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Real-time heterogeneous stream processing with NaNet in the NA62 experiment

The use of GPUs to implement general purpose computational tasks, known as GPGPU since fifteen years ago, has reached maturity. Applications take advantage of the parallel architectures of these devices in many different domains. Over the last few years several works have demonstrated the effectiven...

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Detalles Bibliográficos
Autores principales: Ammendola, R, Barbanera, M, Biagioni, A, Cretaro, P, Frezza, O, Lamanna, G, Lo Cicero, F, Lonardo, A, Martinelli, M, Pastorelli, E, Paolucci, P S, Piandani, R, Pontisso, L, Rossetti, D, Simula, F, Sozzi, M, Valente, P, Vicini, P
Lenguaje:eng
Publicado: 2018
Materias:
Acceso en línea:https://dx.doi.org/10.1088/1742-6596/1085/3/032022
http://cds.cern.ch/record/2665777
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author Ammendola, R
Barbanera, M
Biagioni, A
Cretaro, P
Frezza, O
Lamanna, G
Lo Cicero, F
Lonardo, A
Martinelli, M
Pastorelli, E
Paolucci, P S
Piandani, R
Pontisso, L
Rossetti, D
Simula, F
Sozzi, M
Valente, P
Vicini, P
author_facet Ammendola, R
Barbanera, M
Biagioni, A
Cretaro, P
Frezza, O
Lamanna, G
Lo Cicero, F
Lonardo, A
Martinelli, M
Pastorelli, E
Paolucci, P S
Piandani, R
Pontisso, L
Rossetti, D
Simula, F
Sozzi, M
Valente, P
Vicini, P
author_sort Ammendola, R
collection CERN
description The use of GPUs to implement general purpose computational tasks, known as GPGPU since fifteen years ago, has reached maturity. Applications take advantage of the parallel architectures of these devices in many different domains. Over the last few years several works have demonstrated the effectiveness of the integration of GPU-based systems in the high level trigger of various HEP experiments. On the other hand, the use of GPUs in the DAQ and low level trigger systems, characterized by stringent real-time constraints, poses several challenges. In order to achieve such a goal we devised NaNet, a FPGA-based PCI-Express Network Interface Card design capable of direct (zero-copy) data transferring with CPU and GPU (GPUDirect) while online processing incoming and outgoing data streams. The board provides as well support for multiple link technologies (1/10/40GbE and custom ones). The validity of our approach has been tested in the context of the NA62 CERN experiment, harvesting the computing power of last generation NVIDIA Pascal GPUs and of the FPGA hosted by NaNet to build in real-time refined physics-related primitives for the RICH detector (i.e. the Cerenkov rings parameters) that enable the building of more stringent conditions for data selection in the low level trigger.
id oai-inspirehep.net-1699842
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2018
record_format invenio
spelling oai-inspirehep.net-16998422021-02-09T10:06:53Zdoi:10.1088/1742-6596/1085/3/032022http://cds.cern.ch/record/2665777engAmmendola, RBarbanera, MBiagioni, ACretaro, PFrezza, OLamanna, GLo Cicero, FLonardo, AMartinelli, MPastorelli, EPaolucci, P SPiandani, RPontisso, LRossetti, DSimula, FSozzi, MValente, PVicini, PReal-time heterogeneous stream processing with NaNet in the NA62 experimentComputing and ComputersParticle Physics - ExperimentThe use of GPUs to implement general purpose computational tasks, known as GPGPU since fifteen years ago, has reached maturity. Applications take advantage of the parallel architectures of these devices in many different domains. Over the last few years several works have demonstrated the effectiveness of the integration of GPU-based systems in the high level trigger of various HEP experiments. On the other hand, the use of GPUs in the DAQ and low level trigger systems, characterized by stringent real-time constraints, poses several challenges. In order to achieve such a goal we devised NaNet, a FPGA-based PCI-Express Network Interface Card design capable of direct (zero-copy) data transferring with CPU and GPU (GPUDirect) while online processing incoming and outgoing data streams. The board provides as well support for multiple link technologies (1/10/40GbE and custom ones). The validity of our approach has been tested in the context of the NA62 CERN experiment, harvesting the computing power of last generation NVIDIA Pascal GPUs and of the FPGA hosted by NaNet to build in real-time refined physics-related primitives for the RICH detector (i.e. the Cerenkov rings parameters) that enable the building of more stringent conditions for data selection in the low level trigger.oai:inspirehep.net:16998422018
spellingShingle Computing and Computers
Particle Physics - Experiment
Ammendola, R
Barbanera, M
Biagioni, A
Cretaro, P
Frezza, O
Lamanna, G
Lo Cicero, F
Lonardo, A
Martinelli, M
Pastorelli, E
Paolucci, P S
Piandani, R
Pontisso, L
Rossetti, D
Simula, F
Sozzi, M
Valente, P
Vicini, P
Real-time heterogeneous stream processing with NaNet in the NA62 experiment
title Real-time heterogeneous stream processing with NaNet in the NA62 experiment
title_full Real-time heterogeneous stream processing with NaNet in the NA62 experiment
title_fullStr Real-time heterogeneous stream processing with NaNet in the NA62 experiment
title_full_unstemmed Real-time heterogeneous stream processing with NaNet in the NA62 experiment
title_short Real-time heterogeneous stream processing with NaNet in the NA62 experiment
title_sort real-time heterogeneous stream processing with nanet in the na62 experiment
topic Computing and Computers
Particle Physics - Experiment
url https://dx.doi.org/10.1088/1742-6596/1085/3/032022
http://cds.cern.ch/record/2665777
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