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Selecting features for object detection using an AdaBoost-compatible evaluation function

Luka Fürst and Sanja Fidler and Aleš Leonardis (2008) Selecting features for object detection using an AdaBoost-compatible evaluation function. Pattern Recognition Letters, 29 (11). pp. 1603-1612. ISSN 0167-8655

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    Abstract

    This paper addresses the problem of selecting features in a visual object detection setup where a detection algorithm is applied to an input image represented by a set of features. The set of features to be employed in the test stage is prepared in two training-stage steps. In the first step, a feature extraction algorithm produces a (possibly large) initial set of features. In the second step, on which this paper focuses, the initial set is reduced using a selection procedure. The proposed selection procedure is based on a novel evaluation function that measures the utility of individual features for a certain detection task. Owing to its design, the evaluation function can be seamlessly embedded into an AdaBoost selection framework. The developed selection procedure is integrated with state-of-the-art feature extraction and object detection methods. The presented system was tested on five challenging detection setups. In three of them, a fairly high detection accuracy was effected by as few as six features selected out of several hundred initial candidates.

    Item Type: Article
    Keywords: feature selection, AdaBoost, object detection
    Related URLs:
    URLURL Type
    http://vicos.fri.uni-lj.si/publications/fuerst2008selecting/Laboratory
    http://www.cobiss.si/scripts/cobiss?command=search&base=50070&select=(id=6494804)Alternative location
    Institution: University of Ljubljana
    Department: Faculty of Computer and Information Science
    Divisions: Faculty of Computer and Information Science > Visual Cognitive Systems Laboratory
    Item ID: 245
    Date Deposited: 22 Jul 2010 22:28
    Last Modified: 05 Dec 2013 14:02
    URI: http://eprints.fri.uni-lj.si/id/eprint/245

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