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The CMS Modular Track Finder Boards, MTF6 and MTF7
To accommodate the increase in energy and luminosity of the upgraded LHC, the CMS Endcap Muon Level 1 Trigger system has to be significantly modified. To provide the best track reconstruction, the Trigger system must now import all available trigger primitives generated by Cathode Strip Chambers and...
Autores principales: | , , , , , , , , , , , , , , |
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Lenguaje: | eng |
Publicado: |
2013
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Materias: | |
Acceso en línea: | https://dx.doi.org/10.1088/1748-0221/8/12/C12034 http://cds.cern.ch/record/1627822 |
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author | Acosta, Darin Edward Brown, George Eric Carnes, Andrew Mathew Carver, Matthew Robert Curry, David Alexander Di Giovanni, Gian Piero Furic, Ivan-Kresimir Kropivnitskaya, Anna Madorsky, Alexander Matveev, Mikhail Padley, Paul Rank, Douglas Reeves, C Scurlock, Bobby Wang, S |
author_facet | Acosta, Darin Edward Brown, George Eric Carnes, Andrew Mathew Carver, Matthew Robert Curry, David Alexander Di Giovanni, Gian Piero Furic, Ivan-Kresimir Kropivnitskaya, Anna Madorsky, Alexander Matveev, Mikhail Padley, Paul Rank, Douglas Reeves, C Scurlock, Bobby Wang, S |
author_sort | Acosta, Darin Edward |
collection | CERN |
description | To accommodate the increase in energy and luminosity of the upgraded LHC, the CMS Endcap Muon Level 1 Trigger system has to be significantly modified. To provide the best track reconstruction, the Trigger system must now import all available trigger primitives generated by Cathode Strip Chambers and by other regional subsystems, such as Resistive Plate Chambers. In addition to massive input bandwidth, this also requires a significant increase in logic and memory resources.
To satisfy these requirements, a new Sector Processor unit for muon track finding is being designed. This unit follows the micro-TCA standard recently adopted by CMS. It consists of three modules. The Core Logic module houses the large FPGA that contains the processing logic and multi-gigabit serial links for data exchange. The Optical module contains optical receivers and transmitters; it communicates with the Core Logic module via a custom backplane section. The Look-up Table module contains a large amount of low-latency memory that is used to assign the final transverse momentum of the muon candidate tracks. The name of the unit - Modular Track Finder - reflects the modular approach used in the design.
Presented here are the details of the hardware design of the prototype unit based on Xilinx's Virtex-6 FPGA family, MTF6, as well as results of the conducted tests. Also presented are plans for the pre-production prototype based on the Virtex-7 FPGA family, MTF7. |
id | cern-1627822 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2013 |
record_format | invenio |
spelling | cern-16278222019-09-30T06:29:59Zdoi:10.1088/1748-0221/8/12/C12034http://cds.cern.ch/record/1627822engAcosta, Darin EdwardBrown, George EricCarnes, Andrew MathewCarver, Matthew RobertCurry, David AlexanderDi Giovanni, Gian PieroFuric, Ivan-KresimirKropivnitskaya, AnnaMadorsky, AlexanderMatveev, MikhailPadley, PaulRank, DouglasReeves, CScurlock, BobbyWang, SThe CMS Modular Track Finder Boards, MTF6 and MTF7Detectors and Experimental TechniquesTo accommodate the increase in energy and luminosity of the upgraded LHC, the CMS Endcap Muon Level 1 Trigger system has to be significantly modified. To provide the best track reconstruction, the Trigger system must now import all available trigger primitives generated by Cathode Strip Chambers and by other regional subsystems, such as Resistive Plate Chambers. In addition to massive input bandwidth, this also requires a significant increase in logic and memory resources. To satisfy these requirements, a new Sector Processor unit for muon track finding is being designed. This unit follows the micro-TCA standard recently adopted by CMS. It consists of three modules. The Core Logic module houses the large FPGA that contains the processing logic and multi-gigabit serial links for data exchange. The Optical module contains optical receivers and transmitters; it communicates with the Core Logic module via a custom backplane section. The Look-up Table module contains a large amount of low-latency memory that is used to assign the final transverse momentum of the muon candidate tracks. The name of the unit - Modular Track Finder - reflects the modular approach used in the design. Presented here are the details of the hardware design of the prototype unit based on Xilinx's Virtex-6 FPGA family, MTF6, as well as results of the conducted tests. Also presented are plans for the pre-production prototype based on the Virtex-7 FPGA family, MTF7.CMS-CR-2013-383oai:cds.cern.ch:16278222013-10-30 |
spellingShingle | Detectors and Experimental Techniques Acosta, Darin Edward Brown, George Eric Carnes, Andrew Mathew Carver, Matthew Robert Curry, David Alexander Di Giovanni, Gian Piero Furic, Ivan-Kresimir Kropivnitskaya, Anna Madorsky, Alexander Matveev, Mikhail Padley, Paul Rank, Douglas Reeves, C Scurlock, Bobby Wang, S The CMS Modular Track Finder Boards, MTF6 and MTF7 |
title | The CMS Modular Track Finder Boards, MTF6 and MTF7 |
title_full | The CMS Modular Track Finder Boards, MTF6 and MTF7 |
title_fullStr | The CMS Modular Track Finder Boards, MTF6 and MTF7 |
title_full_unstemmed | The CMS Modular Track Finder Boards, MTF6 and MTF7 |
title_short | The CMS Modular Track Finder Boards, MTF6 and MTF7 |
title_sort | cms modular track finder boards, mtf6 and mtf7 |
topic | Detectors and Experimental Techniques |
url | https://dx.doi.org/10.1088/1748-0221/8/12/C12034 http://cds.cern.ch/record/1627822 |
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