Modelling the insect Mushroom Bodies: Application to sequence learning
被引:11
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Arena, Paolo
[1
,2
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Cali, Marco
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Univ Catania, Dipartimento Ingn Elettr Elettron & Informat, I-95124 Catania, ItalyUniv Catania, Dipartimento Ingn Elettr Elettron & Informat, I-95124 Catania, Italy
Cali, Marco
[1
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Patane, Luca
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Univ Catania, Dipartimento Ingn Elettr Elettron & Informat, I-95124 Catania, ItalyUniv Catania, Dipartimento Ingn Elettr Elettron & Informat, I-95124 Catania, Italy
Patane, Luca
[1
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Portera, Agnese
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Univ Catania, Dipartimento Ingn Elettr Elettron & Informat, I-95124 Catania, ItalyUniv Catania, Dipartimento Ingn Elettr Elettron & Informat, I-95124 Catania, Italy
Portera, Agnese
[1
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Strauss, Roland
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Johannes Gutenberg Univ Mainz, Inst Zool Neurobiol 3, Mainz, GermanyUniv Catania, Dipartimento Ingn Elettr Elettron & Informat, I-95124 Catania, Italy
Strauss, Roland
[3
]
机构:
[1] Univ Catania, Dipartimento Ingn Elettr Elettron & Informat, I-95124 Catania, Italy
Learning and reproducing temporal sequences is a fundamental ability used by living beings to adapt behaviour repertoire to environmental constraints. This paper is focused on the description of a model based on spiking neurons, able to learn and autonomously generate a sequence of events. The neural architecture is inspired by the insect Mushroom Bodies (MBs) that are a crucial centre for multimodal sensory integration and behaviour modulation. The sequence learning capability coexists, within the insect brain computational model, with all the other features already addressed like attention, expectation, learning classification and others. This is a clear example that a unique neural structure is able to cope concurrently with a plethora of behaviours. Simulation results and robotic experiments are reported and discussed. (C) 2015 Elsevier Ltd. All rights reserved.