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GP generation of pedestrian behavioral rules in an evacuation model based on SCA

Publication Year :
2008

Abstract

This paper presents a research in the context of pedestrian dynamics according to Situated Cellular Agent (SCA), a Multi-Agent Systems approach whose roots are on Cellular Automata (CA). The aim of this work is to apply Genetic Programming (GP) approach, a well known Machine Learning method belonging to the family of Evolutionary Algorithms, to generate suitable behavioral rules for pedestrians in an evacuation scenario. The main contribution of this work is in the design of a testset of GP generated behaviors to represent basic behavioral models of evacuees populating a only locally known environment, a typical scenario for CA-based models. © 2008 Springer-Verlag Berlin Heidelberg.

Details

Database :
OAIster
Notes :
Umeo, H, Morishita, S, Nishinari, K, Komatsuzaki, T, Bandini, S, Bandini, S, Manzoni, S, Mauri, G, Redaelli, S, Vanneschi, L, BANDINI, STEFANIA, MANZONI, SARA LUCIA, MAURI, GIANCARLO, REDAELLI, STEFANO, VANNESCHI, LEONARDO
Publication Type :
Electronic Resource
Accession number :
edsoai.on1311384390
Document Type :
Electronic Resource