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543 results for “hall”
PM_046348_B_Halle
<u>File Name</u>: PM_046348_B_Halle.jpg <br><u>Sublocation</u>: Kapittelkerk Sint-Martinus (Onze-Lieve-Vrouwebasiliek) <br><u>Location</u>: Halle <br><u>Province</u>: Oost-Vlaanderen <br><u>Country</u>: Belgium <br><u>Header</u>: Binnenzicht, kruisbeuk noord, albasten Sint-Martinusaltaar in renaissancestijl uit de Trazegnieskapel, gedateerd en gesigneerd 1533, Jehan Mone, maistre artiste de l'empereur <br><u>Description</u>: Basilica (Sint-Martinusbasiliek) Interior Crossing north Chapel (Trazegnieskapel) Altar of Jan Mone Renaissance 1533 <br><u>Keywords</u>: Altar (church), Belgium, Cultural heritage, Europe, Halle, Monuments, Oost-Vlaanderen, Renaissance, Styles, Thematic <br><br><u>Author</u>: Jan Mone <br><u>Copyright</u>: Paul M.R. Maeyaert <br>
PM_046294_B_Halle
<u>File Name</u>: PM_046294_B_Halle.jpg <br><u>Sublocation</u>: Grote Mark <br><u>Location</u>: Halle <br><u>Province</u>: Oost-Vlaanderen <br><u>Country</u>: Belgium <br><u>Header</u>: Grote Markt, monument voor Adrien-François Servaes (1807-1866), Cyp Godebski, 1870 <br><u>Description</u>: Main square (Grote Markt) Monument to Adrien-François Servaes (1807-1866) Cyp Godebski 1869 <br><u>Keywords</u>: Belgium, Cultural heritage, Europe, Halle, Monuments, Oost-Vlaanderen, Public monument <br><br><u>Author</u>: Photo: Paul M.R. Maeyaert <br><u>Copyright</u>: Paul M.R. Maeyaert <br>
PM_046369_B_Halle
<u>File Name</u>: PM_046369_B_Halle.jpg <br><u>Sublocation</u>: Kapittelkerk Sint-Martinus (Onze-Lieve-Vrouwebasiliek) <br><u>Location</u>: Halle <br><u>Province</u>: Oost-Vlaanderen <br><u>Country</u>: Belgium <br><u>Header</u>: Binnenzicht, het koorhoofd <br><u>Description</u>: Basilica (Sint-Martinusbasiliek) Interior The choir Detail with two statues, Saint Peter and Paul <br><u>Keywords</u>: Belgium, Cultural heritage, Europe, Gothic, Halle, Monuments, Oost-Vlaanderen, Sculpture, Styles, Techniques <br><br><u>Author</u>: Photo: Paul M.R. Maeyaert <br><u>Copyright</u>: Paul M.R. Maeyaert <br>
PM_046351_B_Halle
<u>File Name</u>: PM_046351_B_Halle.jpg <br><u>Sublocation</u>: Kapittelkerk Sint-Martinus (Onze-Lieve-Vrouwebasiliek) <br><u>Location</u>: Halle <br><u>Province</u>: Oost-Vlaanderen <br><u>Country</u>: Belgium <br><u>Header</u>: Binnenzicht, de kapel in het verlengde van de zuidbeuk <br><u>Description</u>: Basilica (Sint-Martinusbasiliek) Interior Ambulatory north Devotion chapel <br><u>Keywords</u>: Belgium, Cultural heritage, Europe, Floklore/religion, Halle, Monuments, My photography, Oost-Vlaanderen, Religious devotion object/site/event, Social, Thematic <br><br><u>Author</u>: Photo: Paul M.R. Maeyaert <br><u>Copyright</u>: Paul M.R. Maeyaert <br>
PM_046367_B_Halle
<u>File Name</u>: PM_046367_B_Halle.jpg <br><u>Sublocation</u>: Kapittelkerk Sint-Martinus (Onze-Lieve-Vrouwebasiliek) <br><u>Location</u>: Halle <br><u>Province</u>: Oost-Vlaanderen <br><u>Country</u>: Belgium <br><u>Header</u>: Binnenzicht, een processievaandel <br><u>Description</u>: Basilica (Sint-Martinusbasiliek) Interior Procession banner <br><u>Keywords</u>: Belgium, Cultural heritage, Europe, Halle, Monuments, Museum/private collection, Oost-Vlaanderen, Techniques, Textile broidery <br><br><u>Author</u>: Photo: Paul M.R. Maeyaert <br><u>Copyright</u>: Paul M.R. Maeyaert <br>
3D reconstruction hypothesis of the 17th century entrance hall ('voorhuis') of Herengracht 573, Amsterdam
<p>3D reconstruction hypothesis of the 17<sup>th</sup> century entrance hall (‘voorhuis’) of Herengracht 573 in Amsterdam based on information retrieved from the probate inventory (10.5281/zenodo.7501160) and the VOC almanacs of Pieter de Graeff, and building historical research. The 3D reconstruction hypothesis and related sources are discussed in Chiara Piccoli, 'Home-making in 17th century Amsterdam: A 3D reconstruction to investigate visual cues in the entrance hall of Pieter de Graeff (1638-1707)', in G. Landeschi and E. Betts (eds.), <em>Capturing the Senses. Digital Methods for Sensory Archaeologies</em> (Cham: Springer, 2023 forthcoming).</p> <p>The 3D <em>voorhuis</em> can be interactively explored via the prototype <em>Virtual Interiors</em> webviewer (https://www.virtualinteriorsproject.nl/output/). A screencast of the interactive exploration can be viewed at <a href="https://doi.org/10.1515/opar-2020-0142">https://doi.org/10.1515/opar-2020-0142</a> or at <a href="https://dx.doi.org/10.21942/uva.14424218">https://dx.doi.org/10.21942/uva.14424218</a></p> <p>For further details about the aims and the development of the webviewer, see Hugo Huurdeman and Chiara Piccoli 2021. ‘3D Reconstructions as Research Hubs: Geospatial Interfaces for Real-Time Data Exploration of Seventeenth-Century Amsterdam Domestic Interiors’, <em>Open Archaeology</em>, vol. 7 (1), 314-336. <a href="https://doi.org/10.1515/opar-2020-0142">https://doi.org/10.1515/opar-2020-0142</a> and Hugo Huurdeman 2021. ‘Analyze & Experience: Towards a Research Environment for 3D Reconstructions’ (<a href="https://www.virtualinteriorsproject.nl/2021/08/04/towards-a-3d-research-environment/">https://www.virtualinteriorsproject.nl/2021/08/04/towards-a-3d-research-environment/</a>)</p> <p>This research was part of the NWO-funded project <em>Virtual Interiors</em> (2018-2022; https://www.virtualinteriorsproject.nl/).</p>
Gate tunability of highly efficient spin-to-charge conversion by spin Hall effect in graphene proximitized with WSe2
<p>Data associated with "Gate tunability of highly efficient spin-to-charge conversion by spin Hall effect in graphene proximitized with WSe<sub>2</sub>" </p> <p>Publication: <a href="https://arxiv.org/abs/2006.09227">https://arxiv.org/abs/2006.09227</a> and <a href="https://aip.scitation.org/doi/10.1063/5.0006101">https://aip.scitation.org/doi/10.1063/5.0006101</a></p> <p><br> </p>
Binaural room impulse responses recorded with KEMAR in a mid-size lecture hall
<p>The binaural room impulse responses (BRIRs) were measured at the mid-size lecture room Auditorium 3 at the<br> Telefunken-building of TU Berlin. They were measured for six different loudspeaker positions. The head of the dummy head was rotated with a resolution of 1° ranging from -90° to 90°. The measurement equipment was the same as described in Wierstorf et al. [1]</p> <p> </p> <p>[1] Wierstorf, H., Geier, M., Raake, A., Spors, S. (2011) “A Free Database of Head-Related Impulse Response Measurements in the Horizontal Plane with Multiple Distances,” 130th AES Convention, eBrief 6</p>
Mie-ken, Matsusaka-shi, Iitakachō Haze (三重県松阪市飯高町波瀬). Bell hall (shōrō 鐘楼) at Taiun-ji Temple (天開山口窄泰運寺).
<p>Mie-ken, Matsusaka-shi, Iitakachō Haze (三重県松阪市飯高町波瀬). Bell hall (shōrō 鐘楼) at Taiun-ji Temple (天開山口窄泰運寺).</p>
Supporting data for "Measurable fractional spin for quantum Hall quasiparticles on the disk"
<p>Supporting data for the manuscript "Measurable fractional spin for quantum Hall quasiparticles on the disk", by T. Comparin, A. Opler, E. Macaluso, A. Biella, A. P. Polychronakos, L. Mazza.<br> If you use these numerical results in a scientific work, please cite the corresponding article [<a href="https://link.aps.org/doi/10.1103/PhysRevB.105.085125">Phys. Rev. B <strong>105</strong>, 085125 (2022)</a>].<br> For additional details, please contact Tommaso Comparin (tommaso.comparin@ens-lyon.fr).</p> <p>We computed the density profile rho(r) for the Laughlin state (with filling 1/m, for m=2,3,4) and for the Halperin 221 state, by means of Monte Carlo simulations. All data are in units of the magnetic length (that is, with lB=1).<br> When present, labels "QH0", "QH1" and "QH2" in the filenames correspond to the case with q=0, q=1 or q=2 quasiholes localized at the origin.</p> <p><br> Folders:</p> <ul> <li>Data_Laughlin contains the Laughlin density-profile data used to compute the spin values in Fig. 1.</li> <li>Data_Halperin221 contains the Halperin 221 density-profile data used to compute the spin values in Fig. 2. Filenames include a label for the type and number of quasiholes: "A" stands for Gamma=A and q=1; "AA" stands for Gamma=A and q=2; "AB" stands for Gamma=AB and q=1; "AABB" stands for Gamma=AB and q=2.</li> <li>Data_Laughlin_boundary contains the Laughlin density-profile data shown in Fig. 6.</li> <li>Data_Halperin221_boundary_A contains the Laughlin density-profile data shown in Fig. 7, for Gamma=A.</li> <li>Data_Halperin221_boundary_AB contains the Laughlin density-profile data shown in Fig. 7, for Gamma=AB.</li> </ul>
Project STORM: monitoring the masonry of Hall I, at the Baths of Diocletian, with a prototype based on Arduino UNO. Dataset 2017 - 2019
<p>This dataset for monitoring the masonry of Aula I at the Baths of Diocletian (Rome) was created by the University of Tuscia.<br> The measurements are carried out with a prototype based on Arduino UNO, have been investigated:</p> <ul> <li>Temperature and Relative Humidity of the internal environment and Temperature and Relative Humidity of contact on the masonry (with two sensors DHT22 AM2302);</li> <li>Acceleration along the three spatial axes (X, Y and Z), Pitch Index and Roll Index (with Gy 521 sensor);</li> <li>Surface pressure for the movement of a lesion (with FlexiForxe sensor).</li> </ul> <p>The data produced by the sensors were acquired and sent to the computer which automatically saved them every 10 seconds. The dataset is composed of the data obtained from 2017 to 2019 and separated by month in 11 sheets. In total about 40 million values were recorded, used to understand the slow hazard phenomena present on the monitored masonry.</p> <p>STORM (Safeguarding Cultural Heritage through Technical and Organisational Resources Management) is a HORIZON 2020 funded European Union Cultural Heritage project that aims at the protection of Cultural Heritage through a combination of technical and organizational resources (http://www.storm-project.eu).</p>
Project STORM: monitoring the masonry of Hall I, at the Baths of Diocletian, with Fiber Bragg Grating (FBG) sensors. RAW Dataset 2017 - 2019
<p>This dataset for monitoring the masonry of Hall I at the Baths of Diocletian (Rome) was created by the University of Tuscia.<br> The measurements are carried out with a Fiber Bragg Grating (FBG) sensors, have been investigated:</p> <ul> <li>Strain of lesions (sensors S0, S2 and S3);</li> <li>Temperature of masonry (sensors S1, and S8);</li> <li>Humidity of masonry (sensors S4, S5, S6 and S7).</li> </ul> <p>The data produced by the sensors were automatically saved them every 30 seconds. The dataset is composed of the data raw obtained from October 2017 to May 2019 and separated by month in 14 sheets. In total more than 4 million values were registered, used to understand the slow hazard phenomena present on the monitored masonry.</p> <p>STORM (Safeguarding Cultural Heritage through Technical and Organisational Resources Management) is a HORIZON 2020 funded European Union Cultural Heritage project that aims at the protection of Cultural Heritage through a combination of technical and organizational resources (http://www.storm-project.eu).</p>
Experimental data of "Magneto-exciton limit of quantum Hall breakdown in graphene"
<p>These files are the measurements presented in A. Schmitt et al. manuscript. AuS2_xxT.csv files are the breakdown measurements with current and noise function of bias. Each file is obtained for a different magnetic field in teslas (T).</p> <p>The low-bias_AuS2.csv file contains all the data for the low bias fan-charts of fig. 1</p>
Non-identical moire twins in bilayer graphene revealed by valley Hall effect measurements
<p>The superlattice obtained by aligning a monolayer graphene and boron nitride (BN) inherits from the hexagonal lattice a sixty degrees periodicity with the layer alignment. It implies that, in principle, the properties of the heterostructure must be identical for 0$^{\circ}$ and 60$^{\circ}$ of layer alignment. Here, we demonstrate, using dynamically rotatable van der Waals heterostructures, that the moir\'e superlattice formed in a bilayer graphene/BN has different electronic properties at 0$^{\circ}$ and 60$^{\circ}$ of alignment. Although the existence of these non-identical moir\'e twins is explained by different relaxation of the atomic structures for each alignment, the origin of the observed valley Hall effect remains to be explained. A simple Berry curvature argument do not hold to explain the hundred and twenty degrees periodicity of this observation. Our results highlight the complexity of the interplay between mechanical and electronic properties on moir\'e structure and the importance of taking into account atomic structure relaxation to understand its electronic properties.</p>
Supplemental Data for "Self-similarity of spectral response functions for fractional quantum Hall states"
<p>Scripts and data to supplement the paper "Self-similarity of spectral response functions for fractional quantum Hall states".</p>
Datasets for "Hall cascade with fractional magnetic helicity in neutron star crusts"
<pre>The run directories contain time series and spectra as text files and other secondary data as idl save files. They can be read directly with the corresponding idl routines that are in the directory run_directories/run_idl. The run directories can be used to rerun the cases with the Pencil Code (https://github.com/pencil-code).</pre>
FIGURES 16 – 23. Mythenteles wings. 16. M in World revision of the microbombyliid genus Mythenteles Hall & Evenhuis (Diptera: Mythicomyiidae)
FIGURES 16 – 23. Mythenteles wings. 16. M. coptopheles Evenhuis, sp. n.; 17. M. deemingi Evenhuis, sp. n.; 18. M. freidbergi Evenhuis, sp. n.;, anal lobe folded over 19. M. hellenicae Evenhuis, sp. n.; 20. M. hispanicola Evenhuis & BlascoZumeta, sp. n.; 21. M. infrequens Evenhuis & Blasco Zumeta, sp. n., anal lobe folded over; 22. M. silus Evenhuis, sp. n.; 23. M. wadimurri Evenhuis & Theodor, sp. n.
FIGURES 2 – 5 in World revision of the microbombyliid genus Mythenteles Hall & Evenhuis (Diptera: Mythicomyiidae)
FIGURES 2 – 5. Comparisons of Mythicomyia and Mythenteles. 2 – 3. Antennae. 2. Mythicomyia pusillima Melander; 3. Mythenteles propleuralis (Melander). 4 – 5. Wings. 4. Mythicomyia brevis Hall & Evenhuis; 5. Mythenteles propleuralis (Melander).
FIGURE 2. Affecauda salacia n in Revision of Affecauda Hall & Chambers, 1999 (Digenea: Gyliauchenidae Fukui, 1929), including the description of two new species from fishes of the IndoWest Pacific
FIGURE 2. Affecauda salacia n. sp. from the intestine of Siganus corallinus. Lateral view of holotype. Scale bar = 500 µm.
FIGURE 1. Affecauda rugosa n in Revision of Affecauda Hall & Chambers, 1999 (Digenea: Gyliauchenidae Fukui, 1929), including the description of two new species from fishes of the IndoWest Pacific
FIGURE 1. Affecauda rugosa n. sp. from the intestine of Zebrasoma veliferum. Lateral view of holotype. Scale bar = 500 µm.
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
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DANDI Archive for NWB datasets
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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.