作者moove (...)
看板NCTU-STAT97G
标题[演讲公告] 0501 统计所专题演讲
时间Wed Apr 29 13:52:41 2009
题 目:Robust Synthetic Biology Design: Stochastic Game Theory Approach
主讲人:陈博现教授(清华大学电机系)
时 间:98年5月1日(星期五)上午10:40-11:30
(上午10:20-10:40茶会於交大统计所429室举行)
地 点:交大综合一馆427室
Abstract
Synthetic biology is to engineer artificial biological systems to
investigate natural biological phenomena and for a variety of applications.
However, the development of synthetic gene networks is still difficult and
most newly created gene networks are non-functioning due to uncertain initial
conditions and disturbances of extra-cellular environments on the host cell.
At present, how to design a robust synthetic gene network to work properly
under these uncertain factors is the most important topic of synthetic biology.
A robust regulation design is proposed for a stochastic synthetic gene
network to achieve the prescribed steady states under these uncertain factors
from the minimax regulation perspective. This minimax regulation design problem
can be transformed to an equivalent stochastic game problem. Since it is not
easy to solve the robust regulation design problem of synthetic gene networks
by nonlinear stochastic game method directly, the Takagi-Sugeno (T-S) fuzzy
model is proposed to approximate the nonlinear synthetic gene network via the
linear matrix inequality (LMI) technique through the Robust Control Toolbox in
Matlab. Finally, an in silico example is given to illustrate the design
procedure and to confirm the efficiency and efficacy of the proposed robust
gene design method.
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