Automated Exploration and Inspection: Comparing Two Visual Novelty Detectors

Author:

Neto Hugo Vieira1,Nehmzow Ulrich1

Affiliation:

1. Department of Computer Science, University of Essex, Wivenhoe Park, Colchester CO4 3SQ, UK

Abstract

Mobile robot applications that involve exploration and inspection of dynamic environments benefit, and often even are dependant on reliable novelty detection algorithms. In this paper we compare and discuss the performance and functionality of two different on-line novelty detection algorithms, one based on incremental Principal Component Analysis and the other on a Grow-When-Required artificial neural network. A series of experiments using visual input obtained by a mobile robot interacting with laboratory and real-world environments demonstrate and measure advantages and disadvantages of each approach.

Publisher

SAGE Publications

Subject

Artificial Intelligence,Computer Science Applications,Software

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