arXiv · 1906.03365
Global Semantic Description of Objects based on Prototype Theory
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Abstract
In this paper, we introduce a novel semantic description approach inspired on Prototype Theory foundations. We propose a Computational Prototype Model (CPM) that encodes and stores the central semantic meaning of objects category: the semantic prototype. Also, we introduce a Prototype-based Description Model that encodes the semantic meaning of an object while describing its features using our CPM model. Our description method uses semantic prototypes computed by CNN-classifications models to create discriminative signatures that describe an object highlighting its most distinctive features within the category. Our experiments show that: i) our CPM model (semantic prototype + distance metric) is able to describe the internal semantic structure of objects categories; ii) our semantic distance metric can be understood as the object visual typicality score within a category; iii) our descriptor encoding is semantically interpretable and significantly outperforms other image global encodings in clustering and classification tasks.
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Omar Vidal Pino, Erickson Rangel Nascimento, Mario Fernando Montenegro Campos. 2019-06-08. Global Semantic Description of Objects based on Prototype Theory. https://doi.org/10.1016/j.imavis.2021.104249
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