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Deep learning for logo recognition

Publication Year :
2017

Abstract

In this paper we propose a method for logo recognition using deep learning. Our recognition pipeline is composed of a logo region proposal followed by a Convolutional Neural Network (CNN) specifically trained for logo classification, even if they are not precisely localized. Experiments are carried out on the FlickrLogos-32 database, and we evaluate the effect on recognition performance of synthetic versus real data augmentation, and image pre-processing. Moreover, we systematically investigate the benefits of different training choices such as class-balancing, sample-weighting and explicit modeling the background class (i.e. no-logo regions). Experimental results confirm the feasibility of the proposed method, that outperforms the methods in the state of the art.

Details

Database :
OAIster
Notes :
Bianco, S, Buzzelli, M, Mazzini, D, Schettini, R, BIANCO, SIMONE, BUZZELLI, MARCO, MAZZINI, DAVIDE, SCHETTINI, RAIMONDO
Publication Type :
Electronic Resource
Accession number :
edsoai.on1308920639
Document Type :
Electronic Resource