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89 results for “gome”
Figs 2A-F in Antiproliferative and genotoxic potential from extracts and fractions of Richardia brasiliensis Gomes (Rubiaceae) by the Allium cepa L. test system
Figs 2A-F. Meristem cells of Allium cepa root strain submitted to treatments with extracts and fractions of Richardia brasiliensis. A. Cell binucleada; B. cell with micronucleus (long black arrow); C. Disorganized prophase (short black arrow); D. Break chromosome (short arrow unfilled) in metaphase; E. Anaphase bridge; F. Break chromosome in telophase. Bars = 10 µm.
Fig. 2 in Diet-morphology relationship in the stream-dwelling characid Deuterodon stigmaturus (Gomes, 1947) (Characiformes: Characidae) is partially conditioned by ontogenetic development
Fig. 2. Principal Coordinate Analysis (PCoA) showing PCo1 and PCo2 based on Bray-Curtis dissimilarities of diet composition of 75 individuals of the stream-dwelling characid Deuterodon stigmaturus. Food items name abbreviations are listed in Table 3.
Fig. 1 in Diet-morphology relationship in the stream-dwelling characid Deuterodon stigmaturus (Gomes, 1947) (Characiformes: Characidae) is partially conditioned by ontogenetic development
Fig. 1. Location of the sampling site of Deuterodon stigmaturus (black dot) in the Paraíso stream, a tributary of the Mampituba River in Southern Brazil coastal region, between Rio Grande do Sul (RS) and Santa Catarina (SC) states.
Fig. 5 in Diet-morphology relationship in the stream-dwelling characid Deuterodon stigmaturus (Gomes, 1947) (Characiformes: Characidae) is partially conditioned by ontogenetic development
Fig. 5. Relationships between diet composition of Deuterodon stigmaturus summarized by the PCo1 of a Principal Coordinate Analysis (PCoA) and intestine length independent of standard length (ILresiduals). Higher PCo1 values indicate a greater proportion of terrestrial plants (Terrplant) and lower values indicate a greater proportion of filamentous algae (Filalgae). Sampling months (dashed lines) were used as random effect variable and IL
Fig. 4 in Diet-morphology relationship in the stream-dwelling characid Deuterodon stigmaturus (Gomes, 1947) (Characiformes: Characidae) is partially conditioned by ontogenetic development
Fig. 4. Relationships between diet composition of Deuterodon stigmaturus summarized by the PCo1 of a Principal Coordinate Analysis (PCoA) and the standard length (SL) of individuals. Higher values of PCo1 indicate a greater proportion of terrestrial plants (Terrplant) and lower values indicate a greater proportion of filamentous algae (Filalgae) ingested by individuals. Sampling months (dashed lines) were used as random effect variable and SL was used as a fixed effect (solid line) variable to fit a linear mixed-effects model.
TCSIF: A temporally consistent global GOME-2A SIF dataset with correction of sensor degradation
<p><strong>TCSIF: A temporally consistent global GOME-2A SIF dataset with correction of sensor degradation</strong></p> <p> </p> <p><strong>Description:</strong></p> <p>The global monthly GOME-2A SIF dataset (2007–2021) with correction of temporal degradation. The corrected global GOME-2 SIF dataset can be obtained in two types. The daily level2 dataset is provided in hdf5 format(compressed in the zip files named "{Year}{Quater}.zip"). The name of the hdf5 files was SIF_daily_YYYYMMDD.h5, YYYY, MM, and DD represent the year, month, and date, respectively. The level3 datasets which were aggregated monthly from the level2 dataset, have a spatial resolution of 0.5°and were saved in TIFF format in chronological order from 2007 to 2021 (compressed in the file "Level3.zip"). The name of the files was SIFpar_evi_monthly _YYYYMM.tif, where SIF was product type, par, and evi represented upscaled parameters, monthly represented temporal scale, YYYY and MM was the year and month, respectively. The SIF output was stored in the hdf5 files along with other variables of interest for further processing and visualization. See the appendix for the structure of the hdf5 file.</p> <p> </p> <p><strong>cloud_fraction</strong><strong>[float]</strong>:</p> <p>Description: Effective cloud fraction derived from GOME-2 Level1B product.</p> <p>Units: none</p> <p><strong>latitude</strong><strong>[float]</strong>:</p> <p>Description: Pixel center latitude.</p> <p>Units: degrees N</p> <p><strong>longitude</strong><strong>[float]</strong>:</p> <p>Description: Pixel center longitude.</p> <p>Units: degrees E</p> <p><strong>latitude_bounds</strong><strong>[float]</strong>:</p> <p>Description: Latitude of the boundary corners for each pixel.</p> <p>Units: degrees N</p> <p><strong>longitude _bounds</strong><strong>[float]</strong>:</p> <p>Description: Longitude of the boundary corners.</p> <p>Units: degrees E</p> <p><strong>SIF_740</strong><strong>[float]</strong>:</p> <p>Description: SIF signal at 740nm retrieved using the 735–758 nm fitting window.</p> <p>Units: mW m<sup>-2</sup> nm<sup>-1</sup> sr<sup>-1</sup></p> <p><strong>SIF_daily</strong><strong> [float]</strong>:</p> <p>Description: SIF signal at 740nm with correction of day-length.</p> <p>Units: mW m<sup>-2</sup> nm<sup>-1</sup> sr<sup>-1</sup></p> <p><strong>Sigma_i</strong><strong>[float]</strong>:</p> <p>Description: The squre of single retrieval error of SIF_740.</p> <p>Units: (mW m<sup>-2</sup> nm<sup>-1</sup> sr<sup>-1</sup>)<sup>2</sup></p> <p><strong>Solar_zenith_angle</strong><strong> [float]</strong>:</p> <p>Description: Solar zenith angle.</p> <p>Units: degrees</p> <p><strong>Solar_azimuth_angle</strong><strong> [float]</strong>:</p> <p>Description: Solar azimuth angle.</p> <p>Units: degrees</p> <p><strong>Viewing _zenith_angle</strong><strong> [float]</strong>:</p> <p>Description: Viewing zenith angle.</p> <p>Units: degrees</p> <p><strong>Viewing_azimuth_angle</strong><strong>[float]</strong>:</p> <p>Description: Viewing azimuth angle.</p> <p>Units: degrees</p> <p><strong>chi2</strong><strong>[float]</strong>:</p> <p>Description: The reduced chi-square value calculated based on the the fitting residuals.</p> <p>Units: None</p> <p><strong>Rad_NIR</strong><strong>[float]</strong>:</p> <p>Description: The average radiance within the 735~758 nm window</p> <p>Units: mW m<sup>-2</sup> nm<sup>-1</sup> sr<sup>-1</sup></p> <p><strong>ps_NIR</strong><strong>[float]</strong>:</p> <p>Description: The average reflectance within at around 680 nm ().</p> <p>Units: None</p> <p><strong>ps_red</strong><strong>[float]</strong>:</p> <p>Description: The average reflectance within the 665~680 nm window</p> <p>Units: None</p> <p><strong>NDVI</strong><strong>[float]</strong>:</p> <p>Description: Calculated by the TOA reflectance at red band (around 680 nm) and near-infrared band (around 780nm).</p> <p>Units: None</p> <p><strong>QA</strong><strong>[int]</strong>:</p> <p>Description: Quality_flag.</p> <p>0= Bad (ineffective original data)</p> <p>1= Good (passed all quality-filtering criteria)</p> <p>2= Good and the cloud fraction is lower than 0.3</p> <p>Units:None</p>
TCSIF: A temporally consistent global GOME-2A SIF dataset with correction of sensor degradation
<p><strong>TCSIF: A temporally consistent global GOME-2A SIF dataset with correction of sensor degradation</strong></p> <p> </p> <p><strong>Description:</strong></p> <p>The global monthly GOME-2A SIF dataset (2007–2021) with correction of temporal degradation. The corrected global GOME-2 SIF dataset can be obtained in two types. The daily level2 dataset is provided in hdf5 format(compressed in the zip files named "{Year}{Quater}.zip"). The name of the hdf5 files was SIF_daily_YYYYMMDD.h5, YYYY, MM, and DD represent the year, month, and date, respectively. The level3 datasets which were aggregated monthly from the level2 dataset, have a spatial resolution of 0.5°and were saved in TIFF format in chronological order from 2007 to 2021 (compressed in the file "Level3.zip"). The name of the files was SIFpar_evi_monthly _YYYYMM.tif, where SIF was product type, par, and evi represented upscaled parameters, monthly represented temporal scale, YYYY and MM was the year and month, respectively. The SIF output was stored in the hdf5 files along with other variables of interest for further processing and visualization. See the appendix for the structure of the hdf5 file.</p> <p> </p> <p><strong>cloud_fraction</strong><strong>[float]</strong>:</p> <p>Description: Effective cloud fraction derived from GOME-2 Level1B product.</p> <p>Units: none</p> <p><strong>latitude</strong><strong>[float]</strong>:</p> <p>Description: Pixel center latitude.</p> <p>Units: degrees N</p> <p><strong>longitude</strong><strong>[float]</strong>:</p> <p>Description: Pixel center longitude.</p> <p>Units: degrees E</p> <p><strong>latitude_bounds</strong><strong>[float]</strong>:</p> <p>Description: Latitude of the boundary corners for each pixel.</p> <p>Units: degrees N</p> <p><strong>longitude _bounds</strong><strong>[float]</strong>:</p> <p>Description: Longitude of the boundary corners.</p> <p>Units: degrees E</p> <p><strong>SIF_740</strong><strong>[float]</strong>:</p> <p>Description: SIF signal at 740nm retrieved using the 735–758 nm fitting window.</p> <p>Units: mW m<sup>-2</sup> nm<sup>-1</sup> sr<sup>-1</sup></p> <p><strong>SIF_daily</strong><strong> [float]</strong>:</p> <p>Description: SIF signal at 740nm with correction of day-length.</p> <p>Units: mW m<sup>-2</sup> nm<sup>-1</sup> sr<sup>-1</sup></p> <p><strong>Sigma_i</strong><strong>[float]</strong>:</p> <p>Description: The squre of single retrieval error of SIF_740.</p> <p>Units: (mW m<sup>-2</sup> nm<sup>-1</sup> sr<sup>-1</sup>)<sup>2</sup></p> <p><strong>Solar_zenith_angle</strong><strong> [float]</strong>:</p> <p>Description: Solar zenith angle.</p> <p>Units: degrees</p> <p><strong>Solar_azimuth_angle</strong><strong> [float]</strong>:</p> <p>Description: Solar azimuth angle.</p> <p>Units: degrees</p> <p><strong>Viewing _zenith_angle</strong><strong> [float]</strong>:</p> <p>Description: Viewing zenith angle.</p> <p>Units: degrees</p> <p><strong>Viewing_azimuth_angle</strong><strong>[float]</strong>:</p> <p>Description: Viewing azimuth angle.</p> <p>Units: degrees</p> <p><strong>chi2</strong><strong>[float]</strong>:</p> <p>Description: The reduced chi-square value calculated based on the the fitting residuals.</p> <p>Units: None</p> <p><strong>Rad_NIR</strong><strong>[float]</strong>:</p> <p>Description: The average radiance within the 735~758 nm window</p> <p>Units: mW m<sup>-2</sup> nm<sup>-1</sup> sr<sup>-1</sup></p> <p><strong>ps_NIR</strong><strong>[float]</strong>:</p> <p>Description: The average reflectance within at around 780 nm.</p> <p>Units: None</p> <p><strong>ps_red</strong><strong>[float]</strong>:</p> <p>Description: The average reflectance within the 665~680 nm window</p> <p>Units: None</p> <p><strong>NDVI</strong><strong>[float]</strong>:</p> <p>Description: Calculated by the TOA reflectance at red band (around 680 nm) and near-infrared band (around 780nm).</p> <p>Units: None</p>
Degradation corrected 0.05 degree GOME-2 SIF datasets in Amazon area
<p>An 8-day instrument degradation corrected 0.05 degree GOME-2 SIF dataset in Amazon area from 2010 to 2018. PK dataset from the spatially downscaled sun-induced fluorescence global product proposed by Gregory Duveiller in 2020 is corrected based on a pseudo-invariant method and then masked. Mean value composite method is used to produce monthly data. Files are organized in TIF format.</p>
A global GOME-2 monthly SIF dataset (2007-2018) with correction of temporal degradation
<p>Monthly instrument degradation corrected 0.5 degree GOME-2 SIF datasets on a global scale from 2007 to 2018. The sun-induced fluorescence global product Joiner et al. (2017) is firstly uscaled to a monthly resolution using a APAR based algorithm by Hu et al. (2018). Then, the mothly GOME-2 SIF was corrected based on a pseudo-invariant method to eliminate the temporal degradation of GOME-2 satellite sensor. Files are organized in TIF format.</p>
Gome - Cap Re
Gowe, Gomo district in the center of Nias, Indonesia, 16th - 17th century, stone. Musée du Cinquantenaire (Brussels, Belgium). Made with Capturing Reality. Sculpture that commemorates the power or (new) rank of a person and increases the prestige of the person concerned. For more updates, please consider to follow me on Twitter at @GeoffreyMarchal. Source: Objaverse 1.0 / Sketchfab
An improved downscaled sun-induced chlorophyll fluorescence (DSIF) product of GOME-2 dataset
<p>The downscaled solar-induced chlorophyll fluorescence (DSIF) product (wavelength at 740 nm) had a spatial resolution of 0.05° and a temporal resolution of 8 days.</p> <p>The difference between version 1:</p> <p>(1) Before spatial downscaling, we upscaled SIF from instantaneous clear-sky observations to all-sky sums (according to https://doi.org/10.1016/j.agrformet.2021.108439), while use cos (SZA) instead of PAR.</p> <p>(2) After spatial downscaling, we used the ratio of ERA5 PAR to PAR under clear-sky to convert clear-sky SIF to all-sky SIF.</p> <p> </p>
FIGURE. Drosera amazonica (a, b): a, habit (Novo Airão, AM); b, habit with flower (Parque Nacional do Viruá, RR). Drosera ascendens (c–e): c, habit; d, detail of the indumentum of the scape; e, flower (Parque Nacional das Sempre-Vivas, MG). Drosera biflora (f, g): f, habit; g, habit from above (Barcelos, AM). Photo credits: a by Arthur Monteiro Gomes; b by Pedro Viana; c–e by PMG; f, g by Anita Stival dos Santos. in A synopsis of the genus Drosera (Droseraceae) in Brazil
FIGURE. Drosera amazonica (a, b): a, habit (Novo Airão, AM); b, habit with flower (Parque Nacional do Viruá, RR). Drosera ascendens (c–e): c, habit; d, detail of the indumentum of the scape; e, flower (Parque Nacional das Sempre-Vivas, MG). Drosera biflora (f, g): f, habit; g, habit from above (Barcelos, AM). Photo credits: a by Arthur Monteiro Gomes; b by Pedro Viana; c–e by PMG; f, g by Anita Stival dos Santos.
CDMF Pesquisa - Eduardo de Oliveira Gomes
<p>Eduardo de Oliveira Gomes, doutorando no Laboratório de Química Teórica e Computacional da Universitat Jaume I (UJI) e integrante do Centro de Desenvolvimento de Materiais Funcionais (CDMF), fala de sua pesquisa sobre as propriedades do molibdato de estanho.</p> <p>CDMF Pesquisa - Eduardo de Oliveira Gomes de <a href="https://youtu.be/NIaWSwXB2tU">https://youtu.be/NIaWSwXB2tU</a> está licenciado com uma Licença <a href="http://creativecommons.org/licenses/by-nc-nd/4.0/">Creative Commons - Atribuição-NãoComercial-SemDerivações 4.0 Internacional</a>. Podem estar disponíveis autorizações adicionais às concedidas no âmbito desta licença em <a href="https://www.labi.ufscar.br/">https://www.labi.ufscar.br/</a>.</p>
CDMF Pesquisa - Anderson de Azevedo Gomes Santiago
<p> </p> <p>Anderson de Azevedo Gomes Santiago, doutorando em Ciência e Engenharia de Materiais pela Universidade Federal do Rio Grande do Norte (UFRN) e integrante do Centro de Desenvolvimento de Materiais Funcionais (CDMF), fala de sua pesquisa sobre o desenvolvimento e aprimoramento de óxidos metálicos semicondutores.</p> <p>CDMF Pesquisa - Anderson de Azevedo Gomes Santiago de <a href="https://youtu.be/YWlND1fgSI8">https://youtu.be/YWlND1fgSI8</a> está licenciado com uma Licença <a href="http://creativecommons.org/licenses/by-nc-nd/4.0/">Creative Commons - Atribuição-NãoComercial-SemDerivações 4.0 Internacional</a>. Podem estar disponíveis autorizações adicionais às concedidas no âmbito desta licença em <a href="https://www.labi.ufscar.br/">https://www.labi.ufscar.br/</a>.</p>
Figure 2 from: Sousa FB, Milanin T, Morandini AC, Espinoza LL, Flores-Gonzales A, Gomes AL.S, Matoso DA, Mathews PD (2021) Molecular diagnostic based on 18S rDNA and supplemental taxonomic data of the cnidarian coelozoic Ceratomyxa (Cnidaria, Myxosporea) and comments on the intraspecific morphological variation. Zoosystematics and Evolution 97(2): 307-314. https://doi.org/10.3897/zse.97.64769
Figure 2 Transmission electron microscopy images of Ceratomyxa amazonensis isolated of Symphysodon discus from the Unini River, Amazonas State, Brazil. a. Myxospore showing two sub-spherical polar capsules and sporoplasm (sp) occupying most of the myxospore volume; b. Detail of the apical suture (black arrow) and sporoplasmosomes (arrowheads); c. Detail of lateral suture (black arrow); d. Polar capsule displaying still uncoiled internal polar tubule (black arrow). Scale bars: 2 µm (a); 1 µm (c); 500 nm (b, d).
Figure 1 from: Sousa FB, Milanin T, Morandini AC, Espinoza LL, Flores-Gonzales A, Gomes AL.S, Matoso DA, Mathews PD (2021) Molecular diagnostic based on 18S rDNA and supplemental taxonomic data of the cnidarian coelozoic Ceratomyxa (Cnidaria, Myxosporea) and comments on the intraspecific morphological variation. Zoosystematics and Evolution 97(2): 307-314. https://doi.org/10.3897/zse.97.64769
Figure 1 Light photomicrographs of Ceratomyxa amazonensis plasmodia. a, b. Slightly elongated plasmodia showing mature myxospores (white asterisks) and few early sporogonic stages (arrows); c. Spherical plasmodium with two slightly crescent-shaped mature myxospores (ms) and containing early sporogonic stages (arrows); d. Differential interference contrast microscopy snapshot of a slightly crescent-shaped mature myxospore. Scale bars: 10 µm.
Figure 5 from: Schiller EK, Wiltschke-Schrotta K, Häffner E, Buschbom J, Leliaert F, Zimkus BM, Dickie JB, Gomes SR, Lyal CH.C, Mulcahy D, Paton A, Droege G (2024) Permits, contracts and their terms for biodiversity specimens. Research Ideas and Outcomes 10: e114366. https://doi.org/10.3897/rio.10.e114366
Figure 5 Generalised decision model for a single atomized step, that is, a functional event that cannot be further divided. The decision model arises by integrating conditions (e.g. the terms from the typology) into the basic transactional model. The model can be set into the background of a physical or digital infrastructure (e.g. a collection institution or digital platform) that publicly presents open data to the world.
Figure 4 from: Schiller EK, Wiltschke-Schrotta K, Häffner E, Buschbom J, Leliaert F, Zimkus BM, Dickie JB, Gomes SR, Lyal CH.C, Mulcahy D, Paton A, Droege G (2024) Permits, contracts and their terms for biodiversity specimens. Research Ideas and Outcomes 10: e114366. https://doi.org/10.3897/rio.10.e114366
Figure 4 ODRL information model (Diagram copied from "ODRL Information Model 2.2", Figure 1, https://www.w3.org/TR/odrl-model/; Copyright © 2018 W3C® (MIT, ERCIM, Keio, Beihang). W3C liability, trademark and permissive document license rules apply, see https://www.w3.org/Consortium/Legal/2015/copyright-software-and-document).
Figure 3 from: Schiller EK, Wiltschke-Schrotta K, Häffner E, Buschbom J, Leliaert F, Zimkus BM, Dickie JB, Gomes SR, Lyal CH.C, Mulcahy D, Paton A, Droege G (2024) Permits, contracts and their terms for biodiversity specimens. Research Ideas and Outcomes 10: e114366. https://doi.org/10.3897/rio.10.e114366
Figure 3 The core elements of the PROV standard and their structure (recreated from Thessen et al. 2019 Appendix A, fig. S1, CC-BY 4.0; based on the PROV Model Primer, Copyright ©2013 W3C® (MIT, ERCIM, Keio, Beihang), All Rights Reserved. W3C liability rules, trademark rules and document use rules apply.)
Figure 22 from: Schiller EK, Wiltschke-Schrotta K, Häffner E, Buschbom J, Leliaert F, Zimkus BM, Dickie JB, Gomes SR, Lyal CH.C, Mulcahy D, Paton A, Droege G (2024) Permits, contracts and their terms for biodiversity specimens. Research Ideas and Outcomes 10: e114366. https://doi.org/10.3897/rio.10.e114366
Figure 22 EXAMPLE CODE 17: The policy life-cycle: an offer (with links to PROV objects) and request (with links to PROV objects) evolve into a contractual agreement as the basis for a machine-actionable assessment, including a final human decision step, in preparation of and leading up to a loan event.
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