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10.1109/ICPR.2010.1015guideproceedingsArticle/Chapter ViewAbstractPublication PagesConference Proceedingsacm-pubtype
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Forest Species Recognition Using Color-Based Features

Published: 23 August 2010 Publication History

Abstract

In this work we address the problem of forest species recognition which is a very challenging task and has several potential applications in the wood industry. The first contribution of this work is a database composed of 22 different species of the Brazilian flora that has been carefully labeled by expert in wood anatomy. In addition, in this work we demonstrate through a series of comprehensive experiments that color-based features are quite useful to increase the discrimination power for this kind of application. Last but not least, we propose a segmentation approach so that a wood can be locally processed to mitigate the intra-class variability featured in some classes. Such an approach also brings important contribution to improve the final performance in terms of classification.

Cited By

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  • (2015)Forest species recognition based on dynamic classifier selection and dissimilarity feature vector representationMachine Vision and Applications10.1007/s00138-015-0659-026:2-3(279-293)Online publication date: 1-Apr-2015
  • (2013)A multiple feature vector framework for forest species recognitionProceedings of the 28th Annual ACM Symposium on Applied Computing10.1145/2480362.2480368(16-20)Online publication date: 18-Mar-2013

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Published In

cover image Guide Proceedings
ICPR '10: Proceedings of the 2010 20th International Conference on Pattern Recognition
August 2010
4662 pages
ISBN:9780769541099

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IEEE Computer Society

United States

Publication History

Published: 23 August 2010

Author Tags

  1. color
  2. neural networks
  3. texture
  4. wood recognition

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Cited By

View all
  • (2015)Forest species recognition based on dynamic classifier selection and dissimilarity feature vector representationMachine Vision and Applications10.1007/s00138-015-0659-026:2-3(279-293)Online publication date: 1-Apr-2015
  • (2013)A multiple feature vector framework for forest species recognitionProceedings of the 28th Annual ACM Symposium on Applied Computing10.1145/2480362.2480368(16-20)Online publication date: 18-Mar-2013

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