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An Innovative Deep-Learning Algorithm for Supporting the Approximate Classification of Workloads in Big Data Environments

Cuzzocrea A.
•
Mumolo E.
•
Leung C. K.
•
Grasso G. M.
2019
  • conference object

Abstract
In this paper, we describe AppxDL, an algorithm for approximate classification of workloads of running processes in big data environments via deep learning (deep neural networks). The Deep Neural Network is trained with some workloads which belong to known categories (e.g., compiler, file compressor, etc..). Its purpose is to extract the type of workload from the executions of reference programs, so that a Neural Model of the workloads can be learned. When the learning phase is completed, the Deep Neural Network is available as Neural Model of the known workloads. We describe the AppxDL algorithm and we report and discuss some significant results we have achieved with it.
DOI
10.1007/978-3-030-33617-2_24
WOS
WOS:000582455000024
Archivio
http://hdl.handle.net/11368/2968234
info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-85076953045
https://link.springer.com/chapter/10.1007/978-3-030-33617-2_24
Diritti
closed access
license:copyright editore
license:copyright editore
FVG url
https://arts.units.it/request-item?handle=11368/2968234
Soggetti
  • Deep learning

  • Virtualized environme...

  • Workload classificati...

Scopus© citazioni
3
Data di acquisizione
Jun 15, 2022
Vedi dettagli
Web of Science© citazioni
2
Data di acquisizione
Mar 27, 2024
Visualizzazioni
5
Data di acquisizione
Apr 19, 2024
Vedi dettagli
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