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Please use this identifier to cite or link to this item: http://dspace.ucuenca.edu.ec/handle/123456789/29165
Title: SUPERVISED CLASSIFICATION PROCESSES for the CHARACTERIZATION of HERITAGE ELEMENTS, CASE STUDY: CUENCA-ECUADOR
Authors: Briones Orellana, Juan Carlos
Heras Barros, Veronica Cristina
Sinchi Tenesaca, Edison Roman
metadata.dc.ucuenca.correspondencia: Heras, V.; Universidad de Cuenca, Architecture and Urbanism Faculty, Av 12 de Abril and Agustín Cueva, Ecuador; email: veronica.heras@ucuenca.edu.ec
metadata.dc.ucuenca.nombrerevista: 26th International CIPA Symposium on Digital Workflows for Heritage Conservation 2017
Keywords: Imagery Classification
Monitoring
Morphological Mathematic
Preventive Conservation
Roof Structures
Support Vector Machines
Issue Date: 28-Aug-2017
metadata.dc.ucuenca.embargoend: 1-Jan-2022
metadata.dc.ucuenca.volumen: 4
metadata.dc.source: ISPRS Annals of the Photogrammetry, Remote Sensing and Spatial Information Sciences
metadata.dc.identifier.doi: 10.5194/isprs-annals-IV-2-W2-39-2017
Publisher: COPERNICUS GMBH
metadata.dc.description.city: 
Ottawa
metadata.dc.type: Article
Abstract: 
The proper control of built heritage entails many challenges related to the complexity of heritage elements and the extent of the area to be managed, for which the available resources must be efficiently used. In this scenario, the preventive conservation approach, based on the concept that prevent is better than cure, emerges as a strategy to avoid the progressive and imminent loss of monuments and heritage sites. Regular monitoring appears as a key tool to identify timely changes in heritage assets. This research demonstrates that the supervised learning model (Support Vector Machines - SVM) is an ideal tool that supports the monitoring process detecting visible elements in aerial images such as roofs structures, vegetation and pavements. The linear, gaussian and polynomial kernel functions were tested; the lineal function provided better results over the other functions. It is important to mention that due to the high level of segmentation generated by the classification procedure, it was necessary to apply a generalization process through opening a mathematical morphological operation, which simplified the over classification for the monitored elements.
URI: https://www.scopus.com/inward/record.uri?eid=2-s2.0-85030246902&doi=10.5194%2fisprs-annals-IV-2-W2-39-2017&partnerID=40&md5=6d12138398177f44dc1fb655276814a4
http://dspace.ucuenca.edu.ec/handle/123456789/29165
ISSN: 21949042
Appears in Collections:Artículos

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