Reuse & Permissions

It is not necessary to obtain permission to reuse this article or its components as it is available under the terms of the Creative Commons Attribution 4.0 International license. This license permits unrestricted use, distribution, and reproduction in any medium, provided attribution to the author(s) and the published article's title, journal citation, and DOI are maintained. Please note that some figures may have been included with permission from other third parties. It is your responsibility to obtain the proper permission from the rights holder directly for these figures.

Export citation

Export citation

Choose format for download:

Download Citation
  • Open Access
  • Access by Xinjiang University

Combined measurements of Higgs boson production and decay using up to 80fb1 of proton-proton collision data at s=13TeV collected with the ATLAS experiment

G. Aad101, B. Abbott128, D. C. Abbott102, O. Abdinov13,a, A. Abed Abud70a,70b, K. Abeling53, D. K. Abhayasinghe93, S. H. Abidi167, O. S. AbouZeid40 et al. (ATLAS Collaboration)

O. S. AbouZeid40, N. L. Abraham156, H. Abramowicz161, H. Abreu160, Y. Abulaiti6, B. S. Acharya66a,66b,b, B. Achkar53, S. Adachi163, L. Adam99, C. Adam Bourdarios132, L. Adamczyk83a, L. Adamek167, J. Adelman120, M. Adersberger113, A. Adiguzel12c,c, S. Adorni54, T. Adye144, A. A. Affolder146, Y. Afik160, C. Agapopoulou132, M. N. Agaras38, A. Aggarwal118, C. Agheorghiesei27c, J. A. Aguilar-Saavedra140f,140a,d, F. Ahmadov79, W. S. Ahmed103, X. Ai15a, G. Aielli73a,73b, S. Akatsuka85, T. P. A. Åkesson96, E. Akilli54, A. V. Akimov110, K. Al Khoury132, G. L. Alberghi23b,23a, J. Albert176, M. J. Alconada Verzini161, S. Alderweireldt36, M. Aleksa36, I. N. Aleksandrov79, C. Alexa27b, D. Alexandre19, T. Alexopoulos10, A. Alfonsi119, M. Alhroob128, B. Ali142, G. Alimonti68a, J. Alison37, S. P. Alkire148, C. Allaire132, B. M. M. Allbrooke156, B. W. Allen131, P. P. Allport21, A. Aloisio69a,69b, A. Alonso40, F. Alonso88, C. Alpigiani148, A. A. Alshehri57, M. Alvarez Estevez98, D. Álvarez Piqueras174, M. G. Alviggi69a,69b, Y. Amaral Coutinho80b, A. Ambler103, L. Ambroz135, C. Amelung26, D. Amidei105, S. P. Amor Dos Santos140a, S. Amoroso46, C. S. Amrouche54, F. An78, C. Anastopoulos149, N. Andari145, T. Andeen11, C. F. Anders61b, J. K. Anders20, A. Andreazza68a,68b, V. Andrei61a, C. R. Anelli176, S. Angelidakis38, A. Angerami39, A. V. Anisenkov121b,121a, A. Annovi71a, C. Antel61a, M. T. Anthony149, M. Antonelli51, D. J. A. Antrim171, F. Anulli72a, M. Aoki81, J. A. Aparisi Pozo174, L. Aperio Bella36, G. Arabidze106, J. P. Araque140a, V. Araujo Ferraz80b, R. Araujo Pereira80b, C. Arcangeletti51, A. T. H. Arce49, F. A. Arduh88, J-F. Arguin109, S. Argyropoulos77, J.-H. Arling46, A. J. Armbruster36, L. J. Armitage92, A. Armstrong171, O. Arnaez167, H. Arnold119, A. Artamonov123,a, G. Artoni135, S. Artz99, S. Asai163, N. Asbah59, E. M. Asimakopoulou172, L. Asquith156, K. Assamagan29, R. Astalos28a, R. J. Atkin33a, M. Atkinson173, N. B. Atlay151, H. Atmani132, K. Augsten142, G. Avolio36, R. Avramidou60a, M. K. Ayoub15a, A. M. Azoulay168b, G. Azuelos109,e, M. J. Baca21, H. Bachacou145, K. Bachas67a,67b, M. Backes135, F. Backman45a,45b, P. Bagnaia72a,72b, M. Bahmani84, H. Bahrasemani152, A. J. Bailey174, V. R. Bailey173, J. T. Baines144, M. Bajic40, C. Bakalis10, O. K. Baker183, P. J. Bakker119, D. Bakshi Gupta8, S. Balaji157, E. M. Baldin121b,121a, P. Balek180, F. Balli145, W. K. Balunas135, J. Balz99, E. Banas84, A. Bandyopadhyay24, Sw. Banerjee181,f, A. A. E. Bannoura182, L. Barak161, W. M. Barbe38, E. L. Barberio104, D. Barberis55b,55a, M. Barbero101, T. Barillari114, M-S. Barisits36, J. Barkeloo131, T. Barklow153, R. Barnea160, S. L. Barnes60c, B. M. Barnett144, R. M. Barnett18, Z. Barnovska-Blenessy60a, A. Baroncelli60a, G. Barone29, A. J. Barr135, L. Barranco Navarro45a,45b, F. Barreiro98, J. Barreiro Guimarães da Costa15a, S. Barsov138, R. Bartoldus153, G. Bartolini101, A. E. Barton89, P. Bartos28a, A. Basalaev46, A. Bassalat132,g, R. L. Bates57, S. J. Batista167, S. Batlamous35e, J. R. Batley32, B. Batool151, M. Battaglia146, M. Bauce72a,72b, F. Bauer145, K. T. Bauer171, H. S. Bawa31,h, J. B. Beacham49, T. Beau136, P. H. Beauchemin170, F. Becherer52, P. Bechtle24, H. C. Beck53, H. P. Beck20,i, K. Becker52, M. Becker99, C. Becot46, A. Beddall12d, A. J. Beddall12a, V. A. Bednyakov79, M. Bedognetti119, C. P. Bee155, T. A. Beermann76, M. Begalli80b, M. Begel29, A. Behera155, J. K. Behr46, F. Beisiegel24, A. S. Bell94, G. Bella161, L. Bellagamba23b, A. Bellerive34, P. Bellos9, K. Beloborodov121b,121a, K. Belotskiy111, N. L. Belyaev111, D. Benchekroun35a, N. Benekos10, Y. Benhammou161, D. P. Benjamin6, M. Benoit54, J. R. Bensinger26, S. Bentvelsen119, L. Beresford135, M. Beretta51, D. Berge46, E. Bergeaas Kuutmann172, N. Berger5, B. Bergmann142, L. J. Bergsten26, J. Beringer18, S. Berlendis7, N. R. Bernard102, G. Bernardi136, C. Bernius153, T. Berry93, P. Berta99, C. Bertella15a, I. A. Bertram89, G. J. Besjes40, O. Bessidskaia Bylund182, N. Besson145, A. Bethani100, S. Bethke114, A. Betti24, A. J. Bevan92, J. Beyer114, R. Bi139, R. M. Bianchi139, O. Biebel113, D. Biedermann19, R. Bielski36, K. Bierwagen99, N. V. Biesuz71a,71b, M. Biglietti74a, T. R. V. Billoud109, M. Bindi53, A. Bingul12d, C. Bini72a,72b, S. Biondi23b,23a, M. Birman180, T. Bisanz53, J. P. Biswal161, A. Bitadze100, C. Bittrich48, K. Bjørke134, K. M. Black25, T. Blazek28a, I. Bloch46, C. Blocker26, A. Blue57, U. Blumenschein92, G. J. Bobbink119, V. S. Bobrovnikov121b,121a, S. S. Bocchetta96, A. Bocci49, D. Boerner46, D. Bogavac14, A. G. Bogdanchikov121b,121a, C. Bohm45a, V. Boisvert93, P. Bokan53,172, T. Bold83a, A. S. Boldyrev112, A. E. Bolz61b, M. Bomben136, M. Bona92, J. S. Bonilla131, M. Boonekamp145, H. M. Borecka-Bielska90, A. Borisov122, G. Borissov89, J. Bortfeldt36, D. Bortoletto135, V. Bortolotto73a,73b, D. Boscherini23b, M. Bosman14, J. D. Bossio Sola103, K. Bouaouda35a, J. Boudreau139, E. V. Bouhova-Thacker89, D. Boumediene38, S. K. Boutle57, A. Boveia126, J. Boyd36, D. Boye33b,j, I. R. Boyko79, A. J. Bozson93, J. Bracinik21, N. Brahimi101, G. Brandt182, O. Brandt61a, F. Braren46, B. Brau102, J. E. Brau131, W. D. Breaden Madden57, K. Brendlinger46, L. Brenner46, R. Brenner172, S. Bressler180, B. Brickwedde99, D. L. Briglin21, D. Britton57, D. Britzger114, I. Brock24, R. Brock106, G. Brooijmans39, W. K. Brooks147c, E. Brost120, J. H. Broughton21, P. A. Bruckman de Renstrom84, D. Bruncko28b, A. Bruni23b, G. Bruni23b, L. S. Bruni119, S. Bruno73a,73b, B. H. Brunt32, M. Bruschi23b, N. Bruscino139, P. Bryant37, L. Bryngemark96, T. Buanes17, Q. Buat36, P. Buchholz151, A. G. Buckley57, I. A. Budagov79, M. K. Bugge134, F. Bührer52, O. Bulekov111, T. J. Burch120, S. Burdin90, C. D. Burgard119, A. M. Burger129, B. Burghgrave8, J. T. P. Burr46, J. C. Burzynski102, V. Büscher99, E. Buschmann53, P. J. Bussey57, J. M. Butler25, C. M. Buttar57, J. M. Butterworth94, P. Butti36, W. Buttinger36, A. Buzatu158, A. R. Buzykaev121b,121a, G. Cabras23b,23a, S. Cabrera Urbán174, D. Caforio56, H. Cai173, V. M. M. Cairo153, O. Cakir4a, N. Calace36, P. Calafiura18, A. Calandri101, G. Calderini136, P. Calfayan65, G. Callea57, L. P. Caloba80b, S. Calvente Lopez98, D. Calvet38, S. Calvet38, T. P. Calvet155, M. Calvetti71a,71b, R. Camacho Toro136, S. Camarda36, D. Camarero Munoz98, P. Camarri73a,73b, D. Cameron134, R. Caminal Armadans102, C. Camincher36, S. Campana36, M. Campanelli94, A. Camplani40, A. Campoverde151, V. Canale69a,69b, A. Canesse103, M. Cano Bret60c, J. Cantero129, T. Cao161, Y. Cao173, M. D. M. Capeans Garrido36, M. Capua41b,41a, R. Cardarelli73a, F. Cardillo149, G. Carducci41b,41a, I. Carli143, T. Carli36, G. Carlino69a, B. T. Carlson139, L. Carminati68a,68b, R. M. D. Carney45a,45b, S. Caron118, E. Carquin147c, S. Carrá46, J. W. S. Carter167, M. P. Casado14,k, A. F. Casha167, D. W. Casper171, R. Castelijn119, F. L. Castillo174, V. Castillo Gimenez174, N. F. Castro140a,140e, A. Catinaccio36, J. R. Catmore134, A. Cattai36, J. Caudron24, V. Cavaliere29, E. Cavallaro14, M. Cavalli-Sforza14, V. Cavasinni71a,71b, E. Celebi12b, F. Ceradini74a,74b, L. Cerda Alberich174, K. Cerny130, A. S. Cerqueira80a, A. Cerri156, L. Cerrito73a,73b, F. Cerutti18, A. Cervelli23b,23a, S. A. Cetin12b, D. Chakraborty120, S. K. Chan59, W. S. Chan119, W. Y. Chan90, J. D. Chapman32, B. Chargeishvili159b, D. G. Charlton21, T. P. Charman92, C. C. Chau34, S. Che126, A. Chegwidden106, S. Chekanov6, S. V. Chekulaev168a, G. A. Chelkov79,l, M. A. Chelstowska36, B. Chen78, C. Chen60a, C. H. Chen78, H. Chen29, J. Chen60a, J. Chen39, S. Chen137, S. J. Chen15c, X. Chen15b,m, Y. Chen82, Y-H. Chen46, H. C. Cheng63a, H. J. Cheng15a,15d, A. Cheplakov79, E. Cheremushkina122, R. Cherkaoui El Moursli35e, E. Cheu7, K. Cheung64, T. J. A. Chevalérias145, L. Chevalier145, V. Chiarella51, G. Chiarelli71a, G. Chiodini67a, A. S. Chisholm36,21, A. Chitan27b, I. Chiu163, Y. H. Chiu176, M. V. Chizhov79, K. Choi65, A. R. Chomont72a,72b, S. Chouridou162, Y. S. Chow119, M. C. Chu63a, X. Chu15a, J. Chudoba141, A. J. Chuinard103, J. J. Chwastowski84, L. Chytka130, K. M. Ciesla84, D. Cinca47, V. Cindro91, I. A. Cioară27b, A. Ciocio18, F. Cirotto69a,69b, Z. H. Citron180,n, M. Citterio68a, D. A. Ciubotaru27b, B. M. Ciungu167, A. Clark54, M. R. Clark39, P. J. Clark50, C. Clement45a,45b, Y. Coadou101, M. Cobal66a,66c, A. Coccaro55b, J. Cochran78, H. Cohen161, A. E. C. Coimbra36, L. Colasurdo118, B. Cole39, A. P. Colijn119, J. Collot58, P. Conde Muiño140a,o, E. Coniavitis52, S. H. Connell33b, I. A. Connelly57, S. Constantinescu27b, F. Conventi69a,p, A. M. Cooper-Sarkar135, F. Cormier175, K. J. R. Cormier167, L. D. Corpe94, M. Corradi72a,72b, E. E. Corrigan96, F. Corriveau103,q, A. Cortes-Gonzalez36, M. J. Costa174, F. Costanza5, D. Costanzo149, G. Cowan93, J. W. Cowley32, J. Crane100, K. Cranmer124, S. J. Crawley57, R. A. Creager137, S. Crépé-Renaudin58, F. Crescioli136, M. Cristinziani24, V. Croft119, G. Crosetti41b,41a, A. Cueto5, T. Cuhadar Donszelmann149, A. R. Cukierman153, S. Czekierda84, P. Czodrowski36, M. J. Da Cunha Sargedas De Sousa60b, J. V. Da Fonseca Pinto80b, C. Da Via100, W. Dabrowski83a, T. Dado28a, S. Dahbi35e, T. Dai105, C. Dallapiccola102, M. Dam40, G. D’amen23b,23a, V. D’Amico74a,74b, J. Damp99, J. R. Dandoy137, M. F. Daneri30, N. P. Dang181,f, N. S. Dann100, M. Danninger175, V. Dao36, G. Darbo55b, O. Dartsi5, A. Dattagupta131, T. Daubney46, S. D’Auria68a,68b, W. Davey24, C. David46, T. Davidek143, D. R. Davis49, I. Dawson149, K. De8, R. De Asmundis69a, M. De Beurs119, S. De Castro23b,23a, S. De Cecco72a,72b, N. De Groot118, P. de Jong119, H. De la Torre106, A. De Maria15c, D. De Pedis72a, A. De Salvo72a, U. De Sanctis73a,73b, M. De Santis73a,73b, A. De Santo156, K. De Vasconcelos Corga101, J. B. De Vivie De Regie132, C. Debenedetti146, D. V. Dedovich79, A. M. Deiana42, M. Del Gaudio41b,41a, J. Del Peso98, Y. Delabat Diaz46, D. Delgove132, F. Deliot145,r, C. M. Delitzsch7, M. Della Pietra69a,69b, D. Della Volpe54, A. Dell’Acqua36, L. Dell’Asta73a,73b, M. Delmastro5, C. Delporte132, P. A. Delsart58, D. A. DeMarco167, S. Demers183, M. Demichev79, G. Demontigny109, S. P. Denisov122, D. Denysiuk119, L. D’Eramo136, D. Derendarz84, J. E. Derkaoui35d, F. Derue136, P. Dervan90, K. Desch24, C. Deterre46, K. Dette167, C. Deutsch24, M. R. Devesa30, P. O. Deviveiros36, A. Dewhurst144, S. Dhaliwal26, F. A. Di Bello54, A. Di Ciaccio73a,73b, L. Di Ciaccio5, W. K. Di Clemente137, C. Di Donato69a,69b, A. Di Girolamo36, G. Di Gregorio71a,71b, B. Di Micco74a,74b, R. Di Nardo102, K. F. Di Petrillo59, R. Di Sipio167, D. Di Valentino34, C. Diaconu101, F. A. Dias40, T. Dias Do Vale140a, M. A. Diaz147a, J. Dickinson18, E. B. Diehl105, J. Dietrich19, S. Díez Cornell46, A. Dimitrievska18, W. Ding15b, J. Dingfelder24, F. Dittus36, F. Djama101, T. Djobava159b, J. I. Djuvsland17, M. A. B. Do Vale80c, M. Dobre27b, D. Dodsworth26, C. Doglioni96, J. Dolejsi143, Z. Dolezal143, M. Donadelli80d, B. Dong60c, J. Donini38, A. D’onofrio92, M. D’Onofrio90, J. Dopke144, A. Doria69a, M. T. Dova88, A. T. Doyle57, E. Drechsler152, E. Dreyer152, T. Dreyer53, A. S. Drobac170, Y. Duan60b, F. Dubinin110, M. Dubovsky28a, A. Dubreuil54, E. Duchovni180, G. Duckeck113, A. Ducourthial136, O. A. Ducu109, D. Duda114, A. Dudarev36, A. C. Dudder99, E. M. Duffield18, L. Duflot132, M. Dührssen36, C. Dülsen182, M. Dumancic180, A. E. Dumitriu27b, A. K. Duncan57, M. Dunford61a, A. Duperrin101, H. Duran Yildiz4a, M. Düren56, A. Durglishvili159b, D. Duschinger48, B. Dutta46, D. Duvnjak1, G. I. Dyckes137, M. Dyndal36, S. Dysch100, B. S. Dziedzic84, K. M. Ecker114, R. C. Edgar105, T. Eifert36, G. Eigen17, K. Einsweiler18, T. Ekelof172, H. El Jarrari35e, M. El Kacimi35c, R. El Kosseifi101, V. Ellajosyula172, M. Ellert172, F. Ellinghaus182, A. A. Elliot92, N. Ellis36, J. Elmsheuser29, M. Elsing36, D. Emeliyanov144, A. Emerman39, Y. Enari163, J. S. Ennis178, M. B. Epland49, J. Erdmann47, A. Ereditato20, M. Errenst36, M. Escalier132, C. Escobar174, O. Estrada Pastor174, E. Etzion161, H. Evans65, A. Ezhilov138, F. Fabbri57, L. Fabbri23b,23a, V. Fabiani118, G. Facini94, R. M. Faisca Rodrigues Pereira140a, R. M. Fakhrutdinov122, S. Falciano72a, P. J. Falke5, S. Falke5, J. Faltova143, Y. Fang15a, Y. Fang15a, G. Fanourakis44, M. Fanti68a,68b, A. Farbin8, A. Farilla74a, E. M. Farina70a,70b, T. Farooque106, S. Farrell18, S. M. Farrington50, P. Farthouat36, F. Fassi35e, P. Fassnacht36, D. Fassouliotis9, M. Faucci Giannelli50, W. J. Fawcett32, L. Fayard132, O. L. Fedin138,s, W. Fedorko175, M. Feickert42, S. Feigl134, L. Feligioni101, A. Fell149, C. Feng60b, E. J. Feng36, M. Feng49, M. J. Fenton57, A. B. Fenyuk122, J. Ferrando46, A. Ferrante173, A. Ferrari172, P. Ferrari119, R. Ferrari70a, D. E. Ferreira de Lima61b, A. Ferrer174, D. Ferrere54, C. Ferretti105, F. Fiedler99, A. Filipčič91, F. Filthaut118, K. D. Finelli25, M. C. N. Fiolhais140a,140c,t, L. Fiorini174, F. Fischer113, W. C. Fisher106, I. Fleck151, P. Fleischmann105, R. R. M. Fletcher137, T. Flick182, B. M. Flierl113, L. Flores137, L. R. Flores Castillo63a, F. M. Follega75a,75b, N. Fomin17, J. H. Foo167, G. T. Forcolin75a,75b, A. Formica145, F. A. Förster14, A. C. Forti100, A. G. Foster21, M. G. Foti135, D. Fournier132, H. Fox89, P. Francavilla71a,71b, S. Francescato72a,72b, M. Franchini23b,23a, S. Franchino61a, D. Francis36, L. Franconi20, M. Franklin59, A. N. Fray92, B. Freund109, W. S. Freund80b, E. M. Freundlich47, D. C. Frizzell128, D. Froidevaux36, J. A. Frost135, C. Fukunaga164, E. Fullana Torregrosa174, E. Fumagalli55b,55a, T. Fusayasu115, J. Fuster174, A. Gabrielli23b,23a, A. Gabrielli18, G. P. Gach83a, S. Gadatsch54, P. Gadow114, G. Gagliardi55b,55a, L. G. Gagnon109, C. Galea27b, B. Galhardo140a, G. E. Gallardo135, E. J. Gallas135, B. J. Gallop144, P. Gallus142, G. Galster40, R. Gamboa Goni92, K. K. Gan126, S. Ganguly180, J. Gao60a, Y. Gao90, Y. S. Gao31,h, C. García174, J. E. García Navarro174, J. A. García Pascual15a, C. Garcia-Argos52, M. Garcia-Sciveres18, R. W. Gardner37, N. Garelli153, S. Gargiulo52, V. Garonne134, A. Gaudiello55b,55a, G. Gaudio70a, I. L. Gavrilenko110, A. Gavrilyuk123, C. Gay175, G. Gaycken24, E. N. Gazis10, A. A. Geanta27b, C. N. P. Gee144, J. Geisen53, M. Geisen99, M. P. Geisler61a, C. Gemme55b, M. H. Genest58, C. Geng105, S. Gentile72a,72b, S. George93, T. Geralis44, L. O. Gerlach53, P. Gessinger-Befurt99, G. Gessner47, S. Ghasemi151, M. Ghasemi Bostanabad176, A. Ghosh132, A. Ghosh77, B. Giacobbe23b, S. Giagu72a,72b, N. Giangiacomi23b,23a, P. Giannetti71a, A. Giannini69a,69b, S. M. Gibson93, M. Gignac146, D. Gillberg34, G. Gilles182, D. M. Gingrich3,e, M. P. Giordani66a,66c, F. M. Giorgi23b, P. F. Giraud145, G. Giugliarelli66a,66c, D. Giugni68a, F. Giuli73a,73b, S. Gkaitatzis162, I. Gkialas9,u, E. L. Gkougkousis14, P. Gkountoumis10, L. K. Gladilin112, C. Glasman98, J. Glatzer14, P. C. F. Glaysher46, A. Glazov46, M. Goblirsch-Kolb26, S. Goldfarb104, T. Golling54, D. Golubkov122, A. Gomes140a,140b, R. Goncalves Gama53, R. Gonçalo140a,140b, G. Gonella52, L. Gonella21, A. Gongadze79, F. Gonnella21, J. L. Gonski59, S. González de la Hoz174, S. Gonzalez-Sevilla54, G. R. Gonzalvo Rodriguez174, L. Goossens36, P. A. Gorbounov123, H. A. Gordon29, B. Gorini36, E. Gorini67a,67b, A. Gorišek91, A. T. Goshaw49, M. I. Gostkin79, C. A. Gottardo24, M. Gouighri35b, D. Goujdami35c, A. G. Goussiou148, N. Govender33b,v, C. Goy5, E. Gozani160, I. Grabowska-Bold83a, E. C. Graham90, J. Gramling171, E. Gramstad134, S. Grancagnolo19, M. Grandi156, V. Gratchev138, P. M. Gravila27f, F. G. Gravili67a,67b, C. Gray57, H. M. Gray18, C. Grefe24, K. Gregersen96, I. M. Gregor46, P. Grenier153, K. Grevtsov46, C. Grieco14, N. A. Grieser128, J. Griffiths8, A. A. Grillo146, K. Grimm31,w, S. Grinstein14,x, J.-F. Grivaz132, S. Groh99, E. Gross180, J. Grosse-Knetter53, Z. J. Grout94, C. Grud105, A. Grummer117, L. Guan105, W. Guan181, J. Guenther36, A. Guerguichon132, J. G. R. Guerrero Rojas174, F. Guescini114, D. Guest171, R. Gugel52, T. Guillemin5, S. Guindon36, U. Gul57, J. Guo60c, W. Guo105, Y. Guo60a,y, Z. Guo101, R. Gupta46, S. Gurbuz12c, G. Gustavino128, P. Gutierrez128, C. Gutschow94, C. Guyot145, M. P. Guzik83a, C. Gwenlan135, C. B. Gwilliam90, A. Haas124, C. Haber18, H. K. Hadavand8, N. Haddad35e, A. Hadef60a, S. Hageböck36, M. Hagihara169, M. Haleem177, J. Haley129, G. Halladjian106, G. D. Hallewell101, K. Hamacher182, P. Hamal130, K. Hamano176, H. Hamdaoui35e, G. N. Hamity149, K. Han60a,z, L. Han60a, S. Han15a,15d, K. Hanagaki81,aa, M. Hance146, D. M. Handl113, B. Haney137, R. Hankache136, E. Hansen96, J. B. Hansen40, J. D. Hansen40, M. C. Hansen24, P. H. Hansen40, E. C. Hanson100, K. Hara169, A. S. Hard181, T. Harenberg182, S. Harkusha107, P. F. Harrison178, N. M. Hartmann113, Y. Hasegawa150, A. Hasib50, S. Hassani145, S. Haug20, R. Hauser106, L. B. Havener39, M. Havranek142, C. M. Hawkes21, R. J. Hawkings36, D. Hayden106, C. Hayes155, R. L. Hayes175, C. P. Hays135, J. M. Hays92, H. S. Hayward90, S. J. Haywood144, F. He60a, M. P. Heath50, V. Hedberg96, L. Heelan8, S. Heer24, K. K. Heidegger52, W. D. Heidorn78, J. Heilman34, S. Heim46, T. Heim18, B. Heinemann46,bb, J. J. Heinrich131, L. Heinrich36, C. Heinz56, J. Hejbal141, L. Helary61b, A. Held175, S. Hellesund134, C. M. Helling146, S. Hellman45a,45b, C. Helsens36, R. C. W. Henderson89, Y. Heng181, S. Henkelmann175, A. M. Henriques Correia36, G. H. Herbert19, H. Herde26, V. Herget177, Y. Hernández Jiménez33c, H. Herr99, M. G. Herrmann113, T. Herrmann48, G. Herten52, R. Hertenberger113, L. Hervas36, T. C. Herwig137, G. G. Hesketh94, N. P. Hessey168a, A. Higashida163, S. Higashino81, E. Higón-Rodriguez174, K. Hildebrand37, E. Hill176, J. C. Hill32, K. K. Hill29, K. H. Hiller46, S. J. Hillier21, M. Hils48, I. Hinchliffe18, F. Hinterkeuser24, M. Hirose133, S. Hirose52, D. Hirschbuehl182, B. Hiti91, O. Hladik141, D. R. Hlaluku33c, X. Hoad50, J. Hobbs155, N. Hod180, M. C. Hodgkinson149, A. Hoecker36, F. Hoenig113, D. Hohn52, D. Hohov132, T. R. Holmes37, M. Holzbock113, L. B. A. H Hommels32, S. Honda169, T. Honda81, T. M. Hong139, A. Hönle114, B. H. Hooberman173, W. H. Hopkins6, Y. Horii116, P. Horn48, L. A. Horyn37, J-Y. Hostachy58, A. Hostiuc148, S. Hou158, A. Hoummada35a, J. Howarth100, J. Hoya88, M. Hrabovsky130, J. Hrdinka76, I. Hristova19, J. Hrivnac132, A. Hrynevich108, T. Hryn’ova5, P. J. Hsu64, S.-C. Hsu148, Q. Hu29, S. Hu60c, Y. Huang15a, Z. Hubacek142, F. Hubaut101, M. Huebner24, F. Huegging24, T. B. Huffman135, M. Huhtinen36, R. F. H. Hunter34, P. Huo155, A. M. Hupe34, N. Huseynov79,cc, J. Huston106, J. Huth59, R. Hyneman105, S. Hyrych28a, G. Iacobucci54, G. Iakovidis29, I. Ibragimov151, L. Iconomidou-Fayard132, Z. Idrissi35e, P. Iengo36, R. Ignazzi40, O. Igonkina119,a,dd, R. Iguchi163, T. Iizawa54, Y. Ikegami81, M. Ikeno81, D. Iliadis162, N. Ilic118, F. Iltzsche48, G. Introzzi70a,70b, M. Iodice74a, K. Iordanidou168a, V. Ippolito72a,72b, M. F. Isacson172, M. Ishino163, M. Ishitsuka165, W. Islam129, C. Issever135, S. Istin160, F. Ito169, J. M. Iturbe Ponce63a, R. Iuppa75a,75b, A. Ivina180, H. Iwasaki81, J. M. Izen43, V. Izzo69a, P. Jacka141, P. Jackson1, R. M. Jacobs24, B. P. Jaeger152, V. Jain2, G. Jäkel182, K. B. Jakobi99, K. Jakobs52, S. Jakobsen76, T. Jakoubek141, J. Jamieson57, K. W. Janas83a, R. Jansky54, J. Janssen24, M. Janus53, P. A. Janus83a, G. Jarlskog96, N. Javadov79,cc, T. Javůrek36, M. Javurkova52, F. Jeanneau145, L. Jeanty131, J. Jejelava159a,ee, A. Jelinskas178, P. Jenni52,ff, J. Jeong46, N. Jeong46, S. Jézéquel5, H. Ji181, J. Jia155, H. Jiang78, Y. Jiang60a, Z. Jiang153,gg, S. Jiggins52, F. A. Jimenez Morales38, J. Jimenez Pena174, S. Jin15c, A. Jinaru27b, O. Jinnouchi165, H. Jivan33c, P. Johansson149, K. A. Johns7, C. A. Johnson65, K. Jon-And45a,45b, R. W. L. Jones89, S. D. Jones156, S. Jones7, T. J. Jones90, J. Jongmanns61a, P. M. Jorge140a, J. Jovicevic36, X. Ju18, J. J. Junggeburth114, A. Juste Rozas14,x, A. Kaczmarska84, M. Kado72a,72b, H. Kagan126, M. Kagan153, C. Kahra99, T. Kaji179, E. Kajomovitz160, C. W. Kalderon96, A. Kaluza99, A. Kamenshchikov122, L. Kanjir91, Y. Kano163, V. A. Kantserov111, J. Kanzaki81, L. S. Kaplan181, D. Kar33c, M. J. Kareem168b, E. Karentzos10, S. N. Karpov79, Z. M. Karpova79, V. Kartvelishvili89, A. N. Karyukhin122, L. Kashif181, R. D. Kass126, A. Kastanas45a,45b, Y. Kataoka163, C. Kato60d,60c, J. Katzy46, K. Kawade82, K. Kawagoe87, T. Kawaguchi116, T. Kawamoto163, G. Kawamura53, E. F. Kay176, V. F. Kazanin121b,121a, R. Keeler176, R. Kehoe42, J. S. Keller34, E. Kellermann96, D. Kelsey156, J. J. Kempster21, J. Kendrick21, O. Kepka141, S. Kersten182, B. P. Kerševan91, S. Ketabchi Haghighat167, M. Khader173, F. Khalil-Zada13, M. Khandoga145, A. Khanov129, A. G. Kharlamov121b,121a, T. Kharlamova121b,121a, E. E. Khoda175, A. Khodinov166, T. J. Khoo54, E. Khramov79, J. Khubua159b, S. Kido82, M. Kiehn54, C. R. Kilby93, Y. K. Kim37, N. Kimura66a,66c, O. M. Kind19, B. T. King90,a, D. Kirchmeier48, J. Kirk144, A. E. Kiryunin114, T. Kishimoto163, D. P. Kisliuk167, V. Kitali46, O. Kivernyk5, E. Kladiva28b,a, T. Klapdor-Kleingrothaus52, M. Klassen61a, M. H. Klein105, M. Klein90, U. Klein90, K. Kleinknecht99, P. Klimek120, A. Klimentov29, T. Klingl24, T. Klioutchnikova36, F. F. Klitzner113, P. Kluit119, S. Kluth114, E. Kneringer76, E. B. F. G. Knoops101, A. Knue52, D. Kobayashi87, T. Kobayashi163, M. Kobel48, M. Kocian153, P. Kodys143, P. T. Koenig24, T. Koffas34, N. M. Köhler114, T. Koi153, M. Kolb61b, I. Koletsou5, T. Komarek130, T. Kondo81, N. Kondrashova60c, K. Köneke52, A. C. König118, T. Kono125, R. Konoplich124,hh, V. Konstantinides94, N. Konstantinidis94, B. Konya96, R. Kopeliansky65, S. Koperny83a, K. Korcyl84, K. Kordas162, G. Koren161, A. Korn94, I. Korolkov14, E. V. Korolkova149, N. Korotkova112, O. Kortner114, S. Kortner114, T. Kosek143, V. V. Kostyukhin24, A. Kotwal49, A. Koulouris10, A. Kourkoumeli-Charalampidi70a,70b, C. Kourkoumelis9, E. Kourlitis149, V. Kouskoura29, A. B. Kowalewska84, R. Kowalewski176, C. Kozakai163, W. Kozanecki145, A. S. Kozhin122, V. A. Kramarenko112, G. Kramberger91, D. Krasnopevtsev60a, M. W. Krasny136, A. Krasznahorkay36, D. Krauss114, J. A. Kremer83a, J. Kretzschmar90, P. Krieger167, F. Krieter113, A. Krishnan61b, K. Krizka18, K. Kroeninger47, H. Kroha114, J. Kroll141, J. Kroll137, J. Krstic16, U. Kruchonak79, H. Krüger24, N. Krumnack78, M. C. Kruse49, J. A. Krzysiak84, T. Kubota104, O. Kuchinskaia166, S. Kuday4b, J. T. Kuechler46, S. Kuehn36, A. Kugel61a, T. Kuhl46, V. Kukhtin79, R. Kukla101, Y. Kulchitsky107,ii, S. Kuleshov147c, Y. P. Kulinich173, M. Kuna58, T. Kunigo85, A. Kupco141, T. Kupfer47, O. Kuprash52, H. Kurashige82, L. L. Kurchaninov168a, Y. A. Kurochkin107, A. Kurova111, M. G. Kurth15a,15d, E. S. Kuwertz36, M. Kuze165, A. K. Kvam148, J. Kvita130, T. Kwan103, A. La Rosa114, L. La Rotonda41b,41a, F. La Ruffa41b,41a, C. Lacasta174, F. Lacava72a,72b, D. P. J. Lack100, H. Lacker19, D. Lacour136, E. Ladygin79, R. Lafaye5, B. Laforge136, T. Lagouri33c, S. Lai53, S. Lammers65, W. Lampl7, C. Lampoudis162, E. Lançon29, U. Landgraf52, M. P. J. Landon92, M. C. Lanfermann54, V. S. Lang46, J. C. Lange53, R. J. Langenberg36, A. J. Lankford171, F. Lanni29, K. Lantzsch24, A. Lanza70a, A. Lapertosa55b,55a, S. Laplace136, J. F. Laporte145, T. Lari68a, F. Lasagni Manghi23b,23a, M. Lassnig36, T. S. Lau63a, A. Laudrain132, A. Laurier34, M. Lavorgna69a,69b, M. Lazzaroni68a,68b, B. Le104, E. Le Guirriec101, M. LeBlanc7, T. LeCompte6, F. Ledroit-Guillon58, C. A. Lee29, G. R. Lee17, L. Lee59, S. C. Lee158, S. J. Lee34, B. Lefebvre168a, M. Lefebvre176, F. Legger113, C. Leggett18, K. Lehmann152, N. Lehmann182, G. Lehmann Miotto36, W. A. Leight46, A. Leisos162,jj, M. A. L. Leite80d, C. E. Leitgeb113, R. Leitner143, D. Lellouch180,a, K. J. C. Leney42, T. Lenz24, B. Lenzi36, R. Leone7, S. Leone71a, C. Leonidopoulos50, A. Leopold136, G. Lerner156, C. Leroy109, R. Les167, C. G. Lester32, M. Levchenko138, J. Levêque5, D. Levin105, L. J. Levinson180, D. J. Lewis21, B. Li15b, B. Li105, C-Q. Li60a, F. Li60c, H. Li60a, H. Li60b, J. Li60c, K. Li153, L. Li60c, M. Li15a, Q. Li15a,15d, Q. Y. Li60a, S. Li60d,60c, X. Li46, Y. Li46, Z. Li60b, Z. Liang15a, B. Liberti73a, A. Liblong167, K. Lie63c, S. Liem119, C. Y. Lin32, K. Lin106, T. H. Lin99, R. A. Linck65, J. H. Lindon21, A. L. Lionti54, E. Lipeles137, A. Lipniacka17, M. Lisovyi61b, T. M. Liss173,kk, A. Lister175, A. M. Litke146, J. D. Little8, B. Liu78,ll, B. L Liu6, H. B. Liu29, H. Liu105, J. B. Liu60a, J. K. K. Liu135, K. Liu136, M. Liu60a, P. Liu18, Y. Liu15a,15d, Y. L. Liu105, Y. W. Liu60a, M. Livan70a,70b, A. Lleres58, J. Llorente Merino15a, S. L. Lloyd92, C. Y. Lo63b, F. Lo Sterzo42, E. M. Lobodzinska46, P. Loch7, S. Loffredo73a,73b, T. Lohse19, K. Lohwasser149, M. Lokajicek141, J. D. Long173, R. E. Long89, L. Longo36, K. A. Looper126, J. A. Lopez147c, I. Lopez Paz100, A. Lopez Solis149, J. Lorenz113, N. Lorenzo Martinez5, M. Losada22, P. J. Lösel113, A. Lösle52, X. Lou46, X. Lou15a, A. Lounis132, J. Love6, P. A. Love89, J. J. Lozano Bahilo174, M. Lu60a, Y. J. Lu64, H. J. Lubatti148, C. Luci72a,72b, A. Lucotte58, C. Luedtke52, F. Luehring65, I. Luise136, L. Luminari72a, B. Lund-Jensen154, M. S. Lutz102, D. Lynn29, R. Lysak141, E. Lytken96, F. Lyu15a, V. Lyubushkin79, T. Lyubushkina79, H. Ma29, L. L. Ma60b, Y. Ma60b, G. Maccarrone51, A. Macchiolo114, C. M. Macdonald149, J. Machado Miguens137, D. Madaffari174, R. Madar38, W. F. Mader48, N. Madysa48, J. Maeda82, K. Maekawa163, S. Maeland17, T. Maeno29, M. Maerker48, A. S. Maevskiy112, V. Magerl52, N. Magini78, D. J. Mahon39, C. Maidantchik80b, T. Maier113, A. Maio140a,140b,140d, K. Maj84, O. Majersky28a, S. Majewski131, Y. Makida81, N. Makovec132, B. Malaescu136, Pa. Malecki84, V. P. Maleev138, F. Malek58, U. Mallik77, D. Malon6, C. Malone32, S. Maltezos10, S. Malyukov79, J. Mamuzic174, G. Mancini51, I. Mandić91, L. Manhaes de Andrade Filho80a, I. M. Maniatis162, J. Manjarres Ramos48, K. H. Mankinen96, A. Mann113, A. Manousos76, B. Mansoulie145, I. Manthos162, S. Manzoni119, A. Marantis162, G. Marceca30, L. Marchese135, G. Marchiori136, M. Marcisovsky141, C. Marcon96, C. A. Marin Tobon36, M. Marjanovic38, Z. Marshall18, M. U. F. Martensson172, S. Marti-Garcia174, C. B. Martin126, T. A. Martin178, V. J. Martin50, B. Martin dit Latour17, L. Martinelli74a,74b, M. Martinez14,x, V. I. Martinez Outschoorn102, S. Martin-Haugh144, V. S. Martoiu27b, A. C. Martyniuk94, A. Marzin36, S. R. Maschek114, L. Masetti99, T. Mashimo163, R. Mashinistov110, J. Masik100, A. L. Maslennikov121b,121a, L. H. Mason104, L. Massa73a,73b, P. Massarotti69a,69b, P. Mastrandrea71a,71b, A. Mastroberardino41b,41a, T. Masubuchi163, A. Matic113, P. Mättig24, J. Maurer27b, B. Maček91, D. A. Maximov121b,121a, R. Mazini158, I. Maznas162, S. M. Mazza146, S. P. Mc Kee105, T. G. McCarthy114, L. I. McClymont94, W. P. McCormack18, E. F. McDonald104, J. A. Mcfayden36, M. A. McKay42, K. D. McLean176, S. J. McMahon144, P. C. McNamara104, C. J. McNicol178, R. A. McPherson176,q, J. E. Mdhluli33c, Z. A. Meadows102, S. Meehan148, T. Megy52, S. Mehlhase113, A. Mehta90, T. Meideck58, B. Meirose43, D. Melini174, B. R. Mellado Garcia33c, J. D. Mellenthin53, M. Melo28a, F. Meloni46, A. Melzer24, S. B. Menary100, E. D. Mendes Gouveia140a,140e, L. Meng36, X. T. Meng105, S. Menke114, E. Meoni41b,41a, S. Mergelmeyer19, S. A. M. Merkt139, C. Merlassino20, P. Mermod54, L. Merola69a,69b, C. Meroni68a, O. Meshkov112,110, J. K. R. Meshreki151, A. Messina72a,72b, J. Metcalfe6, A. S. Mete171, C. Meyer65, J. Meyer160, J-P. Meyer145, H. Meyer Zu Theenhausen61a, F. Miano156, M. Michetti19, R. P. Middleton144, L. Mijović50, G. Mikenberg180, M. Mikestikova141, M. Mikuž91, H. Mildner149, M. Milesi104, A. Milic167, D. A. Millar92, D. W. Miller37, A. Milov180, D. A. Milstead45a,45b, R. A. Mina153,gg, A. A. Minaenko122, M. Miñano Moya174, I. A. Minashvili159b, A. I. Mincer124, B. Mindur83a, M. Mineev79, Y. Minegishi163, Y. Ming181, L. M. Mir14, A. Mirto67a,67b, K. P. Mistry137, T. Mitani179, J. Mitrevski113, V. A. Mitsou174, M. Mittal60c, A. Miucci20, P. S. Miyagawa149, A. Mizukami81, J. U. Mjörnmark96, T. Mkrtchyan184, M. Mlynarikova143, T. Moa45a,45b, K. Mochizuki109, P. Mogg52, S. Mohapatra39, R. Moles-Valls24, M. C. Mondragon106, K. Mönig46, J. Monk40, E. Monnier101, A. Montalbano152, J. Montejo Berlingen36, M. Montella94, F. Monticelli88, S. Monzani68a, N. Morange132, D. Moreno22, M. Moreno Llácer36, C. Moreno Martinez14, P. Morettini55b, M. Morgenstern119, S. Morgenstern48, D. Mori152, M. Morii59, M. Morinaga179, V. Morisbak134, A. K. Morley36, G. Mornacchi36, A. P. Morris94, L. Morvaj155, P. Moschovakos36, B. Moser119, M. Mosidze159b, T. Moskalets145, H. J. Moss149, J. Moss31,mm, K. Motohashi165, E. Mountricha36, E. J. W. Moyse102, S. Muanza101, J. Mueller139, R. S. P. Mueller113, D. Muenstermann89, G. A. Mullier96, J. L. Munoz Martinez14, F. J. Munoz Sanchez100, P. Murin28b, W. J. Murray178,144, A. Murrone68a,68b, M. Muškinja18, C. Mwewa33a, A. G. Myagkov122,nn, J. Myers131, M. Myska142, B. P. Nachman18, O. Nackenhorst47, A. Nag Nag48, K. Nagai135, K. Nagano81, Y. Nagasaka62, M. Nagel52, E. Nagy101, A. M. Nairz36, Y. Nakahama116, K. Nakamura81, T. Nakamura163, I. Nakano127, H. Nanjo133, F. Napolitano61a, R. F. Naranjo Garcia46, R. Narayan42, D. I. Narrias Villar61a, I. Naryshkin138, T. Naumann46, G. Navarro22, H. A. Neal105,a, P. Y. Nechaeva110, F. Nechansky46, T. J. Neep21, A. Negri70a,70b, M. Negrini23b, C. Nellist53, M. E. Nelson135, S. Nemecek141, P. Nemethy124, M. Nessi36,oo, M. S. Neubauer173, M. Neumann182, P. R. Newman21, Y. S. Ng19, Y. W. Y. Ng171, H. D. N. Nguyen101, T. Nguyen Manh109, E. Nibigira38, R. B. Nickerson135, R. Nicolaidou145, D. S. Nielsen40, J. Nielsen146, N. Nikiforou11, V. Nikolaenko122,nn, I. Nikolic-Audit136, K. Nikolopoulos21, P. Nilsson29, H. R. Nindhito54, Y. Ninomiya81, A. Nisati72a, N. Nishu60c, R. Nisius114, I. Nitsche47, T. Nitta179, T. Nobe163, Y. Noguchi85, I. Nomidis136, M. A. Nomura29, M. Nordberg36, N. Norjoharuddeen135, T. Novak91, O. Novgorodova48, R. Novotny142, L. Nozka130, K. Ntekas171, E. Nurse94, F. G. Oakham34,e, H. Oberlack114, J. Ocariz136, A. Ochi82, I. Ochoa39, J. P. Ochoa-Ricoux147a, K. O’Connor26, S. Oda87, S. Odaka81, S. Oerdek53, A. Ogrodnik83a, A. Oh100, S. H. Oh49, C. C. Ohm154, H. Oide55b,55a, M. L. Ojeda167, H. Okawa169, Y. Okazaki85, Y. Okumura163, T. Okuyama81, A. Olariu27b, L. F. Oleiro Seabra140a, S. A. Olivares Pino147a, D. Oliveira Damazio29, J. L. Oliver1, M. J. R. Olsson171, A. Olszewski84, J. Olszowska84, D. C. O’Neil152, A. Onofre140a,140e, K. Onogi116, P. U. E. Onyisi11, H. Oppen134, M. J. Oreglia37, G. E. Orellana88, D. Orestano74a,74b, N. Orlando14, R. S. Orr167, V. O’Shea57, R. Ospanov60a, G. Otero y Garzon30, H. Otono87, M. Ouchrif35d, J. Ouellette29, F. Ould-Saada134, A. Ouraou145, Q. Ouyang15a, M. Owen57, R. E. Owen21, V. E. Ozcan12c, N. Ozturk8, J. Pacalt130, H. A. Pacey32, K. Pachal49, A. Pacheco Pages14, C. Padilla Aranda14, S. Pagan Griso18, M. Paganini183, G. Palacino65, S. Palazzo50, S. Palestini36, M. Palka83b, D. Pallin38, I. Panagoulias10, C. E. Pandini36, J. G. Panduro Vazquez93, P. Pani46, G. Panizzo66a,66c, L. Paolozzi54, C. Papadatos109, K. Papageorgiou9,u, A. Paramonov6, D. Paredes Hernandez63b, S. R. Paredes Saenz135, B. Parida166, T. H. Park167, A. J. Parker89, M. A. Parker32, F. Parodi55b,55a, E. W. Parrish120, J. A. Parsons39, U. Parzefall52, L. Pascual Dominguez136, V. R. Pascuzzi167, J. M. P. Pasner146, E. Pasqualucci72a, S. Passaggio55b, F. Pastore93, P. Pasuwan45a,45b, S. Pataraia99, J. R. Pater100, A. Pathak181, T. Pauly36, B. Pearson114, M. Pedersen134, L. Pedraza Diaz118, R. Pedro140a, T. Peiffer53, S. V. Peleganchuk121b,121a, O. Penc141, H. Peng60a, B. S. Peralva80a, M. M. Perego132, A. P. Pereira Peixoto140a, D. V. Perepelitsa29, F. Peri19, L. Perini68a,68b, H. Pernegger36, S. Perrella69a,69b, K. Peters46, R. F. Y. Peters100, B. A. Petersen36, T. C. Petersen40, E. Petit101, A. Petridis1, C. Petridou162, P. Petroff132, M. Petrov135, F. Petrucci74a,74b, M. Pettee183, N. E. Pettersson102, K. Petukhova143, A. Peyaud145, R. Pezoa147c, L. Pezzotti70a,70b, T. Pham104, F. H. Phillips106, P. W. Phillips144, M. W. Phipps173, G. Piacquadio155, E. Pianori18, A. Picazio102, R. H. Pickles100, R. Piegaia30, D. Pietreanu27b, J. E. Pilcher37, A. D. Pilkington100, M. Pinamonti73a,73b, J. L. Pinfold3, M. Pitt180, L. Pizzimento73a,73b, M.-A. Pleier29, V. Pleskot143, E. Plotnikova79, D. Pluth78, P. Podberezko121b,121a, R. Poettgen96, R. Poggi54, L. Poggioli132, I. Pogrebnyak106, D. Pohl24, I. Pokharel53, G. Polesello70a, A. Poley18, A. Policicchio72a,72b, R. Polifka143, A. Polini23b, C. S. Pollard46, V. Polychronakos29, D. Ponomarenko111, L. Pontecorvo36, S. Popa27a, G. A. Popeneciu27d, D. M. Portillo Quintero58, S. Pospisil142, K. Potamianos46, I. N. Potrap79, C. J. Potter32, H. Potti11, T. Poulsen96, J. Poveda36, T. D. Powell149, G. Pownall46, M. E. Pozo Astigarraga36, P. Pralavorio101, S. Prell78, D. Price100, M. Primavera67a, S. Prince103, M. L. Proffitt148, N. Proklova111, K. Prokofiev63c, F. Prokoshin79, S. Protopopescu29, J. Proudfoot6, M. Przybycien83a, D. Pudzha138, A. Puri173, P. Puzo132, J. Qian105, Y. Qin100, A. Quadt53, M. Queitsch-Maitland46, A. Qureshi1, P. Rados104, F. Ragusa68a,68b, G. Rahal97, J. A. Raine54, S. Rajagopalan29, A. Ramirez Morales92, K. Ran15a,15d, T. Rashid132, S. Raspopov5, M. G. Ratti68a,68b, D. M. Rauch46, F. Rauscher113, S. Rave99, B. Ravina149, I. Ravinovich180, J. H. Rawling100, M. Raymond36, A. L. Read134, N. P. Readioff58, M. Reale67a,67b, D. M. Rebuzzi70a,70b, A. Redelbach177, G. Redlinger29, K. Reeves43, L. Rehnisch19, J. Reichert137, D. Reikher161, A. Reiss99, A. Rej151, C. Rembser36, M. Renda27b, M. Rescigno72a, S. Resconi68a, E. D. Resseguie137, S. Rettie175, E. Reynolds21, O. L. Rezanova121b,121a, P. Reznicek143, E. Ricci75a,75b, R. Richter114, S. Richter46, E. Richter-Was83b, O. Ricken24, M. Ridel136, P. Rieck114, C. J. Riegel182, O. Rifki46, M. Rijssenbeek155, A. Rimoldi70a,70b, M. Rimoldi46, L. Rinaldi23b, G. Ripellino154, B. Ristić89, E. Ritsch36, I. Riu14, J. C. Rivera Vergara176, F. Rizatdinova129, E. Rizvi92, C. Rizzi36, R. T. Roberts100, S. H. Robertson103,q, M. Robin46, D. Robinson32, J. E. M. Robinson46, C. M. Robles Gajardo147c, A. Robson57, E. Rocco99, C. Roda71a,71b, S. Rodriguez Bosca174, A. Rodriguez Perez14, D. Rodriguez Rodriguez174, A. M. Rodríguez Vera168b, S. Roe36, O. Røhne134, R. Röhrig114, C. P. A. Roland65, J. Roloff59, A. Romaniouk111, M. Romano23b,23a, N. Rompotis90, M. Ronzani124, L. Roos136, S. Rosati72a, K. Rosbach52, G. Rosin102, B. J. Rosser137, E. Rossi46, E. Rossi74a,74b, E. Rossi69a,69b, L. P. Rossi55b, L. Rossini68a,68b, R. Rosten14, M. Rotaru27b, J. Rothberg148, D. Rousseau132, G. Rovelli70a,70b, A. Roy11, D. Roy33c, A. Rozanov101, Y. Rozen160, X. Ruan33c, F. Rubbo153, F. Rühr52, A. Ruiz-Martinez174, A. Rummler36, Z. Rurikova52, N. A. Rusakovich79, H. L. Russell103, L. Rustige38,47, J. P. Rutherfoord7, E. M. Rüttinger46,pp, M. Rybar39, G. Rybkin132, A. Ryzhov122, G. F. Rzehorz53, P. Sabatini53, G. Sabato119, S. Sacerdoti132, H. F-W. Sadrozinski146, R. Sadykov79, F. Safai Tehrani72a, B. Safarzadeh Samani156, P. Saha120, S. Saha103, M. Sahinsoy61a, A. Sahu182, M. Saimpert46, M. Saito163, T. Saito163, H. Sakamoto163, A. Sakharov124,hh, D. Salamani54, G. Salamanna74a,74b, J. E. Salazar Loyola147c, P. H. Sales De Bruin172, A. Salnikov153, J. Salt174, D. Salvatore41b,41a, F. Salvatore156, A. Salvucci63a,63b,63c, A. Salzburger36, J. Samarati36, D. Sammel52, D. Sampsonidis162, D. Sampsonidou162, J. Sánchez174, A. Sanchez Pineda66a,66c, H. Sandaker134, C. O. Sander46, I. G. Sanderswood89, M. Sandhoff182, C. Sandoval22, D. P. C. Sankey144, M. Sannino55b,55a, Y. Sano116, A. Sansoni51, C. Santoni38, H. Santos140a,140b, S. N. Santpur18, A. Santra174, A. Sapronov79, J. G. Saraiva140a,140d, O. Sasaki81, K. Sato169, E. Sauvan5, P. Savard167,e, N. Savic114, R. Sawada163, C. Sawyer144, L. Sawyer95,qq, C. Sbarra23b, A. Sbrizzi23a, T. Scanlon94, J. Schaarschmidt148, P. Schacht114, B. M. Schachtner113, D. Schaefer37, L. Schaefer137, J. Schaeffer99, S. Schaepe36, U. Schäfer99, A. C. Schaffer132, D. Schaile113, R. D. Schamberger155, N. Scharmberg100, V. A. Schegelsky138, D. Scheirich143, F. Schenck19, M. Schernau171, C. Schiavi55b,55a, S. Schier146, L. K. Schildgen24, Z. M. Schillaci26, E. J. Schioppa36, M. Schioppa41b,41a, K. E. Schleicher52, S. Schlenker36, K. R. Schmidt-Sommerfeld114, K. Schmieden36, C. Schmitt99, S. Schmitt46, S. Schmitz99, J. C. Schmoeckel46, U. Schnoor52, L. Schoeffel145, A. Schoening61b, P. G. Scholer52, E. Schopf135, M. Schott99, J. F. P. Schouwenberg118, J. Schovancova36, S. Schramm54, F. Schroeder182, A. Schulte99, H-C. Schultz-Coulon61a, M. Schumacher52, B. A. Schumm146, Ph. Schune145, A. Schwartzman153, T. A. Schwarz105, Ph. Schwemling145, R. Schwienhorst106, A. Sciandra146, G. Sciolla26, M. Scodeggio46, M. Scornajenghi41b,41a, F. Scuri71a, F. Scutti104, L. M. Scyboz114, C. D. Sebastiani72a,72b, P. Seema19, S. C. Seidel117, A. Seiden146, T. Seiss37, J. M. Seixas80b, G. Sekhniaidze69a, K. Sekhon105, S. J. Sekula42, N. Semprini-Cesari23b,23a, S. Sen49, S. Senkin38, C. Serfon76, L. Serin132, L. Serkin66a,66b, M. Sessa60a, H. Severini128, T. Šfiligoj91, F. Sforza170, A. Sfyrla54, E. Shabalina53, J. D. Shahinian146, N. W. Shaikh45a,45b, D. Shaked Renous180, L. Y. Shan15a, R. Shang173, J. T. Shank25, M. Shapiro18, A. Sharma135, A. S. Sharma1, P. B. Shatalov123, K. Shaw156, S. M. Shaw100, A. Shcherbakova138, Y. Shen128, N. Sherafati34, A. D. Sherman25, P. Sherwood94, L. Shi158,rr, S. Shimizu81, C. O. Shimmin183, Y. Shimogama179, M. Shimojima115, I. P. J. Shipsey135, S. Shirabe87, M. Shiyakova79,ss, J. Shlomi180, A. Shmeleva110, M. J. Shochet37, J. Shojaii104, D. R. Shope128, S. Shrestha126, E. M. Shrif33c, E. Shulga180, P. Sicho141, A. M. Sickles173, P. E. Sidebo154, E. Sideras Haddad33c, O. Sidiropoulou36, A. Sidoti23b,23a, F. Siegert48, Dj. Sijacki16, M. Silva, Jr.181, M. V. Silva Oliveira80a, S. B. Silverstein45a, S. Simion132, E. Simioni99, R. Simoniello99, S. Simsek12b, P. Sinervo167, V. Sinetckii112,110, N. B. Sinev131, M. Sioli23b,23a, I. Siral105, S. Yu. Sivoklokov112, J. Sjölin45a,45b, E. Skorda96, P. Skubic128, M. Slawinska84, K. Sliwa170, R. Slovak143, V. Smakhtin180, B. H. Smart144, J. Smiesko28a, N. Smirnov111, S. Yu. Smirnov111, Y. Smirnov111, L. N. Smirnova112,tt, O. Smirnova96, J. W. Smith53, M. Smizanska89, K. Smolek142, A. Smykiewicz84, A. A. Snesarev110, H. L. Snoek119, I. M. Snyder131, S. Snyder29, R. Sobie176,q, A. M. Soffa171, A. Soffer161, A. Søgaard50, F. Sohns53, C. A. Solans Sanchez36, E. Yu. Soldatov111, U. Soldevila174, A. A. Solodkov122, A. Soloshenko79, O. V. Solovyanov122, V. Solovyev138, P. Sommer149, H. Son170, W. Song144, W. Y. Song168b, A. Sopczak142, F. Sopkova28b, C. L. Sotiropoulou71a,71b, S. Sottocornola70a,70b, R. Soualah66a,66c,uu, A. M. Soukharev121b,121a, D. South46, S. Spagnolo67a,67b, M. Spalla114, M. Spangenberg178, F. Spanò93, D. Sperlich52, T. M. Spieker61a, R. Spighi23b, G. Spigo36, M. Spina156, D. P. Spiteri57, M. Spousta143, A. Stabile68a,68b, B. L. Stamas120, R. Stamen61a, M. Stamenkovic119, E. Stanecka84, R. W. Stanek6, B. Stanislaus135, M. M. Stanitzki46, M. Stankaityte135, B. Stapf119, E. A. Starchenko122, G. H. Stark146, J. Stark58, S. H. Stark40, P. Staroba141, P. Starovoitov61a, S. Stärz103, R. Staszewski84, G. Stavropoulos44, M. Stegler46, P. Steinberg29, A. L. Steinhebel131, B. Stelzer152, H. J. Stelzer139, O. Stelzer-Chilton168a, H. Stenzel56, T. J. Stevenson156, G. A. Stewart36, M. C. Stockton36, G. Stoicea27b, M. Stolarski140a, P. Stolte53, S. Stonjek114, A. Straessner48, J. Strandberg154, S. Strandberg45a,45b, M. Strauss128, P. Strizenec28b, R. Ströhmer177, D. M. Strom131, R. Stroynowski42, A. Strubig50, S. A. Stucci29, B. Stugu17, J. Stupak128, N. A. Styles46, D. Su153, S. Suchek61a, V. V. Sulin110, M. J. Sullivan90, D. M. S. Sultan54, S. Sultansoy4c, T. Sumida85, S. Sun105, X. Sun3, K. Suruliz156, C. J. E. Suster157, M. R. Sutton156, S. Suzuki81, M. Svatos141, M. Swiatlowski37, S. P. Swift2, T. Swirski177, A. Sydorenko99, I. Sykora28a, M. Sykora143, T. Sykora143, D. Ta99, K. Tackmann46,vv, J. Taenzer161, A. Taffard171, R. Tafirout168a, H. Takai29, R. Takashima86, K. Takeda82, T. Takeshita150, E. P. Takeva50, Y. Takubo81, M. Talby101, A. A. Talyshev121b,121a, N. M. Tamir161, J. Tanaka163, M. Tanaka165, R. Tanaka132, S. Tapia Araya173, S. Tapprogge99, A. Tarek Abouelfadl Mohamed136, S. Tarem160, G. Tarna27b,ww, G. F. Tartarelli68a, P. Tas143, M. Tasevsky141, T. Tashiro85, E. Tassi41b,41a, A. Tavares Delgado140a,140b, Y. Tayalati35e, A. J. Taylor50, G. N. Taylor104, W. Taylor168b, A. S. Tee89, R. Teixeira De Lima153, P. Teixeira-Dias93, H. Ten Kate36, J. J. Teoh119, S. Terada81, K. Terashi163, J. Terron98, S. Terzo14, M. Testa51, R. J. Teuscher167,q, S. J. Thais183, T. Theveneaux-Pelzer46, F. Thiele40, D. W. Thomas93, J. O. Thomas42, J. P. Thomas21, A. S. Thompson57, P. D. Thompson21, L. A. Thomsen183, E. Thomson137, Y. Tian39, R. E. Ticse Torres53, V. O. Tikhomirov110,xx, Yu. A. Tikhonov121b,121a, S. Timoshenko111, P. Tipton183, S. Tisserant101, K. Todome23b,23a, S. Todorova-Nova5, S. Todt48, J. Tojo87, S. Tokár28a, K. Tokushuku81, E. Tolley126, K. G. Tomiwa33c, M. Tomoto116, L. Tompkins153,gg, B. Tong59, P. Tornambe102, E. Torrence131, H. Torres48, E. Torró Pastor148, C. Tosciri135, J. Toth101,yy, D. R. Tovey149, A. Traeet17, C. J. Treado124, T. Trefzger177, F. Tresoldi156, A. Tricoli29, I. M. Trigger168a, S. Trincaz-Duvoid136, W. Trischuk167, B. Trocmé58, A. Trofymov145, C. Troncon68a, M. Trovatelli176, F. Trovato156, L. Truong33b, M. Trzebinski84, A. Trzupek84, F. Tsai46, J. C-L. Tseng135, P. V. Tsiareshka107,ii, A. Tsirigotis162, N. Tsirintanis9, V. Tsiskaridze155, E. G. Tskhadadze159a, M. Tsopoulou162, I. I. Tsukerman123, V. Tsulaia18, S. Tsuno81, D. Tsybychev155, Y. Tu63b, A. Tudorache27b, V. Tudorache27b, T. T. Tulbure27a, A. N. Tuna59, S. Turchikhin79, D. Turgeman180, I. Turk Cakir4b,zz, R. J. Turner21, R. T. Turra68a, P. M. Tuts39, S. Tzamarias162, E. Tzovara99, G. Ucchielli47, K. Uchida163, I. Ueda81, M. Ughetto45a,45b, F. Ukegawa169, G. Unal36, A. Undrus29, G. Unel171, F. C. Ungaro104, Y. Unno81, K. Uno163, J. Urban28b, P. Urquijo104, G. Usai8, J. Usui81, Z. Uysal12d, L. Vacavant101, V. Vacek142, B. Vachon103, K. O. H. Vadla134, A. Vaidya94, C. Valderanis113, E. Valdes Santurio45a,45b, M. Valente54, S. Valentinetti23b,23a, A. Valero174, L. Valéry46, R. A. Vallance21, A. Vallier36, J. A. Valls Ferrer174, T. R. Van Daalen14, P. Van Gemmeren6, I. Van Vulpen119, M. Vanadia73a,73b, W. Vandelli36, A. Vaniachine166, D. Vannicola72a,72b, R. Vari72a, E. W. Varnes7, C. Varni55b,55a, T. Varol42, D. Varouchas132, K. E. Varvell157, M. E. Vasile27b, G. A. Vasquez176, J. G. Vasquez183, F. Vazeille38, D. Vazquez Furelos14, T. Vazquez Schroeder36, J. Veatch53, V. Vecchio74a,74b, M. J. Veen119, L. M. Veloce167, F. Veloso140a,140c, S. Veneziano72a, A. Ventura67a,67b, N. Venturi36, A. Verbytskyi114, V. Vercesi70a, M. Verducci74a,74b, C. M. Vergel Infante78, C. Vergis24, W. Verkerke119, A. T. Vermeulen119, J. C. Vermeulen119, M. C. Vetterli152,e, N. Viaux Maira147c, M. Vicente Barreto Pinto54, T. Vickey149, O. E. Vickey Boeriu149, G. H. A. Viehhauser135, L. Vigani135, M. Villa23b,23a, M. Villaplana Perez68a,68b, E. Vilucchi51, M. G. Vincter34, V. B. Vinogradov79, A. Vishwakarma46, C. Vittori23b,23a, I. Vivarelli156, M. Vogel182, P. Vokac142, S. E. von Buddenbrock33c, E. Von Toerne24, V. Vorobel143, K. Vorobev111, M. Vos174, J. H. Vossebeld90, M. Vozak100, N. Vranjes16, M. Vranjes Milosavljevic16, V. Vrba142, M. Vreeswijk119, R. Vuillermet36, I. Vukotic37, P. Wagner24, W. Wagner182, J. Wagner-Kuhr113, S. Wahdan182, H. Wahlberg88, K. Wakamiya82, V. M. Walbrecht114, J. Walder89, R. Walker113, S. D. Walker93, W. Walkowiak151, V. Wallangen45a,45b, A. M. Wang59, C. Wang60b, F. Wang181, H. Wang18, H. Wang3, J. Wang157, J. Wang61b, P. Wang42, Q. Wang128, R.-J. Wang99, R. Wang60a, R. Wang6, S. M. Wang158, W. T. Wang60a, W. Wang15c,aaa, W. X. Wang60a,aaa, Y. Wang60a,bbb, Z. Wang60c, C. Wanotayaroj46, A. Warburton103, C. P. Ward32, D. R. Wardrope94, N. Warrack57, A. Washbrook50, A. T. Watson21, M. F. Watson21, G. Watts148, B. M. Waugh94, A. F. Webb11, S. Webb99, C. Weber183, M. S. Weber20, S. A. Weber34, S. M. Weber61a, A. R. Weidberg135, J. Weingarten47, M. Weirich99, C. Weiser52, P. S. Wells36, T. Wenaus29, T. Wengler36, S. Wenig36, N. Wermes24, M. D. Werner78, M. Wessels61a, T. D. Weston20, K. Whalen131, N. L. Whallon148, A. M. Wharton89, A. S. White105, A. White8, M. J. White1, D. Whiteson171, B. W. Whitmore89, F. J. Wickens144, W. Wiedenmann181, M. Wielers144, N. Wieseotte99, C. Wiglesworth40, L. A. M. Wiik-Fuchs52, F. Wilk100, H. G. Wilkens36, L. J. Wilkins93, H. H. Williams137, S. Williams32, C. Willis106, S. Willocq102, J. A. Wilson21, I. Wingerter-Seez5, E. Winkels156, F. Winklmeier131, O. J. Winston156, B. T. Winter52, M. Wittgen153, M. Wobisch95, A. Wolf99, T. M. H. Wolf119, R. Wolff101, R. W. Wölker135, J. Wollrath52, M. W. Wolter84, H. Wolters140a,140c, V. W. S. Wong175, N. L. Woods146, S. D. Worm21, B. K. Wosiek84, K. W. Woźniak84, K. Wraight57, S. L. Wu181, X. Wu54, Y. Wu60a, T. R. Wyatt100, B. M. Wynne50, S. Xella40, Z. Xi105, L. Xia178, D. Xu15a, H. Xu60a,ww, L. Xu29, T. Xu145, W. Xu105, Z. Xu60b, Z. Xu153, B. Yabsley157, S. Yacoob33a, K. Yajima133, D. P. Yallup94, D. Yamaguchi165, Y. Yamaguchi165, A. Yamamoto81, T. Yamanaka163, F. Yamane82, M. Yamatani163, T. Yamazaki163, Y. Yamazaki82, Z. Yan25, H. J. Yang60c,60d, H. T. Yang18, S. Yang77, X. Yang60b,58, Y. Yang163, W-M. Yao18, Y. C. Yap46, Y. Yasu81, E. Yatsenko60c,60d, J. Ye42, S. Ye29, I. Yeletskikh79, M. R. Yexley89, E. Yigitbasi25, K. Yorita179, K. Yoshihara137, C. J. S. Young36, C. Young153, J. Yu78, R. Yuan60b,ccc, X. Yue61a, S. P. Y. Yuen24, B. Zabinski84, G. Zacharis10, E. Zaffaroni54, J. Zahreddine136, A. M. Zaitsev122,nn, T. Zakareishvili159b, N. Zakharchuk34, S. Zambito59, D. Zanzi36, D. R. Zaripovas57, S. V. Zeißner47, C. Zeitnitz182, G. Zemaityte135, J. C. Zeng173, O. Zenin122, T. Ženiš28a, D. Zerwas132, M. Zgubič135, D. F. Zhang15b, F. Zhang181, G. Zhang60a, G. Zhang15b, H. Zhang15c, J. Zhang6, L. Zhang15c, L. Zhang60a, M. Zhang173, R. Zhang60a, R. Zhang24, X. Zhang60b, Y. Zhang15a,15d, Z. Zhang63a, Z. Zhang132, P. Zhao49, Y. Zhao60b, Z. Zhao60a, A. Zhemchugov79, Z. Zheng105, D. Zhong173, B. Zhou105, C. Zhou181, M. S. Zhou15a,15d, M. Zhou155, N. Zhou60c, Y. Zhou7, C. G. Zhu60b, H. L. Zhu60a, H. Zhu15a, J. Zhu105, Y. Zhu60a, X. Zhuang15a, K. Zhukov110, V. Zhulanov121b,121a, D. Zieminska65, N. I. Zimine79, S. Zimmermann52, Z. Zinonos114, M. Ziolkowski151, L. Živković16, G. Zobernig181, A. Zoccoli23b,23a, K. Zoch53, T. G. Zorbas149, R. Zou37, and L. Zwalinski36 (ATLAS Collaboration)

  • 1Department of Physics, University of Adelaide, Adelaide, Australia
  • 2Physics Department, SUNY Albany, Albany, New York, USA
  • 3Department of Physics, University of Alberta, Edmonton, Alberta, Canada
  • 4aDepartment of Physics, Ankara University, Ankara, Turkey
  • 4bIstanbul Aydin University, Istanbul, Turkey
  • 4cDivision of Physics, TOBB University of Economics and Technology, Ankara, Turkey
  • 5LAPP, Université Grenoble Alpes, Université Savoie Mont Blanc, CNRS/IN2P3, Annecy, France
  • 6High Energy Physics Division, Argonne National Laboratory, Argonne, Illinois, USA
  • 7Department of Physics, University of Arizona, Tucson, Arizona, USA
  • 8Department of Physics, University of Texas at Arlington, Arlington, Texas, USA
  • 9Physics Department, National and Kapodistrian University of Athens, Athens, Greece
  • 10Physics Department, National Technical University of Athens, Zografou, Greece
  • 11Department of Physics, University of Texas at Austin, Austin, Texas, USA
  • 12aBahcesehir University, Faculty of Engineering and Natural Sciences, Istanbul, Turkey
  • 12bIstanbul Bilgi University, Faculty of Engineering and Natural Sciences, Istanbul, Turkey
  • 12cDepartment of Physics, Bogazici University, Istanbul, Turkey
  • 12dDepartment of Physics Engineering, Gaziantep University, Gaziantep, Turkey
  • 13Institute of Physics, Azerbaijan Academy of Sciences, Baku, Azerbaijan
  • 14Institut de Física d’Altes Energies (IFAE), Barcelona Institute of Science and Technology, Barcelona, Spain
  • 15aInstitute of High Energy Physics, Chinese Academy of Sciences, Beijing, China
  • 15bPhysics Department, Tsinghua University, Beijing, China
  • 15cDepartment of Physics, Nanjing University, Nanjing, China
  • 15dUniversity of Chinese Academy of Science (UCAS), Beijing, China
  • 16Institute of Physics, University of Belgrade, Belgrade, Serbia
  • 17Department for Physics and Technology, University of Bergen, Bergen, Norway
  • 18Physics Division, Lawrence Berkeley National Laboratory and University of California, Berkeley, California, USA
  • 19Institut für Physik, Humboldt Universität zu Berlin, Berlin, Germany
  • 20Albert Einstein Center for Fundamental Physics and Laboratory for High Energy Physics, University of Bern, Bern, Switzerland
  • 21School of Physics and Astronomy, University of Birmingham, Birmingham, United Kingdom
  • 22Facultad de Ciencias y Centro de Investigaciónes, Universidad Antonio Nariño, Bogota, Colombia
  • 23aINFN Bologna and Universita’ di Bologna, Dipartimento di Fisica, Italy
  • 23bINFN Sezione di Bologna, Italy
  • 24Physikalisches Institut, Universität Bonn, Bonn, Germany
  • 25Department of Physics, Boston University, Boston, Massachusetts, USA
  • 26Department of Physics, Brandeis University, Waltham, Massachusetts, USA
  • 27aTransilvania University of Brasov, Brasov, Romania
  • 27bHoria Hulubei National Institute of Physics and Nuclear Engineering, Bucharest, Romania
  • 27cDepartment of Physics, Alexandru Ioan Cuza University of Iasi, Iasi, Romania
  • 27dNational Institute for Research and Development of Isotopic and Molecular Technologies, Physics Department, Cluj-Napoca, Romania
  • 27eUniversity Politehnica Bucharest, Bucharest, Romania
  • 27fWest University in Timisoara, Timisoara, Romania
  • 28aFaculty of Mathematics, Physics and Informatics, Comenius University, Bratislava, Slovak Republic
  • 28bDepartment of Subnuclear Physics, Institute of Experimental Physics of the Slovak Academy of Sciences, Kosice, Slovak Republic
  • 29Physics Department, Brookhaven National Laboratory, Upton, New York, USA
  • 30Departamento de Física, Universidad de Buenos Aires, Buenos Aires, Argentina
  • 31California State University, California, USA
  • 32Cavendish Laboratory, University of Cambridge, Cambridge, United Kingdom
  • 33aDepartment of Physics, University of Cape Town, Cape Town, South Africa
  • 33bDepartment of Mechanical Engineering Science, University of Johannesburg, Johannesburg, South Africa
  • 33cSchool of Physics, University of the Witwatersrand, Johannesburg, South Africa
  • 34Department of Physics, Carleton University, Ottawa, Ontario, Canada
  • 35aFaculté des Sciences Ain Chock, Réseau Universitaire de Physique des Hautes Energies—Université Hassan II, Casablanca, Morocco
  • 35bFaculté des Sciences, Université Ibn-Tofail, Kénitra, Morocco
  • 35cFaculté des Sciences Semlalia, Université Cadi Ayyad, LPHEA-Marrakech, Morocco
  • 35dFaculté des Sciences, Université Mohamed Premier and LPTPM, Oujda, Morocco
  • 35eFaculté des sciences, Université Mohammed V, Rabat, Morocco
  • 36CERN, Geneva, Switzerland
  • 37Enrico Fermi Institute, University of Chicago, Chicago, Illinois, USA
  • 38LPC, Université Clermont Auvergne, CNRS/IN2P3, Clermont-Ferrand, France
  • 39Nevis Laboratory, Columbia University, Irvington, New York, USA
  • 40Niels Bohr Institute, University of Copenhagen, Copenhagen, Denmark
  • 41aDipartimento di Fisica, Università della Calabria, Rende, Italy
  • 41bINFN Gruppo Collegato di Cosenza, Laboratori Nazionali di Frascati, Italy
  • 42Physics Department, Southern Methodist University, Dallas, Texas, USA
  • 43Physics Department, University of Texas at Dallas, Richardson, Texas, USA
  • 44National Centre for Scientific Research “Demokritos”, Agia Paraskevi, Greece
  • 45aDepartment of Physics, Stockholm University, Sweden
  • 45bOskar Klein Centre, Stockholm, Sweden
  • 46Deutsches Elektronen-Synchrotron DESY, Hamburg and Zeuthen, Germany
  • 47Lehrstuhl für Experimentelle Physik IV, Technische Universität Dortmund, Dortmund, Germany
  • 48Institut für Kern- und Teilchenphysik, Technische Universität Dresden, Dresden, Germany
  • 49Department of Physics, Duke University, Durham, North Carolina, USA
  • 50SUPA—School of Physics and Astronomy, University of Edinburgh, Edinburgh, United Kingdom
  • 51INFN e Laboratori Nazionali di Frascati, Frascati, Italy
  • 52Physikalisches Institut, Albert-Ludwigs-Universität Freiburg, Freiburg, Germany
  • 53II. Physikalisches Institut, Georg-August-Universität Göttingen, Göttingen, Germany
  • 54Département de Physique Nucléaire et Corpusculaire, Université de Genève, Genève, Switzerland
  • 55aDipartimento di Fisica, Università di Genova, Genova, Italy
  • 55bINFN Sezione di Genova, Italy
  • 56II. Physikalisches Institut, Justus-Liebig-Universität Giessen, Giessen, Germany
  • 57SUPA—School of Physics and Astronomy, University of Glasgow, Glasgow, United Kingdom
  • 58LPSC, Université Grenoble Alpes, CNRS/IN2P3, Grenoble INP, Grenoble, France
  • 59Laboratory for Particle Physics and Cosmology, Harvard University, Cambridge, Massachusetts, USA
  • 60aDepartment of Modern Physics and State Key Laboratory of Particle Detection and Electronics, University of Science and Technology of China, Hefei, China
  • 60bInstitute of Frontier and Interdisciplinary Science and Key Laboratory of Particle Physics and Particle Irradiation (MOE), Shandong University, Qingdao, China
  • 60cSchool of Physics and Astronomy, Shanghai Jiao Tong University, KLPPAC-MoE, SKLPPC, Shanghai, China
  • 60dTsung-Dao Lee Institute, Shanghai, China
  • 61aKirchhoff-Institut für Physik, Ruprecht-Karls-Universität Heidelberg, Heidelberg, Germany
  • 61bPhysikalisches Institut, Ruprecht-Karls-Universität Heidelberg, Heidelberg, Germany
  • 62Faculty of Applied Information Science, Hiroshima Institute of Technology, Hiroshima, Japan
  • 63aDepartment of Physics, Chinese University of Hong Kong, Shatin, New Territories, Hong Kong, China
  • 63bDepartment of Physics, University of Hong Kong, Hong Kong, China
  • 63cDepartment of Physics and Institute for Advanced Study, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong, China
  • 64Department of Physics, National Tsing Hua University, Hsinchu, Taiwan
  • 65Department of Physics, Indiana University, Bloomington, Indiana, USA
  • 66aINFN Gruppo Collegato di Udine, Sezione di Trieste, Udine, Italy
  • 66bICTP, Trieste, Italy
  • 66cDipartimento Politecnico di Ingegneria e Architettura, Università di Udine, Udine, Italy
  • 67aINFN Sezione di Lecce, Italy
  • 67bDipartimento di Matematica e Fisica, Università del Salento, Lecce, Italy
  • 68aINFN Sezione di Milano, Italy
  • 68bDipartimento di Fisica, Università di Milano, Milano, Italy
  • 69aINFN Sezione di Napoli, Italy
  • 69bDipartimento di Fisica, Università di Napoli, Napoli, Italy
  • 70aINFN Sezione di Pavia, Italy
  • 70bDipartimento di Fisica, Università di Pavia, Pavia, Italy
  • 71aINFN Sezione di Pisa, Italy
  • 71bDipartimento di Fisica E. Fermi, Università di Pisa, Pisa, Italy
  • 72aINFN Sezione di Roma, Italy
  • 72bDipartimento di Fisica, Sapienza Università di Roma, Roma, Italy
  • 73aINFN Sezione di Roma Tor Vergata, Italy
  • 73bDipartimento di Fisica, Università di Roma Tor Vergata, Roma, Italy
  • 74aINFN Sezione di Roma Tre, Italy
  • 74bDipartimento di Matematica e Fisica, Università Roma Tre, Roma, Italy
  • 75aINFN-TIFPA, Italy
  • 75bUniversità degli Studi di Trento, Trento, Italy
  • 76Institut für Astro- und Teilchenphysik, Leopold-Franzens-Universität, Innsbruck, Austria
  • 77University of Iowa, Iowa City, Iowa, USA
  • 78Department of Physics and Astronomy, Iowa State University, Ames, Iowa, USA
  • 79Joint Institute for Nuclear Research, Dubna, Russia
  • 80aDepartamento de Engenharia Elétrica, Universidade Federal de Juiz de Fora (UFJF), Juiz de Fora, Brazil
  • 80bUniversidade Federal do Rio De Janeiro COPPE/EE/IF, Rio de Janeiro, Brazil
  • 80cUniversidade Federal de São João del Rei (UFSJ), São João del Rei, Brazil
  • 80dInstituto de Física, Universidade de São Paulo, São Paulo, Brazil
  • 81KEK, High Energy Accelerator Research Organization, Tsukuba, Japan
  • 82Graduate School of Science, Kobe University, Kobe, Japan
  • 83aAGH University of Science and Technology, Faculty of Physics and Applied Computer Science, Krakow, Poland
  • 83bMarian Smoluchowski Institute of Physics, Jagiellonian University, Krakow, Poland
  • 84Institute of Nuclear Physics Polish Academy of Sciences, Krakow, Poland
  • 85Faculty of Science, Kyoto University, Kyoto, Japan
  • 86Kyoto University of Education, Kyoto, Japan
  • 87Research Center for Advanced Particle Physics and Department of Physics, Kyushu University, Fukuoka, Japan
  • 88Instituto de Física La Plata, Universidad Nacional de La Plata and CONICET, La Plata, Argentina
  • 89Physics Department, Lancaster University, Lancaster, United Kingdom
  • 90Oliver Lodge Laboratory, University of Liverpool, Liverpool, United Kingdom
  • 91Department of Experimental Particle Physics, Jožef Stefan Institute and Department of Physics, University of Ljubljana, Ljubljana, Slovenia
  • 92School of Physics and Astronomy, Queen Mary University of London, London, United Kingdom
  • 93Department of Physics, Royal Holloway University of London, Egham, United Kingdom
  • 94Department of Physics and Astronomy, University College London, London, United Kingdom
  • 95Louisiana Tech University, Ruston, Louisiana, USA
  • 96Fysiska institutionen, Lunds universitet, Lund, Sweden
  • 97Centre de Calcul de l’Institut National de Physique Nucléaire et de Physique des Particules (IN2P3), Villeurbanne, France
  • 98Departamento de Física Teorica C-15 and CIAFF, Universidad Autónoma de Madrid, Madrid, Spain
  • 99Institut für Physik, Universität Mainz, Mainz, Germany
  • 100School of Physics and Astronomy, University of Manchester, Manchester, United Kingdom
  • 101CPPM, Aix-Marseille Université, CNRS/IN2P3, Marseille, France
  • 102Department of Physics, University of Massachusetts, Amherst, Massachusetts, USA
  • 103Department of Physics, McGill University, Montreal, Québec, Canada
  • 104School of Physics, University of Melbourne, Victoria, Australia
  • 105Department of Physics, University of Michigan, Ann Arbor, Michigan, USA
  • 106Department of Physics and Astronomy, Michigan State University, East Lansing, Michigan, USA
  • 107B.I. Stepanov Institute of Physics, National Academy of Sciences of Belarus, Minsk, Belarus
  • 108Research Institute for Nuclear Problems of Byelorussian State University, Minsk, Belarus
  • 109Group of Particle Physics, University of Montreal, Montreal, Québec, Canada
  • 110P.N. Lebedev Physical Institute of the Russian Academy of Sciences, Moscow, Russia
  • 111National Research Nuclear University MEPhI, Moscow, Russia
  • 112D.V. Skobeltsyn Institute of Nuclear Physics, M.V. Lomonosov Moscow State University, Moscow, Russia
  • 113Fakultät für Physik, Ludwig-Maximilians-Universität München, München, Germany
  • 114Max-Planck-Institut für Physik (Werner-Heisenberg-Institut), München, Germany
  • 115Nagasaki Institute of Applied Science, Nagasaki, Japan
  • 116Graduate School of Science and Kobayashi-Maskawa Institute, Nagoya University, Nagoya, Japan
  • 117Department of Physics and Astronomy, University of New Mexico, Albuquerque, New Mexico, USA
  • 118Institute for Mathematics, Astrophysics and Particle Physics, Radboud University Nijmegen/Nikhef, Nijmegen, Netherlands
  • 119Nikhef National Institute for Subatomic Physics and University of Amsterdam, Amsterdam, Netherlands
  • 120Department of Physics, Northern Illinois University, DeKalb, Illinois, USA
  • 121aBudker Institute of Nuclear Physics and NSU, SB RAS, Novosibirsk, Russia
  • 121bNovosibirsk State University Novosibirsk, Russia
  • 122Institute for High Energy Physics of the National Research Centre Kurchatov Institute, Protvino, Russia
  • 123Institute for Theoretical and Experimental Physics named by A.I. Alikhanov of National Research Centre “Kurchatov Institute”, Moscow, Russia
  • 124Department of Physics, New York University, New York, New York, USA
  • 125Ochanomizu University, Otsuka, Bunkyo-ku, Tokyo, Japan
  • 126Ohio State University, Columbus, Ohio, USA
  • 127Faculty of Science, Okayama University, Okayama, Japan
  • 128Homer L. Dodge Department of Physics and Astronomy, University of Oklahoma, Norman, Oklahoma, USA
  • 129Department of Physics, Oklahoma State University, Stillwater, Oklahoma, USA
  • 130Palacký University, RCPTM, Joint Laboratory of Optics, Olomouc, Czech Republic
  • 131Center for High Energy Physics, University of Oregon, Eugene, Oregon, USA
  • 132LAL, Université Paris-Sud, CNRS/IN2P3, Université Paris-Saclay, Orsay, France
  • 133Graduate School of Science, Osaka University, Osaka, Japan
  • 134Department of Physics, University of Oslo, Oslo, Norway
  • 135Department of Physics, Oxford University, Oxford, United Kingdom
  • 136LPNHE, Sorbonne Université, Université de Paris, CNRS/IN2P3, Paris, France
  • 137Department of Physics, University of Pennsylvania, Philadelphia, Pennsylvania, USA
  • 138Konstantinov Nuclear Physics Institute of National Research Centre “Kurchatov Institute”, PNPI, St. Petersburg, Russia
  • 139Department of Physics and Astronomy, University of Pittsburgh, Pittsburgh, Pennsylvania, USA
  • 140aLaboratório de Instrumentação e Física Experimental de Partículas—LIP, Lisboa, Portugal
  • 140bDepartamento de Física, Faculdade de Ciências, Universidade de Lisboa, Lisboa, Portugal
  • 140cDepartamento de Física, Universidade de Coimbra, Coimbra, Portugal
  • 140dCentro de Física Nuclear da Universidade de Lisboa, Lisboa, Portugal
  • 140eDepartamento de Física, Universidade do Minho, Braga, Portugal
  • 140fDepartamento de Física Teórica y del Cosmos, Universidad de Granada, Granada (Spain), Spain
  • 140gDep Física and CEFITEC of Faculdade de Ciências e Tecnologia, Universidade Nova de Lisboa, Caparica, Portugal
  • 140hInstituto Superior Técnico, Universidade de Lisboa, Lisboa, Portugal
  • 141Institute of Physics of the Czech Academy of Sciences, Prague, Czech Republic
  • 142Czech Technical University in Prague, Prague, Czech Republic
  • 143Charles University, Faculty of Mathematics and Physics, Prague, Czech Republic
  • 144Particle Physics Department, Rutherford Appleton Laboratory, Didcot, United Kingdom
  • 145IRFU, CEA, Université Paris-Saclay, Gif-sur-Yvette, France
  • 146Santa Cruz Institute for Particle Physics, University of California Santa Cruz, Santa Cruz, California, USA
  • 147aDepartamento de Física, Pontificia Universidad Católica de Chile, Santiago, Chile
  • 147bUniversidad Andres Bello, Department of Physics, Santiago, Chile
  • 147cDepartamento de Física, Universidad Técnica Federico Santa María, Valparaíso, Chile
  • 148Department of Physics, University of Washington, Seattle, Washington, USA
  • 149Department of Physics and Astronomy, University of Sheffield, Sheffield, United Kingdom
  • 150Department of Physics, Shinshu University, Nagano, Japan
  • 151Department Physik, Universität Siegen, Siegen, Germany
  • 152Department of Physics, Simon Fraser University, Burnaby, British Columbia, Canada
  • 153SLAC National Accelerator Laboratory, Stanford, California, USA
  • 154Physics Department, Royal Institute of Technology, Stockholm, Sweden
  • 155Departments of Physics and Astronomy, Stony Brook University, Stony Brook, New York, USA
  • 156Department of Physics and Astronomy, University of Sussex, Brighton, United Kingdom
  • 157School of Physics, University of Sydney, Sydney, Australia
  • 158Institute of Physics, Academia Sinica, Taipei, Taiwan
  • 159aE. Andronikashvili Institute of Physics, Iv. Javakhishvili Tbilisi State University, Tbilisi, Georgia
  • 159bHigh Energy Physics Institute, Tbilisi State University, Tbilisi, Georgia
  • 160Department of Physics, Technion, Israel Institute of Technology, Haifa, Israel
  • 161Raymond and Beverly Sackler School of Physics and Astronomy, Tel Aviv University, Tel Aviv, Israel
  • 162Department of Physics, Aristotle University of Thessaloniki, Thessaloniki, Greece
  • 163International Center for Elementary Particle Physics and Department of Physics, University of Tokyo, Tokyo, Japan
  • 164Graduate School of Science and Technology, Tokyo Metropolitan University, Tokyo, Japan
  • 165Department of Physics, Tokyo Institute of Technology, Tokyo, Japan
  • 166Tomsk State University, Tomsk, Russia
  • 167Department of Physics, University of Toronto, Toronto, Ontario, Canada
  • 168aTRIUMF, Vancouver, British Columbia, Canada
  • 168bDepartment of Physics and Astronomy, York University, Toronto, Ontario, Canada
  • 169Division of Physics and Tomonaga Center for the History of the Universe, Faculty of Pure and Applied Sciences, University of Tsukuba, Tsukuba, Japan
  • 170Department of Physics and Astronomy, Tufts University, Medford, Massachusetts, USA
  • 171Department of Physics and Astronomy, University of California Irvine, Irvine, California, USA
  • 172Department of Physics and Astronomy, University of Uppsala, Uppsala, Sweden
  • 173Department of Physics, University of Illinois, Urbana, Illinois, USA
  • 174Instituto de Física Corpuscular (IFIC), Centro Mixto Universidad de Valencia—CSIC, Valencia, Spain
  • 175Department of Physics, University of British Columbia, Vancouver, British Columbia, Canada
  • 176Department of Physics and Astronomy, University of Victoria, Victoria, British Columbia, Canada
  • 177Fakultät für Physik und Astronomie, Julius-Maximilians-Universität Würzburg, Würzburg, Germany
  • 178Department of Physics, University of Warwick, Coventry, United Kingdom
  • 179Waseda University, Tokyo, Japan
  • 180Department of Particle Physics, Weizmann Institute of Science, Rehovot, Israel
  • 181Department of Physics, University of Wisconsin, Madison, Wisconsin, USA
  • 182Fakultät für Mathematik und Naturwissenschaften, Fachgruppe Physik, Bergische Universität Wuppertal, Wuppertal, Germany
  • 183Department of Physics, Yale University, New Haven, Connecticut, USA
  • 184Yerevan Physics Institute, Yerevan, Armenia

  • *Full author list given at the end of the article.
  • aDeceased.
  • bAlso at Department of Physics, King’s College London, London, United Kingdom.
  • cAlso at Istanbul University, Dept. of Physics, Istanbul, Turkey.
  • dAlso at Instituto de Fisica Teorica, IFT-UAM/CSIC, Madrid, Spain.
  • eAlso at TRIUMF, Vancouver, Brirish Columbia, Canada.
  • fAlso at Department of Physics and Astronomy, University of Louisville, Louisville, Kentucky, USA.
  • gAlso at Physics Department, An-Najah National University, Nablus, Palestine.
  • hAlso at Department of Physics, California State University, Fresno, USA.
  • iAlso at Department of Physics, University of Fribourg, Fribourg, Switzerland.
  • jAlso at Physics Dept, University of South Africa, Pretoria, South Africa.
  • kAlso at Departament de Fisica de la Universitat Autonoma de Barcelona, Barcelona, Spain.
  • lAlso at Tomsk State University, Tomsk, and Moscow Institute of Physics and Technology State University, Dolgoprudny, Russia.
  • mAlso at The Collaborative Innovation Center of Quantum Matter (CICQM), Beijing, China.
  • nAlso at Department of Physics, Ben Gurion University of the Negev, Beer Sheva, Israel.
  • oAlso at Departamento de Física, Instituto Superior Técnico, Universidade de Lisboa, Lisboa, Portugal.
  • pAlso at Universita di Napoli Parthenope, Napoli, Italy.
  • qAlso at Institute of Particle Physics (IPP), Vancouver, Canada.
  • rAlso at Department of Physics, University of Adelaide, Adelaide, Australia.
  • sAlso at Department of Physics, St. Petersburg State Polytechnical University, St. Petersburg, Russia.
  • tAlso at Borough of Manhattan Community College, City University of New York, New York, New York, USA.
  • uAlso at Department of Financial and Management Engineering, University of the Aegean, Chios, Greece.
  • vAlso at Centre for High Performance Computing, CSIR Campus, Rosebank, Cape Town, South Africa.
  • wAlso at Department of Physics, California State University, East Bay, USA.
  • xAlso at Institucio Catalana de Recerca i Estudis Avancats, ICREA, Barcelona, Spain.
  • yAlso at Department of Physics, University of Michigan, Ann Arbor, Michigan, USA.
  • zAlso at LAL, Université Paris-Sud, CNRS/IN2P3, Université Paris-Saclay, Orsay, France.
  • aaAlso at Graduate School of Science, Osaka University, Osaka, Japan.
  • bbAlso at Physikalisches Institut, Albert-Ludwigs-Universität Freiburg, Freiburg, Germany.
  • ccAlso at Institute of Physics, Azerbaijan Academy of Sciences, Baku, Azerbaijan.
  • ddAlso at Institute for Mathematics, Astrophysics and Particle Physics, Radboud University Nijmegen/Nikhef, Nijmegen, Netherlands.
  • eeAlso at Institute of Theoretical Physics, Ilia State University, Tbilisi, Georgia.
  • ffAlso at CERN, Geneva, Switzerland.
  • ggAlso at Department of Physics, Stanford University, Stanford, California, USA.
  • hhAlso at Manhattan College, New York, New York, USA.
  • iiAlso at Joint Institute for Nuclear Research, Dubna, Russia.
  • jjAlso at Hellenic Open University, Patras, Greece.
  • kkAlso at The City College of New York, New York, New York, USA.
  • llAlso at Institute of High Energy Physics, Chinese Academy of Sciences, Beijing, China.
  • mmAlso at Department of Physics, California State University, Sacramento, USA.
  • nnAlso at Moscow Institute of Physics and Technology State University, Dolgoprudny, Russia.
  • ooAlso at Département de Physique Nucléaire et Corpusculaire, Université de Genève, Genève, Switzerland.
  • ppAlso at Department of Physics and Astronomy, University of Sheffield, Sheffield, United Kingdom.
  • qqAlso at Louisiana Tech University, Ruston, Los Angeles, USA.
  • rrAlso at School of Physics, Sun Yat-sen University, Guangzhou, China.
  • ssAlso at Institute for Nuclear Research and Nuclear Energy (INRNE) of the Bulgarian Academy of Sciences, Sofia, Bulgaria.
  • ttAlso at Faculty of Physics, M.V. Lomonosov Moscow State University, Moscow, Russia.
  • uuAlso at Department of Applied Physics and Astronomy, University of Sharjah, Sharjah, United Arab Emirates.
  • vvAlso at Institut für Experimentalphysik, Universität Hamburg, Hamburg, Germany.
  • wwAlso at CPPM, Aix-Marseille Université, CNRS/IN2P3, Marseille, France.
  • xxAlso at National Research Nuclear University MEPhI, Moscow, Russia.
  • yyAlso at Institute for Particle and Nuclear Physics, Wigner Research Centre for Physics, Budapest, Hungary.
  • zzAlso at Giresun University, Faculty of Engineering, Giresun, Turkey.
  • aaaAlso at Institute of Physics, Academia Sinica, Taipei, Taiwan.
  • bbbAlso at LPNHE, Sorbonne Université, Université de Paris, CNRS/IN2P3, Paris, France.
  • cccAlso at Department of Physics and Astronomy, Michigan State University, East Lansing, Michigan, USA.

Phys. Rev. D 101, 012002 – Published 3 January, 2020

DOI: https://doi.org/10.1103/PhysRevD.101.012002

Abstract

Combined measurements of Higgs boson production cross sections and branching fractions are presented. The combination is based on the analyses of the Higgs boson decay modes Hγγ, ZZ*, WW*, ττ, bb¯, μμ, searches for decays into invisible final states, and on measurements of off-shell Higgs boson production. Up to 79.8fb1 of proton–proton collision data collected at s=13TeV with the ATLAS detector are used. Results are presented for the gluon–gluon fusion and vector-boson fusion processes, and for associated production with vector bosons or top-quarks. The global signal strength is determined to be μ=1.110.08+0.09. The combined measurement yields an observed (expected) significance for the vector-boson fusion production process of 6.5σ (5.3σ). Measurements in kinematic regions defined within the simplified template cross section framework are also shown. The results are interpreted in terms of modifiers applied to the Standard Model couplings of the Higgs boson to other particles, and are used to set exclusion limits on parameters in two-Higgs-doublet models and in the simplified minimal supersymmetric Standard Model. No significant deviations from Standard Model predictions are observed.

View figure in article

Physics Subject Headings (PhySH)

Article Text

References (167)

  1. F. Englert and R. Brout, Broken Symmetry and the Mass of Gauge Vector Mesons, Phys. Rev. Lett. 13, 321 (1964).
  2. P. W. Higgs, Broken symmetries, massless particles and gauge fields, Phys. Lett. 12, 132 (1964).
  3. P. W. Higgs, Broken Symmetries and the Masses of Gauge Bosons, Phys. Rev. Lett. 13, 508 (1964).
  4. G. S. Guralnik, C. R. Hagen, and T. W. B. Kibble, Global Conservation Laws and Massless Particles, Phys. Rev. Lett. 13, 585 (1964).
  5. P. W. Higgs, Spontaneous symmetry breakdown without massless bosons, Phys. Rev. 145, 1156 (1966).
  6. T. W. B. Kibble, Symmetry breaking in non-Abelian gauge theories, Phys. Rev. 155, 1554 (1967).
  7. ATLAS Collaboration, Observation of a new particle in the search for the Standard Model Higgs boson with the ATLAS detector at the LHC, Phys. Lett. B 716, 1 (2012).
  8. CMS Collaboration, Observation of a new boson at a mass of 125 GeV with the CMS experiment at the LHC, Phys. Lett. B 716, 30 (2012).
  9. ATLAS and CMS Collaborations, Measurements of the Higgs boson production and decay rates and constraints on its couplings from a combined ATLAS and CMS analysis of the LHC pp collision data at s=7 and 8 TeV, J. High Energy Phys. 08 (2016) 045.
  10. ATLAS Collaboration, Measurements of Higgs boson properties in the diphoton decay channel with 36fb1 of pp collision data at s=13TeV with the ATLAS detector, Phys. Rev. D 98, 052005 (2018).
  11. ATLAS Collaboration, Measurement of the Higgs boson coupling properties in the HZZ*4 decay channel at s=13TeV with the ATLAS detector, J. High Energy Phys. 03 (2018) 095.
  12. ATLAS Collaboration, Observation of Higgs boson production in association with a top quark pair at the LHC with the ATLAS detector, Phys. Lett. B 784, 173 (2018).
  13. ATLAS Collaboration, Measurements of gluon-gluon fusion and vector-boson fusion Higgs boson production cross sections in the HWW*eνμν decay channel in pp collisions at s=13TeV with the ATLAS detector, Phys. Lett. B 789, 508 (2019).
  14. ATLAS Collaboration, Cross-section measurements of the Higgs boson decaying into a pair of τ-leptons in proton–proton collisions at s=13TeV with the ATLAS detector, Phys. Rev. D 99, 072001 (2019).
  15. ATLAS Collaboration, Observation of Hbb¯ decays and VH production with the ATLAS detector, Phys. Lett. B 786, 59 (2018).
  16. ATLAS Collaboration, Measurement of VH, Hbb¯ production as a function of the vector-boson transverse momentum in 13 TeV pp collisions with the ATLAS detector, J. High Energy Phys. 05 (2019) 141.
  17. ATLAS Collaboration, Search for Higgs bosons produced via vector-boson fusion and decaying into bottom quark pairs in s=13TeV pp collisions with the ATLAS detector, Phys. Rev. D 98, 052003 (2018).
  18. ATLAS Collaboration, Evidence for the associated production of the Higgs boson and a top quark pair with the ATLAS detector, Phys. Rev. D 97, 072003 (2018).
  19. ATLAS Collaboration, Search for the standard model Higgs boson produced in association with top quarks and decaying into a bb¯ pair in pp collisions at s=13TeV with the ATLAS detector, Phys. Rev. D 97, 072016 (2018).
  20. ATLAS Collaboration, Search for the Dimuon Decay of the Higgs Boson in pp Collisions at s=13TeV with the ATLAS Detector, Phys. Rev. Lett. 119, 051802 (2017).
  21. ATLAS Collaboration, Search for invisible Higgs boson decays in vector boson fusion at s=13TeV with the ATLAS detector, Phys. Lett. B 793, 499 (2019).
  22. ATLAS Collaboration, Search for an invisibly decaying Higgs boson or dark matter candidates produced in association with a Z boson in pp collisions at s=13TeV with the ATLAS detector, Phys. Lett. B 776, 318 (2018).
  23. ATLAS Collaboration, Search for dark matter in events with a hadronically decaying vector boson and missing transverse momentum in pp collisions at s=13TeV with the ATLAS detector, J. High Energy Phys. 10 (2018) 180.
  24. ATLAS Collaboration, Combination of Searches for Invisible Higgs Boson Decays with the ATLAS Experiment, Phys. Rev. Lett. 122, 231801 (2019).
  25. ATLAS Collaboration, Constraints on off-shell Higgs boson production and the Higgs boson total width in ZZ4 and ZZ22ν final states with the ATLAS detector, Phys. Lett. B 786, 223 (2018).
  26. ATLAS and CMS Collaborations, Combined Measurement of the Higgs Boson Mass in pp Collisions at s=7 and 8 TeV with the ATLAS and CMS Experiments, Phys. Rev. Lett. 114, 191803 (2015).
  27. CMS Collaboration, Measurements of Higgs boson properties in the diphoton decay channel in proton–proton collisions at s=13TeV, J. High Energy Phys. 11 (2018) 185.
  28. CMS Collaboration, Measurements of properties of the Higgs boson decaying to a W boson pair in pp collisions at s=13TeV, Phys. Lett. B 791, 96 (2019).
  29. CMS Collaboration, Observation of the Higgs boson decay to a pair of τ leptons, Phys. Lett. B 779, 283 (2018).
  30. CMS Collaboration, Evidence for the Higgs boson decay to a bottom quark–antiquark pair, Phys. Lett. B 780, 501 (2018).
  31. CMS Collaboration, Observation of tt¯H Production, Phys. Rev. Lett. 120, 231801 (2018).
  32. CMS Collaboration, Observation of Higgs Boson Decay to Bottom Quarks, Phys. Rev. Lett. 121, 121801 (2018).
  33. CMS Collaboration, Measurements of the Higgs boson width and anomalous HVV couplings from on-shell and off-shell production in the four-lepton final state, Phys. Rev. D 99, 112003 (2019).
  34. CMS Collaboration, Combined measurements of Higgs boson couplings in proton–proton collisions at s=13TeV, Eur. Phys. J. C 79, 421 (2019).
  35. D. de Florian et al. (LHC Higgs Cross Section Working Group), Handbook of LHC higgs cross sections: 4. Deciphering the nature of the higgs sector, arXiv:1610.07922, 10.23731/CYRM-2017-002.
  36. J. R. Andersen et al., Les Houches 2015: Physics at TeV colliders standard model working group report, arXiv:1605.04692.
  37. S. Heinemeyer et al. (LHC Higgs Cross Section Working Group), Handbook of LHC higgs cross sections: 3. Higgs properties, Report No. CERN-2013-004, 2013, 10.5170/CERN-2013-004.
  38. ATLAS Collaboration, Constraints on new phenomena via Higgs boson couplings and invisible decays with the ATLAS detector, J. High Energy Phys. 11 (2015) 206.
  39. ATLAS Collaboration, The ATLAS Experiment at the CERN Large Hadron Collider, J. Instrum. 3, S08003 (2008).
  40. ATLAS Collaboration, ATLAS insertable B-layer technical design report, Report No. ATLAS-TDR-19, 2010, https://cds.cern.ch/record/1291633; ATLAS CollaborationAddendum, Report No. ATLAS-TDR-19-ADD-1, 2012, https://cds.cern.ch/record/1451888.
  41. B. Abbott et al., Production and integration of the ATLAS insertable B-layer, J. Instrum. 13, T05008 (2018).
  42. ATLAS Collaboration, Luminosity determination in pp collisions at s=13TeV using the ATLAS detector at the LHC, Report No. ATLAS-CONF-2019-021, 2019, https://cds.cern.ch/record/2677054.
  43. G. Avoni et al., The new LUCID-2 detector for luminosity measurement and monitoring in ATLAS, J. Instrum. 13, P07017 (2018).
  44. P. Nason, A new method for combining NLO QCD with shower Monte Carlo algorithms, J. High Energy Phys. 11 (2004) 040.
  45. S. Frixione, P. Nason, and C. Oleari, Matching NLO QCD computations with parton shower simulations: The POWHEG method, J. High Energy Phys. 11 (2007) 070.
  46. S. Alioli, P. Nason, C. Oleari, and E. Re, A general framework for implementing NLO calculations in shower Monte Carlo programs: The POWHEG BOX, J. High Energy Phys. 06 (2010) 043.
  47. S. Alioli, P. Nason, C. Oleari, and E. Re, NLO Higgs boson production via gluon fusion matched with shower in POWHEG, J. High Energy Phys. 04 (2009) 002.
  48. K. Hamilton, P. Nason, E. Re, and G. Zanderighi, NNLOPS simulation of Higgs boson production, J. High Energy Phys. 10 (2013) 222.
  49. K. Hamilton, P. Nason, and G. Zanderighi, Finite quark-mass effects in the NNLOPSPOWHEG+MiNLO Higgs generator, J. High Energy Phys. 05 (2015) 140.
  50. S. Catani and M. Grazzini, Next-to-Next-to-Leading-Order Subtraction Formalism in Hadron Collisions and its Application to Higgs-Boson Production at the Large Hadron Collider, Phys. Rev. Lett. 98, 222002 (2007).
  51. K. Hamilton, P. Nason, and G. Zanderighi, MINLO: Multi-scale improved NLO, J. High Energy Phys. 10 (2012) 155.
  52. J. M. Campbell, R. K. Ellis, R. Frederix, P. Nason, C. Oleari, and C. Williams, NLO higgs boson production plus one and two jets using the POWHEG BOX, MadGraph4 and MCFM, J. High Energy Phys. 07 (2012) 092.
  53. K. Hamilton, P. Nason, C. Oleari, and G. Zanderighi, Merging H/W/Z+0 and 1 jet at NLO with no merging scale: A path to parton shower+NNLO matching, J. High Energy Phys. 05 (2013) 082.
  54. J. Butterworth et al., PDF4LHC recommendations for LHC Run II, J. Phys. G 43, 023001 (2016).
  55. C. Anastasiou, C. Duhr, F. Dulat, F. Herzog, and B. Mistlberger, Higgs Boson Gluon-Fusion Production in QCD at Three Loops, Phys. Rev. Lett. 114, 212001 (2015).
  56. C. Anastasiou, C. Duhr, F. Dulat, E. Furlan, T. Gehrmann, F. Herzog, A. Lazopoulos, and B. Mistlberger, High precision determination of the gluon fusion Higgs boson cross-section at the LHC, J. High Energy Phys. 05 (2016) 058.
  57. F. Dulat, A. Lazopoulos, and B. Mistlberger, iHixs 2—Inclusive Higgs cross sections, Comput. Phys. Commun. 233, 243 (2018).
  58. R. V. Harlander and K. J. Ozeren, Finite top mass effects for hadronic Higgs production at next-to-next-to-leading order, J. High Energy Phys. 11 (2009) 088.
  59. R. V. Harlander and K. J. Ozeren, Top mass effects in Higgs production at next-to-next-to-leading order QCD: Virtual corrections, Phys. Lett. B 679, 467 (2009).
  60. R. V. Harlander, H. Mantler, S. Marzani, and K. J. Ozeren, Higgs production in gluon fusion at next-to-next-to-leading order QCD for finite top mass, Eur. Phys. J. C 66, 359 (2010).
  61. S. Actis, G. Passarino, C. Sturm, and S. Uccirati, NLO electroweak corrections to Higgs boson production at hadron colliders, Phys. Lett. B 670, 12 (2008).
  62. S. Actis, G. Passarino, C. Sturm, and S. Uccirati, NNLO computational techniques: The cases Hγγ and Hgg, Nucl. Phys. B811, 182 (2009).
  63. C. Anastasiou, R. Boughezal, and F. Petriello, Mixed QCD-electroweak corrections to Higgs boson production in gluon fusion, J. High Energy Phys. 04 (2009) 003.
  64. U. Aglietti, R. Bonciani, G. Degrassi, and A. Vicini, Two loop light fermion contribution to Higgs production and decays, Phys. Lett. B 595, 432 (2004).
  65. G. Bozzi, S. Catani, D. de Florian, and M. Grazzini, Transverse-momentum resummation and the spectrum of the Higgs boson at the LHC, Nucl. Phys. B737, 73 (2006).
  66. D. de Florian, G. Ferrera, M. Grazzini, and D. Tommasini, Transverse-momentum resummation: Higgs boson production at the Tevatron and the LHC, J. High Energy Phys. 11 (2011) 064.
  67. M. Grazzini and H. Sargsyan, Heavy-quark mass effects in Higgs boson production at the LHC, J. High Energy Phys. 09 (2013) 129.
  68. P. Nason and C. Oleari, NLO Higgs boson production via vector-boson fusion matched with shower in POWHEG, J. High Energy Phys. 02 (2010) 037.
  69. M. Ciccolini, A. Denner, and S. Dittmaier, Strong and Electroweak Corrections to the Production of a Higgs Boson +2 Jets via Weak Interactions at the Large Hadron Collider, Phys. Rev. Lett. 99, 161803 (2007).
  70. M. Ciccolini, A. Denner, and S. Dittmaier, Electroweak and QCD corrections to Higgs production via vector-boson fusion at the LHC, Phys. Rev. D 77, 013002 (2008).
  71. P. Bolzoni, F. Maltoni, S.-O. Moch, and M. Zaro, Higgs Boson Production via Vector-Boson Fusion at Next-to-Next-to-Leading Order in QCD, Phys. Rev. Lett. 105, 011801 (2010).
  72. G. Cullen, N. Greiner, G. Heinrich, G. Luisoni, P. Mastrolia, G. Ossola, T. Reiter, and F. Tramontano, Automated one-loop calculations with GoSam, Eur. Phys. J. C 72, 1889 (2012).
  73. G. Luisoni, P. Nason, C. Oleari, and F. Tramontano, HW±/HZ+0 and 1 jet at NLO with the POWHEG BOX interfaced to GoSam and their merging within MiNLO, J. High Energy Phys. 10 (2013) 083.
  74. O. Brein, R. V. Harlander, and T. J. E. Zirke, vh@nnlo—Higgs Strahlung at hadron colliders, Comput. Phys. Commun. 184, 998 (2013).
  75. R. V. Harlander, J. Klappert, S. Liebler, and L. Simon, vh@nnlo-v2: New physics in Higgs strahlung, J. High Energy Phys. 05 (2018) 089.
  76. O. Brein, A. Djouadi, and R. Harlander, NNLO QCD corrections to the Higgs-strahlung processes at hadron colliders, Phys. Lett. B 579, 149 (2004).
  77. O. Brein, R. Harlander, M. Wiesemann, and T. Zirke, Top-quark mediated effects in hadronic Higgs-strahlung, Eur. Phys. J. C 72, 1868 (2012).
  78. R. V. Harlander, A. Kulesza, V. Theeuwes, and T. Zirke, Soft gluon resummation for gluon-induced Higgs Strahlung, J. High Energy Phys. 11 (2014) 082.
  79. G. Ferrera, G. Somogyi, and F. Tramontano, Associated production of a Higgs boson decaying into bottom quarks at the LHC in full NNLO QCD, Phys. Lett. B 780, 346 (2018).
  80. F. Caola, G. Luisoni, K. Melnikov, and R. Röntsch, NNLO QCD corrections to associated WH production and Hbb¯ decay, Phys. Rev. D 97, 074022 (2018).
  81. M. L. Ciccolini, S. Dittmaier, and M. Kramer, Electroweak radiative corrections to associated WH and ZH production at hadron colliders, Phys. Rev. D 68, 073003 (2003).
  82. A. Denner, S. Dittmaier, S. Kallweit, and A. Mück, Electroweak corrections to Higgs-strahlung off W/Z bosons at the Tevatron and the LHC with HAWK, J. High Energy Phys. 03 (2012) 075.
  83. A. Denner, S. Dittmaier, S. Kallweit, and A. Mück, HAWK 2.0: A Monte Carlo program for Higgs production in vector-boson fusion and Higgs strahlung at hadron colliders, Comput. Phys. Commun. 195, 161 (2015).
  84. L. Altenkamp, S. Dittmaier, R. V. Harlander, H. Rzehak, and T. J. E. Zirke, Gluon-induced Higgsstrahlung at next-to-leading order QCD, J. High Energy Phys. 02 (2013) 078.
  85. H. B. Hartanto, B. Jager, L. Reina, and D. Wackeroth, Higgs boson production in association with top quarks in the POWHEG BOX, Phys. Rev. D 91, 094003 (2015).
  86. J. Alwall, R. Frederix, S. Frixione, V. Hirschi, F. Maltoni, O. Mattelaer, H.-S. Shao, T. Stelzer, P. Torrielli, and M. Zaro, The automated computation of tree-level and next-to-leading order differential cross sections, and their matching to parton shower simulations, J. High Energy Phys. 07 (2014) 079.
  87. P. Artoisenet, R. Frederix, O. Mattelaer, and R. Rietkerk, Automatic spin-entangled decays of heavy resonances in Monte Carlo simulations, J. High Energy Phys. 03 (2013) 015.
  88. R. D. Ball et al., Parton distributions for the LHC Run II, J. High Energy Phys. 04 (2015) 040.
  89. W. Beenakker, S. Dittmaier, M. Krämer, B. Plümper, M. Spira, and P. M. Zerwas, NLO QCD corrections to tt¯H production in hadron collisions, Nucl. Phys. B653, 151 (2003).
  90. S. Dawson, C. Jackson, L. Orr, L. Reina, and D. Wackeroth, Associated Higgs production with top quarks at the large hadron collider: NLO QCD corrections, Phys. Rev. D 68, 034022 (2003).
  91. Y. Zhang, W.-G. Ma, R.-Y. Zhang, C. Chen, and L. Guo, QCD NLO and EW NLO corrections to tt¯H production with top quark decays at hadron collider, Phys. Lett. B 738, 1 (2014).
  92. S. Frixione, V. Hirschi, D. Pagani, H. S. Shao, and M. Zaro, Weak corrections to Higgs hadroproduction in association with a top-quark pair, J. High Energy Phys. 09 (2014) 065.
  93. M. Wiesemann, R. Frederix, S. Frixione, V. Hirschi, F. Maltoni, and P. Torrielli, Higgs production in association with bottom quarks, J. High Energy Phys. 02 (2015) 132.
  94. R. D. Ball et al., Parton distributions with LHC data, Nucl. Phys. B867, 244 (2013).
  95. S. Dawson, C. Jackson, L. Reina, and D. Wackeroth, Exclusive Higgs boson production with bottom quarks at hadron colliders, Phys. Rev. D 69, 074027 (2004).
  96. S. Dittmaier, M. Krämer, and M. Spira, Higgs radiation off bottom quarks at the Tevatron and the CERN LHC, Phys. Rev. D 70, 074010 (2004).
  97. R. V. Harlander and W. B. Kilgore, Higgs boson production in bottom quark fusion at next-to-next-to leading order, Phys. Rev. D 68, 013001 (2003).
  98. J. Pumplin, D. R. Stump, J. Huston, H.-L. Lai, P. Nadolsky, and W.-K. Tung, New generation of parton distributions with uncertainties from global QCD analysis, J. High Energy Phys. 07 (2002) 012.
  99. H.-L. Lai, M. Guzzi, J. Huston, Z. Li, P. M. Nadolsky, J. Pumplin, and C.-P. Yuan, New parton distributions for collider physics, Phys. Rev. D 82, 074024 (2010).
  100. F. Demartin, F. Maltoni, K. Mawatari, and M. Zaro, Higgs production in association with a single top quark at the LHC, Eur. Phys. J. C 75, 267 (2015).
  101. F. Demartin, B. Maier, F. Maltoni, K. Mawatari, and M. Zaro, tWH associated production at the LHC, Eur. Phys. J. C 77, 34 (2017).
  102. T. Sjöstrand, S. Mrenna, and P. Z. Skands, A brief introduction to PYTHIA 8.1, Comput. Phys. Commun. 178, 852 (2008).
  103. S. Gieseke, A. Ribon, M. H. Seymour, P. Stephens, and B. Webber, Herwig++ 1.0: An event generator for e+e- annihilation, J. High Energy Phys. 02 (2004) 005.
  104. ATLAS Collaboration, Measurement of the Z/γ* boson transverse momentum distribution in pp collisions at s=7TeV with the ATLAS detector, J. High Energy Phys. 09 (2014) 145.
  105. ATLAS Collaboration, ATLAS Pythia 8 tunes to 7 TeV data, Report No. ATL-PHYS-PUB-2014-021, 2014, https://cds.cern.ch/record/1966419.
  106. A. Djouadi, J. Kalinowski, and M. Spira, HDECAY: A Program for Higgs boson decays in the Standard Model and its supersymmetric extension, Comput. Phys. Commun. 108, 56 (1998).
  107. M. Spira, QCD effects in Higgs physics, Fortsch. Phys. 46, 203 (1998).
  108. A. Djouadi, M. M. Mühlleitner, and M. Spira, Decays of supersymmetric particles: The program SUSY-HIT (SUspect-SdecaY-Hdecay-InTerface), Acta Phys. Pol. B 38, 635 (2007).
  109. A. Bredenstein, A. Denner, S. Dittmaier, and M. Weber, Radiative corrections to the semileptonic and hadronic Higgs-boson decays HWW/ZZ4 fermions, J. High Energy Phys. 02 (2007) 080.
  110. A. Bredenstein, A. Denner, S. Dittmaier, and M. Weber, Precise predictions for the Higgs-boson decay HWW/ZZ4 leptons, Phys. Rev. D 74, 013004 (2006).
  111. A. Bredenstein, A. Denner, S. Dittmaier, and M. M. Weber, Precision calculations for the Higgs decays HZZ/WW4 leptons, Nucl. Phys. B, Proc. Suppl. 160, 131 (2006).
  112. E. Bagnaschi, G. Degrassi, P. Slavich, and A. Vicini, Higgs production via gluon fusion in the POWHEG approach in the SM and in the MSSM, J. High Energy Phys. 02 (2012) 088.
  113. F. Cascioli, S. Höche, F. Krauss, P. Maierhöfer, S. Pozzorini, and F. Siegert, Precise Higgs-background predictions: Merging NLO QCD and squared quarkloop corrections to four-lepton + 0,1 jet production, J. High Energy Phys. 01 (2014) 046.
  114. T. Gleisberg, S. Höche, F. Krauss, M. Schönherr, S. Schumann, F. Siegert, and J. Winter, Event generation with SHERPA 1.1, J. High Energy Phys. 02 (2009) 007.
  115. F. Cascioli, P. Maierhöfer, and S. Pozzorini, Scattering Amplitudes with Open Loops, Phys. Rev. Lett. 108, 111601 (2012).
  116. A. Denner, S. Dittmaier, and L. Hofer, COLLIER—A fortran-library for one-loop integrals, Proc. Sci., LL2014 (2014) 071 [arXiv:1407.0087].
  117. S. Schumann and F. Krauss, A Parton shower algorithm based on Catani-Seymour dipole factorisation, J. High Energy Phys. 03 (2008) 038.
  118. S. Agostinelli et al., GEANT4—a simulation toolkit, Nucl. Instrum. Methods Phys. Res. 506, 250 (2003).
  119. ATLAS Collaboration, The ATLAS simulation infrastructure, Eur. Phys. J. C 70, 823 (2010).
  120. A. Martin, W. Stirling, R. Thorne, and G. Watt, Parton distributions for the LHC, Eur. Phys. J. C 63, 189 (2009).
  121. ATLAS Collaboration, Summary of ATLAS Pythia 8 tunes, Report No. ATL-PHYS-PUB-2012-003, 2012, https://cds.cern.ch/record/1474107.
  122. ATLAS Collaboration, The Pythia 8 A3 tune description of ATLAS minimum bias and inelastic measurements incorporating the Donnachie–Landshoff diffractive model, Report No. ATL-PHYS-PUB-2016-017, 2016, https://cds.cern.ch/record/2206965.
  123. ATLAS Collaboration, Measurement of the photon identification efficiencies with the ATLAS detector using LHC Run 2 data collected in 2015 and 2016, Eur. Phys. J. C 79, 205 (2019).
  124. ATLAS Collaboration, Topological cell clustering in the ATLAS calorimeters and its performance in LHC Run 1, Eur. Phys. J. C 77, 490 (2017).
  125. G. Aad et al., Electron and photon performance measurements with the ATLAS detector using the 2015-2017 LHC proton-proton collision data, J. Instrum. 14, P12006 (2019).
  126. W. Lampl et al., Calorimeter clustering algorithms: Description and performance, Report No. ATL-LARGPUB-2008-002, 2008, https://cds.cern.ch/record/1099735.
  127. ATLAS Collaboration, Electron reconstruction and identification in the ATLAS experiment using the 2015 and 2016 LHC proton–proton collision data at s=13TeV, Eur. Phys. J. C 79, 639 (2019).
  128. ATLAS Collaboration, Electron and photon energy calibration with the ATLAS detector using 2015–2016 LHC proton–proton collision data, J. Instrum. 14, P03017 (2019).
  129. ATLAS Collaboration, Muon reconstruction performance of the ATLAS detector in proton–proton collision data at s=13TeV, Eur. Phys. J. C 76, 292 (2016).
  130. ATLAS Collaboration, Jet energy scale measurements and their systematic uncertainties in proton–proton collisions at s=13TeV with the ATLAS detector, Phys. Rev. D 96, 072002 (2017).
  131. ATLAS Collaboration, Measurements of b-jet tagging efficiency with the ATLAS detector using tt¯ events at s=13TeV, J. High Energy Phys. 08 (2018) 089.
  132. ATLAS Collaboration, Performance of missing transverse momentum reconstruction with the ATLAS detector using proton–proton collisions at s=13TeV, Eur. Phys. J. C 78, 903 (2018).
  133. M. Cacciari, G. P. Salam, and G. Soyez, The anti-kt jet clustering algorithm, J. High Energy Phys. 04 (2008) 063.
  134. N. Kauer and G. Passarino, Inadequacy of zero-width approximation for a light Higgs boson signal, J. High Energy Phys. 08 (2012) 116.
  135. F. Caola and K. Melnikov, Constraining the Higgs boson width with ZZ production at the LHC, Phys. Rev. D 88, 054024 (2013).
  136. J. M. Campbell, R. K. Ellis, and C. Williams, Bounding the Higgs width at the LHC using full analytic results for ggee+μμ+, J. High Energy Phys. 04 (2014) 060.
  137. J. M. Campbell, R. K. Ellis, and C.Williams, Bounding the Higgs width at the LHC: Complementary results from HWW, Phys. Rev. D 89, 053011 (2014).
  138. C. Englert, Y. Soreq, and M. Spannowsky, Off-shell Higgs coupling measurements in BSM scenarios, J. High Energy Phys. 05 (2015) 145.
  139. H. E. Logan, Hiding a Higgs width enhancement from off-shell gg(h*)ZZ measurements, Phys. Rev. D 92, 075038 (2015).
  140. ATLAS Collaboration, Search for heavy ZZ resonances in the ++ and +νν¯ final states using proton–proton collisions at s=13TeV with the ATLAS detector, Eur. Phys. J. C 78, 293 (2018).
  141. R. J. Barlow and C. Beeston, Fitting using finite Monte Carlo samples, Comput. Phys. Commun. 77, 219 (1993).
  142. K. Cranmer, G. Lewis, L. Moneta, A. Shibata, and W. Verkerke, HistFactory: A tool for creating statistical models for use with RooFit and RooStats, Report No. CERN-OPEN-2012-016, 2012, http://cdsweb.cern.ch/record/1456844.
  143. G. Cowan, K. Cranmer, E. Gross, and O. Vitells, Asymptotic formulae for likelihood-based tests of new physics, Eur. Phys. J. C 71, 1554 (2011); Erratum, 73, 2501 (2013).
  144. A. L. Read, Presentation of search results: the CLs technique, J. Phys. G 28, 2693 (2002).
  145. ATLAS Collaboration, Measurements of the Higgs boson production and decay rates and coupling strengths using pp collision data at s=7 and 8 TeV in the ATLAS experiment, Eur. Phys. J. C 76, 6 (2016).
  146. ATLAS Collaboration, Evaluation of theoretical uncertainties for simplified template cross section measurements of V-associated production of the Higgs boson, Report No. ATL-PHYS-PUB-2018-035, 2018, https://cds.cern.ch/record/2649241.
  147. ATLAS Collaboration, Constraints on the off-shell Higgs boson signal strength in the high-mass ZZ and WW final states with the ATLAS detector, Eur. Phys. J. C 75, 335 (2015).
  148. C. Englert, M. McCullough, and M. Spannowsky, Gluon-initiated associated production boosts Higgs physics, Phys. Rev. D 89, 013013 (2014).
  149. ALEPH, CDF, D0, DELPHI, L3, OPAL, SLD Collaborations, LEP and Tevatron Electroweak Working Group, and SLD Electroweak and Heavy Flavour Groups, Precision electroweak measurements and constraints on the standard model, arXiv:1012.2367.
  150. T. D. Lee, A theory of spontaneous T violation, Phys. Rev. D 8, 1226 (1973).
  151. J. F. Gunion and H. E. Haber, The CP conserving two Higgs doublet model: The approach to the decoupling limit, Phys. Rev. D 67, 075019 (2003).
  152. G. C. Branco, P. M. Ferreira, L. Lavoura, M. N. Rebelo, M. Sher, and J. P. Silva, Theory and phenomenology of two-Higgs-doublet models, Phys. Rep. 516, 1 (2012).
  153. Y. A. Gol’fand and E. P. Likhtman, Extension of the algebra of poincare group generators and violation of p invariance, Pis’ma Zh. Eksp. Teor. Fiz. 13, 452 (1971) [JETP Lett. 13, 323 (1971)].
  154. D. V. Volkov and V. P. Akulov, Is the neutrino a Goldstone particle?, Phys. Lett. 46B, 109 (1973).
  155. J. Wess and B. Zumino, Supergauge transformations in four-dimensions, Nucl. Phys. B70, 39 (1974).
  156. J. Wess and B. Zumino, Supergauge invariant extension of quantum electrodynamics, Nucl. Phys. B78, 1 (1974).
  157. S. Ferrara and B. Zumino, Supergauge invariant Yang-Mills theories, Nucl. Phys. B79, 413 (1974).
  158. A. Salam and J. A. Strathdee, Supersymmetry and nonabelian gauges, Phys. Lett. 51B, 353 (1974).
  159. S. L. Glashow and S. Weinberg, Natural conservation laws for neutral currents, Phys. Rev. D 15, 1958 (1977).
  160. E. A. Paschos, Diagonal neutral currents, Phys. Rev. D 15, 1966 (1977).
  161. P. Fayet, Supergauge invariant extension of the higgs mechanism and a model for the electron and its neutrino, Nucl. Phys. B90, 104 (1975).
  162. P. Fayet, Supersymmetry and weak, electromagnetic and strong interactions, Phys. Lett. 64B, 159 (1976).
  163. P. Fayet, Spontaneously broken supersymmetric theories of weak, electromagnetic and strong interactions, Phys. Lett. 69B, 489 (1977).
  164. L. Maiani, A. D. Polosa, and V. Riquer, Bounds to the higgs sector masses in minimal supersymmetry from LHC data, Phys. Lett. B 724, 274 (2013).
  165. A. Djouadi, L. Maiani, G. Moreau, A. Polosa, J. Quevillon, and V. Riquer, The post-Higgs MSSM scenario: Habemus MSSM?, Eur. Phys. J. C 73, 2650 (2013).
  166. A. Djouadi, L. Maiani, A. Polosa, J. Quevillon, and V. Riquer, Fully covering the MSSM Higgs sector at the LHC, J. High Energy Phys. 06 (2015) 168.
  167. ATLAS Collaboration, ATLAS computing acknowledgements, Report No. ATL-GEN-PUB-2016-002, https://cds.cern.ch/record/2202407.

Outline

Information

Sign In to Your Journals Account

Filter

Filter

Article Lookup

Enter a citation