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Towards Proximity Graph Auto-configuration: An Approach Based on Meta-learning

Seidi Oyamada R
•
Shimomura R. C.
•
Barbon Junior S.
•
Kaster D. S.
2020
  • conference object

Abstract
Due to the high production of complex data, the last decades have provided a huge advance in the development of similarity search methods. Recently graph-based methods have outperformed other ones in the literature of approximate similarity search. However, a graph employed on a dataset may present different behaviors depending on its parameters. Therefore, finding a suitable graph configuration is a time-consuming task, due to the necessity to build a structure for each parameterization. Our main contribution is to save time avoiding this exhaustive process. We propose in this work an intelligent approach based on meta-learning techniques to recommend a suitable graph along with its set of parameters for a given dataset. We also present and evaluate generic and tuned instantiations of the approach using Random Forests as the meta-model. The experiments reveal that our approach is able to perform high quality recommendations based on the user preferences.
DOI
10.1007/978-3-030-54832-2_9
WOS
WOS:001352192700009
Archivio
https://hdl.handle.net/11368/3037311
info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-85090099349
https://link.springer.com/chapter/10.1007/978-3-030-54832-2_9
Diritti
open access
license:copyright editore
license:digital rights management non definito
license uri:iris.pri02
license uri:iris.pri00
FVG url
https://arts.units.it/request-item?handle=11368/3037311
Soggetti
  • Auto configuration

  • Meta-learning

  • Nearest neighbor sear...

  • Proximity graphs

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