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Replication data for: Reconciliation k-median: Clustering with non-polarized representatives
<p># Description<br> These files contain the data employed in the experiments described in Bruno Ordozgoiti and Aristides Gionis. 2019. Reconciliation k-median: Clustering with Non-Polarized Representatives. In Proceedings of the 2019 World Wide Web Conference (WWW’19), May 13–17, 2019, San Francisco, CA, USA.</p> <p>Twitter ID's have been anonymized.</p> <p># Contents<br> domain_mentions.txt: Each line contains a domain name, a user ID and the number of times this user has mentioned this domain name in a tweet.<br> format: domain_name <TAB> user_id <TAB> mention_count</p> <p>domains_ideology_score.txt: Domain names and their ideology score, estimated as described in (Lahoti et al. WSDM 2018). Note: missing scores can be retrieved from supplementary data in https://doi.org/10.1093/poq/nfw006<br> format: domain_name <TAB> ideology_score</p> <p>follow_graph.txt: The Twitter follower graph. Each line contains a user id and the user id of one of its followers.<br> format: user_id <TAB> follower_user_id</p> <p>representatives.txt: US Congress representatives, each with Twitter handle and polarity score computed using Barbera's method (Barbera, 2015).<br> format: rep_name <TAB> website_url <TAB> district <TAB> twitter_handle <TAB> party <TAB> barbera_polarity_score</p> <p>user_polarity.txt: User ID's and polarity score computed using Barbera's method (Barbera, 2015).<br> format: user_id <TAB> barbera_polarity_score</p>
FIG. 8 in Reconciliation between neontology and paleontology in the Gryllidea (Orthoptera, Ensifera): reinterpreting the venation of the stridulatory apparatus in crickets
FIG. 8. — Hypotheses of primary venation homology of forewing of A, †Angarogryllus angaricus (Sharov 1968) (PIN 1873-16, †Protogryllidae, cf fig. 6A); B, Gryllotalpa sp. (MNHN-EO-ENSIF3938, Gryllotalpidae); C, Scapteriscus sp. (MNHN-EO-ENSIF3068, Gryllotalpidae). Abbreviations and colour code: see text. Scale bars: 1 mm.
FIG. 5 in Reconciliation between neontology and paleontology in the Gryllidea (Orthoptera, Ensifera): reinterpreting the venation of the stridulatory apparatus in crickets
FIG. 5. — Hypothesis of primary venation homology in male Grylloidea with particular forewing venation: A, B, species with 'shortened' wings; B, C, species with 'reduced' stridulatory apparatus. A, Landreva sp. (MNHN-EO-ENSIF9775, Gryllidae); B, Nemobius sylvestris (Bosc, 1792) (MNHN-EO-ENSIF9786, Trigonidiidae); C, Tafalisca lineatipes Bruner, 1916 (MNHN-EO-ENSIF9760, Oecanthidae); D, Aphonomorphus sp. (MNHN-EO-ENSIF9764, Oecanthidae). Abbreviations: 'ha', distally opened harp; 'mi' distally opened mirror; others and colour code: see text. Grey dash lines represent folds. Scale bars: 1 mm.
FIG. 1 in Reconciliation between neontology and paleontology in the Gryllidea (Orthoptera, Ensifera): reinterpreting the venation of the stridulatory apparatus in crickets
FIG. 1. — Theoretical pattern of venation of a gryllidean forewing (terminology after Béthoux & Nel [2002], modified after Schubnel et al. [2020]). Abbreviations and colour code: see text.
FIG. 7 in Reconciliation between neontology and paleontology in the Gryllidea (Orthoptera, Ensifera): reinterpreting the venation of the stridulatory apparatus in crickets
FIG. 7. — Hypothesis of primary venation homology of forewing of male Scapteriscus sp. MNHN-EO-ENSIF3069 (Gryllotalpidae). Abbreviations and colour code: see text. Grey dash lines represent folds. Scale bar: 1 mm.
APPENDIX 1 in Reconciliation between neontology and paleontology in the Gryllidea (Orthoptera, Ensifera): reinterpreting the venation of the stridulatory apparatus in crickets
<p>APPENDIX 1. — List of specimens observed in the MNHN Orthoptera collections. Supplementary figures gathered in Appendix 3.</p><table><thead><tr><th>Family, subfamily</th><th><b>Tribe</b></th><th><b>Genus Species</b></th><th><b>Identified</b></th><th>Sex</th><th><b>Inventory number</b></th><th><b>Origin</b></th><th><b>Figures</b></th></tr><tr><th colspan="8">OECANTHIDAE</th></tr></thead><tbody><tr><th>Oecanthinae</th><td>Oecanthini</td><td><i>Oecanthus rufescens</i> Serville, 1838</td><td>L. Desutter</td><td>♂</td><td>MNHN-EO-ENSIF9765</td><td>New Caledonia</td><td></td></tr><tr><th>Tafaliscinae</th><td>Tafaliscini</td><td><i>Tafalisca lineatipes</i> Bruner, 1916</td><td rowspan="2">L. Denadai de Campos</td><td>♂</td><td>MNHN-EO-ENSIF9760</td><td>Jamaica</td><td>5C; S3C</td></tr><tr><th></th><td></td><td></td><td></td><td></td><td></td><td></td></tr><tr><th></th><td>Paroecanthini</td><td><i>Paroecanthus simplex</i> Gorochov, 2011</td><td>L. Denadai de Campos</td><td>♂</td><td>MNHN-EO-ENSIF9782</td><td>Mexique</td><td></td></tr><tr><th></th><td></td><td><i>Angustitrella vicina</i> (Chopard, 1912)</td><td>L. Denadai de Campos</td><td>♂</td><td>MNHN-EO-ENSIF9783</td><td>French Guiana</td><td></td></tr><tr><th></th><td></td><td><i>Ectotrypa olmeca</i> Saussure, 1874</td><td>L. Denadai de Campos</td><td>♂</td><td>MNHN-EO-ENSIF12163</td><td>Mexico</td><td>S2C</td></tr><tr><th>Podoscirtinae</th><td>Podoscirtini</td><td><i>Archenopterus bouensis</i> Otte, 1987</td><td>L. Desutter</td><td>♂</td><td>MNHN-EO-ENSIF3935</td><td>New Caledonia</td><td></td></tr><tr><th></th><td>Aphonomorphini</td><td><i>Aphonomorphus</i> sp.</td><td></td><td>♂</td><td>MNHN-EO-ENSIF9764</td><td>French Guiana</td><td>5D; S3D</td></tr><tr><th></th><td>Phyllogryllini</td><td><i>Phyllogryllus</i> sp.</td><td></td><td>♂</td><td>MNHN-EO-ENSIF9768</td><td>Guadeloupe</td><td>4B; S2B</td></tr><tr><th colspan="8">PHALANGOPSIDAE</th></tr><tr><th>Luzarinae</th><td>Luzarini</td><td><i>Luzara obscura</i> Desutter-Grandcolas, 1992</td><td>L. Desutter</td><td>♂</td><td>MNHN-EO-ENSIF5876</td><td>French Guiana</td><td></td></tr><tr><th></th><td></td><td><i>Lerneca fuscipennis</i> (Saussure, 1874)</td><td>L. Desutter</td><td>♂/♀</td><td>MNHN-EO-ENSIF9780, MNHN-EO-ENSIF9781</td><td>French Guiana</td><td>♂: 3B; S1D / ♀: S4A</td></tr><tr><th>Phalangopsinae</th><td>Phalangopsini</td><td><i>Endecous Itatibensis</i> Rehn, 1918</td><td>L. Desutter</td><td>♂</td><td>MNHN-EO-ENSIF9761</td><td>Brazil</td><td></td></tr><tr><th></th><td>Homoeogryllini</td><td rowspan="2"><i>Homoeogryllus</i> xanthographus Guérin-Ménevile, 1844</td><td></td><td></td><td></td><td></td><td></td></tr><tr><th></th><td></td><td>L. Desutter</td><td>♂</td><td>MNHN-EO-ENSIF9779</td><td><i>Farm strain</i></td><td></td></tr><tr><th></th><td></td><td>orientalis Desutter, 1985</td><td>L. Desutter</td><td>♂</td><td>MNHN-EO-ENSIF3069</td><td>Mozambique</td><td></td></tr><tr><th></th><td></td><td><i>affinis lyristes</i> Gorochov, 1988</td><td>L. Desutter</td><td>♀</td><td>MNHN-EO-ENSIF9784</td><td>Rwanda</td><td>Fig. S4B</td></tr><tr><th>Paragryllinae</th><td>Aclodini</td><td><i>Paraclodes guyanensis</i> Desutter-Grandcolas, 1992</td><td>L. Desutter</td><td>♂</td><td>MNHN-EO-ENSIF9762</td><td>French Guiana</td><td></td></tr><tr><th></th><td>Paragryllini</td><td><i>Aclogryllus</i> sp ..</td><td>L. Desutter</td><td>♂</td><td>MNHN-EO-ENSIF9785</td><td>Equateur</td><td></td></tr><tr><th>Phaloriinae</th><td></td><td><i>Phaloria</i> sp.</td><td>L. Desutter</td><td>♂</td><td>MNHN-EO-ENSIF3078</td><td>Philippines</td><td></td></tr><tr><th colspan="8">GRYLLIDAE</th></tr><tr><th>Eneopterinae</th><td>Eneopterini</td><td><i>Eneoptera guyanensis</i> Chopard, 1931</td><td>L. Desutter</td><td>♂</td><td>MNHN-EO-ENSIF9766</td><td>French Guiana</td><td></td></tr><tr><th></th><td>Lebinthini</td><td><i>Ligypterus fuscus</i> Chopard, 1920</td><td>L. Desutter</td><td>♂</td><td>MNHN-EO-ENSIF9767</td><td>French Guiana</td><td></td></tr><tr><th></th><td>Lebinthini</td><td><i>Agnotecous</i> sp.</td><td>T. Robillard</td><td>♂</td><td>MNHN-EO-ENSIF9937</td><td>New Caledonia</td><td></td></tr><tr><th></th><td>Nisitrini</td><td><i>Nisitrus vittatus</i> (Haan, 1844)</td><td>T. Robillard</td><td>♂</td><td>MNHN-EO-ENSIF9938</td><td>Laboratory strain</td><td></td></tr><tr><th>Pentacentrinae</th><td>Pentacentrini</td><td><i>Pentacentrodes</i> sp.</td><td>L. Desutter</td><td>♂</td><td>MNHN-EO-ENSIF9776</td><td>Madagascar</td><td></td></tr><tr><th>Gryllinae</th><td>Gryllini</td><td rowspan="2"><i>Brachytrupes</i> (Drury, 1773) <i>membranaceus</i></td><td rowspan="2">L. Desutter</td><td rowspan="2">♂/♀</td><td rowspan="2">MNHN-EO-ENSIF9769/ MNHN-EO-ENSIF12162</td><td rowspan="2">Republic of Congo/ Guinea</td><td rowspan="2">♂: 2A, B; 4A; S2A / ♀: S4C</td></tr><tr><th></th><td></td></tr><tr><th></th><td></td><td><i>Acheta domesticus</i> (Linnaeus, 1758)</td><td></td><td>♂</td><td>MNHN-EO-ENSIF9777</td><td>Farm strain</td><td></td></tr><tr><th>Landrevinae</th><td>Landrevini</td><td><i>Landreva</i> sp.</td><td>L. Desutter</td><td>♂</td><td>MNHN-EO-ENSIF9775</td><td>India</td><td>5A; S3A</td></tr><tr><th colspan="8">TRIGONIDIIDAE</th></tr><tr><th>Trigonidiinae</th><td>Trigonidiini</td><td><i>Anaxipha</i> sp.</td><td>L. Desutter</td><td>♂</td><td>MNHN-EO-ENSIF9770</td><td>French Guiana</td><td></td></tr><tr><th></th><td></td><td><i>Natula longipennis</i> (Serville, 1838)</td><td></td><td>♂</td><td>MNHN-EO-ENSIF9933</td><td>Indonesia</td><td>3A, B; S1A, B, C</td></tr><tr><th>Nemobiinae</th><td>Nemobiini</td><td>Nemobius sylvestris (Bosc, 1792)</td><td>L. Desutter</td><td>♂</td><td>MNHN-EO-ENSIF9786</td><td>France</td><td>5B; S3B</td></tr></tbody></table>
FIG. 6 in Reconciliation between neontology and paleontology in the Gryllidea (Orthoptera, Ensifera): reinterpreting the venation of the stridulatory apparatus in crickets
FIG. 6. — Hypothesis of primary venation homology of male forewing of †Protogryllidae (A, B) and †Baissogryllidae (C-E): A, †Angarogryllus angaricus (Sharov 1968), PIN 1873-16; B, †Falsipseculum karatavicum (Sharov 1968), PIN 3791/1345; C, †Neosharategia paradoxa Gorochov, 1992, PIN 4270-210a; D, †Baissogryllidae sp., CCNH-293; E, †Anglogryllus lyristes Gorochov et al., 2006, MNEMG 2003.46. Abbreviations: "ha", distally opened harp; "mi", distally opened mirror, others and colour code, see text. Grey dash lines represent folds. Scale bars: 1 mm.
FIG. 9 in Reconciliation between neontology and paleontology in the Gryllidea (Orthoptera, Ensifera): reinterpreting the venation of the stridulatory apparatus in crickets
FIG. 9. — Hypotheses of primary venation homology of forewing of †Liassophyllum caii Gu & Ren, 2012 (CNU-ORT-NN2009008, †Tuphelidae). Modified from Gu et al. (2012). Abbreviations and colour code: see text. Scale bar: 5 mm.
FIG. 3 in Reconciliation between neontology and paleontology in the Gryllidea (Orthoptera, Ensifera): reinterpreting the venation of the stridulatory apparatus in crickets
FIG. 3. — Hypothesis of primary homology of venation of male Grylloidea: A, Natula longipennis (Serville, 1838) (MNHN-EO-ENSIF9933, Trigonidiidae); B, Lerneca fuscipennis (Saussure, 1874) (MNHN-EO-ENSIF9780, Phalangopsidae). Abbreviations and colour code: see text. Scale bars:1 mm.
FIG. 4 in Reconciliation between neontology and paleontology in the Gryllidea (Orthoptera, Ensifera): reinterpreting the venation of the stridulatory apparatus in crickets
FIG. 4. — Hypothesis of primary homology of venation of male Grylloidea: A, Brachytrupes membranaceus (Drury, 1773) (MNHN-EO-ENSIF9769, Gryllidae); B, Phyllogryllus sp. (MNHN-EO-ENSIF9768, Oecanthidae). Abbreviations and colour code: see text. Grey dash lines represent folds. Scale bars: 5 mm.
FIG. 2 in Reconciliation between neontology and paleontology in the Gryllidea (Orthoptera, Ensifera): reinterpreting the venation of the stridulatory apparatus in crickets
FIG. 2. — Main fields (A, C) and functional structures (B, D) of a male grylloid forewing (A, B: Brachytrupes membranaceus (Drury, 1773), MNHN-EO-ENSIF9769) and a male gryllotalpid forewing (C, D: Scapteriscus sp., MNHN-EO-ENSIF3068). Abbreviations: lc, lanceolate cell; ha, harp; mi, mirror. Scale bars: 5 mm.
FIG. S1 in Reconciliation between neontology and paleontology in the Gryllidea (Orthoptera, Ensifera): reinterpreting the venation of the stridulatory apparatus in crickets
FIG. S1. — Forewings of male Grylloidea with hypothesis of venation: A, B, Natula longipennis (Serville, 1838) (MNHN-EO-ENSIF9933, Trigonidiidae); C, Anaxipha sp. (MNHN-EO-ENSIF9770, Trigonidiidae);D, Lerneca fuscipennis (Saussure,1874) (MNHN-EO-ENSIF9780, Phalangopsidae).Abbreviations:see text. Scale bars:1 mm.
Fig. 1 in Revision of the genus Thinophilus Wahlberg (Diptera: Dolichopodidae) from Singapore and adjacent regions: A long term study with a prudent reconciliation of a genetic to a classic morphological approach
Fig. 1. Present extension of Singapore's mangroves (in green). The numbers indicate the sites that were sampled during the 1-month Singapore Mangrove Insect Project (SMIP 2009); and the 2-year Mangrove Insect Project (MIP 2012-2014). 1, Mandai mangroves; 2, Kranji Nature Trail; 3, Sungei Buloh Wetland Reserve; 4, Lim Chu Kang; 5, Sarimbun mangroves; 6, Berlayer Creek; 7, Pulau Semakau original or old mangrove (SMO); 8, Pulau Semakau, replanted or new mangrove (SMN); 9, Changi creek; 10, Pulau Tekong; 11, Pulau Ubin, Chek Jawa; 12, Pasir Ris; 13, Pulau Seletar; 14, Sungei Cina.
Fig. 4 in Revision of the genus Thinophilus Wahlberg (Diptera: Dolichopodidae) from Singapore and adjacent regions: A long term study with a prudent reconciliation of a genetic to a classic morphological approach
Fig. 4. Thinophilus apicatus sp. nov., male. A, Detail of surstyli ventrally; B, Tips cerci dorsally; C, Ventral view of epandrium; D, Lateral view of epandrium.
Fig. 3 in Revision of the genus Thinophilus Wahlberg (Diptera: Dolichopodidae) from Singapore and adjacent regions: A long term study with a prudent reconciliation of a genetic to a classic morphological approach
Fig. 3. Thinophilus apicatus sp. nov., male. A, Mid femur; B, Hind femur; C, Posterior view of fore leg; D, Anterior view of fore coxa.
Video: Setting up your own Wikibase reconciliation service (e.g. for OpenRefine) - Wikibase Working Hours, 07-11-2023
<p> Video tutorial on how to install a reconciliation service for your own Wikibase instance, how to connect it to OpenRefine and what settings in the Wikibase itself need to be checked to allow data from OpenRefine to be written to the Wikibase.</p> <p>Given during the <a title="d:Wikidata:WikiProject LD4 Wikidata Affinity Group/Wikibase Working Hours" href="https://www.wikidata.org/wiki/Wikidata:WikiProject_LD4_Wikidata_Affinity_Group/Wikibase_Working_Hours">Wikibase Working Hours</a> on 7 November 2023.</p> <p>Notes: <a href="https://docs.google.com/document/d/1MMvyaAe2l63MRZdkW-dg07oYLfXIly_SS3TBR_G8R2k/edit" rel="nofollow">https://docs.google.com/document/d/1MMvyaAe2l63MRZdkW-dg07oYLfXIly_SS3TBR_G8R2k/edit</a></p> <div> <p>Presentation shown in this video:</p> <ul> <li><a title="File:Setting up your own Wikibase reconciliation service (e.g. for OpenRefine) - Wikibase Working Hours, 07-11-2023.pdf" href="https://commons.wikimedia.org/wiki/File:Setting_up_your_own_Wikibase_reconciliation_service_(e.g._for_OpenRefine)_-_Wikibase_Working_Hours,_07-11-2023.pdf">Setting up your own Wikibase reconciliation service (e.g. for OpenRefine) - Wikibase Working Hours, 07-11-2023</a></li> <li><a title="Opens in new tab" href="https://doi.org/10.5281/zenodo.10078805" target="_blank" rel="noopener">10.5281/zenodo.10078805 </a></li> </ul> </div>
Spreadsheets: step by step of data reconciliation
<p>Planilhas desenvolvidas para o artigo intitulado “Application of data reconciliation in a water balance as a tool for optimizing water use at a university in Brazil”. Ele foi submetido no 26th IJCIEOM – International Joint Conference on Industrial Engineering and Operations Management;</p> <p>1. Na planilha “Database_IJCIEOM_2020” estão todos os dados usados na pesquisa.</p> <p>2. A planilha denominada “Coverage test” refere-se ao teste estatistico feito com a media dos blocos MT e FS.</p> <p>3. Em “<a href="http://ijcieom_2020.mt/">IJCIEOM_2020.MT</a>” e “IJCIEOM_2020.FS” encontra-se o desenvolvimento da incerteza das medições de vazão de água do CJA-UFSB.</p> <p>4. As planilhas “nhemu_seiqué.MT” e “nhemu_seiqué.FS” são usadas no programa de KALID (2020). Para rodar no programa é necessário renomear para “nhemu_seiqué”.</p> <p> </p> <p>English:</p> <p>Spreadsheets developed for the article entitled “Application of data reconciliation in a water balance as a tool for optimizing water use at a university in Brazil”. He was submitted to the 26th IJCIEOM - International Joint Conference on Industrial Engineering and Operations Management;</p> <p>1. In the spreadsheet “Database_IJCIEOM_2020” are all the data used in the research.</p> <p>2. The spreadsheet called “Coverage test” refers to the statistical test done with the average of blocks MT and FS.</p> <p>3. In “IJCIEOM_2020.MT” and “IJCIEOM_2020.FS” there is the development of the uncertainty of water flow measurements from CJA-UFSB.</p> <p>4. The spreadsheets “nhemu_seiqué.MT” and “nhemu_seiqué.FS” are used in the KALID program (2020). To run the program it is necessary to rename it to “nhemu_seiqué”.</p>
A case of reconciliation in wild tamarins, Saguinus mystax
<p>The video shows a sequence cut from a longer (10 min) video of a grooming session involving three wild moustached tamarins, <em>Saguinus mystax</em> (Callitrichidae, Primates). It shows reconciliatory behaviour by an aggressor towards the victim of the aggression. Reconciliation has not been reported previously from wild tamarins or other wild callitrichids.</p>
Fig. 5 in Revision of the genus Thinophilus Wahlberg (Diptera: Dolichopodidae) from Singapore and adjacent regions: A long term study with a prudent reconciliation of a genetic to a classic morphological approach
Fig. 5. Thinophilus apicatus sp. nov. Phenology during a 2-year survey (MIP).
Fig. 2 in Revision of the genus Thinophilus Wahlberg (Diptera: Dolichopodidae) from Singapore and adjacent regions: A long term study with a prudent reconciliation of a genetic to a classic morphological approach
Fig. 2. Thinophilus apicatus sp. nov., male habitus.
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