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description Publicationkeyboard_double_arrow_right Article , Other literature type , Journal 2021Publisher:Elsevier BV Authors: Alma Mendoza‐Ponce; Rogelio O. Corona‐Núñez; Luzma Fabiola Nava; Francisco Estrada; +6 AuthorsAlma Mendoza‐Ponce; Rogelio O. Corona‐Núñez; Luzma Fabiola Nava; Francisco Estrada; Óscar Calderón-Bustamante; Enrique Martínez‐Meyer; Julia Carabias; Adriana Corona; Mercedes Suárez; Pedro D. Pardo-Villegas;Le changement d'utilisation des terres/de couverture est la principale cause de dégradation des écosystèmes terrestres. Cependant, ses impacts seront exacerbés en raison du changement climatique et de la croissance démographique, entraînant une expansion agricole en raison de la demande accrue de denrées alimentaires et de la baisse des rendements agricoles dans certaines zones tropicales. Les stratégies internationales visant à atténuer les impacts du changement climatique et du changement du couvert terrestre sont difficiles dans les régions en développement. Cette étude vise à évaluer des alternatives pour minimiser les impacts de ces menaces dans le cadre de trajectoires socio-économiques, dans l'une des régions les plus biologiquement riches du Guatemala et du Mexique. Cette étude est située dans le bassin versant d'Usumacinta, une région transfrontalière qui partage une histoire commune, avec des propriétés biophysiques et des contraintes économiques similaires qui ont conduit à d'importants changements dans l'utilisation/la couverture des terres. Pour comprendre les impacts sur la déforestation et les émissions de carbone des différentes pratiques de gestion des terres, nous avons développé trois scénarios (1) : le statu quo (BAU), (2) un scénario de réduction des émissions visant à réduire la déforestation et la dégradation (REDD+) et (3) zéro déforestation à partir de 2030 sur la base des engagements internationaux. Nos résultats suggèrent que d'ici 2050, la couverture terrestre naturelle pourrait réduire de 22,3 et 12,2% son étendue dans les scénarios BAU et REDD +, respectivement par rapport à 2012. Cependant, le scénario zéro déforestation montre que d'ici 2050, il serait possible d'éviter de perdre 22,4 % du bassin versant boisé (1,7 million d'hectares) et d'en récupérer 5,9 % (0,4 million d'hectares). En termes de séquestration du carbone, les projets REDD + peuvent réduire les pertes de carbone dans la végétation naturelle, mais une politique de zéro déforestation peut doubler la séquestration du carbone produite par les projets REDD + uniquement. Cette étude montre que pour réduire les pressions sur les écosystèmes, en particulier dans les régions fortement marginalisées avec des migrations importantes, il est nécessaire de mettre en œuvre des politiques transfrontalières de gestion des terres qui intègrent également des stratégies de réduction de la pauvreté. El cambio en el uso/cobertura de la tierra es la principal causa de la degradación de los ecosistemas terrestres. Sin embargo, sus impactos se exacerbarán debido al cambio climático y al crecimiento de la población, impulsando la expansión agrícola debido a una mayor demanda de alimentos y menores rendimientos agrícolas en algunas áreas tropicales. Las estrategias internacionales destinadas a mitigar los impactos del cambio climático y el cambio en la cobertura del uso de la tierra son un desafío en las regiones en desarrollo. Este estudio tiene como objetivo evaluar alternativas para minimizar los impactos de estas amenazas bajo trayectorias socioeconómicas, en una de las regiones biológicamente más ricas de Guatemala y México. Este estudio se encuentra en la cuenca de Usumacinta, una región transfronteriza que comparte una historia común, con propiedades biofísicas y limitaciones económicas similares que han llevado a grandes cambios en el uso/cobertura de la tierra. Para comprender los impactos en la deforestación y las emisiones de carbono de las diferentes prácticas de gestión de la tierra, desarrollamos tres escenarios (1): negocios como siempre (BAU), (2) un escenario de reducción de emisiones destinado a reducir la deforestación y la degradación (REDD+) y (3) cero deforestación a partir de 2030 en función de los compromisos internacionales. Nuestros resultados sugieren que para 2050, la cobertura natural de la tierra podría reducir el 22.3 y el 12.2% de su extensión bajo los escenarios BAU y REDD +, respectivamente, en comparación con 2012. Sin embargo, el escenario de deforestación cero muestra que para 2050, sería posible evitar la pérdida del 22,4% de la cuenca forestal (1,7 millones de ha) y recuperar el 5,9% (0,4 millones de hectáreas) de la misma. En términos de secuestro de carbono, los proyectos REDD + pueden reducir las pérdidas de carbono en la vegetación natural, pero una política de deforestación cero puede duplicar el secuestro de carbono producido solo por los proyectos REDD +. Este estudio muestra que para reducir las presiones sobre los ecosistemas, particularmente en regiones altamente marginadas con una migración significativa, es necesario implementar políticas transfronterizas de gestión de la tierra que también integren estrategias de alivio de la pobreza. Land-use/cover change is the major cause of terrestrial ecosystem degradation. However, its impacts will be exacerbated due to climate change and population growth, driving agricultural expansion because of higher demand of food and lower agricultural yields in some tropical areas. International strategies aimed to mitigate impacts of climate change and land use-cover change are challenging in developing regions. This study aims to evaluate alternatives to minimize the impacts of these threats under socioeconomic trajectories, in one of the biologically richest regions in Guatemala and Mexico. This study is located at the Usumacinta watershed, a transboundary region that shares a common history, with similar biophysical properties and economic constraints which have led to large land use/cover changes. To understand the impacts on deforestation and carbon emissions of different land-management practices, we developed three scenarios (1): business as usual (BAU), (2) a reducing emissions scenario aimed to reduce deforestation and degradation (REDD+), and (3) zero-deforestation from 2030 onwards based on the international commitments. Our results suggest that by 2050, natural land cover might reduce 22.3 and 12.2% of its extent under the BAU and REDD + scenarios, respectively in comparison with 2012. However, the zero-deforestation scenario shows that by 2050, it would be possible to avoid losing 22.4% of the forested watershed (1.7 million ha) and recover 5.9% (0.4 million hectares) of it. In terms of carbon sequestration, REDD + projects can reduce the carbon losses in natural vegetation, but a zero-deforestation policy can double the carbon sequestration produced by REDD + projects only. This study shows that to reduce the pressures on ecosystems, particularly in regions highly marginalized with significant migration, it is necessary to implement transboundary land-management policies that also integrate poverty alleviation strategies. استخدام الأراضي/تغيير الغطاء هو السبب الرئيسي لتدهور النظام الإيكولوجي الأرضي. ومع ذلك، ستتفاقم آثاره بسبب تغير المناخ والنمو السكاني، مما يؤدي إلى التوسع الزراعي بسبب ارتفاع الطلب على الغذاء وانخفاض الغلة الزراعية في بعض المناطق الاستوائية. تشكل الاستراتيجيات الدولية الرامية إلى التخفيف من آثار تغير المناخ وتغير استخدام الأراضي تحدياً في المناطق النامية. تهدف هذه الدراسة إلى تقييم البدائل لتقليل آثار هذه التهديدات في إطار المسارات الاجتماعية والاقتصادية، في واحدة من أغنى المناطق بيولوجيًا في غواتيمالا والمكسيك. تقع هذه الدراسة في مستجمع مياه أوسوماسينتا، وهي منطقة عابرة للحدود تشترك في تاريخ مشترك، مع خصائص فيزيائية حيوية مماثلة وقيود اقتصادية أدت إلى تغييرات كبيرة في استخدام الأراضي/تغطيتها. لفهم تأثيرات ممارسات إدارة الأراضي المختلفة على إزالة الغابات وانبعاثات الكربون، وضعنا ثلاثة سيناريوهات (1): العمل كالمعتاد (BAU)، (2) سيناريو خفض الانبعاثات الذي يهدف إلى الحد من إزالة الغابات وتدهورها (REDD+)، و (3) إزالة الغابات الصفرية اعتبارًا من عام 2030 فصاعدًا بناءً على الالتزامات الدولية. تشير نتائجنا إلى أنه بحلول عام 2050، قد يقلل الغطاء الأرضي الطبيعي بنسبة 22.3 و 12.2 ٪ من مداه في إطار سيناريو العمل الاعتيادي وسيناريو خفض الانبعاثات الناجمة عن إزالة الغابات وتدهورها في البلدان النامية، على التوالي مقارنة بعام 2012. ومع ذلك، يُظهر سيناريو إزالة الغابات الصفرية أنه بحلول عام 2050، سيكون من الممكن تجنب فقدان 22.4 ٪ من مستجمعات المياه الحرجية (1.7 مليون هكتار) واستعادة 5.9 ٪ (0.4 مليون هكتار) منها. من حيث عزل الكربون، يمكن لمشاريع خفض الانبعاثات الناجمة عن إزالة الغابات وتدهورها في البلدان النامية أن تقلل من خسائر الكربون في الغطاء النباتي الطبيعي، ولكن سياسة إزالة الغابات الصفرية يمكن أن تضاعف عزل الكربون الناتج عن مشاريع خفض الانبعاثات الناجمة عن إزالة الغابات وتدهورها في البلدان النامية فقط. تُظهر هذه الدراسة أنه للحد من الضغوط على النظم الإيكولوجية، لا سيما في المناطق المهمشة للغاية مع الهجرة الكبيرة، من الضروري تنفيذ سياسات إدارة الأراضي العابرة للحدود التي تدمج أيضًا استراتيجيات التخفيف من حدة الفقر.
IIASA DARE arrow_drop_down Journal of Environmental ManagementArticle . 2021 . Peer-reviewedLicense: CC BYData sources: Crossrefadd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euAccess RoutesGreen hybrid 13 citations 13 popularity Top 10% influence Average impulse Top 10% Powered by BIP!
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For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Research , Preprint , Journal 2021Embargo end date: 01 Jan 2021 Brazil, Switzerland, France, France, Germany, Spain, Spain, Spain, United Kingdom, United States, France, Italy, United Kingdom, France, Greece, Switzerland, Belgium, United KingdomPublisher:IOP Publishing Publicly fundedFunded by:EC | HIGCC, EC | AMVA4NewPhysics, EC | LHCTOPVLQ +1 projectsEC| HIGCC ,EC| AMVA4NewPhysics ,EC| LHCTOPVLQ ,EC| INSIGHTSSirunyan, A.M.; Tumasyan, A.; Adam, W.; Bergauer, T.; and; Dragicevic, M.; Del Valle, A.; Escalante; Fruehwirth, R.; Jeitler, M.; Krammer, N.; Lechner, L.; Liko, D.; Mikulec, I; and Pitters, F.M.; Rad, N.; Schieck, J.; Schoefbeck, R.; Spanring, M.; Templ, S.; Waltenberger, W.; Wulz, C-E and; Zarucki, M.; Chekhovsky, V; Litomin, A.; Makarenko, V and; Gonzalez, J.; Suarez; Darwish, M.R.; De Wolf, E.A.; Janssen,; X.; Kello, T.; Lelek, A.; Pieters, M.; Sfar, H.; Rejeb and; Van Haevermaet, H.; Van Mechelen, P.; Van Putte, S.; Van; Remortel, N.; Blekman, F.; Bols, E.S.; Chhibra, S.S.; De; Clercq, J.; Lontkovskyi, D.; Lowette, S.; Marchesini, I and; Moortgat, S.; Morton, A.; Muller, D.; Python, Q.; Tavernier,; S.; Van Doninck, W.; Van Mulders, P.; Beghin, D.; Bilin, B.; and Clerbaux, B.; De Lentdecker, G.; Dorney, B.; Favart, L.; Grebenyuk, A.; Kalsi, A.K.; Makarenko, I; Moureaux, L.; Petre, L.; Popov, A.; Postiau, N.; Starling, E.; Thomas, L.; and Vander Velde, C.; Vanlaer, P.; Vannerom, D.; Wezenbeek, L.; and Cornelis, T.; Dobur, D.; Gruchala, M.; Khvastunov, I and; Mestdach, G.; Niedziela, M.; Roskas, C.; Skovpen, K.; Tytgat, M.; Verbeke, W.; Vermassen, B.; Vit, M.; Bruno, G.; and Bury, F.; Caputo, C.; David, P.; Delaere, C.; Delcourt,; M.; Donertas, I.S.; Giammanco, A.; Lemaitre, V; Mondal, K.; and Prisciandaro, J.; Taliercio, A.; Teklishyn, M.; Vischia, P.; and Wertz, S.; Wuyckens, S.; Alves, G.A.; Hensel, C.; Moraes, A.; Junior, W.L.; Alda; Das Chagas, E.; Belchior Batista; and Malbouisson, H.; Brandao; Carvalho, W.; Chinellato, J.; Coelho, E.; Da Costa, E.M.; Da Silveira, G.G.; Damiao, D.; Jesus; De Souza, S.; Fonseca; Martins, J.; Figueiredo, D.; Matos; and Jaime, M.; Medina; Herrera, C.; Mora; Mundim, L.; Nogima, H.; and Teles, P.; Rebello; Rosas, L.J.; Sanchez; Santoro, A.; Do; Amaral, S.M.; Silva; Sznajder, A.; Thiel, M.; De Araujo, F.; Torres Da Silva; Pereira, A.; Vilela; Bernardes, C.A.; Calligaris, L.; Tomei, T.R.; Fernandez Perez; Gregores, E.M.; Lemos, D.S.; Mercadante, P.G.; Novaes, S.F.; Padula, Sandra; Aleksandrov, A.; Antchev, G.; Atanasov, I; Hadjiiska, R.; and Iaydjiev, P.; Misheva, M.; Rodozov, M.; Shopova, M.; Sultanov, G.; Dimitrov, A.; Ivanov, T.; Litov, L.; Pavlov,; B.; Petkov, P.; Petrov, A.; Cheng, T.; Fang, W.; Guo, Q.; and Mittal, M.; Wang, H.; Yuan, L.; Ahmad, M.; Bauer, G.; Hu, Z.; Wang, Y.; Yi, K.; Chapon, E.; Chen, G.M.; Chen,; H.S.; Chen, M.; Javaid, T.; Kapoor, A.; Leggat, D.; Liao, H.; Liu, Z-A; Sharma, R.; Spiezia, A.; Tao, J.; Thomas-wilsker, J.; Wang, J.; Zhang, H.; Zhang, S.;doi: 10.1088/1748-0221/16/05/p05014 , 10.3204/pubdb-2021-01834 , 10.5445/ir/1000136873 , 10.18154/rwth-2021-08433 , 10.3204/pubdb-2021-02949 , 10.3929/ethz-b-000490223 , 10.48550/arxiv.2012.06888 , 10.18154/rwth-2021-08466
arXiv: 2012.06888
Abstract The performance is presented of the reconstruction and identification algorithms for electrons and photons with the CMS experiment at the LHC. The reported results are based on proton-proton collision data collected at a center-of-mass energy of 13 TeV and recorded in 2016–2018, corresponding to an integrated luminosity of 136 fb^-1. Results obtained from lead-lead collision data collected at √(sNN)=5.02 TeV are also presented. Innovative techniques are used to reconstruct the electron and photon signals in the detector and to optimize the energy resolution. Events with electrons and photons in the final state are used to measure the energy resolution and energy scale uncertainty in the recorded events. The measured energy resolution for electrons produced in Z boson decays in proton-proton collision data ranges from 2 to 5%, depending on electron pseudorapidity and energy loss through bremsstrahlung in the detector material. The energy scale in the same range of energies is measured with an uncertainty smaller than 0.1 (0.3)% in the barrel (endcap) region in proton-proton collisions and better than 1 (3)% in the barrel (endcap) region in heavy ion collisions. The timing resolution for electrons from Z boson decays with the full 2016–2018 proton-proton collision data set is measured to be 200 ps.
Caltech Authors (Cal... arrow_drop_down Caltech Authors (California Institute of Technology)Article . 2021Full-Text: https://arxiv.org/abs/2012.06888Data sources: Bielefeld Academic Search Engine (BASE)KITopen (Karlsruhe Institute of Technologie)Article . 2021License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Imperial College London: SpiralArticle . 2021License: CC BYFull-Text: http://hdl.handle.net/10044/1/91029Data sources: Bielefeld Academic Search Engine (BASE)Recolector de Ciencia Abierta, RECOLECTAArticle . 2021 . Peer-reviewedData sources: Recolector de Ciencia Abierta, RECOLECTARecolector de Ciencia Abierta, RECOLECTAArticle . 2021Data sources: Recolector de Ciencia Abierta, RECOLECTARecolector de Ciencia Abierta, RECOLECTAArticle . 2021License: CC BYData sources: Recolector de Ciencia Abierta, RECOLECTARecolector de Ciencia Abierta, RECOLECTAArticle . 2021License: CC BYData sources: Recolector de Ciencia Abierta, RECOLECTAArchivio Istituzionale Università di BergamoArticle . 2021Data sources: Archivio Istituzionale Università di BergamoUniversidade Estadual Paulista São Paulo: Repositório Institucional UNESPArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Université Savoie Mont Blanc: HALArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Università degli Studi della Basilicata: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Brunel University London: Brunel University Research Archive (BURA)Article . 2021Data sources: Bielefeld Academic Search Engine (BASE)IRIS UNIPV (Università degli studi di Pavia)Article . 2021Data sources: Bielefeld Academic Search Engine (BASE)Università degli Studi del Piemonte Orientale: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)École Polytechnique, Université Paris-Saclay: HALArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Università degli Studi di Bari Aldo Moro: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euAccess RoutesGreen hybrid 61 citations 61 popularity Top 1% influence Top 10% impulse Top 1% Powered by BIP!
visibility 110visibility views 110 download downloads 160 Powered bymore_vert Caltech Authors (Cal... arrow_drop_down Caltech Authors (California Institute of Technology)Article . 2021Full-Text: https://arxiv.org/abs/2012.06888Data sources: Bielefeld Academic Search Engine (BASE)KITopen (Karlsruhe Institute of Technologie)Article . 2021License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Imperial College London: SpiralArticle . 2021License: CC BYFull-Text: http://hdl.handle.net/10044/1/91029Data sources: Bielefeld Academic Search Engine (BASE)Recolector de Ciencia Abierta, RECOLECTAArticle . 2021 . Peer-reviewedData sources: Recolector de Ciencia Abierta, RECOLECTARecolector de Ciencia Abierta, RECOLECTAArticle . 2021Data sources: Recolector de Ciencia Abierta, RECOLECTARecolector de Ciencia Abierta, RECOLECTAArticle . 2021License: CC BYData sources: Recolector de Ciencia Abierta, RECOLECTARecolector de Ciencia Abierta, RECOLECTAArticle . 2021License: CC BYData sources: Recolector de Ciencia Abierta, RECOLECTAArchivio Istituzionale Università di BergamoArticle . 2021Data sources: Archivio Istituzionale Università di BergamoUniversidade Estadual Paulista São Paulo: Repositório Institucional UNESPArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Université Savoie Mont Blanc: HALArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Università degli Studi della Basilicata: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Brunel University London: Brunel University Research Archive (BURA)Article . 2021Data sources: Bielefeld Academic Search Engine (BASE)IRIS UNIPV (Università degli studi di Pavia)Article . 2021Data sources: Bielefeld Academic Search Engine (BASE)Università degli Studi del Piemonte Orientale: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)École Polytechnique, Université Paris-Saclay: HALArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Università degli Studi di Bari Aldo Moro: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Research , Preprint , Journal 2021Embargo end date: 01 Jan 2020 France, France, United Kingdom, France, Brazil, Italy, United Kingdom, France, United States, Greece, United Kingdom, Germany, SwitzerlandPublisher:Springer Science and Business Media LLC Publicly fundedFunded by:GSRI, EC | AMVA4NewPhysics, EC | LHCTOPVLQ +1 projectsGSRI ,EC| AMVA4NewPhysics ,EC| LHCTOPVLQ ,EC| INSIGHTSSirunyan, A.M.; Tumasyan, A.; Adam, W.; Ambrogi, F.; and; Bergauer, T.; Dragicevic, M.; Ero, J.; Del Valle, A.; Escalante; and Fruhwirth, R.; Jeitler, M.; Krammer, N.; Lechner, L.; Liko, D.; Madlener, T.; Mikulec, I; Pitters, F.M.; Rad, N.; and Schieck, J.; Schofbeck, R.; Spanring, M.; Templ, S.; Waltenberger, W.; Wulz, C-E; Zarucki, M.; Chekhovsky, V and; Litomin, A.; Makarenko, V; Gonzalez, J.; Suarez; Darwish, M.R.; and De Wolf, E.A.; Di Croce, D.; Janssen, X.; Kello, T.; Lelek, A.; Pieters, M.; Sfar, H.; Rejeb; Van Haevermaet, H.; Van Mechelen, P.; Van Putte, S.; Van Remortel, N.; Blekman, F.; and Bols, E.S.; Chhibra, S.S.; D'Hondt, J.; De Clercq, J.; Lontkovskyi, D.; Lowette, S.; Marchesini, I; Moortgat, S.; Morton, A.; Python, Q.; Tavernier, S.; Van Doninck, W.; Van; Mulders, P.; Beghin, D.; Bilin, B.; Clerbaux, B.; De; Lentdecker, G.; Dorney, B.; Favart, L.; Grebenyuk, A.; Kalsi, A.K.; Makarenko, I; Moureaux, L.; Petre, L.; Popov,; A.; Postiau, N.; Starling, E.; Thomas, L.; Vander Velde, C.; and Vanlaer, P.; Vannerom, D.; Wezenbeek, L.; Cornelis, T.; Dobur, D.; Gruchala, M.; Khvastunov, I; Niedziela, M.; Roskas, C.; Skovpen, K.; Tytgat, M.; Verbeke, W.; Vermassen,; B.; Vit, M.; Bruno, G.; Bury, F.; Caputo, C.; David, P.; and Delaere, C.; Delcourt, M.; Donertas, I.S.; Giammanco, A.; and Lemaitre, V; Mondal, K.; Prisciandaro, J.; Taliercio, A.; and Teklishyn, M.; Vischia, P.; Wuyckens, S.; Zobec, J.; Alves, G.A.; Correia Silva, G.; Hensel, C.; Moraes, A.; Alda Junior, W.L.; Belchior Batista Das Chagas, E.; Brandao; Malbouisson, H.; Carvalho, W.; Chinellato, J.; Coelho, E.; Da Costa, E.M.; Da Silveira, G.G.; De Jesus Damiao, D.; Fonseca De Souza, S.; Martins, J.; Matos Figueiredo, D.; Medina; Jaime, M.; Melo De Almeida, M.; Mora Herrera, C.; Mundim, L.; and Nogima, H.; Rebello Teles, P.; Sanchez Rosas, L.J.; Santoro, A.; Silva Do Amaral, S.M.; Sznajder, A.; Thiel, M.; and Tonelli Manganote, E.J.; Torres Da Silva De Araujo, F.; Vilela Pereira, A.; Bernardes, C.A.; Calligaris, L.; Fernandez; Perez Tomei, T.R.; Gregores, E.M.; Lemos, D.S.; Mercadante,; P.G.; Novaes, S.F.; Padula, Sandra S.; Aleksandrov, A.; Antchev, G.; Atanasov, I; Hadjiiska, R.; Iaydjiev, P.; Misheva, M.; Rodozov, M.; Shopova, M.; Sultanov, G.; Bonchev, M.; Dimitrov, A.; Ivanov, T.; Litov, L.; Pavlov, B.; and Petkov, P.; Petrov, A.; Fang, W.; Guo, Q.; Wang, H.; Yuan, L.; Ahmad, M.; Hu, Z.; Wang, Y.; Chapon, E.; Chen,; G.M.; Chen, H.S.; Chen, M.; Kapoor, A.; Leggat, D.; Liao, H.; Liu, Z.; Sharma, R.; Spiezia, A.; Tao, J.; Thomas-wilsker, J.; Wang, J.; Zhang, H.; Zhang, S.; Zhao, J.; and Agapitos, A.; Ban, Y.; Chen, C.; Huang, Q.; Levin, A.; and Li, Q.; Lu, M.; Lyu, X.; Mao, Y.; Qian, S.J.;doi: 10.1140/epjc/s10052-020-08817-8 , 10.48550/arxiv.2009.01186 , 10.3929/ethz-b-000495146 , 10.3204/pubdb-2021-01404 , 10.5445/ir/1000133495 , 10.18154/rwth-2021-04402 , 10.18154/rwth-2021-04323
pmid: 33750993
pmc: PMC7921081
arXiv: 2009.01186
handle: 11579/135374 , 11563/159092 , 10044/1/87583 , 11449/210711 , 11586/374199 , 11571/1478316
doi: 10.1140/epjc/s10052-020-08817-8 , 10.48550/arxiv.2009.01186 , 10.3929/ethz-b-000495146 , 10.3204/pubdb-2021-01404 , 10.5445/ir/1000133495 , 10.18154/rwth-2021-04402 , 10.18154/rwth-2021-04323
pmid: 33750993
pmc: PMC7921081
arXiv: 2009.01186
handle: 11579/135374 , 11563/159092 , 10044/1/87583 , 11449/210711 , 11586/374199 , 11571/1478316
AbstractThe production of Z boson pairs in proton–proton ($${\mathrm{p}} {\mathrm{p}} $$ p p ) collisions, $${{\mathrm{p}} {\mathrm{p}} \rightarrow ({\mathrm{Z}}/\gamma ^*)({\mathrm{Z}}/\gamma ^*) \rightarrow 2\ell 2\ell '}$$ p p → ( Z / γ ∗ ) ( Z / γ ∗ ) → 2 ℓ 2 ℓ ′ , where $${\ell ,\ell ' = {\mathrm{e}}}$$ ℓ , ℓ ′ = e or $${{\upmu }}$$ μ , is studied at a center-of-mass energy of 13$$\,\text {TeV}$$ TeV with the CMS detector at the CERN LHC. The data sample corresponds to an integrated luminosity of 137$$\,\text {fb}^{-1}$$ fb - 1 , collected during 2016–2018. The $${\mathrm{Z}} {\mathrm{Z}} $$ Z Z production cross section, $$\sigma _{\text {tot}} ({\mathrm{p}} {\mathrm{p}} \rightarrow {\mathrm{Z}} {\mathrm{Z}} ) = 17.4 \pm 0.3 \,\text {(stat)} \pm 0.5 \,\text {(syst)} \pm 0.4 \,\text {(theo)} \pm 0.3 \,\text {(lumi)} \text { pb} $$ σ tot ( p p → Z Z ) = 17.4 ± 0.3 (stat) ± 0.5 (syst) ± 0.4 (theo) ± 0.3 (lumi) pb , measured for events with two pairs of opposite-sign, same-flavor leptons produced in the mass region $${60< m_{\ell ^+\ell ^-} < 120\,\text {GeV}}$$ 60 < m ℓ + ℓ - < 120 GeV is consistent with standard model predictions. Differential cross sections are also measured and agree with theoretical predictions. The invariant mass distribution of the four-lepton system is used to set limits on anomalous $${\mathrm{Z}} {\mathrm{Z}} {\mathrm{Z}} $$ Z Z Z and $${{\mathrm{Z}} {\mathrm{Z}} \gamma }$$ Z Z γ couplings.
Hyper Article en Lig... arrow_drop_down Brunel University London: Brunel University Research Archive (BURA)Article . 2021License: CC BYFull-Text: https://bura.brunel.ac.uk/handle/2438/22652Data sources: Bielefeld Academic Search Engine (BASE)Imperial College London: SpiralArticle . 2020License: CC BYFull-Text: http://hdl.handle.net/10044/1/87583Data sources: Bielefeld Academic Search Engine (BASE)École Polytechnique, Université Paris-Saclay: HALArticle . 2021Full-Text: https://hal.science/hal-02946182Data sources: Bielefeld Academic Search Engine (BASE)Caltech Authors (California Institute of Technology)Article . 2021Full-Text: https://arxiv.org/abs/2009.01186Data sources: Bielefeld Academic Search Engine (BASE)HAL-IN2P3 (Institut national de physique nucléaire et de physique des particules)Article . 2021Full-Text: https://hal.science/hal-02946182Data sources: Bielefeld Academic Search Engine (BASE)KITopen (Karlsruhe Institute of Technologie)Article . 2021License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Université Savoie Mont Blanc: HALArticle . 2021Full-Text: https://hal.science/hal-02946182Data sources: Bielefeld Academic Search Engine (BASE)European Physical Journal C: Particles and FieldsArticle . 2021 . Peer-reviewedLicense: CC BYData sources: CrossrefRecolector de Ciencia Abierta, RECOLECTAArticle . 2021Data sources: Recolector de Ciencia Abierta, RECOLECTARecolector de Ciencia Abierta, RECOLECTAArticle . 2021License: CC BYData sources: Recolector de Ciencia Abierta, RECOLECTAUniversità degli Studi del Piemonte Orientale: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Università degli Studi della Basilicata: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Universidade Estadual Paulista São Paulo: Repositório Institucional UNESPArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Università degli Studi di Bari Aldo Moro: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)IRIS UNIPV (Università degli studi di Pavia)Article . 2021Data sources: Bielefeld Academic Search Engine (BASE)Brunel University London: Brunel University Research Archive (BURA)Article . 2021Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euAccess RoutesGreen gold 24 citations 24 popularity Top 10% influence Top 10% impulse Top 10% Powered by BIP!
more_vert Hyper Article en Lig... arrow_drop_down Brunel University London: Brunel University Research Archive (BURA)Article . 2021License: CC BYFull-Text: https://bura.brunel.ac.uk/handle/2438/22652Data sources: Bielefeld Academic Search Engine (BASE)Imperial College London: SpiralArticle . 2020License: CC BYFull-Text: http://hdl.handle.net/10044/1/87583Data sources: Bielefeld Academic Search Engine (BASE)École Polytechnique, Université Paris-Saclay: HALArticle . 2021Full-Text: https://hal.science/hal-02946182Data sources: Bielefeld Academic Search Engine (BASE)Caltech Authors (California Institute of Technology)Article . 2021Full-Text: https://arxiv.org/abs/2009.01186Data sources: Bielefeld Academic Search Engine (BASE)HAL-IN2P3 (Institut national de physique nucléaire et de physique des particules)Article . 2021Full-Text: https://hal.science/hal-02946182Data sources: Bielefeld Academic Search Engine (BASE)KITopen (Karlsruhe Institute of Technologie)Article . 2021License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Université Savoie Mont Blanc: HALArticle . 2021Full-Text: https://hal.science/hal-02946182Data sources: Bielefeld Academic Search Engine (BASE)European Physical Journal C: Particles and FieldsArticle . 2021 . Peer-reviewedLicense: CC BYData sources: CrossrefRecolector de Ciencia Abierta, RECOLECTAArticle . 2021Data sources: Recolector de Ciencia Abierta, RECOLECTARecolector de Ciencia Abierta, RECOLECTAArticle . 2021License: CC BYData sources: Recolector de Ciencia Abierta, RECOLECTAUniversità degli Studi del Piemonte Orientale: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Università degli Studi della Basilicata: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Universidade Estadual Paulista São Paulo: Repositório Institucional UNESPArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Università degli Studi di Bari Aldo Moro: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)IRIS UNIPV (Università degli studi di Pavia)Article . 2021Data sources: Bielefeld Academic Search Engine (BASE)Brunel University London: Brunel University Research Archive (BURA)Article . 2021Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Journal 2020Embargo end date: 25 Nov 2020 Switzerland, United Kingdom, United States, United Kingdom, United Kingdom, Italy, Italy, Canada, Italy, Norway, France, United KingdomPublisher:Springer Science and Business Media LLC Funded by:NSERC, NSF | Collaborative LTREB Propo..., RSF | Biological Effects of glo... +2 projectsNSERC ,NSF| Collaborative LTREB Proposal: Will increases in dissolved organic matter accelerate a shift in trophic status through anoxia-driven positive feedbacks in an oligotrophic lake? ,RSF| Biological Effects of global warming on cold-adapted endemic amphipods of Lake Baikal ,NSF| OPUS: CRS Synthesis to add dissolved organic matter to the trophic paradigm: the importance of water transparency in structuring pelagic ecosystems ,NSF| LTREB Renewal - Collaborative Research: Responses of high elevation, aquatic ecosystems to interannual climate variability and trends in atmospheric inputsDietmar Straile; Martin Schmid; Michela Rogora; Lewis Sitoki; Dörthe C. Müller-Navarra; Gesa A. Weyhenmeyer; Daniel E. Schindler; Sudeep Chandra; Karl E. Havens; Klaus Joehnk; Evelyn E. Gaiser; Shawn P. Devlin; Margaret Dix; Martin S. Luger; Benjamin M. Kraemer; Orlane Anneville; Scott F. Girdner; B. V. Adamovich; Peter D. F. Isles; Wendel Keller; Martin T. Dokulil; Svetlana V. Shimaraeva; Helen V. Pislegina; David P. Hamilton; Craig E. Williamson; Peter R. Leavitt; Peter R. Leavitt; Eugene A. Silow; Scott N. Higgins; Donald C. Pierson; Johanna Korhonen; Stephanie J. Melles; Lesley B. Knoll; Alon Rimmer; Stephen C. Maberly; Hannu Huuskonen; Egor S. Zadereev; William Colom-Montero; Maxim A. Timofeyev; Timo Huttula; David C. Richardson; Fabio Lepori; Rachel M. Pilla; Jasmine E. Saros; Piet Verburg; James A. Rusak; John M. Melack; Wim Thiery; Wim Thiery; Kristin E. Strock; Nico Salmaso; Rita Adrian; Rita Adrian; Pierre Denis Plisnier; Steven Sadro; Ruben Sommaruga; Dag O. Hessen; Émilie Saulnier-Talbot; Rolf D. Vinebrooke; Ian D. Jones; K. David Hambright;AbstractGlobally, lake surface water temperatures have warmed rapidly relative to air temperatures, but changes in deepwater temperatures and vertical thermal structure are still largely unknown. We have compiled the most comprehensive data set to date of long-term (1970–2009) summertime vertical temperature profiles in lakes across the world to examine trends and drivers of whole-lake vertical thermal structure. We found significant increases in surface water temperatures across lakes at an average rate of + 0.37 °C decade−1, comparable to changes reported previously for other lakes, and similarly consistent trends of increasing water column stability (+ 0.08 kg m−3decade−1). In contrast, however, deepwater temperature trends showed little change on average (+ 0.06 °C decade−1), but had high variability across lakes, with trends in individual lakes ranging from − 0.68 °C decade−1to + 0.65 °C decade−1. The variability in deepwater temperature trends was not explained by trends in either surface water temperatures or thermal stability within lakes, and only 8.4% was explained by lake thermal region or local lake characteristics in a random forest analysis. These findings suggest that external drivers beyond our tested lake characteristics are important in explaining long-term trends in thermal structure, such as local to regional climate patterns or additional external anthropogenic influences.
CORE arrow_drop_down Fondazione Edmund Mach: IRIS-OpenPubArticle . 2020Full-Text: https://hdl.handle.net/10449/77136Data sources: Bielefeld Academic Search Engine (BASE)Universitet i Oslo: Digitale utgivelser ved UiO (DUO)Article . 2021License: CC BYFull-Text: http://urn.nb.no/URN:NBN:no-88077Data sources: Bielefeld Academic Search Engine (BASE)oURspace - The University of Regina's Institutional RepositoryArticle . 2020License: CC BYFull-Text: http://hdl.handle.net/10294/15894Data sources: Bielefeld Academic Search Engine (BASE)Natural Environment Research Council: NERC Open Research ArchiveArticle . 2020License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Université Savoie Mont Blanc: HALArticle . 2020Full-Text: https://hal.inrae.fr/hal-03151406Data sources: Bielefeld Academic Search Engine (BASE)University of Stirling: Stirling Digital Research RepositoryArticle . 2020License: CC BYFull-Text: http://hdl.handle.net/1893/31919Data sources: Bielefeld Academic Search Engine (BASE)Queen's University Belfast Research PortalArticle . 2020Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euAccess RoutesGreen gold 66 citations 66 popularity Top 1% influence Top 10% impulse Top 1% Powered by BIP!
visibility 67visibility views 67 download downloads 120 Powered bymore_vert CORE arrow_drop_down Fondazione Edmund Mach: IRIS-OpenPubArticle . 2020Full-Text: https://hdl.handle.net/10449/77136Data sources: Bielefeld Academic Search Engine (BASE)Universitet i Oslo: Digitale utgivelser ved UiO (DUO)Article . 2021License: CC BYFull-Text: http://urn.nb.no/URN:NBN:no-88077Data sources: Bielefeld Academic Search Engine (BASE)oURspace - The University of Regina's Institutional RepositoryArticle . 2020License: CC BYFull-Text: http://hdl.handle.net/10294/15894Data sources: Bielefeld Academic Search Engine (BASE)Natural Environment Research Council: NERC Open Research ArchiveArticle . 2020License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Université Savoie Mont Blanc: HALArticle . 2020Full-Text: https://hal.inrae.fr/hal-03151406Data sources: Bielefeld Academic Search Engine (BASE)University of Stirling: Stirling Digital Research RepositoryArticle . 2020License: CC BYFull-Text: http://hdl.handle.net/1893/31919Data sources: Bielefeld Academic Search Engine (BASE)Queen's University Belfast Research PortalArticle . 2020Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
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description Publicationkeyboard_double_arrow_right Article , Other literature type , Journal 2021Publisher:Elsevier BV Authors: Alma Mendoza‐Ponce; Rogelio O. Corona‐Núñez; Luzma Fabiola Nava; Francisco Estrada; +6 AuthorsAlma Mendoza‐Ponce; Rogelio O. Corona‐Núñez; Luzma Fabiola Nava; Francisco Estrada; Óscar Calderón-Bustamante; Enrique Martínez‐Meyer; Julia Carabias; Adriana Corona; Mercedes Suárez; Pedro D. Pardo-Villegas;Le changement d'utilisation des terres/de couverture est la principale cause de dégradation des écosystèmes terrestres. Cependant, ses impacts seront exacerbés en raison du changement climatique et de la croissance démographique, entraînant une expansion agricole en raison de la demande accrue de denrées alimentaires et de la baisse des rendements agricoles dans certaines zones tropicales. Les stratégies internationales visant à atténuer les impacts du changement climatique et du changement du couvert terrestre sont difficiles dans les régions en développement. Cette étude vise à évaluer des alternatives pour minimiser les impacts de ces menaces dans le cadre de trajectoires socio-économiques, dans l'une des régions les plus biologiquement riches du Guatemala et du Mexique. Cette étude est située dans le bassin versant d'Usumacinta, une région transfrontalière qui partage une histoire commune, avec des propriétés biophysiques et des contraintes économiques similaires qui ont conduit à d'importants changements dans l'utilisation/la couverture des terres. Pour comprendre les impacts sur la déforestation et les émissions de carbone des différentes pratiques de gestion des terres, nous avons développé trois scénarios (1) : le statu quo (BAU), (2) un scénario de réduction des émissions visant à réduire la déforestation et la dégradation (REDD+) et (3) zéro déforestation à partir de 2030 sur la base des engagements internationaux. Nos résultats suggèrent que d'ici 2050, la couverture terrestre naturelle pourrait réduire de 22,3 et 12,2% son étendue dans les scénarios BAU et REDD +, respectivement par rapport à 2012. Cependant, le scénario zéro déforestation montre que d'ici 2050, il serait possible d'éviter de perdre 22,4 % du bassin versant boisé (1,7 million d'hectares) et d'en récupérer 5,9 % (0,4 million d'hectares). En termes de séquestration du carbone, les projets REDD + peuvent réduire les pertes de carbone dans la végétation naturelle, mais une politique de zéro déforestation peut doubler la séquestration du carbone produite par les projets REDD + uniquement. Cette étude montre que pour réduire les pressions sur les écosystèmes, en particulier dans les régions fortement marginalisées avec des migrations importantes, il est nécessaire de mettre en œuvre des politiques transfrontalières de gestion des terres qui intègrent également des stratégies de réduction de la pauvreté. El cambio en el uso/cobertura de la tierra es la principal causa de la degradación de los ecosistemas terrestres. Sin embargo, sus impactos se exacerbarán debido al cambio climático y al crecimiento de la población, impulsando la expansión agrícola debido a una mayor demanda de alimentos y menores rendimientos agrícolas en algunas áreas tropicales. Las estrategias internacionales destinadas a mitigar los impactos del cambio climático y el cambio en la cobertura del uso de la tierra son un desafío en las regiones en desarrollo. Este estudio tiene como objetivo evaluar alternativas para minimizar los impactos de estas amenazas bajo trayectorias socioeconómicas, en una de las regiones biológicamente más ricas de Guatemala y México. Este estudio se encuentra en la cuenca de Usumacinta, una región transfronteriza que comparte una historia común, con propiedades biofísicas y limitaciones económicas similares que han llevado a grandes cambios en el uso/cobertura de la tierra. Para comprender los impactos en la deforestación y las emisiones de carbono de las diferentes prácticas de gestión de la tierra, desarrollamos tres escenarios (1): negocios como siempre (BAU), (2) un escenario de reducción de emisiones destinado a reducir la deforestación y la degradación (REDD+) y (3) cero deforestación a partir de 2030 en función de los compromisos internacionales. Nuestros resultados sugieren que para 2050, la cobertura natural de la tierra podría reducir el 22.3 y el 12.2% de su extensión bajo los escenarios BAU y REDD +, respectivamente, en comparación con 2012. Sin embargo, el escenario de deforestación cero muestra que para 2050, sería posible evitar la pérdida del 22,4% de la cuenca forestal (1,7 millones de ha) y recuperar el 5,9% (0,4 millones de hectáreas) de la misma. En términos de secuestro de carbono, los proyectos REDD + pueden reducir las pérdidas de carbono en la vegetación natural, pero una política de deforestación cero puede duplicar el secuestro de carbono producido solo por los proyectos REDD +. Este estudio muestra que para reducir las presiones sobre los ecosistemas, particularmente en regiones altamente marginadas con una migración significativa, es necesario implementar políticas transfronterizas de gestión de la tierra que también integren estrategias de alivio de la pobreza. Land-use/cover change is the major cause of terrestrial ecosystem degradation. However, its impacts will be exacerbated due to climate change and population growth, driving agricultural expansion because of higher demand of food and lower agricultural yields in some tropical areas. International strategies aimed to mitigate impacts of climate change and land use-cover change are challenging in developing regions. This study aims to evaluate alternatives to minimize the impacts of these threats under socioeconomic trajectories, in one of the biologically richest regions in Guatemala and Mexico. This study is located at the Usumacinta watershed, a transboundary region that shares a common history, with similar biophysical properties and economic constraints which have led to large land use/cover changes. To understand the impacts on deforestation and carbon emissions of different land-management practices, we developed three scenarios (1): business as usual (BAU), (2) a reducing emissions scenario aimed to reduce deforestation and degradation (REDD+), and (3) zero-deforestation from 2030 onwards based on the international commitments. Our results suggest that by 2050, natural land cover might reduce 22.3 and 12.2% of its extent under the BAU and REDD + scenarios, respectively in comparison with 2012. However, the zero-deforestation scenario shows that by 2050, it would be possible to avoid losing 22.4% of the forested watershed (1.7 million ha) and recover 5.9% (0.4 million hectares) of it. In terms of carbon sequestration, REDD + projects can reduce the carbon losses in natural vegetation, but a zero-deforestation policy can double the carbon sequestration produced by REDD + projects only. This study shows that to reduce the pressures on ecosystems, particularly in regions highly marginalized with significant migration, it is necessary to implement transboundary land-management policies that also integrate poverty alleviation strategies. استخدام الأراضي/تغيير الغطاء هو السبب الرئيسي لتدهور النظام الإيكولوجي الأرضي. ومع ذلك، ستتفاقم آثاره بسبب تغير المناخ والنمو السكاني، مما يؤدي إلى التوسع الزراعي بسبب ارتفاع الطلب على الغذاء وانخفاض الغلة الزراعية في بعض المناطق الاستوائية. تشكل الاستراتيجيات الدولية الرامية إلى التخفيف من آثار تغير المناخ وتغير استخدام الأراضي تحدياً في المناطق النامية. تهدف هذه الدراسة إلى تقييم البدائل لتقليل آثار هذه التهديدات في إطار المسارات الاجتماعية والاقتصادية، في واحدة من أغنى المناطق بيولوجيًا في غواتيمالا والمكسيك. تقع هذه الدراسة في مستجمع مياه أوسوماسينتا، وهي منطقة عابرة للحدود تشترك في تاريخ مشترك، مع خصائص فيزيائية حيوية مماثلة وقيود اقتصادية أدت إلى تغييرات كبيرة في استخدام الأراضي/تغطيتها. لفهم تأثيرات ممارسات إدارة الأراضي المختلفة على إزالة الغابات وانبعاثات الكربون، وضعنا ثلاثة سيناريوهات (1): العمل كالمعتاد (BAU)، (2) سيناريو خفض الانبعاثات الذي يهدف إلى الحد من إزالة الغابات وتدهورها (REDD+)، و (3) إزالة الغابات الصفرية اعتبارًا من عام 2030 فصاعدًا بناءً على الالتزامات الدولية. تشير نتائجنا إلى أنه بحلول عام 2050، قد يقلل الغطاء الأرضي الطبيعي بنسبة 22.3 و 12.2 ٪ من مداه في إطار سيناريو العمل الاعتيادي وسيناريو خفض الانبعاثات الناجمة عن إزالة الغابات وتدهورها في البلدان النامية، على التوالي مقارنة بعام 2012. ومع ذلك، يُظهر سيناريو إزالة الغابات الصفرية أنه بحلول عام 2050، سيكون من الممكن تجنب فقدان 22.4 ٪ من مستجمعات المياه الحرجية (1.7 مليون هكتار) واستعادة 5.9 ٪ (0.4 مليون هكتار) منها. من حيث عزل الكربون، يمكن لمشاريع خفض الانبعاثات الناجمة عن إزالة الغابات وتدهورها في البلدان النامية أن تقلل من خسائر الكربون في الغطاء النباتي الطبيعي، ولكن سياسة إزالة الغابات الصفرية يمكن أن تضاعف عزل الكربون الناتج عن مشاريع خفض الانبعاثات الناجمة عن إزالة الغابات وتدهورها في البلدان النامية فقط. تُظهر هذه الدراسة أنه للحد من الضغوط على النظم الإيكولوجية، لا سيما في المناطق المهمشة للغاية مع الهجرة الكبيرة، من الضروري تنفيذ سياسات إدارة الأراضي العابرة للحدود التي تدمج أيضًا استراتيجيات التخفيف من حدة الفقر.
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For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Research , Preprint , Journal 2021Embargo end date: 01 Jan 2021 Brazil, Switzerland, France, France, Germany, Spain, Spain, Spain, United Kingdom, United States, France, Italy, United Kingdom, France, Greece, Switzerland, Belgium, United KingdomPublisher:IOP Publishing Publicly fundedFunded by:EC | HIGCC, EC | AMVA4NewPhysics, EC | LHCTOPVLQ +1 projectsEC| HIGCC ,EC| AMVA4NewPhysics ,EC| LHCTOPVLQ ,EC| INSIGHTSSirunyan, A.M.; Tumasyan, A.; Adam, W.; Bergauer, T.; and; Dragicevic, M.; Del Valle, A.; Escalante; Fruehwirth, R.; Jeitler, M.; Krammer, N.; Lechner, L.; Liko, D.; Mikulec, I; and Pitters, F.M.; Rad, N.; Schieck, J.; Schoefbeck, R.; Spanring, M.; Templ, S.; Waltenberger, W.; Wulz, C-E and; Zarucki, M.; Chekhovsky, V; Litomin, A.; Makarenko, V and; Gonzalez, J.; Suarez; Darwish, M.R.; De Wolf, E.A.; Janssen,; X.; Kello, T.; Lelek, A.; Pieters, M.; Sfar, H.; Rejeb and; Van Haevermaet, H.; Van Mechelen, P.; Van Putte, S.; Van; Remortel, N.; Blekman, F.; Bols, E.S.; Chhibra, S.S.; De; Clercq, J.; Lontkovskyi, D.; Lowette, S.; Marchesini, I and; Moortgat, S.; Morton, A.; Muller, D.; Python, Q.; Tavernier,; S.; Van Doninck, W.; Van Mulders, P.; Beghin, D.; Bilin, B.; and Clerbaux, B.; De Lentdecker, G.; Dorney, B.; Favart, L.; Grebenyuk, A.; Kalsi, A.K.; Makarenko, I; Moureaux, L.; Petre, L.; Popov, A.; Postiau, N.; Starling, E.; Thomas, L.; and Vander Velde, C.; Vanlaer, P.; Vannerom, D.; Wezenbeek, L.; and Cornelis, T.; Dobur, D.; Gruchala, M.; Khvastunov, I and; Mestdach, G.; Niedziela, M.; Roskas, C.; Skovpen, K.; Tytgat, M.; Verbeke, W.; Vermassen, B.; Vit, M.; Bruno, G.; and Bury, F.; Caputo, C.; David, P.; Delaere, C.; Delcourt,; M.; Donertas, I.S.; Giammanco, A.; Lemaitre, V; Mondal, K.; and Prisciandaro, J.; Taliercio, A.; Teklishyn, M.; Vischia, P.; and Wertz, S.; Wuyckens, S.; Alves, G.A.; Hensel, C.; Moraes, A.; Junior, W.L.; Alda; Das Chagas, E.; Belchior Batista; and Malbouisson, H.; Brandao; Carvalho, W.; Chinellato, J.; Coelho, E.; Da Costa, E.M.; Da Silveira, G.G.; Damiao, D.; Jesus; De Souza, S.; Fonseca; Martins, J.; Figueiredo, D.; Matos; and Jaime, M.; Medina; Herrera, C.; Mora; Mundim, L.; Nogima, H.; and Teles, P.; Rebello; Rosas, L.J.; Sanchez; Santoro, A.; Do; Amaral, S.M.; Silva; Sznajder, A.; Thiel, M.; De Araujo, F.; Torres Da Silva; Pereira, A.; Vilela; Bernardes, C.A.; Calligaris, L.; Tomei, T.R.; Fernandez Perez; Gregores, E.M.; Lemos, D.S.; Mercadante, P.G.; Novaes, S.F.; Padula, Sandra; Aleksandrov, A.; Antchev, G.; Atanasov, I; Hadjiiska, R.; and Iaydjiev, P.; Misheva, M.; Rodozov, M.; Shopova, M.; Sultanov, G.; Dimitrov, A.; Ivanov, T.; Litov, L.; Pavlov,; B.; Petkov, P.; Petrov, A.; Cheng, T.; Fang, W.; Guo, Q.; and Mittal, M.; Wang, H.; Yuan, L.; Ahmad, M.; Bauer, G.; Hu, Z.; Wang, Y.; Yi, K.; Chapon, E.; Chen, G.M.; Chen,; H.S.; Chen, M.; Javaid, T.; Kapoor, A.; Leggat, D.; Liao, H.; Liu, Z-A; Sharma, R.; Spiezia, A.; Tao, J.; Thomas-wilsker, J.; Wang, J.; Zhang, H.; Zhang, S.;doi: 10.1088/1748-0221/16/05/p05014 , 10.3204/pubdb-2021-01834 , 10.5445/ir/1000136873 , 10.18154/rwth-2021-08433 , 10.3204/pubdb-2021-02949 , 10.3929/ethz-b-000490223 , 10.48550/arxiv.2012.06888 , 10.18154/rwth-2021-08466
arXiv: 2012.06888
Abstract The performance is presented of the reconstruction and identification algorithms for electrons and photons with the CMS experiment at the LHC. The reported results are based on proton-proton collision data collected at a center-of-mass energy of 13 TeV and recorded in 2016–2018, corresponding to an integrated luminosity of 136 fb^-1. Results obtained from lead-lead collision data collected at √(sNN)=5.02 TeV are also presented. Innovative techniques are used to reconstruct the electron and photon signals in the detector and to optimize the energy resolution. Events with electrons and photons in the final state are used to measure the energy resolution and energy scale uncertainty in the recorded events. The measured energy resolution for electrons produced in Z boson decays in proton-proton collision data ranges from 2 to 5%, depending on electron pseudorapidity and energy loss through bremsstrahlung in the detector material. The energy scale in the same range of energies is measured with an uncertainty smaller than 0.1 (0.3)% in the barrel (endcap) region in proton-proton collisions and better than 1 (3)% in the barrel (endcap) region in heavy ion collisions. The timing resolution for electrons from Z boson decays with the full 2016–2018 proton-proton collision data set is measured to be 200 ps.
Caltech Authors (Cal... arrow_drop_down Caltech Authors (California Institute of Technology)Article . 2021Full-Text: https://arxiv.org/abs/2012.06888Data sources: Bielefeld Academic Search Engine (BASE)KITopen (Karlsruhe Institute of Technologie)Article . 2021License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Imperial College London: SpiralArticle . 2021License: CC BYFull-Text: http://hdl.handle.net/10044/1/91029Data sources: Bielefeld Academic Search Engine (BASE)Recolector de Ciencia Abierta, RECOLECTAArticle . 2021 . Peer-reviewedData sources: Recolector de Ciencia Abierta, RECOLECTARecolector de Ciencia Abierta, RECOLECTAArticle . 2021Data sources: Recolector de Ciencia Abierta, RECOLECTARecolector de Ciencia Abierta, RECOLECTAArticle . 2021License: CC BYData sources: Recolector de Ciencia Abierta, RECOLECTARecolector de Ciencia Abierta, RECOLECTAArticle . 2021License: CC BYData sources: Recolector de Ciencia Abierta, RECOLECTAArchivio Istituzionale Università di BergamoArticle . 2021Data sources: Archivio Istituzionale Università di BergamoUniversidade Estadual Paulista São Paulo: Repositório Institucional UNESPArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Université Savoie Mont Blanc: HALArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Università degli Studi della Basilicata: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Brunel University London: Brunel University Research Archive (BURA)Article . 2021Data sources: Bielefeld Academic Search Engine (BASE)IRIS UNIPV (Università degli studi di Pavia)Article . 2021Data sources: Bielefeld Academic Search Engine (BASE)Università degli Studi del Piemonte Orientale: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)École Polytechnique, Université Paris-Saclay: HALArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Università degli Studi di Bari Aldo Moro: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euAccess RoutesGreen hybrid 61 citations 61 popularity Top 1% influence Top 10% impulse Top 1% Powered by BIP!
visibility 110visibility views 110 download downloads 160 Powered bymore_vert Caltech Authors (Cal... arrow_drop_down Caltech Authors (California Institute of Technology)Article . 2021Full-Text: https://arxiv.org/abs/2012.06888Data sources: Bielefeld Academic Search Engine (BASE)KITopen (Karlsruhe Institute of Technologie)Article . 2021License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Imperial College London: SpiralArticle . 2021License: CC BYFull-Text: http://hdl.handle.net/10044/1/91029Data sources: Bielefeld Academic Search Engine (BASE)Recolector de Ciencia Abierta, RECOLECTAArticle . 2021 . Peer-reviewedData sources: Recolector de Ciencia Abierta, RECOLECTARecolector de Ciencia Abierta, RECOLECTAArticle . 2021Data sources: Recolector de Ciencia Abierta, RECOLECTARecolector de Ciencia Abierta, RECOLECTAArticle . 2021License: CC BYData sources: Recolector de Ciencia Abierta, RECOLECTARecolector de Ciencia Abierta, RECOLECTAArticle . 2021License: CC BYData sources: Recolector de Ciencia Abierta, RECOLECTAArchivio Istituzionale Università di BergamoArticle . 2021Data sources: Archivio Istituzionale Università di BergamoUniversidade Estadual Paulista São Paulo: Repositório Institucional UNESPArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Université Savoie Mont Blanc: HALArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Università degli Studi della Basilicata: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Brunel University London: Brunel University Research Archive (BURA)Article . 2021Data sources: Bielefeld Academic Search Engine (BASE)IRIS UNIPV (Università degli studi di Pavia)Article . 2021Data sources: Bielefeld Academic Search Engine (BASE)Università degli Studi del Piemonte Orientale: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)École Polytechnique, Université Paris-Saclay: HALArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Università degli Studi di Bari Aldo Moro: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Research , Preprint , Journal 2021Embargo end date: 01 Jan 2020 France, France, United Kingdom, France, Brazil, Italy, United Kingdom, France, United States, Greece, United Kingdom, Germany, SwitzerlandPublisher:Springer Science and Business Media LLC Publicly fundedFunded by:GSRI, EC | AMVA4NewPhysics, EC | LHCTOPVLQ +1 projectsGSRI ,EC| AMVA4NewPhysics ,EC| LHCTOPVLQ ,EC| INSIGHTSSirunyan, A.M.; Tumasyan, A.; Adam, W.; Ambrogi, F.; and; Bergauer, T.; Dragicevic, M.; Ero, J.; Del Valle, A.; Escalante; and Fruhwirth, R.; Jeitler, M.; Krammer, N.; Lechner, L.; Liko, D.; Madlener, T.; Mikulec, I; Pitters, F.M.; Rad, N.; and Schieck, J.; Schofbeck, R.; Spanring, M.; Templ, S.; Waltenberger, W.; Wulz, C-E; Zarucki, M.; Chekhovsky, V and; Litomin, A.; Makarenko, V; Gonzalez, J.; Suarez; Darwish, M.R.; and De Wolf, E.A.; Di Croce, D.; Janssen, X.; Kello, T.; Lelek, A.; Pieters, M.; Sfar, H.; Rejeb; Van Haevermaet, H.; Van Mechelen, P.; Van Putte, S.; Van Remortel, N.; Blekman, F.; and Bols, E.S.; Chhibra, S.S.; D'Hondt, J.; De Clercq, J.; Lontkovskyi, D.; Lowette, S.; Marchesini, I; Moortgat, S.; Morton, A.; Python, Q.; Tavernier, S.; Van Doninck, W.; Van; Mulders, P.; Beghin, D.; Bilin, B.; Clerbaux, B.; De; Lentdecker, G.; Dorney, B.; Favart, L.; Grebenyuk, A.; Kalsi, A.K.; Makarenko, I; Moureaux, L.; Petre, L.; Popov,; A.; Postiau, N.; Starling, E.; Thomas, L.; Vander Velde, C.; and Vanlaer, P.; Vannerom, D.; Wezenbeek, L.; Cornelis, T.; Dobur, D.; Gruchala, M.; Khvastunov, I; Niedziela, M.; Roskas, C.; Skovpen, K.; Tytgat, M.; Verbeke, W.; Vermassen,; B.; Vit, M.; Bruno, G.; Bury, F.; Caputo, C.; David, P.; and Delaere, C.; Delcourt, M.; Donertas, I.S.; Giammanco, A.; and Lemaitre, V; Mondal, K.; Prisciandaro, J.; Taliercio, A.; and Teklishyn, M.; Vischia, P.; Wuyckens, S.; Zobec, J.; Alves, G.A.; Correia Silva, G.; Hensel, C.; Moraes, A.; Alda Junior, W.L.; Belchior Batista Das Chagas, E.; Brandao; Malbouisson, H.; Carvalho, W.; Chinellato, J.; Coelho, E.; Da Costa, E.M.; Da Silveira, G.G.; De Jesus Damiao, D.; Fonseca De Souza, S.; Martins, J.; Matos Figueiredo, D.; Medina; Jaime, M.; Melo De Almeida, M.; Mora Herrera, C.; Mundim, L.; and Nogima, H.; Rebello Teles, P.; Sanchez Rosas, L.J.; Santoro, A.; Silva Do Amaral, S.M.; Sznajder, A.; Thiel, M.; and Tonelli Manganote, E.J.; Torres Da Silva De Araujo, F.; Vilela Pereira, A.; Bernardes, C.A.; Calligaris, L.; Fernandez; Perez Tomei, T.R.; Gregores, E.M.; Lemos, D.S.; Mercadante,; P.G.; Novaes, S.F.; Padula, Sandra S.; Aleksandrov, A.; Antchev, G.; Atanasov, I; Hadjiiska, R.; Iaydjiev, P.; Misheva, M.; Rodozov, M.; Shopova, M.; Sultanov, G.; Bonchev, M.; Dimitrov, A.; Ivanov, T.; Litov, L.; Pavlov, B.; and Petkov, P.; Petrov, A.; Fang, W.; Guo, Q.; Wang, H.; Yuan, L.; Ahmad, M.; Hu, Z.; Wang, Y.; Chapon, E.; Chen,; G.M.; Chen, H.S.; Chen, M.; Kapoor, A.; Leggat, D.; Liao, H.; Liu, Z.; Sharma, R.; Spiezia, A.; Tao, J.; Thomas-wilsker, J.; Wang, J.; Zhang, H.; Zhang, S.; Zhao, J.; and Agapitos, A.; Ban, Y.; Chen, C.; Huang, Q.; Levin, A.; and Li, Q.; Lu, M.; Lyu, X.; Mao, Y.; Qian, S.J.;doi: 10.1140/epjc/s10052-020-08817-8 , 10.48550/arxiv.2009.01186 , 10.3929/ethz-b-000495146 , 10.3204/pubdb-2021-01404 , 10.5445/ir/1000133495 , 10.18154/rwth-2021-04402 , 10.18154/rwth-2021-04323
pmid: 33750993
pmc: PMC7921081
arXiv: 2009.01186
handle: 11579/135374 , 11563/159092 , 10044/1/87583 , 11449/210711 , 11586/374199 , 11571/1478316
doi: 10.1140/epjc/s10052-020-08817-8 , 10.48550/arxiv.2009.01186 , 10.3929/ethz-b-000495146 , 10.3204/pubdb-2021-01404 , 10.5445/ir/1000133495 , 10.18154/rwth-2021-04402 , 10.18154/rwth-2021-04323
pmid: 33750993
pmc: PMC7921081
arXiv: 2009.01186
handle: 11579/135374 , 11563/159092 , 10044/1/87583 , 11449/210711 , 11586/374199 , 11571/1478316
AbstractThe production of Z boson pairs in proton–proton ($${\mathrm{p}} {\mathrm{p}} $$ p p ) collisions, $${{\mathrm{p}} {\mathrm{p}} \rightarrow ({\mathrm{Z}}/\gamma ^*)({\mathrm{Z}}/\gamma ^*) \rightarrow 2\ell 2\ell '}$$ p p → ( Z / γ ∗ ) ( Z / γ ∗ ) → 2 ℓ 2 ℓ ′ , where $${\ell ,\ell ' = {\mathrm{e}}}$$ ℓ , ℓ ′ = e or $${{\upmu }}$$ μ , is studied at a center-of-mass energy of 13$$\,\text {TeV}$$ TeV with the CMS detector at the CERN LHC. The data sample corresponds to an integrated luminosity of 137$$\,\text {fb}^{-1}$$ fb - 1 , collected during 2016–2018. The $${\mathrm{Z}} {\mathrm{Z}} $$ Z Z production cross section, $$\sigma _{\text {tot}} ({\mathrm{p}} {\mathrm{p}} \rightarrow {\mathrm{Z}} {\mathrm{Z}} ) = 17.4 \pm 0.3 \,\text {(stat)} \pm 0.5 \,\text {(syst)} \pm 0.4 \,\text {(theo)} \pm 0.3 \,\text {(lumi)} \text { pb} $$ σ tot ( p p → Z Z ) = 17.4 ± 0.3 (stat) ± 0.5 (syst) ± 0.4 (theo) ± 0.3 (lumi) pb , measured for events with two pairs of opposite-sign, same-flavor leptons produced in the mass region $${60< m_{\ell ^+\ell ^-} < 120\,\text {GeV}}$$ 60 < m ℓ + ℓ - < 120 GeV is consistent with standard model predictions. Differential cross sections are also measured and agree with theoretical predictions. The invariant mass distribution of the four-lepton system is used to set limits on anomalous $${\mathrm{Z}} {\mathrm{Z}} {\mathrm{Z}} $$ Z Z Z and $${{\mathrm{Z}} {\mathrm{Z}} \gamma }$$ Z Z γ couplings.
Hyper Article en Lig... arrow_drop_down Brunel University London: Brunel University Research Archive (BURA)Article . 2021License: CC BYFull-Text: https://bura.brunel.ac.uk/handle/2438/22652Data sources: Bielefeld Academic Search Engine (BASE)Imperial College London: SpiralArticle . 2020License: CC BYFull-Text: http://hdl.handle.net/10044/1/87583Data sources: Bielefeld Academic Search Engine (BASE)École Polytechnique, Université Paris-Saclay: HALArticle . 2021Full-Text: https://hal.science/hal-02946182Data sources: Bielefeld Academic Search Engine (BASE)Caltech Authors (California Institute of Technology)Article . 2021Full-Text: https://arxiv.org/abs/2009.01186Data sources: Bielefeld Academic Search Engine (BASE)HAL-IN2P3 (Institut national de physique nucléaire et de physique des particules)Article . 2021Full-Text: https://hal.science/hal-02946182Data sources: Bielefeld Academic Search Engine (BASE)KITopen (Karlsruhe Institute of Technologie)Article . 2021License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Université Savoie Mont Blanc: HALArticle . 2021Full-Text: https://hal.science/hal-02946182Data sources: Bielefeld Academic Search Engine (BASE)European Physical Journal C: Particles and FieldsArticle . 2021 . Peer-reviewedLicense: CC BYData sources: CrossrefRecolector de Ciencia Abierta, RECOLECTAArticle . 2021Data sources: Recolector de Ciencia Abierta, RECOLECTARecolector de Ciencia Abierta, RECOLECTAArticle . 2021License: CC BYData sources: Recolector de Ciencia Abierta, RECOLECTAUniversità degli Studi del Piemonte Orientale: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Università degli Studi della Basilicata: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Universidade Estadual Paulista São Paulo: Repositório Institucional UNESPArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Università degli Studi di Bari Aldo Moro: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)IRIS UNIPV (Università degli studi di Pavia)Article . 2021Data sources: Bielefeld Academic Search Engine (BASE)Brunel University London: Brunel University Research Archive (BURA)Article . 2021Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euAccess RoutesGreen gold 24 citations 24 popularity Top 10% influence Top 10% impulse Top 10% Powered by BIP!
more_vert Hyper Article en Lig... arrow_drop_down Brunel University London: Brunel University Research Archive (BURA)Article . 2021License: CC BYFull-Text: https://bura.brunel.ac.uk/handle/2438/22652Data sources: Bielefeld Academic Search Engine (BASE)Imperial College London: SpiralArticle . 2020License: CC BYFull-Text: http://hdl.handle.net/10044/1/87583Data sources: Bielefeld Academic Search Engine (BASE)École Polytechnique, Université Paris-Saclay: HALArticle . 2021Full-Text: https://hal.science/hal-02946182Data sources: Bielefeld Academic Search Engine (BASE)Caltech Authors (California Institute of Technology)Article . 2021Full-Text: https://arxiv.org/abs/2009.01186Data sources: Bielefeld Academic Search Engine (BASE)HAL-IN2P3 (Institut national de physique nucléaire et de physique des particules)Article . 2021Full-Text: https://hal.science/hal-02946182Data sources: Bielefeld Academic Search Engine (BASE)KITopen (Karlsruhe Institute of Technologie)Article . 2021License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Université Savoie Mont Blanc: HALArticle . 2021Full-Text: https://hal.science/hal-02946182Data sources: Bielefeld Academic Search Engine (BASE)European Physical Journal C: Particles and FieldsArticle . 2021 . Peer-reviewedLicense: CC BYData sources: CrossrefRecolector de Ciencia Abierta, RECOLECTAArticle . 2021Data sources: Recolector de Ciencia Abierta, RECOLECTARecolector de Ciencia Abierta, RECOLECTAArticle . 2021License: CC BYData sources: Recolector de Ciencia Abierta, RECOLECTAUniversità degli Studi del Piemonte Orientale: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Università degli Studi della Basilicata: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Universidade Estadual Paulista São Paulo: Repositório Institucional UNESPArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)Università degli Studi di Bari Aldo Moro: CINECA IRISArticle . 2021Data sources: Bielefeld Academic Search Engine (BASE)IRIS UNIPV (Università degli studi di Pavia)Article . 2021Data sources: Bielefeld Academic Search Engine (BASE)Brunel University London: Brunel University Research Archive (BURA)Article . 2021Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Journal 2020Embargo end date: 25 Nov 2020 Switzerland, United Kingdom, United States, United Kingdom, United Kingdom, Italy, Italy, Canada, Italy, Norway, France, United KingdomPublisher:Springer Science and Business Media LLC Funded by:NSERC, NSF | Collaborative LTREB Propo..., RSF | Biological Effects of glo... +2 projectsNSERC ,NSF| Collaborative LTREB Proposal: Will increases in dissolved organic matter accelerate a shift in trophic status through anoxia-driven positive feedbacks in an oligotrophic lake? ,RSF| Biological Effects of global warming on cold-adapted endemic amphipods of Lake Baikal ,NSF| OPUS: CRS Synthesis to add dissolved organic matter to the trophic paradigm: the importance of water transparency in structuring pelagic ecosystems ,NSF| LTREB Renewal - Collaborative Research: Responses of high elevation, aquatic ecosystems to interannual climate variability and trends in atmospheric inputsDietmar Straile; Martin Schmid; Michela Rogora; Lewis Sitoki; Dörthe C. Müller-Navarra; Gesa A. Weyhenmeyer; Daniel E. Schindler; Sudeep Chandra; Karl E. Havens; Klaus Joehnk; Evelyn E. Gaiser; Shawn P. Devlin; Margaret Dix; Martin S. Luger; Benjamin M. Kraemer; Orlane Anneville; Scott F. Girdner; B. V. Adamovich; Peter D. F. Isles; Wendel Keller; Martin T. Dokulil; Svetlana V. Shimaraeva; Helen V. Pislegina; David P. Hamilton; Craig E. Williamson; Peter R. Leavitt; Peter R. Leavitt; Eugene A. Silow; Scott N. Higgins; Donald C. Pierson; Johanna Korhonen; Stephanie J. Melles; Lesley B. Knoll; Alon Rimmer; Stephen C. Maberly; Hannu Huuskonen; Egor S. Zadereev; William Colom-Montero; Maxim A. Timofeyev; Timo Huttula; David C. Richardson; Fabio Lepori; Rachel M. Pilla; Jasmine E. Saros; Piet Verburg; James A. Rusak; John M. Melack; Wim Thiery; Wim Thiery; Kristin E. Strock; Nico Salmaso; Rita Adrian; Rita Adrian; Pierre Denis Plisnier; Steven Sadro; Ruben Sommaruga; Dag O. Hessen; Émilie Saulnier-Talbot; Rolf D. Vinebrooke; Ian D. Jones; K. David Hambright;AbstractGlobally, lake surface water temperatures have warmed rapidly relative to air temperatures, but changes in deepwater temperatures and vertical thermal structure are still largely unknown. We have compiled the most comprehensive data set to date of long-term (1970–2009) summertime vertical temperature profiles in lakes across the world to examine trends and drivers of whole-lake vertical thermal structure. We found significant increases in surface water temperatures across lakes at an average rate of + 0.37 °C decade−1, comparable to changes reported previously for other lakes, and similarly consistent trends of increasing water column stability (+ 0.08 kg m−3decade−1). In contrast, however, deepwater temperature trends showed little change on average (+ 0.06 °C decade−1), but had high variability across lakes, with trends in individual lakes ranging from − 0.68 °C decade−1to + 0.65 °C decade−1. The variability in deepwater temperature trends was not explained by trends in either surface water temperatures or thermal stability within lakes, and only 8.4% was explained by lake thermal region or local lake characteristics in a random forest analysis. These findings suggest that external drivers beyond our tested lake characteristics are important in explaining long-term trends in thermal structure, such as local to regional climate patterns or additional external anthropogenic influences.
CORE arrow_drop_down Fondazione Edmund Mach: IRIS-OpenPubArticle . 2020Full-Text: https://hdl.handle.net/10449/77136Data sources: Bielefeld Academic Search Engine (BASE)Universitet i Oslo: Digitale utgivelser ved UiO (DUO)Article . 2021License: CC BYFull-Text: http://urn.nb.no/URN:NBN:no-88077Data sources: Bielefeld Academic Search Engine (BASE)oURspace - The University of Regina's Institutional RepositoryArticle . 2020License: CC BYFull-Text: http://hdl.handle.net/10294/15894Data sources: Bielefeld Academic Search Engine (BASE)Natural Environment Research Council: NERC Open Research ArchiveArticle . 2020License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Université Savoie Mont Blanc: HALArticle . 2020Full-Text: https://hal.inrae.fr/hal-03151406Data sources: Bielefeld Academic Search Engine (BASE)University of Stirling: Stirling Digital Research RepositoryArticle . 2020License: CC BYFull-Text: http://hdl.handle.net/1893/31919Data sources: Bielefeld Academic Search Engine (BASE)Queen's University Belfast Research PortalArticle . 2020Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euAccess RoutesGreen gold 66 citations 66 popularity Top 1% influence Top 10% impulse Top 1% Powered by BIP!
visibility 67visibility views 67 download downloads 120 Powered bymore_vert CORE arrow_drop_down Fondazione Edmund Mach: IRIS-OpenPubArticle . 2020Full-Text: https://hdl.handle.net/10449/77136Data sources: Bielefeld Academic Search Engine (BASE)Universitet i Oslo: Digitale utgivelser ved UiO (DUO)Article . 2021License: CC BYFull-Text: http://urn.nb.no/URN:NBN:no-88077Data sources: Bielefeld Academic Search Engine (BASE)oURspace - The University of Regina's Institutional RepositoryArticle . 2020License: CC BYFull-Text: http://hdl.handle.net/10294/15894Data sources: Bielefeld Academic Search Engine (BASE)Natural Environment Research Council: NERC Open Research ArchiveArticle . 2020License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Université Savoie Mont Blanc: HALArticle . 2020Full-Text: https://hal.inrae.fr/hal-03151406Data sources: Bielefeld Academic Search Engine (BASE)University of Stirling: Stirling Digital Research RepositoryArticle . 2020License: CC BYFull-Text: http://hdl.handle.net/1893/31919Data sources: Bielefeld Academic Search Engine (BASE)Queen's University Belfast Research PortalArticle . 2020Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
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