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324 results for “bell”
Holly Church of Saint Spyridon. Saint Spyridon the Miracle-worker and Keeper of Corfu City. Old Town of Corfu. Greece. Bell tower at night (en). Ιερός Ναός Αγίου Σπυρίδωνα. Άγιος Σπυρίδων ο Θαυματουργός και Πολιούχος της Πόλης της Κέρκυρας. Παλαιά Πόλη της Κέρκυρας. Ελλάδα. Κωδονοστάσιο τη νύχτα (ελ). Ierós Naós Agíou Spyrídōna. Ágios Spyrídōn o Thaumatourgós kai Polioúchos tēs Pólēs tēs Kérkyras. Palaiá Pólē tēs Kérkyras. Elláda. Kōdonostásio tē nýchta (el).
<p>Holly Church of Saint Spyridon.</p> <p>Saint Spyridon the Miracle-worker and Keeper of Corfu City.</p> <p>Old Town of Corfu.</p> <p>Greece.</p> <p>Bell tower at night </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>
Mie-ken, Matsusaka-shi, Iitakachō Haze (三重県松阪市飯高町波瀬). Bell at Taiun-ji Temple.
<p>Mie-ken, Matsusaka-shi, Iitakachō Haze (三重県松阪市飯高町波瀬). Bell at Taiun-ji Temple, interior with historical inscriptions.</p>
Violation of Bell's Inequality under Strict Einstein Locality Conditions
<p><strong>Data reuse</strong></p> <p>Please cite G. Weihs et al., Phys. Rev. Lett. <strong>81,</strong> 5039 (1998) in publications that reuse this data and if possible inform the lead author, who is always keen to learn what else one can do with the data.</p> <p><strong>Data description</strong></p> <p>The data contained in the two archives <a href="Alice.zip">Alice.zip</a> and <a href="Bob.zip">Bob.zip</a> and were collected in the years 1997 through 1999 as a long-distance test of Bell's inequality and quantum key distribution. Publications that are based on this data include G. Weihs et al., Phys. Rev. Lett. <strong>81,</strong> 5039 (1998) and T. Jennewein et al. Phys. Rev. Lett. <strong>85,</strong> 4729 (2000). The former is cited in the 2022 Nobel Prize announcement.</p> <p><strong>Data format</strong></p> <p>All files come in triplets for each observer (Alice, blue, west end of Innsbruck campus; Bob, red, east end of campus). Everything has been packed into an archive for each observer (alice.zip, bob.zip).</p> <table> <tbody> <tr> <td> <p>*_H.txt</p> </td> <td> <p>Cryptic laboratory comments containing information about some unimportant(?) experimental parameters.</p> </td> </tr> <tr> <td> <p>*_V.dat</p> </td> <td> <p>Photon arrival times where the "arm" time has already been subtracted. IEEE-8bit double precision numbers in "Big Endian"-form naturally sorted ascendingly. Actual time resolution is 10<sup>-10</sup>seconds, but accuracy is only 0.5 ns.</p> </td> </tr> <tr> <td> <p>*_C.dat</p> </td> <td> <p>Apparatus setting and "outcome" for each photon detection encoded in the following way: 16-bit integers in "Big Endian"-form, each number showing the detector (0=vertical, 1=horizontal with repect to the polarizer) that fired in its LSB and the position of the switch (0=no rotation, 1=45° rotation) in the next to LSB. (Not very efficient, but quicker when sampling directly to the PCs RAM during data acquisition!)</p> <p>Somebody said that the bits must be reversed. I don't think so but there is always a chance that I made double, compensating mistakes in my LabView and C programming.</p> </td> </tr> </tbody> </table> <p><strong>Files and folders</strong></p> <table> <tbody> <tr> <td><strong>Folder Name</strong></td> <td><strong>Description</strong></td> <td><strong>Mode</strong></td> <td><strong>Start Date</strong></td> </tr> <tr> <td>bellstat</td> <td>Static BI test (no fast switching)</td> <td>local, static</td> <td>30-Nov-1997</td> </tr> <tr> <td>bluesine</td> <td>Static correlation scan varying "blue" modulator bias</td> <td>local</td> <td>30-Nov-1997</td> </tr> <tr> <td>first</td> <td> </td> <td>local</td> <td>28-Nov-1997</td> </tr> <tr> <td>firstlong</td> <td>First run of long-distance (360m separation) measurements</td> <td>remote</td> <td>28-Apr-1998</td> </tr> <tr> <td>korrel</td> <td> </td> <td> </td> <td> </td> </tr> <tr> <td>localswitch</td> <td> </td> <td>local, switched (45°)</td> <td>11-Jan-1998</td> </tr> <tr> <td>locbell</td> <td>BI Test</td> <td>local, swiched (45°)</td> <td>26-Mar-1998</td> </tr> <tr> <td>loccorr</td> <td>Measurement of correlations in parallel bases</td> <td>local , switched (45°)</td> <td>30-Mar-1998</td> </tr> <tr> <td>longdist</td> <td>Main run of long-distance BI tests</td> <td>remote, switched (45°)</td> <td>15-Apr-1998</td> </tr> <tr> <td>longtime</td> <td>Maximum continous measurement time (about 5 minutes!) BI test</td> <td>remote, switched (45°)</td> <td>06-Jun-1998</td> </tr> <tr> <td>newlongtime</td> <td> </td> <td>remote, switched (45°)</td> <td>22-Dec-1998</td> </tr> <tr> <td>scanblue</td> <td>Scan varying "blue" side modulator bias</td> <td>remote, switched (45°)</td> <td>01-May-1998</td> </tr> <tr> <td>scanred</td> <td>Scan varying "red" side modulator bias</td> <td>remote, switched (45°)</td> <td>31-May-1998</td> </tr> <tr> <td>sineblue</td> <td>Scan varying "blue" side modulator bias</td> <td>local, switched (45°)</td> <td>01-Apr-1998</td> </tr> <tr> <td>sinered</td> <td>Scan varying "red" side modulator bias</td> <td>local, switched (45°)</td> <td>30-Mar-1998</td> </tr> <tr> <td>switchtest</td> <td> </td> <td>local, switched (45°)</td> <td>03-Jan-1998</td> </tr> <tr> <td>wignerscanalice</td> <td>Scan varying "blue"side modulator bias, basis choice for Wigner's inequality</td> <td>remote, switched (30°)</td> <td>23-Dec-1998</td> </tr> </tbody> </table>
Yangon, Shwedagon. Singu Min bell, detail.
<p>Yangon, Shwedagon. Singu Min bell (စဉ့်ကူးမင်း ခေါင်းလောင်းတော်), detail, circa 1779, as documented 2/2017.</p>
Yangon, Shwedagon. Singu Min bell, detail.
<p>Yangon, Shwedagon. Singu Min bell (စဉ့်ကူးမင်း ခေါင်းလောင်းတော်), detail, circa 1779, as documented 2/2017.</p>
Yangon, Shwedagon. Singu Min bell, detail.
<p>Yangon, Shwedagon. Singu Min bell (စဉ့်ကူးမင်း ခေါင်းလောင်းတော်), detail, circa 1779, as documented 2/2017.</p>
Belle Skinner (s5493)
<b>-- <a href="https://doi.org/10.5281/zenodo.11582199">Documentation</a> --</b><br><br><u>Name</u>: Belle Skinner<br><u>musiXplora-ID</u>: s5493<br><u>musiXplora-URI</u>: <a href="https://musixplora.de/mxp/s5493">https://musixplora.de/mxp/s5493</a><br><u>Gender</u>: f<br><u>Date of Birth</u>: 10 February 1866<br><u>Place of Birth</u>: Williamsburg<br><u>Date of Death</u>: 10 April 1928<br><u>Place of Death</u>: Paris<br><u>First Mentioned</u>: 1900<br><u>Sectors</u>: Sammlung<br><u>Professions (Historical)</u>: Philanthropin<br><u>Professions (Musical)</u>: Instrumentensammlerin<br><u>Other Places of Activity</u>: Holyoke, Vigneulles-lès-Hattonchâtel<br><br><br><br><u>Changelog</u>:<br> - v0.0.1: Initial Upload.<br>
Deep Submergence Dive location dataset from Bell et al. Sci Advances: How Little We've Seen: A Visual Coverage Estimate of the Deep Seafloor
<p><span>How Little We’ve Seen: A Visual Coverage Estimate of the Deep Seafloor </span></p> <p><span>Katherine L.C. Bell,</span><sup><span>1</span></sup><em><sup><span>∗</span></sup></em><em><sup><span> </span></sup></em><span>Kristen N. Johannes,</span><sup><span>1<em>,</em>2</span></sup><span> </span></p> <p><span>Brian R.C. Kennedy,</span><sup><span>1<em>,</em>3 </span></sup><span>Susan E. Poulton</span><sup><span>1</span></sup><span> </span></p> <p><sup><span>1</span></sup><span>Ocean Discovery League, Saunderstown, RI 02874, USA, </span></p> <p><sup><span>2</span></sup><span>Integrative Oceanography Division, Scripps Institution of Oceanography, University of California San Diego, San Diego, CA 92037, USA </span></p> <p><sup><span>3</span></sup><span>Biology Department, Boston University, Boston, MA 02215 USA </span></p> <p><em><sup><span>∗</span></sup></em><span>To whom correspondence should be addressed: croff@alum.mit.edu. </span></p> <p><span><br>Despite the importance of visual observation in the ocean, we have imaged a minuscule fraction of the deep seafloor. Sixty-six percent of the entire planet is deep ocean (≥200 m), and our data show we have visually observed less than 0.001%, a total area approximately a tenth of the size of Belgium. Data gathered from over 44 thousand deep-sea dives indicate we have also seen an incredibly biased sample. Sixty-five percent of all in situ visual seafloor observations in our dataset were within 200 nm of only three countries: the United States, Japan, and New Zealand. Ninety-seven percent of all dives we compiled have been conducted by just five countries: the United States, Japan, New Zealand, France, and Germany. This small and biased sample is problematic when attempting to characterize, understand, and manage a global ocean.</span></p>
SBC LTER: Land: Hydrology: Stream discharge and associated parameters at Bell Canyon Creek at Winchester Canyon Rd (BC02)
Stream Discharge and water temperature were collected with a Solinst Model 3001 LT Levelogger at Bell Canyon Creek at Winchester Canyon Rd, BC02 in the Santa Barbara coastal area (site ID: BC02). Data are reported hourly. Stage values were converted to discharge using a rating curve developed with stream channel cross-sections, roughness estimates and the HEC-RAS model.
Supporting data for "Spatial Noise Correlations in a Si/SiGe Two-Qubit Device from Bell State Coherences"
<p>Datasets, analysis scripts and simulations for "Spatial Noise Correlations in a Si/SiGe Two-Qubit Device from Bell State Coherences".</p> <p>For more information and instructions, see READ ME.txt.</p> <p>For questions, contact Jelmer Boter (j.m.boter@tudelft.nl) or Lieven Vandersypen (l.m.k.vandersypen@tudelft.nl).</p>
Data Associated with the paper "Bell correlations between light and vibration"
<p>Data Associated with the <a href="http://doi.org/10.1126/sciadv.abb0260">following paper</a></p> <blockquote> <p>S. Tarrago Velez, V. Sudhir, N. Sangouard, C. Galland, Bell correlations between light and vibration at ambient conditions. Sci. Adv. 6, eabb0260 (2020).</p> </blockquote> <p>A thorough explanation of the experiment performed is available there.</p> <p> </p> <p>The file <strong>RawData_DelaySweep.zip</strong> contains the raw count information as obtained during the experiment. It is organized in different folders, each containing the data associated with one particular position of the delay stage. The file naming convention has the position, followed by the angles in detection (thA corresponds to the Stokes detection arm and thB corresponds to the anti-Stokes detection arm), and the acquisition time. As explained in the Supplementary Information Sec. 2.1, there are multiple measurements for each combination of delay and detection settings. The zip file also contains the file AnalysisBellv3.py, which was used to analyze the data. Running the file produces 'resultsBell.txt' and 'results_g2.txt', which contain the results for the CHSH parameter and the second order cross correlation, respectively.</p> <p> </p> <p>The file <strong>RawData_Visibility.zip</strong> contains the raw count information obtained for the visibility curves, as expained in the Supplementary Information Sec. 2.1. The files follow the same naming convention as those in RawData_DelaySweep.zip. It also contains the file AnalysisCounts.py, which analyzes the data to obtain the correlation parameters.</p> <p> </p> <p>The file <strong>BellCorrelations_CompiledData.xlsx</strong> is a spreadsheet containing the results of the analysis of the previous two sets of data.</p>
Figure 8. Late bell stage successor P3 in Microscopic analysis of the developing dentition in the pouch young of the extinct marsupial Thylacinus cynocephalus, with an assessment of other developmental stages and eruption
Figure 8. Late bell stage successor P3. This tooth lies anterior to dP3 and it lacks dentin and enamel. lsl, short segment of lingual successional lamina; t, tongue.
Fig. 63. Olindias tenuis, BFLA4232, bell diameter 23 in Hydromedusae observed during night dives in the Gulf Stream
Fig. 63. Olindias tenuis, BFLA4232, bell diameter 23 mm. (A) Oblique aboral view of whole animal. (B) Lateral view of radial canal with gonad diverticula. (C) Bell margin with primary tentacles (yellow arrow) and secondary tentacles (red arrow), green arrows point to statocysts. Note the absence of tentacle bulbs, but numerous bulbs without tentacles (blue arrow).
Fig. 57. Solmundella bitentaculata, sample BFLA4119, bell diameter 4 in Hydromedusae observed during night dives in the Gulf Stream
Fig. 57. Solmundella bitentaculata, sample BFLA4119, bell diameter 4 mm. (A-B) Lateral views of whole animal, note the green mouth region. (C) Aboral view.
Fig. 59. Amphogona apsteini, bell size 2 in Hydromedusae observed during night dives in the Gulf Stream
Fig. 59. Amphogona apsteini, bell size 2 mm, 09-DEC-2019. (A-B) Two separate individuals. (C) Close up of manubrium and gastric peduncle.
Fig. 2. Cytaeis tetrastyla, bell height 2 in Hydromedusae observed during night dives in the Gulf Stream
Fig. 2. Cytaeis tetrastyla, bell height 2 mm. (A) Lateral view, note medusa buds on upper part of manubrium, BFLA4066. (B) Lateral view with focus on the frontal exumbrella showing the typical flared tentacle bases of Cytaeis medusae, BFLA4073. (C) BFLA4069, note green tentacle tips, a colour likely due to interference effects and not pigments.
Fig. 3. Amphinema turrida, bell height approximately 6 in Hydromedusae observed during night dives in the Gulf Stream
Fig. 3. Amphinema turrida, bell height approximately 6 mm. (A) Lateral view. (B-D) Oblique views from oral side, note the presence of thin cirri.
Polifonia Corpus - Pilots Module (Bells) Metadata
<p>We release the Metadata of the Pilots module of the Polifonia Textual Corpus. According to the availability from the source origin, the Metadata may include the URL from which a text of the Pilots corpus is accessible, along with the title, the author, the year of publication, and the publisher. Metadata allows for a complete reconstruction of the corpus as we cannot make the actual texts available because they are subject to heterogeneous licensing.</p> <p>Full description at <a href="http://github.com/polifonia-project/Polifonia-Corpus">https://github.com/polifonia-project/Polifonia-Corpus</a></p>
Yangon, Shwedagon. Singu Min bell.
<p>Yangon, Shwedagon. Singu Min bell (စဉ့်ကူးမင်း ခေါင်းလောင်းတော်), circa 1779, as documented 2/2017.</p>
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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.