bonaldoi, new species, female. 351. Habitus, dorsal view. 352. Same, ventral view. 353. Carapace, dorsal view. 354. Sternum and mouthparts, ventral view. 355. Habitus, lateral view. 356. Same, anterior view. 357. Carapace, lateral view. 358. Epigastric region, ventral view. 359. Genitalia, ventral view. 360. Same, dorsal view.
Alaimus elegans de Man. α, anterior r i end, 1/ 12, ok. 3, x 600. b, tail obj. 7, ok. 3, x 360. c, region of the female organs obj. 7, ok. 3, x 3 6 0. in Terrestrial nematodes from Jan Mayen
Alaimus elegans de Man. α, anterior r i end, 1/ 12, ok. 3, x 600. b, tail obj. 7, ok. 3, x 360. c, region of the female organs obj. 7, ok. 3, x 3 6 0.
On the use of a consumer-grade 360-degree camera as a radiometer for scientific applications: calibration dataset
<p>Studying the geometric distribution of the light field in terms of absolute radiometry required expensive and complex instruments. New types of compact 360-degree cameras have recently appeared on the consumer technology market. Some of these allow users to access raw imagery, offering sensor-level data that can be directly exploited for absolute light quantification. This paves the way for easy-to-use, inexpensive and accessible radiance cameras that can be operated in a wide range of natural environments. </p> <p>This dataset presents raw format images captured with the camera Insta360 ONE for its calibration and characterization. These experiments include geometric calibration, relative illumination evaluation, spectral response determination, absolute spectral radiance calibration, as well as linearity and dark frame analysis. In addition, we are providing data from a calibration validation experiment based on co-located measurements of the sky's downward radiance using a 360-degree calibrated camera and a scientific radiometer: the Compact Optical Profiling System (C-OPS, Biospherical Instruments Inc.).</p> <p>This repository contains raw files as taken by the camera's imaging sensor. In most cases, no data processing has been carried out. The entire data set is contained in a .zip file which includes the following sub-folders (in alphabetical order):</p> <ul> <li><strong>absolute-radiance</strong>: data (.dng, .tsv , .hdf5) acquired for <em>absolute spectral radiance</em> calibration</li> <li><strong>darkframe: </strong>DNG raw images taken for <em>dark frame</em> analysis</li> <li><strong>geometric: </strong>DNG images used for the <em>geometric calibration</em></li> <li><strong>immersion-factor: </strong>DNG images for the calculation of the immersion factor</li> <li><strong>linearity:</strong> DNG images for <em>linearity</em> assessment (gain and exposure time)</li> <li><strong>relative-illumination: </strong>DNG images for <em>roll-off (relative illumination) </em>characterization</li> <li><strong>relative-spectral-response: </strong>data (.asc, .dng) taken for relative spectral response characterization</li> <li><strong>verification&validation: </strong>time series data (.tsv, .dng) of the calibration validation experiment </li> </ul> <p>Each folder contains a <strong>README </strong>file explaining the additional subfolders and their files. As you may notice, some of the subfolders are named "lensclose" or "lensfar". They refers to the data acquired with the fish-eye optic assembly that is closer or farther from the top of the 360-degree camera respectively. Some calibrations were performed both in water and in air (geometric calibration, relative-illumination). In that regard, the images were placed in folders refering to "air" and "water". The routines (coded in python) for the data processing can be found in the following <a href="https://github.com/RaphaelLarouche/radiance_camera_insta360/tree/master_v01">Github repository</a> (master_v01) or the <a href="../records/4660994">Zenodo stored version</a>. The useful scripts are located in the <em>calibration</em> directory, and the<strong> README</strong> for each folder points to the revelant code for analysis of the files they contain. For additional information, all the methodologies are described in the <a href="https://arxiv.org/abs/2305.07103">arXiv preprint</a>. </p>
Dataset: Inferring Inherent Optical Properties of Sea Ice Using 360-Degree Camera Radiance Measurements
<p>New types of compact 360-degree cameras have recently appeared on the consumer technology market. Some of these allow users to access raw imagery, offering sensor-level data that can be directly exploited for absolute light quantification. This paves the way for easy-to-use, inexpensive and accessible radiance cameras that can be operated in a wide range of natural environments. </p> <p>This dataset presents the angular radiance distributions measured with the Insta360 ONE 360-degree camera in sea ice. We report vertical profiles of the light field structure at two sites reprensentative of distinct sea ice types: High Arctic multi-year ice and Chaleur Bay (Quebec, Canada) landfast first-year ice. </p> <p>This repository contains the radiometric data stored in <strong>Hierarchical Data Format (HDF5, h5)</strong> under the following names: </p> <ul> <li><strong><a href="https://zenodo.org/api/records/14263256/draft/files/oden-08312018-imf-fluo.h5/content" target="_blank" rel="noopener noreferrer">oden-08312018-imf-fluo.h5</a></strong></li> <li><strong><a href="https://zenodo.org/api/records/14263256/draft/files/baiedeschaleurs-03232022-imf-fluo.h5/content" target="_blank" rel="noopener noreferrer">baiedeschaleurs-03232022-imf-fluo.h5</a></strong></li> </ul> <p>The High Arctic dataset (<strong>oden-08312018-imf-fluo.h5</strong>) contains only one station, while the Chaleur Bay (<strong>baiedeschaleurs-03232022-imf-fluo.h5</strong>) has four that can be accessed using these tags: "station_1", "station_2", "station_3", "station_4". The radiance measurements at each depth are reported as 2-dimensionals arrays with the azimuth directions (0-359°, 1° resolution) as columns and the zenith directions (0-180°, 1° resolution) as lines. The routines (coded in python) for the data processing can be found in the following <a href="https://github.com/RaphaelLarouche/radiance_camera_insta360/tree/master_v01" target="_blank" rel="noopener">Github repository</a> (master_v01) or the <a href="https://zenodo.org/records/4660994" target="_blank" rel="noopener">Zenodo stored version</a>. </p> <p>The methodologies to carefully calibrated the 360-degree camera for radiometry purpose are described in this <a href="https://doi.org/10.1364/AO.524122" target="_blank" rel="noopener">pulibcation</a> and the raw calibration data can be found in this Zenodo <a href="https://zenodo.org/records/10278731" target="_blank" rel="noopener">repository</a>. </p> <p>Additionnal information on the fieldwork and the data analysis are described in the <a href="https://doi.org/10.31223/X5V955" target="_blank" rel="noopener">preprint</a>.</p>
360° polarization control of terahertz spintronic emitters using uniaxial FeCo/TbCo2/FeCo trilayers
<p>The attached files contain raw data of terahertz spintronic emitters (STE) measured with terahertz time-domain spectroscopy (THz-TDS) and vibrating sample magnetometry (VSM). The file name indicates what was measured and the individual column names in the file describe the measured quantities.</p> <p>STE_comparison_reflection.csv provides a comparison of the performance of the proposed spintronic emitter integrated on various substrates in a reflection configuration of THz-TDS. STE_comparison_transmission.csv compares the developed spintronic emitter with a reference sample in a transmission configuration. The data files starting with 'VSM_magnetization_' contain VSM measurements of orthogonal magnetization vectors for FeCo, TbCo2, and the proposed trilayer for both easy (EA) and hard axes (HA). The magnetic hysteresis of the spintronic emitter is shown in the files VSM_hysteresis_STE.csv, TDS_hysteresis_mx_STE.csv, and TDS_hysteresis_my_STE.csv obtained using THz-TDS and VSM measurement techniques. The file TDS_polarization_rotation.csv demonstrates magnetically controlled polarization rotation of terahertz waveforms. The last file, TDS_quartz_analysis.csv, involves an application example of using a spintronic emitter for terahertz spectroscopy in quartz analysis.</p>
Figs. 360–370. Tolegnaro kepleri, new species. 360. Cephalothorax male, dorsal view. 361. Same, lateral view. 362. Sternum male, ventral view. 363. Chelicerae modified setae male, anterior view. 364. Leg 1 female, retrolateral view. 365. Palp male, prolateral view 366. Same, retrolateral view. 367. Embolus, retrolateral view. 368. Embolus, prolateral view. 369. Embolus, ventral view. 370 in Noideattella and Tolegnaro, Two New Genera of Goblin Spiders from Madagascar, with Comments on the Gamasomorphoid and Silhouettelloid Oonopids (Araneae, Oonopidae)
Figs. 360–370. Tolegnaro kepleri, new species. 360. Cephalothorax male, dorsal view. 361. Same, lateral view. 362. Sternum male, ventral view. 363. Chelicerae modified setae male, anterior view. 364. Leg 1 female, retrolateral view. 365. Palp male, prolateral view 366. Same, retrolateral view. 367. Embolus, retrolateral view. 368. Embolus, prolateral view. 369. Embolus, ventral view. 370. Embolus, dorsal view. Scale bars = 50 µm except 556–559: 10 µm.
IODP Expedition 352 Whole-round core section composite 360 degree images
<p>Images of the outside of hard rock whole-round sections were acquired using a linescan imager (Section Half Imaging Logger [SHIL]) and a special holder that allows each 90 degree segment of the outer surface to be positioned properly. The images were taken at a resolution of 20 lines/mm (50 micropixels). JRSO staff take these quadrant images and compile them into a side-by-side rollout photograph of the section. Composite images are available as both JPG and TIF image formats. Individual quadrant images are available as JPG images only through this report; contact the <a href="mailto:database@iodp.tamu.edu">IODP-JRSO Data Librarian</a> if quadrant TIF files (~160 MB) are needed.</p>
Text-fig. 9. CUWM 360, right mandible fragment and associated m/3 of Diamantohyus africanus from Moghara, Egypt. a: stereo occlusal views; b: buccal view; c: lingual view. in New Suoid Fossils (Mammalia, Artiodactyla) From The Miocene Of Moghara, Egypt, And Gebel Zelten, Libya: Biochronological Implications
Text-fig. 9. CUWM 360, right mandible fragment and associated m/3 of Diamantohyus africanus from Moghara, Egypt. a: stereo occlusal views; b: buccal view; c: lingual view.
IODP Expedition 360 Stratigraphic Correlation
Affine and splice files created for stratigraphic correlation.
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OpenNeuro
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