TY - JOUR
T1 - From occasional choices to inevitable musts
T2 - A computational model of nicotine addiction
AU - Metin, Selin
AU - Sengor, N. Serap
PY - 2012
Y1 - 2012
N2 - Although, there are considerable works on the neural mechanisms of reward-based learning and decision making, and most of them mention that addiction can be explained by malfunctioning in these cognitive processes, there are very few computational models. This paper focuses on nicotine addiction, and a computational model for nicotine addiction is proposed based on the neurophysiological basis of addiction. The model compromises different levels ranging from molecular basis to systems level, and it demonstrates three different possible behavioral patterns which are addict, nonaddict, and indecisive. The dynamical behavior of the proposed model is investigated with tools used in analyzing nonlinear dynamical systems, and the relation between the behavioral patterns and the dynamics of the system is discussed.
AB - Although, there are considerable works on the neural mechanisms of reward-based learning and decision making, and most of them mention that addiction can be explained by malfunctioning in these cognitive processes, there are very few computational models. This paper focuses on nicotine addiction, and a computational model for nicotine addiction is proposed based on the neurophysiological basis of addiction. The model compromises different levels ranging from molecular basis to systems level, and it demonstrates three different possible behavioral patterns which are addict, nonaddict, and indecisive. The dynamical behavior of the proposed model is investigated with tools used in analyzing nonlinear dynamical systems, and the relation between the behavioral patterns and the dynamics of the system is discussed.
UR - http://www.scopus.com/inward/record.url?scp=84871379638&partnerID=8YFLogxK
U2 - 10.1155/2012/817485
DO - 10.1155/2012/817485
M3 - Article
C2 - 23251144
AN - SCOPUS:84871379638
SN - 1687-5265
VL - 2012
JO - Computational Intelligence and Neuroscience
JF - Computational Intelligence and Neuroscience
M1 - 817485
ER -