The TOTEM DAQ based on the Scalable Readout System (SRS)
The TOTEM (TOTal cross section, Elastic scattering and diffraction dissociation Measurement at the LHC) experiment at LHC, has been designed to measure the total proton-proton cross-section and study the elastic and diffractive scattering at the LHC energies. In order to cope with the increased mach...
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doaj-f5daac537a0d4a19b2375c321268a60c2021-08-02T07:24:07ZengEDP SciencesEPJ Web of Conferences2100-014X2018-01-011740700310.1051/epjconf/201817407003epjconf_mpgd2018_07003The TOTEM DAQ based on the Scalable Readout System (SRS)Quinto MicheleCafagna Francesco S.Fiergolski AdrianRadicioni EmilioThe TOTEM (TOTal cross section, Elastic scattering and diffraction dissociation Measurement at the LHC) experiment at LHC, has been designed to measure the total proton-proton cross-section and study the elastic and diffractive scattering at the LHC energies. In order to cope with the increased machine luminosity and the higher statistic required by the extension of the TOTEM physics program, approved for the LHC’s Run Two phase, the previous VME based data acquisition system has been replaced with a new one based on the Scalable Readout System. The system features an aggregated data throughput of 2GB / s towards the online storage system. This makes it possible to sustain a maximum trigger rate of ∼ 24kHz, to be compared with the 1KHz rate of the previous system. The trigger rate is further improved by implementing zero-suppression and second-level hardware algorithms in the Scalable Readout System. The new system fulfils the requirements for an increased efficiency, providing higher bandwidth, and increasing the purity of the data recorded. Moreover full compatibility has been guaranteed with the legacy front-end hardware, as well as with the DAQ interface of the CMS experiment and with the LHC’s Timing, Trigger and Control distribution system. In this contribution we describe in detail the architecture of full system and its performance measured during the commissioning phase at the LHC Interaction Point.https://doi.org/10.1051/epjconf/201817407003 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Quinto Michele Cafagna Francesco S. Fiergolski Adrian Radicioni Emilio |
spellingShingle |
Quinto Michele Cafagna Francesco S. Fiergolski Adrian Radicioni Emilio The TOTEM DAQ based on the Scalable Readout System (SRS) EPJ Web of Conferences |
author_facet |
Quinto Michele Cafagna Francesco S. Fiergolski Adrian Radicioni Emilio |
author_sort |
Quinto Michele |
title |
The TOTEM DAQ based on the Scalable Readout System (SRS) |
title_short |
The TOTEM DAQ based on the Scalable Readout System (SRS) |
title_full |
The TOTEM DAQ based on the Scalable Readout System (SRS) |
title_fullStr |
The TOTEM DAQ based on the Scalable Readout System (SRS) |
title_full_unstemmed |
The TOTEM DAQ based on the Scalable Readout System (SRS) |
title_sort |
totem daq based on the scalable readout system (srs) |
publisher |
EDP Sciences |
series |
EPJ Web of Conferences |
issn |
2100-014X |
publishDate |
2018-01-01 |
description |
The TOTEM (TOTal cross section, Elastic scattering and diffraction dissociation Measurement at the LHC) experiment at LHC, has been designed to measure the total proton-proton cross-section and study the elastic and diffractive scattering at the LHC energies. In order to cope with the increased machine luminosity and the higher statistic required by the extension of the TOTEM physics program, approved for the LHC’s Run Two phase, the previous VME based data acquisition system has been replaced with a new one based on the Scalable Readout System. The system features an aggregated data throughput of 2GB / s towards the online storage system. This makes it possible to sustain a maximum trigger rate of ∼ 24kHz, to be compared with the 1KHz rate of the previous system. The trigger rate is further improved by implementing zero-suppression and second-level hardware algorithms in the Scalable Readout System. The new system fulfils the requirements for an increased efficiency, providing higher bandwidth, and increasing the purity of the data recorded. Moreover full compatibility has been guaranteed with the legacy front-end hardware, as well as with the DAQ interface of the CMS experiment and with the LHC’s Timing, Trigger and Control distribution system. In this contribution we describe in detail the architecture of full system and its performance measured during the commissioning phase at the LHC Interaction Point. |
url |
https://doi.org/10.1051/epjconf/201817407003 |
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