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Data acquisition architecture and online processing system for the HAWC gamma-ray observatory

  • A. U. Abeysekara
    ,
  • R. Alfaro
    ,
  • C. Alvarez
    ,
  • J. D. Álvarez
    ,
  • R. Arceo
    ,
  • J. C. Arteaga-Velázquez
*Corresponding author for this work
  • University of Utah
    ,
  • Universidad Nacional Autónoma de México
    ,
  • Universidad Autonoma de Chiapas
    ,
  • Universidad Michoacana de San Nicolas de Hidalgo
    ,
  • Michigan Technological University
    ,
  • University of Maryland, College Park
Research Output:
Contribution to journal
Article
Peer-review

Open access

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Metrics

SciVal
Citations
30
SciVal
FWCI
0.85
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Author count
107
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Paper percentile
67
Scopus
Citations

Abstract

The High Altitude Water Cherenkov observatory (HAWC) is an air shower array devised for TeV gamma-ray astronomy. HAWC is located at an altitude of 4100 m a.s.l. in Sierra Negra, Mexico. HAWC consists of 300 Water Cherenkov Detectors, each instrumented with 4 photomultiplier tubes (PMTs). HAWC re-uses the Front-End Boards from the Milagro experiment to receive the PMT signals. These boards are used in combination with Time to Digital Converters (TDCs) to record the time and the amount of light in each PMT hit (light flash). A set of VME TDC modules (128 channels each) is operated in a continuous (dead time free) mode. The TDCs are read out via the VME bus by Single-Board Computers (SBCs), which in turn are connected to a gigabit Ethernet network. The complete system produces ≈500 MB/s of raw data. A high-throughput data processing system has been designed and built to enable real-time data analysis. The system relies on off-the-shelf hardware components, an open-source software technology for data transfers (ZeroMQ) and a custom software framework for data analysis (AERIE). Multiple trigger and reconstruction algorithms can be combined and run on blocks of data in a parallel fashion, producing a set of output data streams which can be analyzed in real time with minimal latency (<5 s). This paper provides an overview of the hardware set-up and an in-depth description of the software design, covering both the TDC data acquisition system and the real-time data processing system. The performance of these systems is also discussed.

Publication Information

Output type

Research Output:
Contribution to journal
Article
Peer-review

Original language

English

Pages from-to (Number of pages)

Pages 138-146 (9 pages)

Journal (Volume, Issue Number)

Nuclear Instruments and Methods in Physics Research, Section A: Accelerators, Spectrometers, Detectors and Associated Equipment (Volume 888)

Publication milestones

  • Published - 21/04/2018

Publication status

Published - 21/04/2018

ISSN

0168-9002

Publication IDs

  • Scopus: 85041489284

Funding Details

We acknowledge the support from: US National Science Foundation (NSF) ; US Department of Energy Office of High-Energy Physics ; The Laboratory Directed Research and Development (LDRD) program of Los Alamos National Laboratory; Consejo Nacional de Ciencia y Tecnología (CONACyT), México (grants 55155 , 105666 , 122331 , and 132197 ); Red de Física de Altas Energías, México ; DGAPA-UNAM, México (grants IG100414-3 , IN108713 , IN121309 , IN115409 , and IN113612 ); VIEP-BUAP (grant 161-EXC-2011 ); and the University of Wisconsin Alumni Research Foundation .
FundersFunding numbers
DGAPA-UNAM
IN121309, IG100414-3, IN115409, IN113612, IN108713
Red de Física de Altas Energías
-
US Department of Energy Office of High-Energy Physics
-
US National Science Foundation
-
VIEP-BUAP
161-EXC-2011
NSF
1806854, 1308127, 1606566
NSF
-
WARF
-
LDRD
-
LANL
-
CONACYT
55155, 122331, 105666, 132197
CONACYT
-