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Kernels on structured objects through nested histograms

  • Institute of Statistical Mathematics

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Résumé

We propose a family of kernels for structured objects which is based on the bag-of-components paradigm. However, rather than decomposing each complex object into the single histogram of its components, we use for each object a family of nested histograms, where each histogram in this hierarchy describes the object seen from an increasingly granular perspective. We use this hierarchy of histograms to define elementary kernels which can detect coarse and fine similarities between the objects. We compute through an efficient averaging trick a mixture of such specific kernels, to propose a final kernel value which weights efficiently local and global matches. We propose experimental results on an image retrieval experiment which show that this mixture is an effective template procedure to be used with kernels on histograms.

langue originaleAnglais
titreAdvances in Neural Information Processing Systems 19 - Proceedings of the 2006 Conference
EditeurNeural information processing systems foundation
Pages329-336
Nombre de pages8
ISBN (imprimé)9780262195683
Les DOIs
étatPublié - 1 janv. 2007
Modification externeOui
Evénement20th Annual Conference on Neural Information Processing Systems, NIPS 2006 - Vancouver, BC, Canada
Durée: 4 déc. 20067 déc. 2006

Série de publications

NomAdvances in Neural Information Processing Systems
ISSN (imprimé)1049-5258

Une conférence

Une conférence20th Annual Conference on Neural Information Processing Systems, NIPS 2006
Pays/TerritoireCanada
La villeVancouver, BC
période4/12/067/12/06

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