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123 results for “WATSON”
Mangrove leaf physiological response to local climate at Key Largo, Watson River Chickee, Taylor Slough, and Little Rabbit Key, South Florida (FCE) from July 2001 to August 2001
Determine the red mangrove leaf physiological response to the local climate to understand the local controls on plant physiology. Data were collected in the Key Largo Ranger Station, Watson River Chickee and Taylor Slough research Sites, South Florida.
Rubisco limited photosynthesis rates of Red mangrove leaves at Key Largo, Watson River Chickee, Taylor Slough, and Little Rabbit Key, South Florida (FCE) from July 2001 to August 2001
Determine the Rubisco limited carboxylation rates of red mangrove ( species Rhizophora mangle) leaves. This information will be used to model carbon sequestration by Red mangroves.
Light limited carboxylation rates of Red mangrove leaves at Key Largo, Watson River Chickee, Taylor Slough, and Little Rabbit Key, South Florida (FCE) from July 2001 to August 2001
Our goal is to determine light limited carboxylation rates of red mangrove (specie sRhizophora mangle) leaves. This information will be used to model carbon sequestration by Red mangroves.
Minnowtrap Data from Rookery Branch and the North, Watson, and Roberts Rivers National Park (FCE) from November 2004 to April 2008
This study examines temporal and spatial dynamics in the fish community of the oligohaline to mesohaline reaches of ecotonal creeks along the southwest region of Everglades National Park. Sampling is conducted at 15 mangrove creeks in two drainages: Rookery Branch and the North, Roberts, and Watson rivers. The sampling in Rookery Branch expands over a 12-km stretch of ecotonal mangrove creeks upstream of Tarpon Bay. Minnow traps are used to target small-bodied forage fish. Sampling started in the wet season of 2004, and has been conducted three times per year at these approximate times: November (wet season); February (transition); and April (dry season). In the Rookery Branch region, fish abundance varies markedly yearly and seasonally. Catches peak in the drier months, reflecting a pulse of movement by freshwater taxa into creeks as marshes upstream dry. The timing of this pulse is closely tied to the pattern of water recession in upstream marshes, and has important ramifications for wading bird prey availability.
Supraglacial lakes derived from Sentinel-1 SAR imagery over the Watson basin on the Greenland Ice Sheet.
<p>An experimental dataset produced for the 4D-Greenland project, one of the Polar+ projects funded by the European Space Agency. The dataset provides a classification of supraglacial lake extent, derived using Sentinel-1 SAR imagery, over the Watson case study site. The dataset is produced using a dynamic thresholding approach (Miles et al 2018). </p> <p>The dataset is produced for the period May 2017- Sept 2019. The temporal resolution of the dataset is approximately fortnightly (subject to methodological limitations) and is delivered as rasters in GeoTIFF format (epsg:3413). Raster pixels are denoted as: 0 where no surface water was detected; 1 where either HH or HV polarisation detected a backscatter signature representative of surface water; 2 where both HH and HV polarisations detected a backscatter signature representative of surface water; or 999 where the signal has been saturated and the output cannot distinguish if the signal is due to melt or other surface characteristics with the same backscattered signature. </p> <p>The naming convention indicates the original SAR tile used in the analysis and is identified by the sequence of fields described here:</p> <p><product_type>_<mission>_<mode>_<product>_<polarisation>_<starttime>_<endtime>_<orbitnumber>_<dataID>_<image>.fileextension</p> <p>For example:</p> <p>extent_S1B_EW_GRDH_1SDH_20180811T202931_20180811T203031_012220_016839_916F.tif</p>
WATSON Soil Tracer Experiment Data
<p>Data from the WATSON Soil Tracer Experiment (Tuscany, Italy, September 2023)</p> <p>This release includes:</p> <ul> <li>Images of brilliant blue dye from 4 soil transects</li> <li>Breakthrough curves of electrical conductivity measured through 9 soil moisture probes</li> <li>Isotope samples from 10 vertical soil cores, down to 70 cm</li> </ul> <p>The data is provided as part of the COST Action 19120 WATSON</p>
John R. Watson (w3315)
<b>-- <a href="https://doi.org/10.5281/zenodo.11582199">Documentation</a> --</b><br><br><u>Name</u>: John R. Watson<br><u>musiXplora-ID</u>: w3315<br><u>musiXplora-URI</u>: <a href="https://musixplora.de/mxp/w3315">https://musixplora.de/mxp/w3315</a><br><u>Gender</u>: m<br><u>Date of Birth</u>: 28 March 1952<br><u>Place of Birth</u>: Undefined<br><u>First Mentioned</u>: 1999<br><u>Sectors</u>: Museum<br><u>Professions (Historical)</u>: Orgelspezialist<br><u>Professions (Musical)</u>: Restaurator<br><u>Professions (Non-Musical)</u>: Historiker<br><u>Other Places of Activity</u>: Williamsburg/VA<br><br><br><br><u>Changelog</u>:<br> - v0.0.1: Initial Upload.<br>
Mars 2020 Perseverance SHERLOC WATSON camera pre-delivery characterization and calibration image data
<p>The data presented here include images acquired by the WATSON (Wide Angle Topographic Sensor for Operations and eNgineering) camera during pre-delivery characterization and calibration testing at Malin Space Science Systems (MSSS, San Diego, California, USA) in September and October 2019. They also include video documentation of the camera’s dust cover motion. WATSON is one of two imaging subsystems of the SHERLOC (Scanning Habitable Environments with Raman & Luminescence for Organics & Chemicals) instrument onboard NASA’s Mars 2020 Perseverance rover which landed in Jezero crater, Mars, in February 2021.</p> <p>These data accompany the instrument calibration and characterization report by Edgett et al. (2019) and the WATSON characteristics reported by Bhartia et al. (2021). The image data presented here are listed and described in the Appendix to Edgett et al. (2019), which is also available here with the data.</p> <p>References cited:</p> <p>Bhartia, R., L. W. Beegle, L. DeFlores, W. Abbey, J. Razzell Hollis, K. Uckert, B. Monacelli, K. S. Edgett, M. R. Kennedy, M. Sylvia, D. Aldrich, M. Anderson, S. A. Asher, Z. Bailey, K. Boyd, A. S. Burton, M. Caffrey, M. J. Calaway, R. Calvet, B. Cameron, M. A. Caplinger, B. L. Carrier, N. Chen, A. Chen, M. J. Clark, S. Clegg, P. G. Conrad, M. Cooper, K. N. Davis, B. Ehlmann, L. Facto, M. D. Fries, D. H. Garrison, D. Gasway, F. T. Ghaemi, T. G. Graff, K. P. Hand, C. Harris, J. D. Hein, N. Heinz, H. Herzog, E. Hochberg, A. Houck, W. F. Hug, E. H. Jensen, L. C. Kah, J. Kennedy, R. Krylo, J. Lam, M. Lindeman, J. McGlown, J. Michel, E. Miller, Z. Mills, M. E. Minitti, F. Mok, J. Moore, K. H. Nealson, A. Nelson, R. Newell, B. E. Nixon, D. A. Nordman, D. Nuding, S. Orellana, M. Pauken, G. Peterson, R. Pollock, H. Quinn, C. Quinto, M. A. Ravine, R. D. Reid, J. Riendeau, A. J. Ross, J. Sackos, J. A. Schaffner, M. Schwochert, M. O Shelton, R. Simon, C. L. Smith, P. Sobron, K. Steadman, A. Steele, D. Thiessen, V. D. Tran, T. Tsai, M. Tuite, E. Tung, R. Wehbe, R. Weinberg, R. H. Weiner, R. C. Wiens, K. Williford, C. Wollonciej, Y.-H. Wu, R. A. Yingst, J. Zan (2021) Perseverance’s Scanning Habitable Environments with Raman and Luminescence for Organics and Chemicals (SHERLOC) investigation, Space Science Reviews 217, 58. https://doi.org/10.1007/s11214-021-00812-z</p> <p>Edgett, K. S., M. A. Caplinger, M. A. Ravine (2019) Mars 2020 Perseverance SHERLOC WATSON Camera Pre-delivery Characterization and Calibration Report, Malin Space Science Systems, San Diego, California. https://doi.org/10.13140/RG.2.2.18447.00165</p>
Fig. 5. Fissurellidae 2. Puncturella agger Watson, 1883. A–C. BANGAL 0711, GOC6, 903 m, 4.0 in The Mollusca of Galicia Bank (NE Atlantic Ocean)
Fig. 5. Fissurellidae 2. Puncturella agger Watson, 1883. A–C. BANGAL 0711, GOC6, 903 m, 4.0 mm. D–F. SEAMOUNT 1, DW116, 985–1000 m, 4.0 mm, SEM micrographs of protoconch and sculpture. G–I. SEAMOUNT 1, DW116, 985–1000 m, 4.4 mm. J–L. Syntype (NHMUK 1887.2.9.130), Challenger expedition, Station 24 (18°38′30″ N, 65°5′30″ W) off Culebra Island, West Indies, 390 fathoms [713 m], 4.1 mm, courtesy and © NHMUK. M–N. Galicia Bank, campaigns 1980‒1981 by Instituto de Investigaciones Pesqueras de Vigo-CSIC, 590–900 m, same specimen figured as Puncturella profundi (Jeffreys, 1887) in Rolán Mosquera & Pérez-Gándaras (1981: 6, pl. 1 fig. 4), and Rolán Mosquera (1983: 68), 6.0 mm. Scale bars: A–D, G–M = 1 mm; E–F = 200 µm.
Dataset: Willis Towers Watson Public Limited Company (WTW) Stock Performance
This dataset provides historical stock market performance data for specific companies. It enables users to analyze and understand the past trends and fluctuations in stock prices over time. This information can be utilized for various purposes such as investment analysis, financial research, and market trend forecasting.
Fig. 3. Acryptolaria minuta Watson, 2003 in Fig. 4 in Positive association between PTN polymorphisms and schizophrenia in Northeast Chinese Han population.
Fig. 3. Acryptolaria minuta Watson, 2003: A, hydrothecae. Acryptolaria operculata Stepanjants, 1979; B, distal part of hydrotheca. Acryptolaria seamountensis sp. nov.: C−F, hydrothecae and hydrothecal disposition; G, putative macrobasic mastigophore (arrow). Acryptolaria sp.: H, hydrothecae and hydrothecal disposition. Scale bars: A−F, H = 200 μm; G = 10 μm.
IBM Watson's NLP model for annotating potato literature.
<p>Archived files(.zip) of the IBM Watson's domain specific supervised NLP model for annotating potato literature. Created with the help of <a href="https://www.ibm.com/watson/services/knowledge-studio/">Watson Knowledge Studio</a> </p>
Figure 154-159 in Hesperiidae of Rondônia, Brazil: Porphyrogenes Watson (Lepidoptera: Pyrginae: Eudamini), with descriptions of new species from Central and South America
Figure 154-159. Female genitalia of Porphyrogenes (ventral view). 154) P. omphale, PANAMA (GTA #8908); 155) P. pausias, BRAZIL: Rondônia (GTA #8885); 156) P. sororcula, BRAZIL: Amazonas (GTA #4426); 157) P. probus, BRAZIL: Rondônia (GTA #4425); 158) P. vulpecula, BRAZIL: Amazonas (GTA #13796); 159) P. spanda, VENEZUELA (GTA #13797).
Figure 152-153 in Hesperiidae of Rondônia, Brazil: Porphyrogenes Watson (Lepidoptera: Pyrginae: Eudamini), with descriptions of new species from Central and South America
Figure 152-153. Male genitalia of Porphyrogenes; shown are lateral view of uncus, gnathos, tegumen, and saccus; dorsal view of uncus and tegumen; ventral view of uncus and gnathos; juxta; lateral view (with extended vesica) and often dorsal view of aedeagus; internal lateral view of right valva (inset shows the flattened harpe). 152) Porphyrogenes undescribed species, COSTA RICA (GTA #13917); 153) P. speciosus, holotype, COSTA RICA (GTA #13985).
Figure 160-165 in Hesperiidae of Rondônia, Brazil: Porphyrogenes Watson (Lepidoptera: Pyrginae: Eudamini), with descriptions of new species from Central and South America
Figure 160-165. Female genitalia of Porphyrogenes (ventral view). 160) P. eudemus, PANAMA (GTA #8902); 161) Porphyrogenes unassociated female #3, PANAMA (GTA #8907); 162) Porphyrogenes unassociated female #4, PANAMA (GTA #8906); 163) Porphyrogenes unassociated female #1, ECUADOR (GTA #13986); 164) Porphyrogenes unassociated female #5, COSTA RICA (GTA #13921); 165) Porphyrogenes unassociated female #2, BRAZIL: Rondônia (GTA #13993).
Figure 140-145 in Hesperiidae of Rondônia, Brazil: Porphyrogenes Watson (Lepidoptera: Pyrginae: Eudamini), with descriptions of new species from Central and South America
Figure 140-145. Male genitalia of Porphyrogenes; shown are lateral view of uncus, gnathos, tegumen, and saccus; dorsal view of uncus and tegumen; ventral view of uncus and gnathos; juxta; lateral view (with extended vesica) and often dorsal view of aedeagus; internal lateral view of right valva (inset shows the flattened harpe). 140) P. sororcula, BRAZIL: Rondônia (GTA #3493); 141) P. spanda (also including posterior view of harpe), BRAZIL: Rondônia (GTA #3225); 142) P. stresa (also including posterior view of harpe), BRAZIL: Rondônia (GTA #3927); 143) P. zohra (also including posterior view of harpe), HONDURAS (GTA #8903); 144) P. convexus, holotype, BRAZIL: Rondônia (GTA #2760); 145) P. splendidus (also including interior view of left valva), holotype, BOLIVIA (GTA #4182).
Figure 134-139 in Hesperiidae of Rondônia, Brazil: Porphyrogenes Watson (Lepidoptera: Pyrginae: Eudamini), with descriptions of new species from Central and South America
Figure 134-139. Male genitalia of Porphyrogenes; shown are lateral view of uncus, gnathos, tegumen, and saccus; dorsal view of uncus and tegumen; ventral view of uncus and gnathos; juxta; lateral view (with extended vesica) and often dorsal view of aedeagus; internal lateral view of right valva (inset shows the flattened harpe). 134) P. boliva, BRAZIL: Rondônia (GTA #3499); 135) P. ferruginea, BRAZIL: Amazonas (GTA #4184); 136) P. despecta, BRAZIL: Pará (GTA #7587); 137) P. omphale, BRAZIL: Rondônia (GTA #3229); 138) P. pausias, BRAZIL: Rondônia (GTA #4212); 139) P. probus, BRAZIL: Rondônia (GTA #6700).
Figure 129-133 in Hesperiidae of Rondônia, Brazil: Porphyrogenes Watson (Lepidoptera: Pyrginae: Eudamini), with descriptions of new species from Central and South America
Figure 129-133. Venation and some secondary sexual characters of male Porphyrogenes. Shown is ventral surface including modification of vein 2A and extent of speculum on ventral forewing (irregular line in CuA 2 -2A and anal cell) and origins of veins on hindwing. Insert is of anterior portion of dorsal hindwing showing hair-like tufts. 129) P. sparus, paratype, BRAZIL: Rondônia (GTA #2806); 130) P. specularis, holotype, BRAZIL: Rondônia (GTA #3589); 131) P. spina, holotype, PANAMA (GTA #8905); 132) P. sporta, holotype, COLOMBIA (GTA #4180); 133) P. speciosa, holotype, COSTA RICA (GTA #13985).
Figure 124-128 in Hesperiidae of Rondônia, Brazil: Porphyrogenes Watson (Lepidoptera: Pyrginae: Eudamini), with descriptions of new species from Central and South America
Figure 124-128. Venation and some secondary sexual characters of male Porphyrogenes. Shown is ventral surface including modification of vein 2A and extent of speculum on ventral forewing (irregular line in CuA -2A and anal 2 cell) and origins of veins on hindwing. Insert is of anterior portion of dorsal hindwing showing hair-like tufts. 124) P. zohra, HONDURAS (GTA #8903); 125) P. convexus, holotype, BRAZIL: Rondônia (GTA #2760); 126) P. splendidus, holotype, BOLIVIA (GTA #4182); 127) P. simulator, holotype, BOLIVIA (GTA #4181); 128) P. spadix, holotype, BRAZIL: Rondônia (GTA #3894).
Figure 115-123 in Hesperiidae of Rondônia, Brazil: Porphyrogenes Watson (Lepidoptera: Pyrginae: Eudamini), with descriptions of new species from Central and South America
Figure 115-123. Venation and some secondary sexual characters of male Porphyrogenes. Shown is ventral surface including modification of vein 2A and extent of speculum on ventral forewing (irregular line in CuA 2 -2A and anal cell) and origins of veins on hindwing. Insert is of anterior portion of dorsal hindwing showing hair-like tufts. 115) P. boliva, BRAZIL: Rondônia (GTA #1616); 116) P. ferruginea, BRAZIL: Amazonas (GTA #4184); 117) P. despecta, BRAZIL: Pará (GTA #7587); 118) P. pausias, BRAZIL: Rondônia (GTA #4212); 119) P. omphale, BRAZIL: Rondônia (no number); 120) P. probus (GTA #6700); 121) P. sororcula, BRAZIL: Rondônia (GTA #8879); 122) P. spanda, BRAZIL: Rondônia (GTA #3225); 123) P. stresa, BRAZIL: Rondônia (GTA #3927).
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