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

Searches for B0→K+π−τ+τ− and Bs0→K+K−τ+τ− Decays

R. Aaij38, A. S. W. Abdelmotteleb58, C. Abellan Beteta52, F. Abudinén58, T. Ackernley62, A. A. Adefisoye70, B. Adeva48, M. Adinolfi56, P. Adlarson86 et al. (LHCb Collaboration)

P. Adlarson86, C. Agapopoulou14, C. A. Aidala88, Z. Ajaltouni11, S. Akar11, K. Akiba38, M. Akthar40, P. Albicocco28, J. Albrecht19,b, R. Aleksiejunas82, F. Alessio50, P. Alvarez Cartelle57,48, R. Amalric16, S. Amato3, J. L. Amey56, Y. Amhis14, L. An6, L. Anderlini27, M. Andersson52, P. Andreola52, M. Andreotti26, S. Andres Estrada45, A. Anelli31,50,c, D. Ao7, C. Arata12, F. Archilli37,d, Z. Areg70, M. Argenton26, S. Arguedas Cuendis9,50, L. Arnone31,c, A. Artamonov44, M. Artuso70, E. Aslanides13, R. Ataíde Da Silva51, M. Atzeni66, B. Audurier12, J. A. Authier15, D. Bacher65, I. Bachiller Perea51, S. Bachmann22, M. Bachmayer51, J. J. Back58, P. Baladron Rodriguez48, V. Balagura15, A. Balboni26, W. Baldini26, Z. Baldwin80, L. Balzani19, H. Bao7, J. Baptista de Souza Leite2, C. Barbero Pretel48,12, M. Barbetti27, I. R. Barbosa71, R. J. Barlow64,a, M. Barnyakov25, S. Barsuk14, W. Barter60, J. Bartz70, S. Bashir40, B. Batsukh5, P. B. Battista14, A. Bay51, A. Beck66, M. Becker19, F. Bedeschi35, I. B. Bediaga2, N. A. Behling19, S. Belin48, A. Bellavista25, K. Belous44, I. Belov29, I. Belyaev36, G. Benane13, G. Bencivenni28, E. Ben-Haim16, A. Berezhnoy44, R. Bernet52, S. Bernet Andres47, A. Bertolin33, F. Betti60, J. Bex57, O. Bezshyyko87, S. Bhattacharya81, J. Bhom41, M. S. Bieker18, N. V. Biesuz26, A. Biolchini38, M. Birch63, F. C. R. Bishop10, A. Bitadze64, A. Bizzeti27,e, T. Blake58,f, F. Blanc51, J. E. Blank19, S. Blusk70, V. Bocharnikov44, J. A. Boelhauve19, O. Boente Garcia50, T. Boettcher69, A. Bohare60, A. Boldyrev44, C. S. Bolognani84, R. Bolzonella26,g, R. B. Bonacci1, N. Bondar44,50, A. Bordelius50, F. Borgato33,50, S. Borghi64, M. Borsato31,c, J. T. Borsuk85, E. Bottalico62, S. A. Bouchiba51, M. Bovill65, T. J. V. Bowcock62, A. Boyer50, C. Bozzi26, J. D. Brandenburg89, A. Brea Rodriguez51, N. Breer19, J. Brodzicka41, J. Brown62, D. Brundu32, E. Buchanan60, M. Burgos Marcos84, A. T. Burke64, C. Burr50, C. Buti27, J. S. Butter57, J. Buytaert50, W. Byczynski50, S. Cadeddu32, H. Cai76, Y. Cai5, A. Caillet16, R. Calabrese26,g, S. Calderon Ramirez9, L. Calefice46, M. Calvi31,c, M. Calvo Gomez47, P. Camargo Magalhaes2,h, J. I. Cambon Bouzas48, P. Campana28, A. F. Campoverde Quezada7, S. Capelli31, M. Caporale25, L. Capriotti26, R. Caravaca-Mora9, A. Carbone25,i, L. Carcedo Salgado48, R. Cardinale29,j, A. Cardini32, P. Carniti31, L. Carus22, A. Casais Vidal66, R. Caspary22, G. Casse62, M. Cattaneo50, G. Cavallero26, V. Cavallini26,g, S. Celani50, I. Celestino35,k, S. Cesare30,l, A. J. Chadwick62, I. Chahrour88, H. Chang4,m, M. Charles16, Ph. Charpentier50, E. Chatzianagnostou38, R. Cheaib81, M. Chefdeville10, C. Chen57, J. Chen51, S. Chen5, Z. Chen7, A. Chen Hu63, M. Cherif12, A. Chernov41, S. Chernyshenko54, X. Chiotopoulos84, V. Chobanova45, M. Chrzaszcz41, A. Chubykin44, V. Chulikov28,36,50, P. Ciambrone28, X. Cid Vidal48, G. Ciezarek50, P. Cifra38, P. E. L. Clarke60, M. Clemencic50, H. V. Cliff57, J. Closier50, C. Cocha Toapaxi22, V. Coco50, J. Cogan13, E. Cogneras11, L. Cojocariu43, S. Collaviti51, P. Collins50, T. Colombo50, M. Colonna19, A. Comerma-Montells46, L. Congedo24, J. Connaughton58, A. Contu32, N. Cooke61, G. Cordova35,k, C. Coronel67, I. Corredoira12, A. Correia16, G. Corti50, J. Cottee Meldrum56, B. Couturier50, D. C. Craik52, M. Cruz Torres2,n, M. Cubero Campos9, E. Curras Rivera51, R. Currie60, C. L. Da Silva69, S. Dadabaev44, X. Dai4, E. Dall’Occo50, J. Dalseno45, C. D’Ambrosio63, J. Daniel11, G. Darze3, A. Davidson58, J. E. Davies64, O. De Aguiar Francisco64, C. De Angelis32,o, F. De Benedetti50, J. de Boer38, K. De Bruyn83, S. De Capua64, M. De Cian64,50, U. De Freitas Carneiro Da Graca2,p, E. De Lucia28, J. M. De Miranda2, L. De Paula3, M. De Serio24,q, P. De Simone28, F. De Vellis19, J. A. de Vries84, F. Debernardis24, D. Decamp10, S. Dekkers1, L. Del Buono16, B. Delaney66, H.-P. Dembinski19, J. Deng8, V. Denysenko52, O. Deschamps11, F. Dettori32,o, B. Dey81, P. Di Nezza28, I. Diachkov44, S. Didenko44, S. Ding70, Y. Ding51, L. Dittmann22, V. Dobishuk54, A. D. Docheva61, A. Doheny58, C. Dong4,m, A. M. Donohoe23, F. Dordei32, A. C. dos Reis2, A. D. Dowling70, L. Dreyfus13, W. Duan74, P. Duda85, L. Dufour50, V. Duk34, P. Durante50, M. M. Duras85, J. M. Durham69, O. D. Durmus81, A. Dziurda41, A. Dzyuba44, S. Easo59, E. Eckstein18, U. Egede1, A. Egorychev44, V. Egorychev44, S. Eisenhardt60, E. Ejopu62, L. Eklund86, M. Elashri67, D. Elizondo Blanco9, J. Ellbracht19, S. Ely63, A. Ene43, J. Eschle70, S. Esen22, T. Evans38, F. Fabiano32, S. Faghih67, L. N. Falcao31,c, B. Fang7, R. Fantechi35, L. Fantini34,r, M. Faria51, K. Farmer60, F. Fassin83,38, D. Fazzini31,c, L. Felkowski85, M. Feng5,7, A. Fernandez Casani49, M. Fernandez Gomez48, A. D. Fernez68, F. Ferrari25,i, F. Ferreira Rodrigues3, M. Ferrillo52, M. Ferro-Luzzi50, S. Filippov44, R. A. Fini24, M. Fiorini26,g, M. Firlej40, K. L. Fischer65, D. S. Fitzgerald88, C. Fitzpatrick64, T. Fiutowski40, F. Fleuret15, A. Fomin53, M. Fontana25, L. A. Foreman64, R. Forty50, D. Foulds-Holt60, V. Franco Lima3, M. Franco Sevilla68, M. Frank50, E. Franzoso26,g, G. Frau64, C. Frei50, D. A. Friday64,50, J. Fu7, Q. Führing19,57,b, T. Fulghesu13, G. Galati24,q, M. D. Galati38, A. Gallas Torreira48, D. Galli25,i, S. Gambetta60, M. Gandelman3, P. Gandini30, B. Ganie64, H. Gao7, R. Gao65, T. Q. Gao57, Y. Gao8, Y. Gao6, Y. Gao8, L. M. Garcia Martin51, P. Garcia Moreno46, J. García Pardiñas66, P. Gardner68, L. Garrido46, C. Gaspar50, A. Gavrikov33, L. L. Gerken19, E. Gersabeck20, M. Gersabeck20, T. Gershon58, S. Ghizzo29,j, Z. Ghorbanimoghaddam56, F. I. Giasemis16,s, V. Gibson57, H. K. Giemza42, A. L. Gilman67, M. Giovannetti28, A. Gioventù46, L. Girardey64,59, M. A. Giza41, F. C. Glaser14,22, V. V. Gligorov16, C. Göbel71, L. Golinka-Bezshyyko87, E. Golobardes47, D. Golubkov44, A. Golutvin63,50, S. Gomez Fernandez46, W. Gomulka40, I. Gonçales Vaz50, F. Goncalves Abrantes65, M. Goncerz41, G. Gong4,m, J. A. Gooding19, I. V. Gorelov44, C. Gotti31, E. Govorkova66, J. P. Grabowski30, L. A. Granado Cardoso50, E. Graugés46, E. Graverini35,51,u, L. Grazette58, G. Graziani27, A. T. Grecu43, N. A. Grieser67, L. Grillo61, S. Gromov44, C. Gu15, M. Guarise26, L. Guerry11, A.-K. Guseinov51, E. Gushchin44, Y. Guz6,50, T. Gys50, K. Habermann18, T. Hadavizadeh1, C. Hadjivasiliou68, G. Haefeli51, C. Haen50, S. Haken57, G. Hallett58, P. M. Hamilton68, J. Hammerich62, Q. Han33, X. Han22,50, S. Hansmann-Menzemer22, L. Hao7, N. Harnew65, T. H. Harris1, M. Hartmann14, S. Hashmi40, J. He7,t, N. Heatley14, A. Hedes64, F. Hemmer50, C. Henderson67, R. Henderson14, R. D. L. Henderson1, A. M. Hennequin50, K. Hennessy62, L. Henry51, J. Herd63, P. Herrero Gascon22, J. Heuel17, A. Heyn13, A. Hicheur3, G. Hijano Mendizabal52, J. Horswill64, R. Hou8, Y. Hou11, D. C. Houston61, N. Howarth62, W. Hu7, X. Hu4, W. Hulsbergen38, R. J. Hunter58, M. Hushchyn44, D. Hutchcroft62, M. Idzik40, D. Ilin44, P. Ilten67, A. Iniukhin44, A. Iohner10, A. Ishteev44, K. Ivshin44, H. Jage17, S. J. Jaimes Elles78,49,50, S. Jakobsen50, T. Jakoubek79, E. Jans38, B. K. Jashal49, A. Jawahery68, C. Jayaweera55, V. Jevtic19, Z. Jia16, E. Jiang68, X. Jiang5,7, Y. Jiang7, Y. J. Jiang6, E. Jimenez Moya9, N. Jindal89, M. John65, A. John Rubesh Rajan23, D. Johnson55, C. R. Jones57, S. Joshi42, B. Jost50, J. Juan Castella57, N. Jurik50, I. Juszczak41, K. Kalecinska40, D. Kaminaris51, S. Kandybei53, M. Kane60, Y. Kang4,m, C. Kar11, M. Karacson50, A. Kauniskangas51, J. W. Kautz67, M. K. Kazanecki41, F. Keizer50, M. Kenzie57, T. Ketel38, B. Khanji70, A. Kharisova44, S. Kholodenko63,50, G. Khreich14, T. Kirn17, V. S. Kirsebom31,c, S. Klaver39, N. Kleijne35,k, A. Kleimenova51, D. K. Klekots87, K. Klimaszewski42, M. R. Kmiec42, T. Knospe19, R. Kolb22, S. Koliiev54, L. Kolk19, A. Konoplyannikov6, P. Kopciewicz50, P. Koppenburg38, A. Korchin53, M. Korolev44, I. Kostiuk38, O. Kot54, S. Kotriakhova32, E. Kowalczyk68, A. Kozachuk44, P. Kravchenko44, L. Kravchuk44, O. Kravcov82, M. Kreps58, P. Krokovny44, W. Krupa70, W. Krzemien42, O. Kshyvanskyi54, S. Kubis85, M. Kucharczyk41, V. Kudryavtsev44, E. Kulikova44, A. Kupsc86, V. Kushnir53, B. Kutsenko13, J. Kvapil69, I. Kyryllin53, D. Lacarrere50, P. Laguarta Gonzalez46, A. Lai32, A. Lampis32, D. Lancierini63, C. Landesa Gomez48, J. J. Lane1, G. Lanfranchi28, C. Langenbruch22, J. Langer19, T. Latham58, F. Lazzari35,50,u, C. Lazzeroni55, R. Le Gac13, H. Lee62, R. Lefèvre11, A. Leflat44, S. Legotin44, M. Lehuraux58, E. Lemos Cid50, O. Leroy13, T. Lesiak41, E. D. Lesser50, B. Leverington22, A. Li4,m, C. Li4,m, C. Li13, H. Li74, J. Li8, K. Li77, L. Li64, M. Li8, P. Li7, P.-R. Li75, Q. Li5,7, T. Li73, T. Li74, Y. Li8, Y. Li5, Y. Li4, Z. Lian4,m, Q. Liang8, X. Liang70, Z. Liang32, S. Libralon49, A. L. Lightbody12, C. Lin7, T. Lin59, R. Lindner50, H. Linton63, R. Litvinov32, D. Liu8, F. L. Liu1, G. Liu74, K. Liu75, S. Liu5, W. Liu8, Y. Liu60, Y. Liu75, Y. L. Liu63, G. Loachamin Ordonez71, I. Lobo1, A. Lobo Salvia46, A. Loi32, T. Long57, F. C. L. Lopes2,h, J. H. Lopes3, A. Lopez Huertas46, C. Lopez Iribarnegaray48, S. López Soliño48, Q. Lu15, C. Lucarelli50, D. Lucchesi33,v, M. Lucio Martinez49, Y. Luo6, A. Lupato33,w, E. Luppi26,g, K. Lynch23, X.-R. Lyu7, G. M. Ma4,m, H. Ma73, S. Maccolini19, F. Machefert14, F. Maciuc43, B. Mack70, I. Mackay65, L. M. Mackey70, L. R. Madhan Mohan57, M. J. Madurai55, D. Magdalinski38, D. Maisuzenko44, J. J. Malczewski41, S. Malde65, L. Malentacca50, A. Malinin44, T. Maltsev44, G. Manca32,o, G. Mancinelli13, C. Mancuso14, R. Manera Escalero46, F. M. Manganella37, D. Manuzzi25, D. Marangotto30,l, J. F. Marchand10, R. Marchevski51, U. Marconi25, E. Mariani16, S. Mariani50, C. Marin Benito46, J. Marks22, A. M. Marshall56, L. Martel65, G. Martelli34, G. Martellotti36, L. Martinazzoli50, M. Martinelli31,c, D. Martinez Gomez83, D. Martinez Santos45, F. Martinez Vidal49, A. Martorell i Granollers47, A. Massafferri2, R. Matev50, A. Mathad50, V. Matiunin44, C. Matteuzzi70, K. R. Mattioli15, A. Mauri63, E. Maurice15, J. Mauricio46, P. Mayencourt51, J. Mazorra de Cos49, M. Mazurek42, M. McCann63, N. T. McHugh61, A. McNab64, R. McNulty23, B. Meadows67, G. Meier19, D. Melnychuk42, D. Mendoza Granada16, P. Menendez Valdes Perez48, F. M. Meng4,m, M. Merk38,84, A. Merli51,30, L. Meyer Garcia68, D. Miao5,7, H. Miao7, M. Mikhasenko80, D. A. Milanes78,x, A. Minotti31,c, E. Minucci28, T. Miralles11, B. Mitreska64, D. S. Mitzel19, R. Mocanu43, A. Modak59, L. Moeser19, R. D. Moise17, E. F. Molina Cardenas88, T. Mombächer67, M. Monk57, T. Monnard51, S. Monteil11, A. Morcillo Gomez48, G. Morello28, M. J. Morello35,k, M. P. Morgenthaler22, A. Moro31,c, J. Moron40, W. Morren38, A. B. Morris50, A. G. Morris13, R. Mountain70, Z. M. Mu6, E. Muhammad58, F. Muheim60, M. Mulder83, K. Müller52, F. Muñoz-Rojas9, R. Murta63, V. Mytrochenko53, P. Naik62, T. Nakada51, R. Nandakumar59, T. Nanut50, G. Napoletano51, I. Nasteva3, M. Needham60, E. Nekrasova44, N. Neri30,l, S. Neubert18, N. Neufeld50, P. Neustroev44, J. Nicolini50, D. Nicotra84, E. M. Niel15, N. Nikitin44, L. Nisi19, Q. Niu75, P. Nogarolli3, P. Nogga18, C. Normand56, J. Novoa Fernandez48, G. Nowak67, C. Nunez88, H. N. Nur61, A. Oblakowska-Mucha40, V. Obraztsov44, T. Oeser17, A. Okhotnikov44, O. Okhrimenko54, R. Oldeman32,o, F. Oliva60,50, E. Olivart Pino46, M. Olocco19, R. H. O’Neil50, J. S. Ordonez Soto11, D. Osthues19, J. M. Otalora Goicochea3, P. Owen52, A. Oyanguren49, O. Ozcelik50, F. Paciolla35,y, A. Padee42, K. O. Padeken18, B. Pagare48, T. Pajero50, A. Palano24, L. Palini30, M. Palutan28, C. Pan76, X. Pan4,m, S. Panebianco12, S. Paniskaki50,33, G. Panshin5, L. Paolucci64, A. Papanestis59, M. Pappagallo24,q, L. L. Pappalardo26, C. Pappenheimer67, C. Parkes64, D. Parmar80, G. Passaleva27, D. Passaro35,50,k, A. Pastore24, M. Patel63, J. Patoc65, C. Patrignani25,i, A. Paul70, C. J. Pawley84, A. Pellegrino38, J. Peng5,7, X. Peng75, M. Pepe Altarelli28, S. Perazzini25, D. Pereima44, H. Pereira Da Costa69, M. Pereira Martinez48, A. Pereiro Castro48, C. Perez47, P. Perret11, A. Perrevoort83, A. Perro50,13, M. J. Peters67, K. Petridis56, A. Petrolini29,j, S. Pezzulo29,j, J. P. Pfaller67, H. Pham70, L. Pica35,k, M. Piccini34, L. Piccolo32, B. Pietrzyk10, G. Pietrzyk14, R. N. Pilato62, D. Pinci36, F. Pisani50, M. Pizzichemi31,50,c, V. M. Placinta43, M. Plo Casasus48, T. Poeschl50, F. Polci16, M. Poli Lener28, A. Poluektov13, N. Polukhina44, I. Polyakov64, E. Polycarpo3, S. Ponce50, D. Popov7,50, K. Popp19, S. Poslavskii44, K. Prasanth60, C. Prouve45, D. Provenzano32,50,o, V. Pugatch54, A. Puicercus Gomez50, G. Punzi35,u, J. R. Pybus69, Q. Q. Qian6, W. Qian7, N. Qin4,m, R. Quagliani50, R. I. Rabadan Trejo58, R. Racz82, J. H. Rademacker56, M. Rama35, M. Ramírez García88, V. Ramos De Oliveira71, M. Ramos Pernas58, M. S. Rangel3, F. Ratnikov44, G. Raven39, M. Rebollo De Miguel49, F. Redi30,w, J. Reich56, F. Reiss20, Z. Ren7, P. K. Resmi65, M. Ribalda Galvez46, R. Ribatti51, G. Ricart12, D. Riccardi35,k, S. Ricciardi59, K. Richardson66, M. Richardson-Slipper57, F. Riehn19, K. Rinnert62, P. Robbe14,50, G. Robertson61, E. Rodrigues62, A. Rodriguez Alvarez46, E. Rodriguez Fernandez48, J. A. Rodriguez Lopez78, E. Rodriguez Rodriguez50, J. Roensch19, A. Rogachev44, A. Rogovskiy59, D. L. Rolf19, P. Roloff50, V. Romanovskiy67, A. Romero Vidal48, G. Romolini26,50, F. Ronchetti51, T. Rong6, M. Rotondo28, S. R. Roy22, M. S. Rudolph70, M. Ruiz Diaz22, R. A. Ruiz Fernandez48, J. Ruiz Vidal84, J. J. Saavedra-Arias9, J. J. Saborido Silva48, S. E. R. Sacha Emile R.50, N. Sagidova44, D. Sahoo81, N. Sahoo55, B. Saitta32, M. Salomoni31,50,c, I. Sanderswood49, R. Santacesaria36, C. Santamarina Rios48, M. Santimaria28, L. Santoro2, E. Santovetti37, A. Saputi26,50, D. Saranin44, A. Sarnatskiy83, G. Sarpis50, M. Sarpis82, C. Satriano36, A. Satta37, M. Saur75, D. Savrina44, H. Sazak17, F. Sborzacchi50,28, A. Scarabotto19, S. Schael17, S. Scherl62, M. Schiller22, H. Schindler50, M. Schmelling21, B. Schmidt50, N. Schmidt69, S. Schmitt66, H. Schmitz18, O. Schneider51, A. Schopper63, N. Schulte19, M. H. Schune14, G. Schwering17, B. Sciascia28, A. Sciuccati50, G. Scriven84, I. Segal80, S. Sellam48, A. Semennikov44, T. Senger52, M. Senghi Soares39, A. Sergi29,j, N. Serra52, L. Sestini27, A. Seuthe19, B. Sevilla Sanjuan47, Y. Shang6, D. M. Shangase88, M. Shapkin44, R. S. Sharma70, I. Shchemerov44, L. Shchutska51, T. Shears62, L. Shekhtman44, Z. Shen38, S. Sheng5,7, V. Shevchenko44, B. Shi7, Q. Shi7, W. S. Shi74, Y. Shimizu14, E. Shmanin25, R. Shorkin44, J. D. Shupperd70, R. Silva Coutinho2, G. Simi33,v, S. Simone24,q, M. Singha81, N. Skidmore58, T. Skwarnicki70, M. W. Slater55, E. Smith66, K. Smith69, M. Smith63, L. Soares Lavra60, M. D. Sokoloff67, F. J. P. Soler61, A. Solomin56, A. Solovev44, K. Solovieva20, N. S. Sommerfeld18, R. Song1, Y. Song51, Y. Song4,m, Y. S. Song6, F. L. Souza De Almeida46, B. Souza De Paula3, K. M. Sowa40, E. Spadaro Norella29,j, E. Spedicato25, J. G. Speer19, P. Spradlin61, F. Stagni50, M. Stahl80, S. Stahl50, S. Stanislaus65, M. Stefaniak89, E. N. Stein50, O. Steinkamp52, D. Strekalina44, Y. Su7, F. Suljik65, J. Sun32, J. Sun64, L. Sun76, D. Sundfeld2, W. Sutcliffe52, P. Svihra79, V. Svintozelskyi49, K. Swientek40, F. Swystun57, A. Szabelski42, T. Szumlak40, Y. Tan4, Y. Tang76, Y. T. Tang7, M. D. Tat22, J. A. Teijeiro Jimenez48, A. Terentev44, F. Terzuoli35,y, F. Teubert50, E. Thomas50, D. J. D. Thompson55, A. R. Thomson-Strong60, H. Tilquin63, V. Tisserand11, S. T’Jampens10, M. Tobin5,50, T. T. Todorov20, L. Tomassetti26,g, G. Tonani30, X. Tong6, T. Tork30, D. Torres Machado2, L. Toscano19, D. Y. Tou4,m, C. Trippl47, G. Tuci22, N. Tuning38, L. H. Uecker22, A. Ukleja40, D. J. Unverzagt22, A. Upadhyay50, B. Urbach60, A. Usachov38, A. Ustyuzhanin44, U. Uwer22, V. Vagnoni25,50, A. Vaitkevicius82, V. Valcarce Cadenas48, G. Valenti25, N. Valls Canudas50, J. van Eldik50, H. Van Hecke69, E. van Herwijnen63, C. B. Van Hulse48,z, R. Van Laak51, M. van Veghel84, G. Vasquez52, R. Vazquez Gomez46, P. Vazquez Regueiro48, C. Vázquez Sierra45, S. Vecchi26, J. Velilla Serna49, J. J. Velthuis56, M. Veltri27,aa, A. Venkateswaran51, M. Verdoglia32, M. Vesterinen58, W. Vetens70, D. Vico Benet65, P. Vidrier Villalba46, M. Vieites Diaz48, X. Vilasis-Cardona47, E. Vilella Figueras62, A. Villa25, P. Vincent16, B. Vivacqua3, F. C. Volle55, D. vom Bruch13, N. Voropaev44, K. Vos84, C. Vrahas60, J. Wagner19, J. Walsh35, E. J. Walton1,58, G. Wan6, A. Wang7, B. Wang5, C. Wang22, G. Wang8, H. Wang75, J. Wang7, J. Wang5, J. Wang4,m, J. Wang76, M. Wang50, N. W. Wang7, R. Wang56, X. Wang8, X. Wang74, X. W. Wang63, Y. Wang77, Y. Wang6, Y. H. Wang75, Z. Wang14, Z. Wang30, J. A. Ward58,1, M. Waterlaat50, N. K. Watson55, D. Websdale63, Y. Wei6, Z. Weida7, J. Wendel45, B. D. C. Westhenry56, C. White57, M. Whitehead61, E. Whiter55, A. R. Wiederhold64, D. Wiedner19, M. A. Wiegertjes38, C. Wild65, G. Wilkinson65,50, M. K. Wilkinson67, M. Williams66, M. J. Williams50, M. R. J. Williams60, R. Williams57, S. Williams56, Z. Williams56, F. F. Wilson59, M. Winn12, W. Wislicki42, M. Witek41, L. Witola19, T. Wolf22, E. Wood57, G. Wormser14, S. A. Wotton57, H. Wu70, J. Wu8, X. Wu76, Y. Wu6,57, Z. Wu7, K. Wyllie50, S. Xian74, Z. Xiang5, Y. Xie8, T. X. Xing30, A. Xu35,k, L. Xu4,m, M. Xu50, Z. Xu50, Z. Xu7, Z. Xu5, S. Yadav26, K. Yang63, X. Yang6, Y. Yang7, Y. Yang81, Z. Yang6, V. Yeroshenko14, H. Yeung64, H. Yin8, X. Yin7, C. Y. Yu6, J. Yu73, X. Yuan5, Y Yuan5,7, J. A. Zamora Saa72, M. Zavertyaev21, M. Zdybal41, F. Zenesini25, C. Zeng5,7, M. Zeng4,m, C. Zhang6, D. Zhang8, J. Zhang7, L. Zhang4,m, R. Zhang8, S. Zhang65, S. L. Zhang73, Y. Zhang6, Y. Z. Zhang4,m, Z. Zhang4,m, Y. Zhao22, A. Zhelezov22, S. Z. Zheng6, X. Z. Zheng4,m, Y. Zheng7, T. Zhou6, X. Zhou8, Y. Zhou7, V. Zhovkovska58, L. Z. Zhu7, X. Zhu4,m, X. Zhu8, Y. Zhu17, V. Zhukov17, J. Zhuo49, Q. Zou5,7, D. Zuliani33,v, and G. Zunica28 (LHCb Collaboration)

  • 1School of Physics and Astronomy, Monash University, Melbourne, Australia
  • 2Centro Brasileiro de Pesquisas Físicas (CBPF), Rio de Janeiro, Brazil
  • 3Universidade Federal do Rio de Janeiro (UFRJ), Rio de Janeiro, Brazil
  • 4Department of Engineering Physics, Tsinghua University, Beijing, China
  • 5Institute of High Energy Physics (IHEP), Beijing, China
  • 6School of Physics State Key Laboratory of Nuclear Physics and Technology, Peking University, Beijing, China
  • 7University of Chinese Academy of Sciences, Beijing, China
  • 8Institute of Particle Physics, Central China Normal University, Wuhan, Hubei, China
  • 9Consejo Nacional de Rectores (CONARE), San Jose, Costa Rica
  • 10Université Savoie Mont Blanc, CNRS, IN2P3-LAPP, Annecy, France
  • 11Université Clermont Auvergne, CNRS/IN2P3, LPC, Clermont-Ferrand, France
  • 12Université Paris-Saclay, Centre d’Etudes de Saclay (CEA), IRFU, Saclay, France, Gif-Sur-Yvette, France
  • 13Aix Marseille Univ, CNRS/IN2P3, CPPM, Marseille, France
  • 14Université Paris-Saclay, CNRS/IN2P3, IJCLab, Orsay, France
  • 15Laboratoire Leprince-Ringuet, CNRS/IN2P3, Ecole Polytechnique, Institut Polytechnique de Paris, Palaiseau, France
  • 16Laboratoire de Physique Nucléaire et de Hautes Énergies (LPNHE), Sorbonne Université, CNRS/IN2P3, F-75005 Paris, France, Paris, France
  • 17I. Physikalisches Institut, RWTH Aachen University, Aachen, Germany
  • 18Universität Bonn - Helmholtz-Institut für Strahlen und Kernphysik, Bonn, Germany
  • 19Fakultät Physik, Technische Universität Dortmund, Dortmund, Germany
  • 20Physikalisches Institut, Albert-Ludwigs-Universität Freiburg, Freiburg, Germany
  • 21Max-Planck-Institut für Kernphysik (MPIK), Heidelberg, Germany
  • 22Physikalisches Institut, Ruprecht-Karls-Universität Heidelberg, Heidelberg, Germany
  • 23School of Physics, University College Dublin, Dublin, Ireland
  • 24INFN Sezione di Bari, Bari, Italy
  • 25INFN Sezione di Bologna, Bologna, Italy
  • 26INFN Sezione di Ferrara, Ferrara, Italy
  • 27INFN Sezione di Firenze, Firenze, Italy
  • 28INFN Laboratori Nazionali di Frascati, Frascati, Italy
  • 29INFN Sezione di Genova, Genova, Italy
  • 30INFN Sezione di Milano, Milano, Italy
  • 31INFN Sezione di Milano-Bicocca, Milano, Italy
  • 32INFN Sezione di Cagliari, Monserrato, Italy
  • 33INFN Sezione di Padova, Padova, Italy
  • 34INFN Sezione di Perugia, Perugia, Italy
  • 35INFN Sezione di Pisa, Pisa, Italy
  • 36INFN Sezione di Roma La Sapienza, Roma, Italy
  • 37INFN Sezione di Roma Tor Vergata, Roma, Italy
  • 38Nikhef National Institute for Subatomic Physics, Amsterdam, Netherlands
  • 39Nikhef National Institute for Subatomic Physics and VU University Amsterdam, Amsterdam, Netherlands
  • 40AGH - University of Krakow, Faculty of Physics and Applied Computer Science, Kraków, Poland
  • 41Henryk Niewodniczanski Institute of Nuclear Physics Polish Academy of Sciences, Kraków, Poland
  • 42National Center for Nuclear Research (NCBJ), Warsaw, Poland
  • 43Horia Hulubei National Institute of Physics and Nuclear Engineering, Bucharest-Magurele, Romania
  • 44Authors affiliated with an institute formerly covered by a cooperation agreement with CERN
  • 45Universidade da Coruña, A Coruña, Spain
  • 46ICCUB, Universitat de Barcelona, Barcelona, Spain
  • 47La Salle, Universitat Ramon Llull, Barcelona, Spain
  • 48Instituto Galego de Física de Altas Enerxías (IGFAE), Universidade de Santiago de Compostela, Santiago de Compostela, Spain
  • 49Instituto de Fisica Corpuscular, Centro Mixto Universidad de Valencia—CSIC, Valencia, Spain
  • 50European Organization for Nuclear Research (CERN), Geneva, Switzerland
  • 51Institute of Physics, Ecole Polytechnique Fédérale de Lausanne (EPFL), Lausanne, Switzerland
  • 52Physik-Institut, Universität Zürich, Zürich, Switzerland
  • 53NSC Kharkiv Institute of Physics and Technology (NSC KIPT), Kharkiv, Ukraine
  • 54Institute for Nuclear Research of the National Academy of Sciences (KINR), Kyiv, Ukraine
  • 55School of Physics and Astronomy, University of Birmingham, Birmingham, United Kingdom
  • 56H.H. Wills Physics Laboratory, University of Bristol, Bristol, United Kingdom
  • 57Cavendish Laboratory, University of Cambridge, Cambridge, United Kingdom
  • 58Department of Physics, University of Warwick, Coventry, United Kingdom
  • 59STFC Rutherford Appleton Laboratory, Didcot, United Kingdom
  • 60School of Physics and Astronomy, University of Edinburgh, Edinburgh, United Kingdom
  • 61School of Physics and Astronomy, University of Glasgow, Glasgow, United Kingdom
  • 62Oliver Lodge Laboratory, University of Liverpool, Liverpool, United Kingdom
  • 63Imperial College London, London, United Kingdom
  • 64Department of Physics and Astronomy, University of Manchester, Manchester, United Kingdom
  • 65Department of Physics, University of Oxford, Oxford, United Kingdom
  • 66Massachusetts Institute of Technology, Cambridge, Massachusetts, USA
  • 67University of Cincinnati, Cincinnati, Ohio, USA
  • 68University of Maryland, College Park, Maryland, USA
  • 69Los Alamos National Laboratory (LANL), Los Alamos, New Mexico, USA
  • 70Syracuse University, Syracuse, New York, USA
  • 71Pontifícia Universidade Católica do Rio de Janeiro (PUC-Rio), Rio de Janeiro, Brazil (associated with Universidade Federal do Rio de Janeiro (UFRJ), Rio de Janeiro, Brazil)
  • 72Universidad Andres Bello, Santiago, Chile (associated with Physik-Institut, Universität Zürich, Zürich, Switzerland)
  • 73School of Physics and Electronics, Hunan University, Changsha City, China (associated with Institute of Particle Physics, Central China Normal University, Wuhan, Hubei, China)
  • 74Guangdong Provincial Key Laboratory of Nuclear Science, Guangdong-Hong Kong Joint Laboratory of Quantum Matter, Institute of Quantum Matter, South China Normal University, Guangzhou, China (associated with Department of Engineering Physics, Tsinghua University, Beijing, China)
  • 75Lanzhou University, Lanzhou, China (associated with Institute of High Energy Physics (IHEP), Beijing, China)
  • 76School of Physics and Technology, Wuhan University, Wuhan, China (associated with Department of Engineering Physics, Tsinghua University, Beijing, China)
  • 77Henan Normal University, Xinxiang, China (associated with Institute of Particle Physics, Central China Normal University, Wuhan, Hubei, China)
  • 78Departamento de Fisica, Universidad Nacional de Colombia, Bogota, Colombia (associated with Laboratoire de Physique Nucléaire et de Hautes Énergies (LPNHE), Sorbonne Université, CNRS/IN2P3, F-75005 Paris, France, Paris, France)
  • 79Institute of Physics of the Czech Academy of Sciences, Prague, Czech Republic (associated with Department of Physics and Astronomy, University of Manchester, Manchester, United Kingdom)
  • 80Ruhr Universitaet Bochum, Fakultaet f. Physik und Astronomie, Bochum, Germany (associated with Fakultät Physik, Technische Universität Dortmund, Dortmund, Germany)
  • 81Eotvos Lorand University, Budapest, Hungary (associated with European Organization for Nuclear Research (CERN), Geneva, Switzerland)
  • 82Faculty of Physics, Vilnius University, Vilnius, Lithuania (associated with Physikalisches Institut, Albert-Ludwigs-Universität Freiburg, Freiburg, Germany)
  • 83Van Swinderen Institute, University of Groningen, Groningen, Netherlands (associated with Nikhef National Institute for Subatomic Physics, Amsterdam, Netherlands)
  • 84Universiteit Maastricht, Maastricht, Netherlands (associated with Nikhef National Institute for Subatomic Physics, Amsterdam, Netherlands)
  • 85Tadeusz Kosciuszko Cracow University of Technology, Cracow, Poland (associated with Henryk Niewodniczanski Institute of Nuclear Physics Polish Academy of Sciences, Kraków, Poland)
  • 86Department of Physics and Astronomy, Uppsala University, Uppsala, Sweden (associated with School of Physics and Astronomy, University of Glasgow, Glasgow, United Kingdom)
  • 87Taras Schevchenko University of Kyiv, Faculty of Physics, Kyiv, Ukraine (associated with Université Paris-Saclay, CNRS/IN2P3, IJCLab, Orsay, France)
  • 88University of Michigan, Ann Arbor, Michigan, USA (associated with Syracuse University, Syracuse, New York, USA)
  • 89Ohio State University, Columbus, USA (associated with Los Alamos National Laboratory (LANL), Los Alamos, New Mexico, USA)

  • *Full author list given at the end of the Letter.
  • aDeceased.
  • bAlso at Lamarr Institute for Machine Learning and Artificial Intelligence, Dortmund, Germany.
  • cAlso at Università degli Studi di Milano-Bicocca, Milano, Italy.
  • dAlso at Università di Roma Tor Vergata, Roma, Italy.
  • eAlso at Università di Modena e Reggio Emilia, Modena, Italy.
  • fAlso at Department of Physics and Astronomy, University of Victoria, Victoria, Canada.
  • gAlso at Università di Ferrara, Ferrara, Italy.
  • hAlso at Universidade Estadual de Campinas (UNICAMP), Campinas, Brazil.
  • iAlso at Università di Bologna, Bologna, Italy.
  • jAlso at Università di Genova, Genova, Italy.
  • kAlso at Scuola Normale Superiore, Pisa, Italy.
  • lAlso at Università degli Studi di Milano, Milano, Italy.
  • mAlso at Center for High Energy Physics, Tsinghua University, Beijing, China.
  • nAlso at Universidad Nacional Autónoma de Honduras, Tegucigalpa, Honduras.
  • oAlso at Università di Cagliari, Cagliari, Italy.
  • pAlso at Centro Federal de Educacão Tecnológica Celso Suckow da Fonseca, Rio De Janeiro, Brazil.
  • qAlso at Università di Bari, Bari, Italy.
  • rAlso at Università di Perugia, Perugia, Italy.
  • sAlso at LIP6, Sorbonne Université, Paris, France.
  • tAlso at Hangzhou Institute for Advanced Study, UCAS, Hangzhou, China.
  • uAlso at Università di Pisa, Pisa, Italy.
  • vAlso at Università di Padova, Padova, Italy.
  • wAlso at Università di Bergamo, Bergamo, Italy.
  • xAlso at Universidad de Ingeniería y Tecnología (UTEC), Lima, Peru.
  • yAlso at Università di Siena, Siena, Italy.
  • zAlso at Universidad de Alcalá, Alcalá de Henares, Spain.
  • aaAlso at Università di Urbino, Urbino, Italy.

Phys. Rev. Lett. 136, 181802 – Published 5 May, 2026

DOI: https://doi.org/10.1103/y968-44v8

Abstract

The first searches for B0→K+π−τ+τ− and Bs0→K+K−τ+τ− decays at the LHCb experiment are conducted with pp collision data corresponding to an integrated luminosity of 5.4  fb−1. The tau leptons are reconstructed using the τ+→μ+ν¯τνμ decay and the results are presented in bins of K+π− or K+K− mass. No signal is observed and upper limits are set on the branching fractions. The searches result in the first upper limits for B0→K+π−τ+τ− decays outside the K*(892)0 region in K+π− mass and the first limits for Bs0→K+K−τ+τ− decays. The searches are recast into limits on the decays B0→K*(892)0τ+τ− and Bs0→ϕ(1020)τ+τ−, yielding 2.8×10−4 (2.5×10−4) and 4.7×10−4 (4.1×10−4) at the 95% (90%) confidence level, respectively. For the decay B0→K*(892)0τ+τ−, this result improves on the current best upper limit by an order of magnitude.

View figure in article

Physics Subject Headings (PhySH)

Article Text

References (75)

  1. R. Aaij et al. (LHCb Collaboration), Differential branching fractions and isospin asymmetries of B→K(*)μ+μ− decays, J. High Energy Phys. 06 (2014) 133.
  2. R. Aaij et al. (LHCb Collaboration), Differential branching fraction and angular moments analysis of the decay B0→K+π−μ+μ− in the K0,2*(1430)0 region, J. High Energy Phys. 12 (2016) 065.
  3. R. Aaij et al. (LHCb Collaboration), Measurements of the S-wave fraction in B0→K+π−μ+μ− decays and the B0→K*(892)0μ+μ− differential branching fraction, J. High Energy Phys. 11 (2016) 047; 04 (2017) 142(E).
  4. R. Aaij et al. (LHCb Collaboration), Measurement of CP-averaged observables in the B0→K*0μ+μ− decay, Phys. Rev. Lett. 125, 011802 (2020).
  5. R. Aaij et al. (LHCb Collaboration), Branching fraction measurements of the rare Bs0→ϕμ+μ− and Bs0→f2′(1525)μ+μ− decays, Phys. Rev. Lett. 127, 151801 (2021).
  6. R. Aaij et al. (LHCb Collaboration), Determination of short- and long-distance contributions in B0→K*0μ+μ− decays, Phys. Rev. D 109, 052009 (2024).
  7. R. Aaij et al. (LHCb Collaboration), Amplitude analysis of the B0→K*0μ+μ− decay, Phys. Rev. Lett. 132, 131801 (2024).
  8. R. Aaij et al. (LHCb Collaboration), Comprehensive analysis of local and nonlocal amplitudes in the B0→K*0μ+μ− decay, J. High Energy Phys. 09 (2024) 026; 05 (2025) 208(E).
  9. A. Hayrapetyan et al. (CMS Collaboration), Angular analysis of the B0→K*(892)0μ+μ− decay in proton-proton collisions at s=13  TeV, Phys. Lett. B 864, 139406 (2025).
  10. S. Wehle et al. (Belle Collaboration), Lepton-flavor-dependent angular analysis of B→K*ℓ+ℓ−, Phys. Rev. Lett. 118, 111801 (2017).
  11. R. Aaij et al. (LHCb Collaboration), Measurement of the branching fraction ratios R(D+) and R(D*+) using muonic τ decays, Phys. Rev. Lett. 134, 061801 (2025).
  12. R. Aaij et al. (LHCb Collaboration), Test of lepton flavor universality by the measurement of the B0→D*−τ+ντ branching fraction using three-prong τ decays, Phys. Rev. D 97, 072013 (2018).
  13. R. Aaij et al. (LHCb Collaboration), Measurement of the ratio of the B(B0→D*−τ+ντ) and B(B0→D*−μ+νμ) branching fractions using three-prong τ-lepton decays, Phys. Rev. Lett. 120, 171802 (2018).
  14. R. Aaij et al. (LHCb Collaboration), Measurement of the ratio of branching fractions B(B¯0→D*+τ−ν¯τ)/B(B¯0→D*+μ−ν¯μ), Phys. Rev. Lett. 115, 111803 (2015); 115, 159901 (2015).
  15. R. Aaij et al. (LHCb Collaboration), Measurement of the ratio of branching fractions R(D*) and R(D0), Phys. Rev. Lett. 131, 111802 (2023).
  16. J. P. Lees et al. (BABAR Collaboration), Evidence for an excess of B¯→D(*)τ−ν¯τ decays, Phys. Rev. Lett. 109, 101802 (2012).
  17. M. Huschle et al. (Belle Collaboration), Measurement of the branching ratio of B¯→D(*)τ−ν¯τ relative to B¯→D(*)ℓ−ν¯ℓ decays with hadronic tagging at Belle, Phys. Rev. D 92, 072014 (2015).
  18. S. Hirose et al. (Belle Collaboration), Measurement of the τ lepton polarization and R(D*) in the decay B¯→D*τ−ν¯τ with one-prong hadronic τ decays at Belle, Phys. Rev. D 97, 012004 (2018).
  19. G. Caria et al. (Belle Collaboration), Measurement of R(D) and R(D*) with a semileptonic tagging method, Phys. Rev. Lett. 124, 161803 (2020).
  20. I. Adachi et al. (Belle II Collaboration), First measurement of R(Xτ/ℓ) as an inclusive test of the b→cτν anomaly, Phys. Rev. Lett. 132, 211804 (2024).
  21. I. Adachi et al. (Belle II Collaboration), Test of lepton flavor universality with a measurement of R(D*) using hadronic B tagging at the Belle II experiment, Phys. Rev. D 110, 072020 (2024).
  22. I. Adachi et al. (Belle II Collaboration), Test of lepton flavor universality with measurements of R(D+) and R(D*+) using semileptonic B tagging at the Belle II experiment, Phys. Rev. D 112, 032010 (2025).
  23. R. Alonso, B. Grinstein, and J. Martin Camalich, Lepton universality violation and lepton flavor conservation in B-meson decays, J. High Energy Phys. 10 (2015) 184.
  24. R. Barbieri, G. Isidori, A. Pattori, and F. Senia, Anomalies in B-decays and U(2) flavour symmetry, Eur. Phys. J. C 76, 67 (2016).
  25. A. Crivellin, D. Müller, and T. Ota, Simultaneous explanation of R(D(*)) and b→sμ+μ−: The last scalar leptoquarks standing, J. High Energy Phys. 09 (2017) 040.
  26. D. Buttazzo, A. Greljo, G. Isidori, and D. Marzocca, B-physics anomalies: A guide to combined explanations, J. High Energy Phys. 11 (2017) 044.
  27. B. Capdevila et al., Searching for new physics with b→sτ+τ− processes, Phys. Rev. Lett. 120, 181802 (2018).
  28. M. Bordone, C. Cornella, J. Fuentes-Martín, and G. Isidori, Low-energy signatures of the PS3 model: From B-physics anomalies to LFV, J. High Energy Phys. 10 (2018) 148.
  29. W. Altmannshofer, P. S. Bhupal Dev, A. Soni, and Y. Sui, Addressing RD(*), RK(*), muon g−2 and ANITA anomalies in a minimal R-parity violating supersymmetric framework, Phys. Rev. D 102, 015031 (2020).
  30. J. Aebischer et al., Confronting the vector leptoquark hypothesis with new low- and high-energy data, Eur. Phys. J. C 83, 153 (2023).
  31. A. Crivellin, D. Müller, and F. Saturnino, Flavor phenomenology of the leptoquark singlet-triplet model, J. High Energy Phys. 06 (2020) 020.
  32. M. Algueró, J. Matias, B. Capdevila, and A. Crivellin, Disentangling lepton flavor universal and lepton flavor universality violating effects in b→sℓ+ℓ− transitions, Phys. Rev. D 105, 113007 (2022).
  33. C. Bobeth and U. Haisch, New physics in Γ12s: (s¯b)(τ¯τ) operators, Acta Phys. Pol. B 44, 127 (2013).
  34. R. Aaij et al. (LHCb Collaboration), Search for the decays Bs0→τ+τ− and B0→τ+τ−, Phys. Rev. Lett. 118, 251802 (2017).
  35. J. P. Lees et al. (BABAR Collaboration), Search for B+→K+τ+τ− at the BABAR experiment, Phys. Rev. Lett. 118, 031802 (2017).
  36. T. V. Dong et al. (Belle Collaboration), Search for the decay B0→K*0τ+τ− at the Belle experiment, Phys. Rev. D 108, L011102 (2023).
  37. I. Adachi et al. (Belle II Collaboration), Search for B0→K*0τ+τ− decays at the Belle II experiment, Phys. Rev. Lett. 135, 151801 (2025).
  38. C. Cornella et al., Hunting for B+→K+τ+τ− imprints on the B+→K+μ+μ− dimuon spectrum, Eur. Phys. J. C 80, 1095 (2020).
  39. F. Archilli et al., Performance of the muon identification at LHCb, J. Instrum. 8, P10020 (2013).
  40. S. Navas et al. (Particle Data Group), Review of particle physics, Phys. Rev. D 110, 030001 (2024).
  41. A. A. Alves Jr. et al. (LHCb Collaboration), The LHCb detector at the LHC, J. Instrum. 3, S08005 (2008).
  42. R. Aaij et al. (LHCb Collaboration), LHCb detector performance, Int. J. Mod. Phys. A 30, 1530022 (2015).
  43. R. Aaij et al., Design and performance of the LHCb trigger and full real-time reconstruction in Run 2 of the LHC, J. Instrum. 14, P04013 (2019).
  44. T. Sjöstrand, S. Mrenna, and P. Skands, A brief introduction to pythia8.1, Comput. Phys. Commun. 178, 852 (2008).
  45. I. Belyaev et al., Handling of the generation of primary events in Gauss, the LHCb simulation framework, J. Phys. Conf. Ser. 331, 032047 (2011).
  46. D. J. Lange, The evtgen particle decay simulation package, Nucl. Instrum. Methods Phys. Res., Sect. A 462, 152 (2001).
  47. N. Davidson, T. Przedzinski, and Z. Was, PHOTOS interface in c++: Technical and physics documentation, Comput. Phys. Commun. 199, 86 (2016).
  48. J. Allison et al. (geant4 Collaboration), geant4 developments and applications, IEEE Trans. Nucl. Sci. 53, 270 (2006); S. Agostinelli et al. (geant4 Collaboration), geant4: A simulation toolkit, Nucl. Instrum. Methods Phys. Res., Sect. A 506, 250 (2003).
  49. M. Clemencic et al., The LHCb simulation application, Gauss: Design, evolution and experience, J. Phys. Conf. Ser. 331, 032023 (2011).
  50. S. Tolk, J. Albrecht, F. Dettori, and A. Pellegrino, Data driven trigger efficiency determination at LHCb, CERN, LHCb-PUB-2014-039, 2014.
  51. R. Aaij et al. (LHCb Collaboration), Measurement of the track reconstruction efficiency at LHCb, J. Instrum. 10, P02007 (2015).
  52. L. Anderlini et al., The pidcalib package, CERN, LHCb-PUB-2016-021, 2016.
  53. L. Breiman, J. H. Friedman, R. A. Olshen, and C. J. Stone, Classification and Regression Trees (Wadsworth International Group, Belmont, California, USA, 1984).
  54. Y. Freund and R. E. Schapire, A decision-theoretic generalization of on-line learning and an application to boosting, J. Comput. Syst. Sci. 55, 119 (1997).
  55. G. Ke et al., LightGBM: A highly efficient gradient boosting decision tree, in Advances in Neural Information Processing Systems, edited by I. Guyon et al. (Curran Associates, Inc., Red Hook, NY, 2017), 30.
  56. R. Aaij et al. (LHCb Collaboration), Determination of the quark coupling strength |Vub| using baryonic decays, Nat. Phys. 11, 743 (2015).
  57. G. Punzi, Sensitivity of searches for new signals and its optimization, eConf C 030908, MODT002 (2003).
  58. T. Akiba et al., Optuna: A next-generation hyperparameter optimization framework, in Proceedings of the 25th ACM SIGKDD International Conference on Knowledge Discovery and Data Mining (2019), arXiv:1907.10902.
  59. A. Blum, A. Kalai, and J. Langford, Beating the hold-out: Bounds for K-fold and progressive cross-validation, in Proceedings of the Twelfth Annual Conference on Computational Learning Theory (COLT ’99): Santa Cruz, California, USA, 1999 (Wadsworth International Group, Belmont, 1999), 203.
  60. K. S. Cranmer, Kernel estimation in high-energy physics, Comput. Phys. Commun. 136, 198 (2001).
  61. R. Aaij et al., Selection and processing of calibration samples to measure the particle identification performance of the LHCb experiment in Run 2, Eur. Phys. J. Tech. Instrum. 6, 1 (2019).
  62. J. Bourbeau and Z. Hampel-Arias, pyunfold: A python package for iterative unfolding, J. Open Source Software 3, 741 (2018).
  63. A. L. Read, Presentation of search results: The CLs technique, J. Phys. G 28, 2693 (2002).
  64. B. Efron, Bootstrap methods: Another look at the jackknife, Ann. Stat. 7, 1 (1979).
  65. D. Seidel, Analytic two loop virtual corrections to b→dℓ+ℓ−, Phys. Rev. D 70, 094038 (2004).
  66. M. Beneke, G. Buchalla, A. Lenz, and U. Nierste, CP Asymmetry in flavor specific B decays beyond leading logarithms, Phys. Lett. B 576, 173 (2003).
  67. S. Descotes-Genon and J. Virto, Time dependence in B→Vℓℓ decays, J. High Energy Phys. 04 (2015) 045; 07 (2015) 049.
  68. T. Inami and C. S. Lim, Effects of superheavy quarks and leptons in low-energy weak processes KL→μμ¯, K+→π+νν¯ and K0↔K¯0, Prog. Theor. Phys. 65, 297 (1981); 65, 1772(E) (1981).
  69. M. Beneke, T. Feldmann, and D. Seidel, Exclusive radiative and electroweak b→d and b→s penguin decays at NLO, Eur. Phys. J. C 41, 173 (2005).
  70. H. M. Asatrian, K. Bieri, C. Greub, and M. Walker, Virtual corrections and bremsstrahlung corrections to b→dℓ+ℓ− in the standard model, Phys. Rev. D 69, 074007 (2004).
  71. A. Bharucha, D. M. Straub, and R. Zwicky, B→Vℓ+ℓ− in the standard model from light-cone sum rules, J. High Energy Phys. 08 (2016) 098.
  72. C. Bobeth et al., Bs,d→ℓ+ℓ− in the standard model with reduced theoretical uncertainty, Phys. Rev. Lett. 112, 101801 (2014).
  73. D. M. Straub, flavio: A python package for flavour and precision phenomenology in the standard model and beyond, arXiv:1810.08132.
  74. R. Aaij et al. (LHCb Collaboration), Precise measurement of the fs/fd ratio of fragmentation fractions and of Bs0 decay branching fractions, Phys. Rev. D 104, 032005 (2021).
  75. https://cds.cern.ch/record/2946087.

Outline

Information

Sign In to Your Journals Account

Filter

Filter

Article Lookup

Enter a citation