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390 results for “after movie”
TIMED Global Ultraviolet Imager (GUVI) Airglow Flux 14-day Movies, at Wavelength 1356 Å in South Polar Projection
GUVI measures FUV Airglow in five Spectral Bands: the atomic HI Lyman-alpha Band, 121.6 nm, two atomic Oxygen OI Bands, 130.4 nm and 135.6 nm, and the molecular Nitrogen Lyman-Birge-Hopfield Short, LBHS, 141 to 152.8 nm, and Lyman-Birge-Hopfield Long, LBHL, 167.2 to 181.2 nm, Bands. The Cross-Track Scanning Spectrograph images a Ground Swath of 3000 km Width providing nearly Contiguous Global Coverage with 15 Orbits per Day. This L1CDisk, Level 1C Disk, Version 3, File provides the calibrated, geolocated, and rectified Intensities for the third OI, 1356 Å, Wavelength Band. This is a Movie with mapped Images of the Log Intensities by Orbit by using a South Polar Projection.
TIMED Global Ultraviolet Imager (GUVI) Airglow Flux 14-day Movies, at Wavelength LBH2 in North Polar Projection
GUVI measures FUV Airglow in five Spectral Bands: the atomic HI Lyman-alpha Band, 121.6 nm, two atomic Oxygen OI Bands, 130.4 nm and 135.6 nm, and the molecular Nitrogen Lyman-Birge-Hopfield Short, LBHS, 141 to 152.8 nm, and Lyman-Birge-Hopfield Long, LBHL, 167.2 to 181.2 nm, Bands. The Cross-Track Scanning Spectrograph images a Ground Swath of 3000 km Width providing nearly Contiguous Global Coverage with 15 Orbits per Day. This L1CDisk, Level 1C Disk, Version 3, File provides the calibrated, geolocated, and rectified Intensities for the fifth LBH2, 1650-1800 Å, Wavelength Band. This is a Movie with mapped Images of the Log Intensities by Orbit by using a North Polar Projection.
TIMED Global Ultraviolet Imager (GUVI) Airglow Flux 14-day Movies, at Wavelength LBH1 in North Polar Projection
GUVI measures FUV Airglow in five Spectral Bands: the atomic HI Lyman-alpha Band, 121.6 nm, two atomic Oxygen OI Bands, 130.4 nm and 135.6 nm, and the molecular Nitrogen Lyman-Birge-Hopfield Short, LBHS, 141 to 152.8 nm, and Lyman-Birge-Hopfield Long, LBHL, 167.2 to 181.2 nm, Bands. The Cross-Track Scanning Spectrograph images a Ground Swath of 3000 km Width providing nearly Contiguous Global Coverage with 15 Orbits per Day. This L1CDisk, Level 1C Disk, Version 3, File provides the calibrated, geolocated, and rectified Intensities for the fourth LBH1, 1400-1500 Å, Wavelength Band. This is a Movie with mapped Images of the Log Intensities by Orbit by using a North Polar Projection.
TIMED Global Ultraviolet Imager (GUVI) Airglow Flux 14-day Movies, at Wavelength 1356 Å in Mercator Projection
GUVI measures FUV Airglow in five Spectral Bands: the atomic HI Lyman-alpha Band, 121.6 nm, two atomic Oxygen OI Bands, 130.4 nm and 135.6 nm, and the molecular Nitrogen Lyman-Birge-Hopfield Short, LBHS, 141 to 152.8 nm, and Lyman-Birge-Hopfield Long, LBHL, 167.2 to 181.2 nm, Bands. The Cross-Track Scanning Spectrograph images a Ground Swath of 3000 km Width providing nearly Contiguous Global Coverage with 15 Orbits per Day. This L1CDisk, Level 1C Disk, Version 3, File provides the calibrated, geolocated, and rectified Intensities for the third OI, 1356 Å, Wavelength Band. This is a Movie with mapped Images of the Log Intensities by Orbit by using a Transverse Mercator Projection.
TIMED Global Ultraviolet Imager (GUVI) Airglow Flux 14-day Movies, at Wavelength LBH1 in Mercator Projection
GUVI measures FUV Airglow in five Spectral Bands: the atomic HI Lyman-alpha Band, 121.6 nm, two atomic Oxygen OI Bands, 130.4 nm and 135.6 nm, and the molecular Nitrogen Lyman-Birge-Hopfield Short, LBHS, 141 to 152.8 nm, and Lyman-Birge-Hopfield Long, LBHL, 167.2 to 181.2 nm, Bands. The Cross-Track Scanning Spectrograph images a Ground Swath of 3000 km Width providing nearly Contiguous Global Coverage with 15 Orbits per Day. This L1CDisk, Level 1C Disk, Version 3, File provides the calibrated, geolocated, and rectified Intensities for the fourth LBH1, 1400-1500 Å, Wavelength Band. This is a Movie with mapped Images of the Log Intensities by Orbit by using a Transverse Mercator Projection.
Movies with mention to LGBTQ+ on plot-keywords [1909-2019]
<p>IMDb was the only source from which data was extracted. The sample was constructed using the tool search engines, filtering “feature films” (over 45 min of lentgh), excluding “adult titles” and excluding “released”. In order to obtain a comprehensive length of time, all productions from 1895 to December 2019 were included according to a search carried out in March 2020. To collect only those films that could have detailed information, the number of items was limited to those with over 50 user ratings (N = 119809) as a way of minimally controlling the popularity of the published work.</p> <p>In the resulting sample (N = 1768), the presence of descriptors in the field “plot” was coded, designating different terms related to the LGBTQ+ community. Those included the following terms and their variants with similar etymology: homosexual (homo/homosexuality), gay, lesbian, trans (transsexual, transgender) and queer. After adding those productions that had a descriptor term from this list in the keywords field, the total of the items corresponding to these categories was 9409 films. This decision responds to the need to reflect in the sample films in which there is representation of the group, but it is not necessarily part of the plot or is revealed through the course of it. It is also supported by the documentary tradition, according to which keywords tend to overlap with the plot or summary (La Barre & de Novais Cordeiro, 2012, p. 241). </p> <p>The following information was extracted from each item (movie):</p> <p>• Production by country and production by language in each year. In co-productions, only the first producing country was considered and the other countries discarded.</p> <p>• Identity of the group (gay, lesbian, trans, etc.) as per the plot keywords. Several identities and expressions such as transsexuality and transgender have been included under the label “trans” as it was impossible to recognize the correct expression from the labels provided by IMDb.</p> <p>• Cinema genres. Using the first two descriptors, a list of genre pairs was created, which were later grouped into 13 generic categories, as per the formal qualities of the theme: Drama (any combinations of the drama category that were not included in other categories), Comedy (combinations including comedy that were not considered in other categories), Action/Adventure, Melodrama (Drama + Comedy), Horror, Crime (including thrillers), Fantasy (including Science Fiction), Biography (in both fictional and documentary forms), Documentary (excluding biographies and fake documentaries but including News), Romantic Comedy (Romance + Comedy), Animation (excluding documentary formats) and Music/Musical feature films.</p> <p>• Age ratings. Parental Advisory guidelines have changed significantly over the decades, from the first classifications in the United Kingdom, Germany, and the United States to today. In order to establish a suitable comparison, the descriptor provided by IMDb, which is usually established by the MPAA (Motion Picture Association of America), was used. When this was omitted, the descriptor used was determined as per the recommended age: Universal, Parental Guidance (PG), 12-13, 14-16, 17-18, as well as X and banned, according to the historical equivalence as provided by IMDd (2020).</p> <p>Data was pooled to consider evolution by historical periods and trends in a single group or correlational ex post facto design. Subsequently, the data was analyzed with the statistical package SPSS v.26. To visualize the main trends from the data, Tableau 2020 software was used.</p>
Supplementary Movies for Pérez-Gussinyé et al. (2023) Synrift and postrift thermal evolution of rifted margins: a re-evaluation of classic models of extension Accepted in GSL Special Publications
<p>Movie S1. Evolution of deformation for the three models shown in Figures 2 and 3. Full extension rate is 10 mm/yr. Sedimentation rate is given in Figures 2 and 3 and Methods (see also Table 1). Red shading shows brittle strain rate, blue shading shows ductile strain rate. The sediments are color coded with age since the start of rifting. The color circles are trackers. The color conventions for the phases are the same as in Figures 1 and 2.</p><p> </p><p>Movie S2. Top: Thermal evolution of the 10 mm/yr full rifting velocity model without sedimentation along with markers (model shown in Figures 2a-e and 3a-c). Grey shading indicates strain rate. Note the development of small scale convection cells. Middle: Evolution of the basement heat flow of markers shown in top panel. Bottom: Evolution of the basement temperature at markers shown in top panel. Note that the horizontal and vertical scale change in the postrift to better show the small scale convection in the top panel.</p><p> </p><p>Movie S3. Top: Thermal evolution of the10 mm/yr full rifting velocity model with average sedimentation along with markers (model shown in Figures 2f-j and 3d-g). Grey shading indicates strain rate. Note the development of small scale convection cells. Middle: Evolution of the basement heat flow of markers shown in top panel. Bottom: Evolution of the basement temperature at markers shown in top panel. Note that the horizontal and vertical scale change in the postrift to better show the small scale convection in the top panel.</p><p> </p><p>Movie S4. Top: Thermal evolution of the 10 mm/yr full rifting velocity model </p><p>with largest sedimentation along with markers (model shown in Figures 2k-o and 3h-k). Grey shading indicates strain rate. Note the development of small scale convection cells. Middle: Evolution of the basement heat flow of markers shown in top panel. bottom: Evolution of the basement temperature at markers shown in top panel. Note that the horizontal and vertical scale change in the postrift to better show the small scale convection in the top panel.</p><p> </p><p> </p><p>Movie S5. Evolution of temperature field for the 10 mm/yr full rifting velocity without sedimentation, (model shown in Figures 2a-e and 3a-c). b) and c) show the geotherms of trackers shown in a) computed from the dynamic model (solid colored lines), and from the ´1-D temperature´ solution (dashed colored lines). The black curve shows the initial geotherm used for the dynamic temperature and for the ´1-D temperature´ calculations. Grey shading indicates strain rate. Note that the horizontal scale is changing to show the rifted margins as the model evolves.</p><p> </p><p>Movie S6. Evolution of temperature field for the 100 mm/yr full rifting model without sedimentation, (model shown in Figures 2a-e and 3a-c). b) and c) show the geotherms of trackers shown in a) computed from the dynamic model (solid colored lines), and from the ´1-D temperature´ solution (dashed colored lines). The black curve shows the initial geotherm used for the dynamic temperature and for the ´1-D temperature´ calculations. Grey shading indicates strain rate. Note that the horizontal scale is changing to show the rifted margins as the model evolves.</p>
Two movies generated of a simulation of an agglomeration process of a multidisperse bipartite system of 2,000 spherical particles
<p>These movies depict the agglomeration process of a system with 2,000 spherical particles with radii randomly chosen from the range 10-50 micrometers. The droplets which are filled with heavy oil and sink in water to the bottom of a cylinder. In the simulation, a simplified approach is used in which is the particles are subjected to gravity reduced by the bouyant force, to Stokes friction, the added mass effect, and almost elastic collisions (elasticity coefficient = 0.9) with other particles and the wall.</p> <p>In one of the moves, a stationary camera is used which is constantly looking at the bottom of the cylinder. In the other movie, a spectator is moving forwards and backwards at various heights. When crossing the central axis of the cylinder, the spectator switches between front and back camera and vice versa.</p> <p>The audio shall provide a better feeling for the time evolution, but is otherwise unrelated to the simulations.</p> <p>The movies are considered for internal use only. I do not own the rights for the music.</p>
Movie generated from a simulation of particles moving through a widening tube
<p>Simulation details:</p> <p>In this very simplified simulation approach, a fluid is streaming through a tube with a widening range from left to right, under the laws of quadratic velocity profile and Bernoulli equation. With the fluid, spherical droplets are moving from left to right, which are subjected to small random velocity changes, partially elastic collisions, and the Stokes friction force.</p> <p>This very simplified approach proves that the laws of Bernoulli and quadratic velocity profile are sufficient to lead to a clustering of the droplets, as observed in experiments performed by Dr. Jin Li in Prof. David Anthony Barrow's group at Cardiff University, Wales.</p> <p>The movie is generated from povray pictures of the configurations. In order to get a better feeling for the time evolution, I backed the video with an audio containing a recording of Ferdy Kaufmann's foxtrot Sellerie from the golden 1920s. I do not own the rights for this music.</p>
Movies of Oikopleura dioica behaving (1st part of an anthropogenic noise exposure dataset)
<div> </div> <div> <p>These are movies of Oikopleura dioica which have been video recorded in the Ciona Tracker 2.0 video acquisition setup. Oikopleura dioica adults were exposed to anthropogenic noise (Level 10 on our amplifier settings). </p> </div>
Advanced analytical electron microscopy applied to Solid Oxide Cell materials and their degradation .- Result Movies
<p>This set of movies illustrates and complements my PhD thesis "Advanced analytical electron microscopy applied to Solid Oxide Cell materials and their degradation " conducted at Ecole Polytechnique Fédérale de Lausanne. The movies were obtained after alignment of images resulting from the observation of solid oxide cell material exposed to high temperature in an environmental scanning electron microscope.</p> <p>In the file name, chapter and section numbers are written to help the reader make the link between the video and the thesis. <br> The name of the sample is written in every file name.<br> If the movie refers to a specific figure in the thesis, the figure number is also added to the file name.<br> Optionally, the subject of the movie can be specified (particularly when several movies are related to the same sample).</p> <p><br> The appendix A of the thesis (Summary table) is also added so the conditions in which the movies were recorded can be easily found.</p>
Movies of Oikopleura dioica behaving (2nd part of an anthropogenic noise exposure dataset)
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Movies of Oikopleura dioica behaving (3rd part of a control dataset)
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Movies of Oikopleura dioica behaving (3rd part of an anthropogenic noise exposure dataset)
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Movies of Oikopleura dioica behaving (4th part of an anthropogenic noise exposure dataset)
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Movies of Oikopleura dioica behaving (5th part of a control dataset)
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Movies of Oikopleura dioica behaving (4th part of a control dataset)
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Movies of Oikopleura dioica behaving (6th part of an anthropogenic noise exposure dataset)
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Movies of Oikopleura dioica behaving (5th part of an anthropogenic noise exposure dataset)
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Video movie showing the preparation of photoelectrodes and reactor for solar PEC water splitting
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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.