2019
DOI: 10.5194/isprs-archives-xlii-4-w18-447-2019
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Application of Machine and Deep Learning Strategies for the Classification of Heritage Point Clouds

Abstract: Abstract. The use of heritage point cloud for documentation and dissemination purposes is nowadays increasing. The association of semantic information to 3D data by means of automated classification methods can help to characterize, describe and better interpret the object under study. In the last decades, machine learning methods have brought significant progress to classification procedures. However, the topic of cultural heritage has not been fully explored yet. This paper presents a research for the classi… Show more

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Cited by 48 publications
(37 citation statements)
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“…The research group is focusing his efforts even in this direction [73]. In future works, we plan to improve and better integrate the framework with more effective architectures, in order to improve performances and test also different kind of input features [19,74].…”
Section: Discussionmentioning
confidence: 99%
See 3 more Smart Citations
“…The research group is focusing his efforts even in this direction [73]. In future works, we plan to improve and better integrate the framework with more effective architectures, in order to improve performances and test also different kind of input features [19,74].…”
Section: Discussionmentioning
confidence: 99%
“…At the best of our knowledge, the only recent attempt to use DL for the semantic classification of Point Clouds of DCH is [19]. The method described consists of a workflow composed of feature extraction, feature selection and classification, as proposed in [40], for the subdivision into a high level of detailed architectural elements, using and comparing both ML and DL strategies.…”
Section: Classification and Semantic Segmentation In The Field Of Dchmentioning
confidence: 99%
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“…Various types of machine learning and deep learning techniques are available, as described in [32]. In [35], a comparison on several machine learning and deep learning techniques were performed. The authors in [36] described a deep learning approach to classify outdoor point clouds in the case of heritage sites, while the authors in [37] proposed the use of a multi-scalar approach for classifying multi-resolution TLS data.…”
Section: Machine Learning and Deep Learning Approachesmentioning
confidence: 99%