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Symmetry classification with product-unit neural networks

First Mainz and Friends Artificial Intelligence Conference : MAInC 2023 ; June 13-14, 2023, Gutenberg Digital Hub, Mainz, Germany. Mainz. 2023

Erscheinungsjahr: 2023

Publikationstyp: Diverses (Konferenzbeitrag)

Sprache: Englisch

GeprüftBibliothek

Inhaltszusammenfassung


Symmetries provide important cues for visual perception and object recognition in images. This paper explores the ability of product-unit neural networks to classify images with different symmetries and compares their performance with standard neural networks with the same number of artificial neurons. For this purpose two binary classification experiments were performed. In the first experiment, random patterns with either a horizontal or vertical symmetry axis were classified. In the second...Symmetries provide important cues for visual perception and object recognition in images. This paper explores the ability of product-unit neural networks to classify images with different symmetries and compares their performance with standard neural networks with the same number of artificial neurons. For this purpose two binary classification experiments were performed. In the first experiment, random patterns with either a horizontal or vertical symmetry axis were classified. In the second experiment, random patterns had to be distinguished from rotationally symmetric circular patterns. All networks achieved test accuracies of over 90 %, with the standard networks performing better in the axis symmetry experiment, but the product unit networks performing better in the rotation symmetry experiment. Possible implications of the results for object recognition and for solving symmetry classification problems are discussed.» weiterlesen» einklappen

  • Neural Networks
  • Product units
  • Symmetry classification

Klassifikation


DFG Fachgebiet:
Informatik

DDC Sachgruppe:
Technik

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