Within the ATLAS experiment Trigger/DAQ and DCS are both logically and physically separated.Nevertheless there is a need to communicate.The initial problem definition and analysis suggested three subsystems the Trigge...Within the ATLAS experiment Trigger/DAQ and DCS are both logically and physically separated.Nevertheless there is a need to communicate.The initial problem definition and analysis suggested three subsystems the Trigger/DAQ DCS Communication (DDC) project should support the ability to :1.exchange data between Trigger/DAQ and DCS;2.send alarm messages from DCS to Trigger/DAQ;3.issue commands to DCS from Trigger/DAQ.Each subsystem is developed and implemented independently using a common software infrastructure.Among the various subsystems of the ATLAS Trigger/DAQ the Online is responsible for the control and configuration.It is the glue connecting the different systems such as data flow.level 1 and high-level triggers.The DDC uses the various Online components as an interface point on the Trigger/DAQ side with the PVSS II SCADA system on the DCS side and addresses issues such as partitioning,time stamps,event numbers,hierarchy,authorization and security,PVSS II is a commercial product chosen by CERN to be the SCADA system for all LHC experiments,Its API provides full access to its database,which is sufficient to implement the 3 subsystems of the DDC software,The DDC project adopted the Online Software Process,which recommends a basic software life-cycle:problem statement,analysis,design,implementation and testing.Each phase results in a corresponding document or in the case of the implementation and testing,a piece of code,Inspection and review take a major role in the Online software process,The DDC documents have been inspected to detect flaws and resulted in a improved quality.A first prototype of the DDC is ready and foreseen to be used at the test-beam during summer 2001.展开更多
A search for the doubly charmed baryon ■^+cc is performed through its decay to theΛ^+c K^-π^+ final state,using proton-proton collision data collected with the LHCb detector at centre-of-mass energies of 7,8 and 13...A search for the doubly charmed baryon ■^+cc is performed through its decay to theΛ^+c K^-π^+ final state,using proton-proton collision data collected with the LHCb detector at centre-of-mass energies of 7,8 and 13 TeV.The data correspond to a total integrated luminosity of 9 fb^-1.No significant signal is observed in the mass range from 3.4 to 3.8 GeV/c^2.Upper limits are set at 95%credibility level on the ratio of the ■^+cc production cross-section times the branching fraction to that ofΛ^+c and ■^++cc baryons.The limits are determined as functions of the ■^+cc mass for different lifetime hypotheses,in the rapidity range from 2.0 to 4.5 and the transverse momentum range from 4 to 15 GeV/c.展开更多
The production of ■baryons in proton-proton collisions at a centre-of-mass energy of √s = 13 TeV is measured in the transverse-momentum range 4<pT<15GeV/c and the rapidity range2.0<y<4.5.The data used in...The production of ■baryons in proton-proton collisions at a centre-of-mass energy of √s = 13 TeV is measured in the transverse-momentum range 4<pT<15GeV/c and the rapidity range2.0<y<4.5.The data used in this measurement correspond to an integrated luminosity of 1.7fb^-1,recorded by the LHCb experiment during 2016.The ratio of the ■ production cross-section times the branching fraction of the■→∧^+cK^-π^+ π^+decay relative to the prompt ∧^+c production cross-section is found to be(2.22±0.27±0.29)×10^-4,assuming the central value of the measured lifetime,where the first uncertainty is statistical and the second systematic.展开更多
文摘Within the ATLAS experiment Trigger/DAQ and DCS are both logically and physically separated.Nevertheless there is a need to communicate.The initial problem definition and analysis suggested three subsystems the Trigger/DAQ DCS Communication (DDC) project should support the ability to :1.exchange data between Trigger/DAQ and DCS;2.send alarm messages from DCS to Trigger/DAQ;3.issue commands to DCS from Trigger/DAQ.Each subsystem is developed and implemented independently using a common software infrastructure.Among the various subsystems of the ATLAS Trigger/DAQ the Online is responsible for the control and configuration.It is the glue connecting the different systems such as data flow.level 1 and high-level triggers.The DDC uses the various Online components as an interface point on the Trigger/DAQ side with the PVSS II SCADA system on the DCS side and addresses issues such as partitioning,time stamps,event numbers,hierarchy,authorization and security,PVSS II is a commercial product chosen by CERN to be the SCADA system for all LHC experiments,Its API provides full access to its database,which is sufficient to implement the 3 subsystems of the DDC software,The DDC project adopted the Online Software Process,which recommends a basic software life-cycle:problem statement,analysis,design,implementation and testing.Each phase results in a corresponding document or in the case of the implementation and testing,a piece of code,Inspection and review take a major role in the Online software process,The DDC documents have been inspected to detect flaws and resulted in a improved quality.A first prototype of the DDC is ready and foreseen to be used at the test-beam during summer 2001.
基金support from CERN and from the national agencies:CAPES,CNPq,FAPERJ and FINEP(Brazil)MOST and NSFC(China)+11 种基金CNRS/IN2P3(France)BMBF,DFG and MPG(Germany)INFN(Italy)KWO(Netherlands)MNiSW and NCN(Poland)MEN/IFA(Romania)MinES and FASO(Russia)MinECo(Spain)SNSF and SER(Switzerland)NASU(Ukraine)STFC(United Kingdom)NSF(USA).
文摘A search for the doubly charmed baryon ■^+cc is performed through its decay to theΛ^+c K^-π^+ final state,using proton-proton collision data collected with the LHCb detector at centre-of-mass energies of 7,8 and 13 TeV.The data correspond to a total integrated luminosity of 9 fb^-1.No significant signal is observed in the mass range from 3.4 to 3.8 GeV/c^2.Upper limits are set at 95%credibility level on the ratio of the ■^+cc production cross-section times the branching fraction to that ofΛ^+c and ■^++cc baryons.The limits are determined as functions of the ■^+cc mass for different lifetime hypotheses,in the rapidity range from 2.0 to 4.5 and the transverse momentum range from 4 to 15 GeV/c.
基金Supported by CERNnational agencies:CAPES+30 种基金CNPqFAPERJFINEP(Brazil)MOSTNSFC(China)CNRS/IN2P3(France)BMBFDFGMPG(Germany)INFN(Italy)NWO(Netherlands)MNiSWNCN(Poland)MEN/IFA(Romania)MSHE(Russia)MinECo(Spain)SNSFSER(Switzerland)NASU(Ukraine)STFC(United Kingdom)DOE NPNSF(USA)Key Research Program of Frontier Sciences of CAS,CAS PIFIthe Thousand Talents Program(China)RFBRRSFYandex LLC(Russia)GVAXuntaGalGENCAT(Spain)the Royal Society and the Leverhulme Trust(United Kingdom)
文摘The production of ■baryons in proton-proton collisions at a centre-of-mass energy of √s = 13 TeV is measured in the transverse-momentum range 4<pT<15GeV/c and the rapidity range2.0<y<4.5.The data used in this measurement correspond to an integrated luminosity of 1.7fb^-1,recorded by the LHCb experiment during 2016.The ratio of the ■ production cross-section times the branching fraction of the■→∧^+cK^-π^+ π^+decay relative to the prompt ∧^+c production cross-section is found to be(2.22±0.27±0.29)×10^-4,assuming the central value of the measured lifetime,where the first uncertainty is statistical and the second systematic.