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110 results for “RIS”
NEMO v4.2 eORCA1 data with RIS, FRIS and LCIS explicit
<p><strong>PROJECT OPEN</strong></p> <p>https://www.katofthesea.com/project-open</p> <p><strong>OBJECTIVES</strong></p> <p>As a first step towards better representing AABW source waters in NEMO global ocean 1° (eORCA1), we explicitly simulate circulation beneath Filchner-Ronne (FRIS), Larsen C (LCIS), and Ross (RIS) ice shelves. These ice shelves were chosen due to their role in the formation and setting of properties of the parent waters of AABW.</p> <p><strong>METHODOLOGY</strong></p> <ul> <li> <p>NEMO version 4.2 Beta</p> </li> </ul> <p>Forced with 2 cycles of CORE forcing for a reference “Closed” cavity run and an “Open” run with FRIS, LCIS and RIS represented.</p> <ul> <li> <p>Inform initial conditions using an idealized regional configuration of each ice shelf.</p> </li> </ul> <p><strong>PROVIDED HERE:</strong></p> <p><strong>NAMELISTS: </strong></p> <p>- NEMO reference namelist (namelist_ref; also available with NEMO code), OPEN configuration (namelist_core_ia_cfg) namelist and sea ice namelists (namelist_ice_ref and namelist_ice_cfg). </p> <p>Unless stated otherwise in the “cfg” namelist, the simulation uses the namelist choices provided in the “ref” namelist. The namelist_core_ia_cfg is a namelist specific to a global ocean configuration (ORCA2, ORCA1, ORCA025 etc) forced by interannual core winds. For more information on all the namelist parameters included in these namelists, please refer to the NEMO reference manual available on Zenodo (10.5281/zenodo.6334656). </p> <p><strong>DOMAIN FILES AND INITIAL CONDITIONS: </strong></p> <p>- Initial conditions where data inside the cavity is informed using an idealized regional configuration with World Ocean Atlas (WOA; <a href="https://www.nodc.noaa.gov/OC5/woa18/woa18data.html">https://www.nodc.noaa.gov/OC5/woa18/woa18data.html</a>) restoring at the boundaries. The data in the cavities is merged with WOA with a smoothing spline applied along the ice shelf front.</p> <p>- A domain file containing bathymetry and ice shelf draft with FRIS, LCIS and RIS open along with accompanying mesh mask file.</p> <p>- The adapted eddy viscosity files where viscosity varies south of 65 degrees South according to grid cell size.</p> <p>- A freshwater flux file where the melt rate from all cavities except FRIS, LCIS and RIS is prescribed. Inside the "Open" cavities, the melt paramaterization is turned off and the location of melt is moved to the grounding line in case in the future we would like to include the flux from grounding line rives. </p> <p><strong>MODEL OUTPUT:</strong></p> <p>The data uploaded in this zip file is split into the output from the "Closed" and "Open" runs and is listed under eORCA1_output. Here the temperature and salinity fields used for comparison with WOA are provided (1981-2009), along with specific sections extracted using the PAGO functions (<a href="https://www.whoi.edu/science/PO/pago/">https://www.whoi.edu/science/PO/pago/</a>) along FRIS and RIS for certain dates that correspond to CTD sections in the area. To facilitate easy plotting of the example scripts provided, we have also extracted the thermohaline and velocity fields for FRIS cavity and adjacent continental shelf. The user can use these for a first try with the scripts provided and then move on to extracting their areas and dates of interest from the regional 1981-2009 files. </p> <p><strong>EXAMPLE SCRIPS:</strong></p> <p>To get the user familiar with the provided data, we have provided example scripts for extracting the data (open_eORCA_FRIS), plotting bathymetry and T-S (plot_bathy_T_S) and plotting the meridional overturning function and barotropic stream function in the cavity (plot_MOC_BSF_melt). In this same script the melt rate pattern is plotted and the net melt over various time periods corresponding to observational studies is calculated using calculating_net_melt.</p> <p>Additionally, a script plotting temperature and salinity across FRIS ice shelf front for the period February-March 1995 is provided and can be adapted and used to plot the other sections of data provided in this zip. </p> <p><strong>ACKNOWLEDGEMENTS AND FINANCIAL SUPPORT</strong></p> <p>Katherine Hutchinson received financial support of the European Union’s Horizon 2020 research and innovation programme Marie Skłodowska-Curie grant agreement No 898058 (Project OPEN). Nicolas Jourdain received support from the European Union’s Horizon 2020 research and innovation programme under grant agreement no. 101003536 (ESM2025). Pierre Mathiot acknowledges support from the European Union’s Horizon 2020 research and innovation programme under grant agreement no. 820575 (TiPACCs). This work was performed using HPC resources from GENCI–IDRIS (Grant 2021- A0100107451) and from the IPSL Mesocentre ESPRI.</p> <p>Project OPEN is a participant in the h2020 open access data pilot.</p>
65 Primary Studies SMS CG-RIS
<p>The file .RIS of 65 primary studies SMS:"Methodological proposals in Empirical Software Engineering - A literature survey"</p>
Fig. 8. Prodasineura Cowley, 1934 spp., females. A–C. P. croconota Ris, 1916, ZCDTU 2017060802- ODO. D–E. P. verticalis Selys, 1860, ZCDTU 2018030611-ODO. F. P in A revision of the systematics and distribution of the damselfly genus Prodasineura Cowley, 1934 (Odonata: Zygoptera: Platycnemididae) in Vietnam with description of two new species
Fig. 8. Prodasineura Cowley, 1934 spp., females. A–C. P. croconota Ris, 1916, ZCDTU 2017060802- ODO. D–E. P. verticalis Selys, 1860, ZCDTU 2018030611-ODO. F. P. laidlawi (Forster in Laidlaw, 1907), modified from Asahina (1983: fig. 22). A, G–F = prothorax, lateral view; B, D = prothorax, dorsal view; C, E = tip of abdomen, lateral view. Images not to scale.
Fig. 6. Prodasineura Cowley, 1934 spp. A–C. P. croconota Ris, 1916, ZCDTU 2017060802-ODO. D–F. P. verticalis Selys, 1860, ZCDTU 2018030611-ODO. A, E in A revision of the systematics and distribution of the damselfly genus Prodasineura Cowley, 1934 (Odonata: Zygoptera: Platycnemididae) in Vietnam with description of two new species
Fig. 6. Prodasineura Cowley, 1934 spp. A–C. P. croconota Ris, 1916, ZCDTU 2017060802-ODO. D–F. P. verticalis Selys, 1860, ZCDTU 2018030611-ODO. A, E = ♂, head and thorax, lateral view; C–D = ♂, synthorax, dorsal view; B, F = ♀, head and thorax, lateral view. Images not to scale.
Fig. 2. Calamiana polylepis from Pasir Ris, ZRC 50569 in An Annotated Checklist Of The Gobioid Fishes Of Singapore
Fig. 2. Calamiana polylepis from Pasir Ris, ZRC 50569: a, 21 mm SL male; b, 21 mm SL female. Photographs by Tan Heok Hui.
Abb. 2. Pyrrhosoma elisabethae. a in Elisabeth Ris: eine Schweizerin im Namen der Balkan-Adonislibelle Pyrrhosoma elisabethae Schmidt, 1948 (Odonata: Coenagrionidae)
Abb. 2. Pyrrhosoma elisabethae. a) Männchen, b) Porträt Männchen, c) Hinterleibsende des Männchens mit den arttypischen oberen und unteren Anhängen. Beim Männchen von Pyrrhosoma elisabethae ist der hakenförmige Fortsatz auf der Unterseite der oberen Hinterleibsanhänge nur ein Drittel so lang wie die oberen Anhänge selbst. Zudem sind die unteren Anhänge etwas länger als die oberen. (Fotos Stefan Kohl)
Abb. 1 in Elisabeth Ris: eine Schweizerin im Namen der Balkan-Adonislibelle Pyrrhosoma elisabethae Schmidt, 1948 (Odonata: Coenagrionidae)
Abb. 1. Ausschnitt aus Schmidt (1948): Titel und Schlusssatz der Einleitung aus Opuscula Entomologica 13: 69.
Abb. 3 in Elisabeth Ris: eine Schweizerin im Namen der Balkan-Adonislibelle Pyrrhosoma elisabethae Schmidt, 1948 (Odonata: Coenagrionidae)
Abb. 3. Elisabeth Ris. Foto von Th. Hoffmann (Basel), Datum unbekannt. Bild und Schriftzug aus dem Stadtarchiv Schaffhausen.
Phase IIIb, Open-label, Multi-center Study to Evaluate Safety, Tolerability and Efficacy of OAV101 Administered Intrathecally to Participants With SMA Who Discontinued Treatment With Nusinersen or Ris
ClinicalTrials.gov study NCT05386680. IPD Sharing: YES. Countries: 9. Publications: 1.
RIS Based Hand Gesture Recognition Dataset
<h1><strong>RIS Based Hand Gesture Recognition Dataset</strong></h1> <h2><strong>Overview</strong></h2> <div>This dataset contains images for gesture recognition, divided into two main sets: dataset0608 and data_synthetic_variab. The data was collected using a wooden hand. </div> <div> </div> <h3>dataset0608</h3> <div>This dataset consists of two modes: ris_random and ris_optimized. The main difference between the two subfolders is the configuration of the RIS (random or optimized).</div> <div> </div> <div>This dataset consists of four subfolders: ris_random, ris_random2, ris_optimized, and ris_optimized2. The main difference between the subfolders is the format of the data:</div> <div>- ris_random and ris_optimized: Data is stored in individual files for each frame, named as 'frame_{i}{posture}{n_med}' </div> <div>- ris_random2 and ris_optimized2: Data has already been processed and combined into single files for all frames using the compact_files_frames.txt function, named as 'all_frames_{posture}_{n_med}' </div> <div> </div> <div>For each gestures = {close, two, open}, we have n_med values from 0 to 114 and 10 frames. Therefore, the ris_random and ris_optimized folders contain 10 frames × 115 measurements × 3 gestures = 3450 files, while the ris_random2 and ris_optimized2 folders contain 1 × 115 measurements × 3 gestures = 345 files.</div> <div> </div> <h3>data_synthetic_variab</h3> <div>This dataset consists of two modes: ris_random and ris_optimized. The main difference between the two subfolders is the configuration of the RIS (random or optimized). </div> <div> </div> <div>This dataset consists of four subfolders: ris_random, ris_random2, ris_optimized, and ris_optimized2. The main difference between the subfolders is the format of the data:</div> <div>- ris_random and ris_optimized: Data is stored in individual files for each frame, named as 'frame_{i}{posture}{n_med}' </div> <div>- ris_random2 and ris_optimized2: Data has already been processed and combined into single files for all frames using the compact_files_frames.txt function, named as 'all_frames_{posture}_{n_med}' </div> <div> </div> <div>For each gestures = {close, two, open}, we have n_med values from 0 to 8 and 10 frames. This dataset provides additional synthetic data with variations in hand position to increase the dataset's diversity. Each gesture is represented by 8 different ways, where the hand position was slightly modified between each sample. These real data were used as a basis for generating synthetic data. By using the functions in the files "multiply_files.txt" and "add_gaussian_noise.txt," the dataset was expanded and made more realistic by adding Gaussian noise to the images.</div> <div> </div> <div>Therefore, the ris_random and ris_optimized folders contain 10 frames × 8 measurements × 3 gestures = 240 files, while the ris_random2 and ris_optimized2 folders contain 1 × 8 measurements × 3 gestures = 24 files.</div> <div> </div> <h3>Functions</h3> <div>* **add_gaussian_noise.txt:** This script adds Gaussian noise to the images to simulate real-world conditions and improve the robustness of the model.</div> <div>* **compact_files_frames.txt:** This script combines multiple frames into a single image, which can be useful for certain types of analysis.</div>
Assessment of Tecfidera® in Radiologically Isolated Syndrome (RIS)
ClinicalTrials.gov study NCT02739542. IPD Sharing: NO. Countries: 1. Publications: 12.
FIGURES 1–7 in Description of the final instar larvae of Erythrodiplax atroterminata Ris and E. corallina (Brauer) (Odonata: Libellulidae)
FIGURES 1–7. Final stage larva of Erythrodiplax atroterminata Ris: 1, left mandible, inner view; 2, right mandible, inner view; 3, prementum, dorsal view; 4, left labial palp, dorsal view; 5, lateral spines on terga VIII–IX, dorsal view; 6, terminalia, lateral view; 7, terminalia, dorsal view. Scales 0.5 mm.
FIGURES 8–14 in Description of the final instar larvae of Erythrodiplax atroterminata Ris and E. corallina (Brauer) (Odonata: Libellulidae)
FIGURES 8–14. Final stage larva of Erythrodiplax corallina (Brauer): 8, left mandible, inner view; 9, right mandible, inner view; 10, prementum, dorsal view; 11, right labial palp, dorsal view; 12, lateral spines on terga VIII–IX; 13, terminalia, lateral view; 14, terminalia, dorsal view. Scales 0.5 mm.
FIGURE 3 in Description of the final instar larva of Homeoura lindneri (Ris, 1928) and redescription of the larva of H. chelifera (Selys, 1876) (Odonata: Coenagrionidae)
FIGURE 3. Homeoura chelifera. Argentina, Corrientes Prov., (a) (d) San Juan de Poriahú Ranch, (b) (c) El Dorado Ranch. (a) Prementum (dorsal view); (b) Right mandible (inner view); (c) Left mandible (inner view); (d) Lateral caudal lamella. Scales 0.5 mm.
FIGURE 4 in Description of the final instar larva of Homeoura lindneri (Ris, 1928) and redescription of the larva of H. chelifera (Selys, 1876) (Odonata: Coenagrionidae)
FIGURE 4. Homeoura chelifera. Argentina, Corrientes Prov., (a) (b) El Dorado Ranch, (c) (d) San Juan de Poriahú Ranch. (a) Ƥ terminalia (lateral view); (b) Ƥ terminalia (ventral view); (c) 3 terminalia (lateral view); (d) 3 terminalia (ventro-lateral view). Scales 0.5 mm.
FIGURE 2 in Description of the final instar larva of Homeoura lindneri (Ris, 1928) and redescription of the larva of H. chelifera (Selys, 1876) (Odonata: Coenagrionidae)
FIGURE 2. Homeoura lindneri. Argentina, Entre Ríos Prov., National Park Pre-Delta. (a) Lateral caudal lamella (tip curved back on itself); (b) Medial caudal lamella; (c) Ƥ terminalia (lateral view); (d) Ƥ terminalia (postero-ventral view). Scales 1.0 mm.
FIGURE 1 in Description of the final instar larva of Homeoura lindneri (Ris, 1928) and redescription of the larva of H. chelifera (Selys, 1876) (Odonata: Coenagrionidae)
FIGURE 1. Homeoura lindneri. Argentina, Entre Ríos Prov., National Park Pre-Delta. (a) Prementum (dorsal view); (b) Left labial palp (inner view); (c) Right mandible (inner view); (d) Left mandible (inner view). Scales 0.5 mm.
FIGURES 1–9 in Ephedraphis Hille Ris Lambers (Hemiptera: Aphididae), with a key to species and one new species from Mongolia
FIGURES 1–9. Ephedraphis ephedrae. Apterous viviparous female: 1. Body; 2. Antenna; 3. Dorsal view of head; 4. Ultimate rostral segment; 5. Mesosternal furca; 6. Siphunculus; 7. Cauda; 8. Genital plate; 16. Dorsal view of head; Alate viviparous female: 9. Antennal segments I–III.
FIGURES 27–41 in Ephedraphis Hille Ris Lambers (Hemiptera: Aphididae), with a key to species and one new species from Mongolia
FIGURES 27–41. Apterous viviparous female: 27–29. Dorsal view of head; 30–32. Processus terminalis, 33–35. Siphunculus, 36–38 Cauda, 39–41, Genital plate. Ephedraphis ephedrae: 27, 30, 33, 36, 39; Ephedraphis gobica: 28, 31, 35, 38, 40; Ephedraphis haloxylon: 29, 32, 34, 37, 41.
FIGURES 62–64. 62 in Ephedraphis Hille Ris Lambers (Hemiptera: Aphididae), with a key to species and one new species from Mongolia
FIGURES 62–64. 62. The habitats of Ephedraphis mongolica; 63. Host plant of Ephedraphis mongolica sp. n.: Ephedra sp. (Ephedraceae); 64. Colony of Ephedraphis mongolica sp. n.
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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OpenNeuro
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