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Please use this identifier to cite or link to this item: http://dspace.ucuenca.edu.ec/handle/123456789/33304
Title: Audio fingerprint parameterization for multimedia advertising identification
Authors: Medina Cartuche, Jose Luis
Vega Zamora, Oswaldo Francisco
Mendoza Siguenza, Daniel Emilio
Saquicela Galarza, Victor Hugo
Espinoza Mejia, Jorge Mauricio
Keywords: Advertising Monitoring
Audio Fingerprint
Automatic Content Recognition
Signal Processing
metadata.dc.ucuenca.areaconocimientofrascatiamplio: 1. Ciencias Naturales y Exactas
metadata.dc.ucuenca.areaconocimientofrascatidetallado: 1.2.1 Ciencias de la Computación
metadata.dc.ucuenca.areaconocimientofrascatiespecifico: 1.2 Informática y Ciencias de la Información
metadata.dc.ucuenca.areaconocimientounescoamplio: 06 - Información y Comunicación (TIC)
metadata.dc.ucuenca.areaconocimientounescodetallado: 0613 - Software y Desarrollo y Análisis de Aplicativos
metadata.dc.ucuenca.areaconocimientounescoespecifico: 061 - Información y Comunicación (TIC)
Issue Date: 2017
metadata.dc.ucuenca.embargoend: 31-Dec-2050
metadata.dc.ucuenca.volumen: volumen 2017
metadata.dc.source: IEEE Second Ecuador Technical Chapters Meeting (ETCM)
metadata.dc.identifier.doi: 10.1109/ETCM.2017.8247498
Publisher: Institute of Electrical and Electronics Engineers Inc.
metadata.dc.description.city: 
SALINAS
metadata.dc.type: ARTÍCULO DE CONFERENCIA
Abstract: 
This article follows step by step a general framework for fingerprint extraction in order to develop a system for advertisements' monitoring. The parameterization process uses some spatial and spectral characteristics measured over 600 advertisements that contain various types of sounds. Key factors such as accuracy, process time, and granularity are analyzed together in order to enhance the system performance. At the end, the algorithm shows an accuracy of 99% using three seconds of granularity samples, and also the best compromise between processing time and performance is achieved. This study suggests a set of parameterization steps which could be successfully implemented in other related audio applications. © 2017 IEEE.
Description: 
This article follows step by step a general framework for fingerprint extraction in order to develop a system for advertisements' monitoring. The parameterization process uses some spatial and spectral characteristics measured over 600 advertisements that contain various types of sounds. Key factors such as accuracy, process time, and granularity are analyzed together in order to enhance the system performance. At the end, the algorithm shows an accuracy of 99% using three seconds of granularity samples, and also the best compromise between processing time and performance is achieved. This study suggests a set of parameterization steps which could be successfully implemented in other related audio applications. © 2017 IEEE.
URI: http://dspace.ucuenca.edu.ec/handle/123456789/33304
https://ieeexplore.ieee.org/document/8247498
metadata.dc.ucuenca.urifuente: https://ieeexplore.ieee.org/Xplore/home.jsp
ISBN: 978-153863894-1
ISSN: 0000-0000
Appears in Collections:Artículos

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