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289 results for “Group Contribution”
Data accompanying publication "High-Income Groups Disproportionately Contribute to Climate Extremes Worldwide."
<p>This dataset accompanies the publication "How High-Income Groups Disproportionately Contribute to Climate Extremes Worldwide." </p> <p>In our study, we combine income-based emission inequality data with an emulator-based modeling framework to thoroughly study the link between emissions of individual, wealthy emitter groups and climate extremes worldwide. Specifically, we assess individual contributions to current global temperature levels and systematically attribute changes in regional monthly heat and drought extremes across the globe.</p> <p>We focus on emissions of the top 10/1/0.1 wealthiest individuals globally and in the US, the EU27, India and China. The dataset contains results for 1-in-50/100/10'000 year extremes at grid-cell level and whenever imapcts are aggregated by region we refer to the regionmask AR6 regions. </p> <p>The file contents are the following:</p> <ol> <li>Attributed_GMT.csv: attributed global mean temperature levels by emitter group</li> <li>tas_frequency_hot.nc, spei_frequency_dry.nc, spi_frequency_dry.nc: attributed changes in the frequency of extreme events for extreme heat (tas), potential droughts (spei-3) and meteorological droughts (spi-3) on grid-cell level</li> <li>tas_intensity_hot.nc, spei_intensity_dry.nc, spi_intensity_dry.nc: attributed changes in the intensity of extreme events for extreme heat (tas), potential droughts (spei-3) and meteorological droughts (spi-3) on grid-cell level</li> <li>processed_extremes_frequency.csv: attributed changes in the frequency of extreme events aggregated to ar6 land regions </li> <li>processed_extremes_intensity.csv: attributed changes in the intensity of extreme events aggregated to ar6 land regions</li> </ol>
Figs 1–4 in Contribution To The Taxonomy And Phylogeny Of The Genus Polia Ochsenheimer, 1816 (Noctuidae, Noctuinae, Hadenini): Species Groups And Pairs In The Holarctic Subgenus Polia S. Str.
Figs 1–4. Male aedeagus of Polia complex: 1 = Polia hepatica (Clerck, 1759), slide no. RL12391, Czech Republic, 2 = Haderonia iomelas (Draudt, 1950), slide no. VZ8003, China, Sichuan, 3 = Ctenoceratoda sukharevae (Varga, 1974), slide no. VZ9239, Mongolia, 4 = Tricheurois cuprina (Moore, 1881), slide no. VZ9234, Nepal
Figs 11–16 in Contribution To The Taxonomy And Phylogeny Of The Genus Polia Ochsenheimer, 1816 (Noctuidae, Noctuinae, Hadenini): Species Groups And Pairs In The Holarctic Subgenus Polia S. Str.
Figs 11–16. Male genital capsula of Polia species: 11 = P. tiefi Püngeler, 1914, slide no. VZ9792, Russia, Buryatia, 12 = P. vespertilio (Draudt, 1934), slide no. VZ9954, Mongolia, 13 = P. malchani (Draudt, 1934), slide no. VZ9779, Mongolia, 14 = P. vesperugo Eversmann, 1856, slide no. VZ2/72, Sayan Mts (holotype of Mamestra conspicua Bang-Haas, 1912), 15 = P. propodea McCabe, 1980, slide no. VZ8969, North America, 16 = P. serratilinea (Treitschke, 1825), slide no. KÁ1586, Greece
Figs 5–10 in Contribution To The Taxonomy And Phylogeny Of The Genus Polia Ochsenheimer, 1816 (Noctuidae, Noctuinae, Hadenini): Species Groups And Pairs In The Holarctic Subgenus Polia S. Str.
Figs 5–10. Male genital capsula of Polia species: 5 = Polia subcontigua (Eversmann, 1852), slide no. VZ9175, Kirghisia, 6 = P. hepatica (Clerck, 1759), slide no. RL12396, Mongolia, 7 = P. griseifusa (Draudt, 1950), slide no. VZ9523, China, Sichuan, 8 = P. lamuta (Herz, 1903), slide no. VZ8266, Sweden, 9 = P. richardsoni (Curtis, 1835), slide no. RL12012, Greenland, 10 = P. rogenhoferi (Möschler, 1870), slide no. VZ8970, North America
Fig. 28 in Contribution To The Taxonomy And Phylogeny Of The Genus Polia Ochsenheimer, 1816 (Noctuidae, Noctuinae, Hadenini): Species Groups And Pairs In The Holarctic Subgenus Polia S. Str.
Fig. 28. Tree constructed from published barcoding results of the North American, Central and Northern European species, and the known gene bank sequences
Figs 17–21 in Contribution To The Taxonomy And Phylogeny Of The Genus Polia Ochsenheimer, 1816 (Noctuidae, Noctuinae, Hadenini): Species Groups And Pairs In The Holarctic Subgenus Polia S. Str.
Figs 17–21. Male genital capsula of Polia species: 17 = P. goliath (Oberthür, 1880), slide no. RL11031, North Korea, 18 = P. nebulosa (Clerck, 1759), slide no. RL12419, Czech Republic, 19 = P. lama (Staudinger, 1896), slide no. VZ9783, Kirghisia, 20 = P. discalis (Grote, 1877), slide no. VZ8972, North America, 21 = P. piniae Buckett et Bauer, 1967, slide no. VZ9944, Canada
Figs 22–25 in Contribution To The Taxonomy And Phylogeny Of The Genus Polia Ochsenheimer, 1816 (Noctuidae, Noctuinae, Hadenini): Species Groups And Pairs In The Holarctic Subgenus Polia S. Str.
Figs 22–25. Female genitalia of Polia species: 22 = P. hepatica (Clerck, 1759), slide no. RL12394, Austria, 23 = P. vespertilio (Draudt, 1934), slide no. VZ9972, Russia, Transbaikalia, 24 = P. imbrifera (Guenée, 1852), slide no. VZ9969, Canada, 25 = P. lama (Staudinger, 1896), slide no. RL12347, Kirghisia
Figure 2 in The chennelli group of the Genus Therates Latreille (Coleoptera: Cicindelidae) 114. Contribution towards the knowledge of Cicindelidae
Figure 2. Characteristics (1 to 14) used for evaluating homogenities (1 to 53) and the resultant data matrix.
Group contribution models for heat of formation (SUB 2018)
<p>We present a set of group contribution models for predicting heat of formation of organic compounds. A dataset containing 1004 molecular structures from DIPPR database was split into a learning and a test sets further used for model training and validation. The model building was performed with software Ambit-GCM (<a href="https://doi.org/10.5281/zenodo.1470793">https://doi.org/10.5281/zenodo.1470793</a>). A set of preliminary models were build according to various fragmentation schemes, with and without use of correction factors and external descriptors. Different orders of additive schemes were studied. Every model in the set was validated using leave-one-out procedure and Y-scrambling technique as well as model performances were tested using the external dataset. The best five models full data and corresponding statistical characteristics are available in <a href="https://zenodo.org/api/files/e0160501-0f43-4617-b0d8-eb97f717f60a/models.zip?versionId=e5725c6a-857a-499f-8a97-7109ca66a5df">models.zip</a>. The model 2 is available also as a JSON file in the archive and can be used for theoretical prediction of heat of formation.</p> <p>To use the model 2 please download gcm-predict.jar from <a href="https://doi.org/10.5281/zenodo.1470793">https://doi.org/10.5281/zenodo.1470793</a>). Example application of gcm-predict (Ambit-GCM) module for a single structure is given below:</p> <p>java -jar gcm-predict-v1.1.jar -s CC(C)OCC(C)O -c model_2.json<br> GCM value (Hf) for CC(C)OCC(C)O is -528.7163407123614</p> <p>The gcm-predict (Ambit-GCM) module can also be applied for a set of structures. An example follows with 5 molecules inputted as a *.csv file:<br> <br> java -jar gcm-predict-v1.1.jar -i Prediction_Examples.csv -c model_2.json<br> GCM calculateting property Hf for 5 molecules ...<br> Mol#,ModelValue(Hf),SMILES,CalcStatus<br> 1,-126.23055043388635,CCCC,OK<br> 2,-353.4883670381994,c1ccc(c(c1)O)O,OK<br> 3,-524.1758445616103,CCC(CO)O,OK<br> 4,-220.91676720730212,CC(Cc1ccccc1)O,OK<br> 5,-728.1309488149211,C(C(Cl)(Cl)F)(F)F,OK</p> <p>The output lines contain: molecule number, predicted Hf, SMILES, and calculation status</p> <p>The full data for training and validation is available in <a href="https://zenodo.org/api/files/e0160501-0f43-4617-b0d8-eb97f717f60a/learn-test-sets.zip?versionId=7fae2b74-2794-4f96-a76a-93008f0f0f88">learn-test-sets.zip. </a>Data can be used for retraining or improving the models.</p> <p>More examples for using Ambit-GCM software for group contribution modeling and property prediction are available in <a href="https://doi.org/10.5281/zenodo.1471646">https://doi.org/10.5281/zenodo.1471646</a></p>
Figure 5 in Motivations and contributions of volunteer groups in the management of invasive alien plants in South Africa's Western Cape province
Figure 5. Challenges (n = 56) faced by individual volunteers in the management of invasive alien plant management in Western Cape, South Africa.
Figure 4 in Motivations and contributions of volunteer groups in the management of invasive alien plants in South Africa's Western Cape province
Figure 4. Reasons for initial engagement (n = 71) in volunteering and the current motivations (n = 86) for volunteers to be involved in the management of invasive alien plant species in Western Cape, South Africa.
Figure 2 in Motivations and contributions of volunteer groups in the management of invasive alien plants in South Africa's Western Cape province
Figure 2. Motivations (n = 35) for forming volunteer groups that remove alien invasive plants in Western Cape, South Africa.
Figure 1 in Motivations and contributions of volunteer groups in the management of invasive alien plants in South Africa's Western Cape province
Figure 1. Identified volunteer groups (52) in Western Cape of South Africa. Groups that participated in the survey (26) are indicated by circles that also show group sizes (individual members per group). Groups that did not participate in the survey are indicated by blue circles. The green area on the map represents the fynbos biome.
Figure 3 in Motivations and contributions of volunteer groups in the management of invasive alien plants in South Africa's Western Cape province
Figure 3. Challenges (n = 26) faced by volunteering by groups in the management of invasive alien plants in Western Cape, South Africa.
Linked collectors and determiners for: Contribution to the knowledge of the dentipes group of the genus Brachiacantha (Coleoptera: Coccinellidae).
Natural history specimen data linked to collectors and determiners held within, "Contribution to the knowledge of the dentipes group of the genus Brachiacantha (Coleoptera: Coccinellidae)". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/64d9dc01-5c7b-4812-952d-4ac02724ea40">https://bionomia.net/dataset/64d9dc01-5c7b-4812-952d-4ac02724ea40</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/64d9dc01-5c7b-4812-952d-4ac02724ea40">https://gbif.org/dataset/64d9dc01-5c7b-4812-952d-4ac02724ea40</a>. Formatted as a Frictionless Data package.
Linked collectors and determiners for: A contribution to the knowledge of the subfamily Panagaeinae Hope, 1838 from Africa. Part 3. Revision of the Craspedophorus strachani and C. brevicollis groups (Coleoptera: Carabidae).
Natural history specimen data linked to collectors and determiners held within, "A contribution to the knowledge of the subfamily Panagaeinae Hope, 1838 from Africa. Part 3. Revision of the Craspedophorus strachani and C. brevicollis groups (Coleoptera: Carabidae)". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/4603132a-4e96-4119-bf2f-21ffe40dce69">https://bionomia.net/dataset/4603132a-4e96-4119-bf2f-21ffe40dce69</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/4603132a-4e96-4119-bf2f-21ffe40dce69">https://gbif.org/dataset/4603132a-4e96-4119-bf2f-21ffe40dce69</a>. Formatted as a Frictionless Data package.
Figures 366-377 in The chennelli group of the Genus Therates Latreille (Coleoptera: Cicindelidae) 114. Contribution towards the knowledge of Cicindelidae
Figures 366-377. Therates. All scales = 1 mm. 366-373. dohertyi Horn, 1905. 366) Habitus, holotype female. 367) Punctures of elytra, holotype female. 368-370. Maculae of elytra. 368) Holotype female. 369) Male from Assam (BMNH). 370) Male from Assam (SDEI). 371) Left lateral view of aedeagus, from Assam (BMNH). 372-373. Labra. 372) Male from Assam (BMNH). 373) Holotype female. 374-377. ottomerkli Wiesner, 1999, paratype female. 374) Habitus. 375) Punctures of elytra. 376) Maculae of elytra. 377) Labrum.
Figures 351-365 in The chennelli group of the Genus Therates Latreille (Coleoptera: Cicindelidae) 114. Contribution towards the knowledge of Cicindelidae
Figures 351-365. Therates. All scales = 1 mm. 351-358. sausai Sawada and Wiesner, 1997. 351) Habitus, holotype male. 352) Punctures of elytra, holotype male. 353-355. Maculae of elytra. 353) Holotype male. 354) Female from Meghalaya (JWGC). 355) Paratype male. 356) Left lateral view of aedeagus, holotype. 357-358. Labra. 357) Holotype male. 358) Female from Meghalaya (JWGC). 359-365. miyamai Sawada and Wiesner, 2000. 359) Habitus, paratype male. 360) Punctures of elytra, paratype male. 361-362. Maculae of elytra. 361) Paratype male. 362) Paratype female. 363) Left lateral view of aedeagus, paratype. 364-365. Labra. 364) Paratype male. 365) Paratype female.
Figures 293-305 in The chennelli group of the Genus Therates Latreille (Coleoptera: Cicindelidae) 114. Contribution towards the knowledge of Cicindelidae
Figures 293-305. Therates. All scales = 1 mm. 293-298. rihai Moravec and Wiesner, 2001. 293) Habitus, holotype male. 294) Punctures of elytra, holotype male. 295) Maculae of elytra, holotype male. 296) Left lateral view of aedeagus, holotype. 297-298. Labra. 297) Holotype male. 298) Paratype female. 299-305. chennelli Bates, 1878. 299) Habitus, female from Karen Hills (MNHN). 300) Punctures of elytra, female from Karen Hills (MNHN). 301- 302. Maculae of elytrae. 301) Female from Karen Hills (MNHN). 302) Male from Tenasserim (BMNH). 303) Left lateral view of aedeagus, from Tenasserim (BMNH). 304-305. Labra. 304) Male from Karen Mts. (JWGC). 305) Female from Karen Hills (MNHN).
Figures 74-88 in The chennelli group of the Genus Therates Latreille (Coleoptera: Cicindelidae) 114. Contribution towards the knowledge of Cicindelidae
Figures 74-88. Therates. All scales = 1 mm. 74-80. probsti Wiesner, 1988. 74) Habitus, paratype male. 75) Punctures of elytra, paratype male. 76-77. Maculae of elytra. 76) Paratype male. 77) Female from Vinh Phuc (HSJC). 78) Left lateral view of aedeagus, paratype. 79-80. Labra. 79) Paratype male. 80) Female from Vinh Phuc (HSJC). 81-88. vietnamensis Wiesner, 1988. 81) Habitus, male from Tuyen Quang (RNFC). 82) Punctures of elytra, holotype male. 83-85. Maculae of elytra. 83) Holotype male. 84) Paratype female. 85) Female from Vinh Phuc (ZSMC). 86) Left lateral view of aedeagus, holotype. 87-88. Labra. 87) Male from Tuyen Quang (RNFC). 88) Paratype female.
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