Incremental Semantic Mapping with Unsupervised On-line Learning

July 09, 2019 Β· Declared Dead Β· πŸ› IEEE International Joint Conference on Neural Network

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Authors Ygor C. N. Sousa, Hansenclever F. Bassani arXiv ID 1907.04001 Category cs.RO: Robotics Cross-listed cs.LG, cs.NE Citations 2 Venue IEEE International Joint Conference on Neural Network Last Checked 5 months ago
Abstract
This paper introduces an incremental semantic mapping approach, with on-line unsupervised learning, based on Self-Organizing Maps (SOM) for robotic agents. The method includes a mapping module, which incrementally creates a topological map of the environment, enriched with objects recognized around each topological node, and a module of places categorization, endowed with an incremental unsupervised learning SOM with on-line training. The proposed approach was tested in experiments with real-world data, in which it demonstrates promising capabilities of incremental acquisition of topological maps enriched with semantic information, and for clustering together similar places based on this information. The approach was also able to continue learning from newly visited environments without degrading the information previously learned.
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