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179 results for “niños”
Figure 5 from: Sánchez-Reyes UJ, Niño-Maldonado S, Clark SM, Barrientos-Lozano L, Almaguer-Sierra P (2019) Successional and seasonal changes of leaf beetles and their indicator value in a fragmented low thorn forest of northeastern Mexico (Coleoptera, Chrysomelidae). ZooKeys 825: 71-103. https://doi.org/10.3897/zookeys.825.30455
Figure 5 - Chrysomelidae species with significant indicator value of successional time in a low thorn forest fragment in northeastern Mexico. A Acallepitrix sp. 1 B Epitrix sp. 5 C Acrocyum dorsalis Jacoby, 1885 D Alagoasa jacobiana (Horn, 1889) E Asphaera sp. 1 F Babia tetraspilota texana Schaeffer, 1933 G Brachycoryna pumila Guérin-Méneville, 1844 H Centralaphthona diversa (Baly, 1877) I Chaetocnema sp. 1 J Colaspis townsendi Bowditch, 1921 K Cryptocephalus trizonatus Suffrian, 1858 L Cyclotrypema furcata (Olivier, 1808). Scale bar: 1 mm.
Data of the article "Predicting the 2023/24 El Niño from a multi-scale and global perspective" that published in Communications Earth & Environment
<p>MATLAB data of the article "Predicting the 2023/24 El Niño from a multi-scale and global perspective" that published in Communications Earth & Environment.</p> <p>The article is available on the Communications Earth & Environment at <a title="Predicting the 2023/24 El Niño from a multi-scale and global perspective" href="https://www.nature.com/articles/s43247-024-01867-w">https://www.nature.com/articles/s43247-024-01867-w</a>.</p> <p>These data include ocean temperature, current, atmosphere wind, pressure, precipitation, heat flux, and more, that from reanalysis data and coupled model outputs. Additionaly, there are four figures of the article.</p> <p>The related MATLAB codes can be accessed from <a href="https://github.com/HRKsince1993/COMMSENV-24-1347.git">https://github.com/HRKsince1993/COMMSENV-24-1347.git</a></p> <p>If these data are helpful to you, please cite our article or acknowledge us in your publication, e. g.</p> <p>Hu, R. <em>et al.</em> Predicting the 2023/24 El Niño from a multi-scale and global perspective. <em>Commun. Earth Environ.</em> <strong>5</strong>, 675 (2024). </p> <p>If you have any questions, please contact Tao Lian (<a href="mailto:liantao@sio.org.cn">liantao@sio.org.cn</a>) and/or Dake Chen (<a href="mailto:dchen@sio.org.cn">dchen@sio.org.cn</a>) and/or me.</p> <p> </p> <p>Best wishes</p> <p>Ruikun Hu</p> <p>Ph.D of physical oceanography</p> <p>State Key Laboratory of Satellite Ocean Environment Dynamics,</p> <p>Second Institute of Oceanography, Ministry of Natural Resources, Hangzhou, China</p> <p><a href="mailto:ruikunhu@sio.org.cn">ruikunhu@sio.org.cn</a></p> <p>October 18, 2024</p> <p>Updated on November 8, 2024</p>
Influences of the Pacific Meridional Mode and Marine Heatwave on North American Precipitation during the 2023-24 El Niño Winter
<p><span>The codes used for analyzing the data and generating all figures in this study</span></p>
Data and analysis code for "Increased frequency of multi-year El Niño-Southern Oscillation events across the Holocene"
<p>Data and analysis code for "Increased frequency of multi-year El Niño-Southern Oscillation events across the Holocene" </p> <p>In "Zenodo.zip",</p> <ul> <li>Code to produce the main figures (Figs. 1-4) in the manuscript: Matlab code named as Fig#_202411.m</li> <li>Other Matlab functions used in the code </li> <li>Nino 3.4 monthly surface (sea/air) temperature data: 8 NetCDF files named Model-Name_variable_N34_mon_final.nc for 8 transient Holocene simulations</li> <li>Tropical Pacific climatological surface temperature and ocean subsurface temperature: processed as Tpac_tmp_response or Tsub_Model-name_response in MAT(matlab) format </li> <li>Nino 3.4 and 1+2 SST anomalies from ERSST.v5: N1234_ersst_1854_2023 in MAT format</li> <li>Central Pacific fossil coral data from Grothe et al. 2020 (accessed at https://www.ncei.noaa.gov/access/paleo-search/study/22415)</li> <li>Other MAT files temporarily generated for figure plots</li> </ul>
Figure 5 from: Niño-Maldonado S, Sánchez-Reyes U, Jones R (2014) Diversity and altitudinal distribution of Chrysomelidae (Coleoptera) in Peregrina Canyon, Tamaulipas, Mexico. ZooKeys 417: 103-132. https://doi.org/10.3897/zookeys.417.7551
Figure 5 - Species accumulation curves by season in the Peregrina Canyon, Tamaulipas, Mexico. Upper graphic: Early wet season (blue color) and late wet season (red color). Lower graphic: Early dry season (black color) and late dry season (green color).
Figure 2 from: Niño-Maldonado S, Sánchez-Reyes U, Jones R (2014) Diversity and altitudinal distribution of Chrysomelidae (Coleoptera) in Peregrina Canyon, Tamaulipas, Mexico. ZooKeys 417: 103-132. https://doi.org/10.3897/zookeys.417.7551
Figure 2 - Species accumulation curves by altitudinal site in the Peregrina Canyon, Tamaulipas, Mexico. Upper graphic: accumulation curves for all study area. Lower graphic: site 1 (green color), site 2 (red color) and site 3 (blue color).
Figure 1 from: Niño-Maldonado S, Sánchez-Reyes U, Jones R (2014) Diversity and altitudinal distribution of Chrysomelidae (Coleoptera) in Peregrina Canyon, Tamaulipas, Mexico. ZooKeys 417: 103-132. https://doi.org/10.3897/zookeys.417.7551
Figure 1 - Location of Peregrina Canyon in Tamaulipas, Mexico, and location of sampling sites along study area.
Figure 3 from: Niño-Maldonado S, Sánchez-Reyes U, Jones R (2014) Diversity and altitudinal distribution of Chrysomelidae (Coleoptera) in Peregrina Canyon, Tamaulipas, Mexico. ZooKeys 417: 103-132. https://doi.org/10.3897/zookeys.417.7551
Figure 3 - SHE analysis of diversity for the Peregrina Canyon and for each one of altitudinal sites. ln S natural logarithm of species richness; ln E natural logarithm of evenness; H diversity (Shannon index).
Figure 6 from: Niño-Maldonado S, Sánchez-Reyes U, Jones R (2014) Diversity and altitudinal distribution of Chrysomelidae (Coleoptera) in Peregrina Canyon, Tamaulipas, Mexico. ZooKeys 417: 103-132. https://doi.org/10.3897/zookeys.417.7551
Figure 6 - Variation of Chrysomelidae with precipitation and temperature during 2009 in Peregrina Canyon.
Figure 7 from: Niño-Maldonado S, Sánchez-Reyes U, Jones R (2014) Diversity and altitudinal distribution of Chrysomelidae (Coleoptera) in Peregrina Canyon, Tamaulipas, Mexico. ZooKeys 417: 103-132. https://doi.org/10.3897/zookeys.417.7551
Figure 7 - SHE analysis of diversity for each season in the Peregrina Canyon. ln S natural logarithm of species richness; ln E natural logarithm of evenness; H diversity (Shannon index).
Figure 9 from: Sánchez-Reyes UJ, Niño-Maldonado S, Barrientos-Lozano L, Clark SM, Jones RW (2016) Faunistic patterns of leaf beetles (Coleoptera, Chrysomelidae) within elevational and temporal gradients in Sierra de San Carlos, Mexico. ZooKeys 611: 11-56. https://doi.org/10.3897/zookeys.611.9608
Figure 9 - Historical monthly data of precipitation and temperature within Sierra de San Carlos, Mexico.
Figure 7 from: Sánchez-Reyes UJ, Niño-Maldonado S, Barrientos-Lozano L, Clark SM, Jones RW (2016) Faunistic patterns of leaf beetles (Coleoptera, Chrysomelidae) within elevational and temporal gradients in Sierra de San Carlos, Mexico. ZooKeys 611: 11-56. https://doi.org/10.3897/zookeys.611.9608
Figure 7 - Examples of leaf beetle biodiversity from Sierra de San Carlos, Mexico. A Trichaltica scabricula (Crotch, 1873), new country record. In decreasing order from B to I, the most abundant species in the current study. B Syphrea sp. 2 C Diachus sp. 1 D Xanthonia sp. 1 E Centralaphthona diversa (Baly, 1877) F Chrysogramma sp. 1 G Pachybrachis sp. 1 H Sumitrosis inaequalis (Weber, 1801) I Margaridisa atriventris (Melsheimer, 1847).
Figure 6 from: Sánchez-Reyes UJ, Niño-Maldonado S, Barrientos-Lozano L, Clark SM, Jones RW (2016) Faunistic patterns of leaf beetles (Coleoptera, Chrysomelidae) within elevational and temporal gradients in Sierra de San Carlos, Mexico. ZooKeys 611: 11-56. https://doi.org/10.3897/zookeys.611.9608
Figure 6 - Examples of leaf beetle biodiversity from Sierra de San Carlos, Mexico. A Lema balteata LeConte, 1884 B Lema opulenta Harold, 1874 C Helocassis clavata (Fabricius, 1798) D Plagiodera semivittata Stål, 1860 E Miraces aeneipennis Jacoby, 1888 F Malacorhinus acaciae (Schaeffer, 1906)G Cyclotrypema furcata (Olivier, 1808) H Acrocyum dorsalis Jacoby, 1885 I Colaspis melancholica Jacoby, 1881 J Griburius montezuma (Suffrian, 1852) K Cryptocephalus trizonatus Suffrian, 1858 L Coscinoptera tamaulipasi Medvedev, 2012 M Diplacaspis prosternalis (Schaeffer, 1906).
Figure 5 from: Sánchez-Reyes UJ, Niño-Maldonado S, Barrientos-Lozano L, Clark SM, Jones RW (2016) Faunistic patterns of leaf beetles (Coleoptera, Chrysomelidae) within elevational and temporal gradients in Sierra de San Carlos, Mexico. ZooKeys 611: 11-56. https://doi.org/10.3897/zookeys.611.9608
Figure 5 - Detailed position of sampling plots in Sierra de San Carlos. San Nicolás locality, Site 7. Dotted lines shows elevation curves.
Figure 8 from: Sánchez-Reyes UJ, Niño-Maldonado S, Barrientos-Lozano L, Clark SM, Jones RW (2016) Faunistic patterns of leaf beetles (Coleoptera, Chrysomelidae) within elevational and temporal gradients in Sierra de San Carlos, Mexico. ZooKeys 611: 11-56. https://doi.org/10.3897/zookeys.611.9608
Figure 8 - Cluster analysis of chrysomelid composition by elevational site in Sierra de San Carlos, Mexico. Delimitation of groups is indicated by red dotted line.
Figure 4 from: Sánchez-Reyes UJ, Niño-Maldonado S, Barrientos-Lozano L, Clark SM, Jones RW (2016) Faunistic patterns of leaf beetles (Coleoptera, Chrysomelidae) within elevational and temporal gradients in Sierra de San Carlos, Mexico. ZooKeys 611: 11-56. https://doi.org/10.3897/zookeys.611.9608
Figure 4 - Detailed position of sampling plots in Sierra de San Carlos. Ejido Carricitos y Tinajas locality: A Site 5 B Site 6. Dotted lines shows elevation curves.
Figure 3 from: Sánchez-Reyes UJ, Niño-Maldonado S, Barrientos-Lozano L, Clark SM, Jones RW (2016) Faunistic patterns of leaf beetles (Coleoptera, Chrysomelidae) within elevational and temporal gradients in Sierra de San Carlos, Mexico. ZooKeys 611: 11-56. https://doi.org/10.3897/zookeys.611.9608
Figure 3 - Detailed position of sampling plots in Sierra de San Carlos. Cerro El Diente locality: A Site 3 B Site 4. Dotted lines shows elevation curves.
Figure 2 from: Sánchez-Reyes UJ, Niño-Maldonado S, Barrientos-Lozano L, Clark SM, Jones RW (2016) Faunistic patterns of leaf beetles (Coleoptera, Chrysomelidae) within elevational and temporal gradients in Sierra de San Carlos, Mexico. ZooKeys 611: 11-56. https://doi.org/10.3897/zookeys.611.9608
Figure 2 - Detailed position of sampling plots in Sierra de San Carlos. Cerro El Diente locality: A Site 1 B Site 2. Dotted lines shows elevation curves.
Figure 11 from: Sánchez-Reyes UJ, Niño-Maldonado S, Barrientos-Lozano L, Clark SM, Jones RW (2016) Faunistic patterns of leaf beetles (Coleoptera, Chrysomelidae) within elevational and temporal gradients in Sierra de San Carlos, Mexico. ZooKeys 611: 11-56. https://doi.org/10.3897/zookeys.611.9608
Figure 11 - Correspondence analysis of chrysomelid abundance obtained per month at each elevational site in Sierra de San Carlos, Mexico.
Figure 10 from: Sánchez-Reyes UJ, Niño-Maldonado S, Barrientos-Lozano L, Clark SM, Jones RW (2016) Faunistic patterns of leaf beetles (Coleoptera, Chrysomelidae) within elevational and temporal gradients in Sierra de San Carlos, Mexico. ZooKeys 611: 11-56. https://doi.org/10.3897/zookeys.611.9608
Figure 10 - Cluster analysis of chrysomelid composition by month in Sierra de San Carlos, Mexico. Delimitation of groups is indicated by red dotted line.
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OpenNeuro
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