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129 results for “AWS”
Figure 5 from: Meerow AW, Cano A (2019) Taxonomic novelties in Amaryllidaceae from the Department of Ancash, Peru, and a new combination in Clinanthus. PhytoKeys 131: 115-126. https://doi.org/10.3897/phytokeys.131.36160
Figure 5 Ismene parviflora. Drawing by Klei Sousa. A Habit B whole flower C whole flower cut open to show staminal corona and ovule number.
Figure 1 from: Meerow AW, Cano A (2019) Taxonomic novelties in Amaryllidaceae from the Department of Ancash, Peru, and a new combination in Clinanthus. PhytoKeys 131: 115-126. https://doi.org/10.3897/phytokeys.131.36160
Figure 1 A–CClinanthus inflatus. Photos by anonymous source, used with permission. A Inflorescence in habitat B bouquet of cut inflorescences C habit in nature D–FIsmene parviflora, photos by Asunción Cano D–E flowers F habit in cultivation.
Supplementary material 1 from: Bradshaw CJA, Hoskins AJ, Haubrock PJ, Cuthbert RN, Diagne C, Leroy B, Andrews L, Page B, Cassey P, Sheppard AW, Courchamp F (2021) Detailed assessment of the reported economic costs of invasive species in Australia. In: Zenni RD, McDermott S, García-Berthou E, Essl F (Eds) The economic costs of biological invasions around the world. NeoBiota 67: 511-550. https://doi.org/10.3897/neobiota.67.58834
Figures S1–S3 and Table S1
Figure 3 from: Meerow AW, Jost L, Oleas N (2015) Two new species of endemic Ecuadorean Amaryllidaceae (Asparagales, Amaryllidaceae, Amarylloideae, Eucharideae). PhytoKeys 48: 1-9. https://doi.org/10.3897/phytokeys.48.4399
Figure 3 - Eucharis ruthiana. A Plant in cultivation B–C Leaves B Adaxial view C Abaxial view D–H Flowers D Upper portion of inflorescence showing flower habit E Flower cut and spread to show staminal corona F Dorsal-ventral view of limb showing the spread of the androecium G Lateral view H Lateral view with three tepals removed to show androecium I Ovary dissected to show numerous, superposed, globose ovules J Distribution of Eucharis ruthiana in Ecuador (black stars). Map courtesy of www.freeworldmaps.net.
Figure 2 from: Meerow AW, Jost L, Oleas N (2015) Two new species of endemic Ecuadorean Amaryllidaceae (Asparagales, Amaryllidaceae, Amarylloideae, Eucharideae). PhytoKeys 48: 1-9. https://doi.org/10.3897/phytokeys.48.4399
Figure 2 - Species closely related to the new taxa described in this paper. A Stenomesson miniatum (Meerow 1148, FTG) B Stenomesson campanulatum (Meerow 2445 (NA) C Eucharis moorei (Meerow & Meerow 1141, FLAS).
Figure 1 from: Meerow AW, Jost L, Oleas N (2015) Two new species of endemic Ecuadorean Amaryllidaceae (Asparagales, Amaryllidaceae, Amarylloideae, Eucharideae). PhytoKeys 48: 1-9. https://doi.org/10.3897/phytokeys.48.4399
Figure 1 - Stenomesson ecuadorense. A–C Plants in habit on limestone cliff D–G Inflorescence and flowers. Arrow in G denotes androecial teeth interposed between the free filaments H Plants in fruit in habitat I Distribution in Ecuador (black star). Map courtesy of www.freeworldmaps.net. The apparent yellowish stripes in Fig. 1F are artifacts of camera flash reflectance and are not visible by eye.
Figure 1 from: Leiva S, Meerow AW (2016) A new species of Clinanthus from northern Peru (Asparagales, Amaryllidaceae, Amarylloideae, Clinantheae). PhytoKeys 63: 99-106. https://doi.org/10.3897/phytokeys.63.8895
Figure 1 - Clinanthus milagroanthus S. Leiva & Meerow. A Perigone dissected showing androecium B Cross-section of the capsule C Gynoecium D Flower at anthesis E Habit F Seed G Anther in dorsal view H Anther in ventral view I Anther in side view J Capsule. Drawing by S. Leiva & M. Leiva from S. & M. Leiva Leiva 5795 (HAO).
Figure 3 from: Leiva S, Meerow AW (2016) A new species of Clinanthus from northern Peru (Asparagales, Amaryllidaceae, Amarylloideae, Clinantheae). PhytoKeys 63: 99-106. https://doi.org/10.3897/phytokeys.63.8895
Figure 3 - Species related to Clinanthus milagroanthus. A Clinanthus mirabilis (S. Leiva et al. 2000, HAO) B–C Clinanthus viridiflorus (Weigend et al. 5701, NY) D Paramongaia weberbaueri (Meerow 2303, FTG).
Figure 2 from: Leiva S, Meerow AW (2016) A new species of Clinanthus from northern Peru (Asparagales, Amaryllidaceae, Amarylloideae, Clinantheae). PhytoKeys 63: 99-106. https://doi.org/10.3897/phytokeys.63.8895
Figure 2 - Clinanthus milagroanthus S. Leiva & Meerow. A Habit B Inflorescence showing spathe bracts C Flowers D Bulbs E Capsules F Known distribution of Clinanthus milagroanthus in Peru (red star). All photos of S. Leiva & M. Leiva 5795, HAO.
Pentax Airway Scope (AWS) Intubation
ClinicalTrials.gov study NCT00667693. IPD Sharing: Not stated. Countries: 1. Publications: 0.
CPEX-AW Dropsonde Data
CPEXAW-Dropsondes_1 is the dropsonde data files collected during the Convective Processes Experiment - Aerosols & Winds (CPEX-AW). Data collection for this product is complete.The Convective Processes Experiment – Aerosols & Winds (CPEX-AW) campaign was a joint effort between the US National Aeronautics and Space Administration (NASA) and the European Space Agency (ESA) with the primary goal of conducting a post-launch calibration and validation activities of the Atmospheric Dynamics Mission-Aeolus (ADM-AEOLUS) Earth observation wind Lidar satellite in St. Croix. CPEX-AW is a follow-on to the Convective Processes Experiment (CPEX) field campaign which took place in the summer of 2017. In addition to joint calibration/validation of ADM-AEOLUS, CPEX-AW studied the dynamics related to the Saharan Air Layer, African Easterly Waves and Jets, Tropical Easterly Jet, and deep convection in the InterTropical Convergence Zone (ITCZ). CPEX-AW science goals include:• Better understanding interactions of convective cloud systems and tropospheric winds as part of the joint NASA-ESA Aeolus Cal/Val effort over the tropical Atlantic;• Observing the vertical structure and variability of the marine boundary layer in relation to initiation and lifecycle of the convective cloud systems, convective processes (e.g., cold pools), and environmental conditions within and across the ITCZ;• Investigating how the African easterly waves and dry air and dust associated with Sahara Air Layer control the convectively suppressed and active periods of the ITCZ;• Investigating interactions of wind, aerosol, clouds, and precipitation and effects on long range dust transport and air quality over the western Atlantic.In order to successfully achieve the objectives of the campaign, NASA deployed its DC-8 aircraft equipped with an Airborne Third Generation Precipitation Radar (APR-3), Doppler Aerosol WiNd Lidar (DAWN), High Altitude Lidar Observatory (HALO), High Altitude Monolithic Microwave Integrated Circuit (MMIC) Sounding Radiometer (HAMSR), and dropsondes. This campaign aims to provide useful material to atmospheric scientists, meteorologists, lidar experts, air quality experts, professors, and students. The Atmospheric Science Data Center (ASDC) archives the dropsonde, HALO, and DAWN data products for CPEX-AW. For additional datasets please visit the Global Hydrometeorology Resource Center (GHRC).
Airborne Precipitation Radar 3rd Generation (APR-3) CPEX-AW
The Airborne Precipitation Radar 3rd Generation (APR-3) CPEX-AW dataset consists of radar reflectivity, Doppler velocity for all bands, linear depolarization ratio Ku-band, and normalized radar cross section measurements at Ka- and Ku- bands data collected by the APR-3 onboard the NASA DC-8 aircraft. These data were gathered during the Convective Processes Experiment – Aerosols & Winds (CPEX-AW) field campaign. CPEX-AW was a joint effort between the US National Aeronautics and Space Administration (NASA) and the European Space Agency (ESA) with the primary goal of conducting a post-launch calibration and validation activities of the Atmospheric Dynamics Mission-Aeolus (ADM-AEOLUS) Earth observation wind Lidar satellite in St. Croix. These data files are available from August 20, 2021 through September 4, 2021 in a MatLab file, with associated browse files in JPEG format.
CPEX-AW ADM-Aeolus Datasets
CPEXAW-ADM-Aeolus_1 is the ESA ADM-Aeolus Datasets for the Convective Processes Experiment - Aerosols & Winds (CPEX-AW) sub-orbital campaign. Data collection for this product is complete.The Convective Processes Experiment – Aerosols & Winds (CPEX-AW) campaign was a joint effort between the US National Aeronautics and Space Administration (NASA) and the European Space Agency (ESA) with the primary goal of conducting a post-launch calibration and validation activities of the Atmospheric Dynamics Mission-Aeolus (ADM-AEOLUS) Earth observation wind Lidar satellite in St. Croix. CPEX-AW is a follow-on to the Convective Processes Experiment (CPEX) field campaign which took place in the summer of 2017. In addition to joint calibration/validation of ADM-AEOLUS, CPEX-AW studied the dynamics related to the Saharan Air Layer, African Easterly Waves and Jets, Tropical Easterly Jet, and deep convection in the InterTropical Convergence Zone (ITCZ). CPEX-AW science goals include:• Better understanding interactions of convective cloud systems and tropospheric winds as part of the joint NASA-ESA Aeolus Cal/Val effort over the tropical Atlantic;• Observing the vertical structure and variability of the marine boundary layer in relation to initiation and lifecycle of the convective cloud systems, convective processes (e.g., cold pools), and environmental conditions within and across the ITCZ;• Investigating how the African easterly waves and dry air and dust associated with Sahara Air Layer control the convectively suppressed and active periods of the ITCZ;• Investigating interactions of wind, aerosol, clouds, and precipitation and effects on long range dust transport and air quality over the western Atlantic.In order to successfully achieve the objectives of the campaign, NASA deployed its DC-8 aircraft equipped with an Airborne Third Generation Precipitation Radar (APR-3), Doppler Aerosol WiNd Lidar (DAWN), High Altitude Lidar Observatory (HALO), High Altitude Monolithic Microwave Integrated Circuit (MMIC) Sounding Radiometer (HAMSR), and dropsondes. This campaign aims to provide useful material to atmospheric scientists, meteorologists, lidar experts, air quality experts, professors, and students. The Atmospheric Science Data Center (ASDC) archives the dropsonde, HALO, and DAWN data products for CPEX-AW. For additional datasets please visit the Global Hydrometeorology Resource Center (GHRC).
High Altitude MMIC Sounding Radiometer (HAMSR) CPEX-AW V1
The High Altitude MMIC Sounding Radiometer (HAMSR) CPEX-AW dataset includes measurements gathered by the HAMSR instrument during the Convective Processes Experiment – Aerosols & Winds (CPEX-AW) field campaign. CPEX-AW was a joint effort between the US National Aeronautics and Space Administration (NASA) and the European Space Agency (ESA) with the primary goal of conducting a post-launch calibration and validation activities of the Atmospheric Dynamics Mission-Aeolus (ADM-AEOLUS) Earth observation wind Lidar satellite in St. Croix, U.S. Virgin Islands. HAMSR has 25 spectral channels which are split into 3 bands to provide measurements that can be used to infer the 3-dimensional distribution of temperature, water vapor, and cloud liquid water profiles in the atmosphere, even in the presence of clouds. HAMSR is mounted in payload zone 3 near the nose of the Global Hawk NASA aircraft. Data is available from August 17, 2021 through September 4, 2021 in netCDF-3 format, with associated browse files in PNG format.
Figure 12 from: Baptista RLC, Castanheira PS, Oliveira GA, Prado AW (2020) Descriptions of three new species of jumping-spiders, genus Arnoliseus (Araneae, Salticidae), from Rio de Janeiro state, Brazil, with comments on their genital morphology and a key to species. Zoosystematics and Evolution 96(1): 73-90. https://doi.org/10.3897/zse.96.46509
Figure 12 Map with the type localities of the three new species.
Snow raw data: 2DVD, AWS and WG
<p>The 2-D video disdrometer (2DVD), automatic weather station (AWS) and weighing gauge (WG) data:</p> <p>2DVD raw data: V18025_1.ab V18027_1.ab V19039_1.ab;</p> <p>AWS: AWS_data.xlsx;</p> <p>WG: WG_data.xlsx.</p>
Data from Automatic Weather Station (AWS) measurements at Berlin–Mobile deployment (BEMOBI) from 2022-03-22 to 2022-08-13 [RAW]
<p>Original data files from AWS measurements.</p>
Figure 1 from: Pratiwi H, Kristina SA, Widayanti AW, Prabandari YS (2024) Mapping the research on healthcare students' empathy: Insights from a bibliometric analysis. Pharmacia 71: 1-8. https://doi.org/10.3897/pharmacia.71.e120826
Figure 1 Flow chart of the search process.
Figure 3 from: Pratiwi H, Kristina SA, Widayanti AW, Prabandari YS (2024) Mapping the research on healthcare students' empathy: Insights from a bibliometric analysis. Pharmacia 71: 1-8. https://doi.org/10.3897/pharmacia.71.e120826
Figure 3 A. The country co-authorship network; B. Mapping publications of co-authors
Figure 13 from: Lee S-G, Osborn AW, Ahn K-J (2016) A new species of Iotarphia Cameron (Coleoptera, Staphylinidae, Aleocharinae) from Tasmanian seacoasts, Australia. ZooKeys 632: 67-74. https://doi.org/10.3897/zookeys.632.10657
Figure 13 - Distribution map.
ScienceDex guides
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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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Annotated Behaviour and Observability Dataset (ABODe)
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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.